/*
- * GENerational Conservative Garbage Collector for SBCL x86
+ * GENerational Conservative Garbage Collector for SBCL
*/
/*
* <ftp://ftp.cs.utexas.edu/pub/garbage/bigsurv.ps>.
*/
+#include <stdlib.h>
#include <stdio.h>
+#include <errno.h>
+#include <string.h>
+#include "sbcl.h"
+#if defined(LISP_FEATURE_WIN32) && defined(LISP_FEATURE_SB_THREAD)
+#include "pthreads_win32.h"
+#else
#include <signal.h>
+#endif
#include "runtime.h"
-#include "sbcl.h"
#include "os.h"
#include "interr.h"
#include "globals.h"
#include "lispregs.h"
#include "arch.h"
#include "gc.h"
+#include "gc-internal.h"
+#include "thread.h"
+#include "pseudo-atomic.h"
+#include "alloc.h"
+#include "genesis/vector.h"
+#include "genesis/weak-pointer.h"
+#include "genesis/fdefn.h"
+#include "genesis/simple-fun.h"
+#include "save.h"
+#include "genesis/hash-table.h"
+#include "genesis/instance.h"
+#include "genesis/layout.h"
#include "gencgc.h"
+#if !defined(LISP_FEATURE_X86) && !defined(LISP_FEATURE_X86_64)
+#include "genesis/cons.h"
+#endif
+
+/* forward declarations */
+page_index_t gc_find_freeish_pages(page_index_t *restart_page_ptr, sword_t nbytes,
+ int page_type_flag);
-/* a function defined externally in assembly language, called from
- * this file */
-void do_pending_interrupt(void);
\f
/*
* GC parameters
*/
-/* the number of actual generations. (The number of 'struct
- * generation' objects is one more than this, because one object
- * serves as scratch when GC'ing.) */
-#define NUM_GENERATIONS 6
+/* Generations 0-5 are normal collected generations, 6 is only used as
+ * scratch space by the collector, and should never get collected.
+ */
+enum {
+ SCRATCH_GENERATION = PSEUDO_STATIC_GENERATION+1,
+ NUM_GENERATIONS
+};
/* Should we use page protection to help avoid the scavenging of pages
* that don't have pointers to younger generations? */
boolean enable_page_protection = 1;
-/* Should we unmap a page and re-mmap it to have it zero filled? */
-#if defined(__FreeBSD__) || defined(__OpenBSD__)
-/* comment from cmucl-2.4.8: This can waste a lot of swap on FreeBSD
- * so don't unmap there.
- *
- * The CMU CL comment didn't specify a version, but was probably an
- * old version of FreeBSD (pre-4.0), so this might no longer be true.
- * OTOH, if it is true, this behavior might exist on OpenBSD too, so
- * for now we don't unmap there either. -- WHN 2001-04-07 */
-boolean gencgc_unmap_zero = 0;
+/* the minimum size (in bytes) for a large object*/
+#if (GENCGC_ALLOC_GRANULARITY >= PAGE_BYTES) && (GENCGC_ALLOC_GRANULARITY >= GENCGC_CARD_BYTES)
+os_vm_size_t large_object_size = 4 * GENCGC_ALLOC_GRANULARITY;
+#elif (GENCGC_CARD_BYTES >= PAGE_BYTES) && (GENCGC_CARD_BYTES >= GENCGC_ALLOC_GRANULARITY)
+os_vm_size_t large_object_size = 4 * GENCGC_CARD_BYTES;
#else
-boolean gencgc_unmap_zero = 1;
+os_vm_size_t large_object_size = 4 * PAGE_BYTES;
#endif
-/* the minimum size (in bytes) for a large object*/
-unsigned large_object_size = 4 * 4096;
+/* Largest allocation seen since last GC. */
+os_vm_size_t large_allocation = 0;
+
\f
/*
* debugging
*/
-#define gc_abort() lose("GC invariant lost, file \"%s\", line %d", \
- __FILE__, __LINE__)
-
-/* FIXME: In CMU CL, this was "#if 0" with no explanation. Find out
- * how much it costs to make it "#if 1". If it's not too expensive,
- * keep it. */
-#if 1
-#define gc_assert(ex) do { \
- if (!(ex)) gc_abort(); \
-} while (0)
-#else
-#define gc_assert(ex)
-#endif
-
/* the verbosity level. All non-error messages are disabled at level 0;
* and only a few rare messages are printed at level 1. */
-unsigned gencgc_verbose = (QSHOW ? 1 : 0);
+#if QSHOW == 2
+boolean gencgc_verbose = 1;
+#else
+boolean gencgc_verbose = 0;
+#endif
/* FIXME: At some point enable the various error-checking things below
* and see what they say. */
/* We hunt for pointers to old-space, when GCing generations >= verify_gen.
- * Set verify_gens to NUM_GENERATIONS to disable this kind of check. */
-int verify_gens = NUM_GENERATIONS;
+ * Set verify_gens to HIGHEST_NORMAL_GENERATION + 1 to disable this kind of
+ * check. */
+generation_index_t verify_gens = HIGHEST_NORMAL_GENERATION + 1;
/* Should we do a pre-scan verify of generation 0 before it's GCed? */
boolean pre_verify_gen_0 = 0;
* during a heap verify? */
boolean verify_dynamic_code_check = 0;
+#ifdef LISP_FEATURE_X86
/* Should we check code objects for fixup errors after they are transported? */
boolean check_code_fixups = 0;
+#endif
/* Should we check that newly allocated regions are zero filled? */
boolean gencgc_zero_check = 0;
/* Should we check that free pages are zero filled during gc_free_heap
* called after Lisp PURIFY? */
boolean gencgc_zero_check_during_free_heap = 0;
+
+/* When loading a core, don't do a full scan of the memory for the
+ * memory region boundaries. (Set to true by coreparse.c if the core
+ * contained a pagetable entry).
+ */
+boolean gencgc_partial_pickup = 0;
+
+/* If defined, free pages are read-protected to ensure that nothing
+ * accesses them.
+ */
+
+/* #define READ_PROTECT_FREE_PAGES */
+
\f
/*
* GC structures and variables
*/
/* the total bytes allocated. These are seen by Lisp DYNAMIC-USAGE. */
-unsigned long bytes_allocated = 0;
-static unsigned long auto_gc_trigger = 0;
+os_vm_size_t bytes_allocated = 0;
+os_vm_size_t auto_gc_trigger = 0;
/* the source and destination generations. These are set before a GC starts
* scavenging. */
-static int from_space;
-static int new_space;
+generation_index_t from_space;
+generation_index_t new_space;
+
+/* Set to 1 when in GC */
+boolean gc_active_p = 0;
+
+/* should the GC be conservative on stack. If false (only right before
+ * saving a core), don't scan the stack / mark pages dont_move. */
+static boolean conservative_stack = 1;
+
+/* An array of page structures is allocated on gc initialization.
+ * This helps to quickly map between an address and its page structure.
+ * page_table_pages is set from the size of the dynamic space. */
+page_index_t page_table_pages;
+struct page *page_table;
+
+static inline boolean page_allocated_p(page_index_t page) {
+ return (page_table[page].allocated != FREE_PAGE_FLAG);
+}
+
+static inline boolean page_no_region_p(page_index_t page) {
+ return !(page_table[page].allocated & OPEN_REGION_PAGE_FLAG);
+}
-/* FIXME: It would be nice to use this symbolic constant instead of
- * bare 4096 almost everywhere. We could also use an assertion that
- * it's equal to getpagesize(). */
-#define PAGE_BYTES 4096
+static inline boolean page_allocated_no_region_p(page_index_t page) {
+ return ((page_table[page].allocated & (UNBOXED_PAGE_FLAG | BOXED_PAGE_FLAG))
+ && page_no_region_p(page));
+}
+
+static inline boolean page_free_p(page_index_t page) {
+ return (page_table[page].allocated == FREE_PAGE_FLAG);
+}
+
+static inline boolean page_boxed_p(page_index_t page) {
+ return (page_table[page].allocated & BOXED_PAGE_FLAG);
+}
+
+static inline boolean code_page_p(page_index_t page) {
+ return (page_table[page].allocated & CODE_PAGE_FLAG);
+}
+
+static inline boolean page_boxed_no_region_p(page_index_t page) {
+ return page_boxed_p(page) && page_no_region_p(page);
+}
+
+static inline boolean page_unboxed_p(page_index_t page) {
+ /* Both flags set == boxed code page */
+ return ((page_table[page].allocated & UNBOXED_PAGE_FLAG)
+ && !page_boxed_p(page));
+}
-/* An array of page structures is statically allocated.
- * This helps quickly map between an address its page structure.
- * NUM_PAGES is set from the size of the dynamic space. */
-struct page page_table[NUM_PAGES];
+static inline boolean protect_page_p(page_index_t page, generation_index_t generation) {
+ return (page_boxed_no_region_p(page)
+ && (page_table[page].bytes_used != 0)
+ && !page_table[page].dont_move
+ && (page_table[page].gen == generation));
+}
/* To map addresses to page structures the address of the first page
* is needed. */
-static void *heap_base = NULL;
+void *heap_base = NULL;
/* Calculate the start address for the given page number. */
inline void *
-page_address(int page_num)
+page_address(page_index_t page_num)
+{
+ return (heap_base + (page_num * GENCGC_CARD_BYTES));
+}
+
+/* Calculate the address where the allocation region associated with
+ * the page starts. */
+static inline void *
+page_scan_start(page_index_t page_index)
{
- return (heap_base + (page_num * 4096));
+ return page_address(page_index)-page_table[page_index].scan_start_offset;
+}
+
+/* True if the page starts a contiguous block. */
+static inline boolean
+page_starts_contiguous_block_p(page_index_t page_index)
+{
+ return page_table[page_index].scan_start_offset == 0;
+}
+
+/* True if the page is the last page in a contiguous block. */
+static inline boolean
+page_ends_contiguous_block_p(page_index_t page_index, generation_index_t gen)
+{
+ return (/* page doesn't fill block */
+ (page_table[page_index].bytes_used < GENCGC_CARD_BYTES)
+ /* page is last allocated page */
+ || ((page_index + 1) >= last_free_page)
+ /* next page free */
+ || page_free_p(page_index + 1)
+ /* next page contains no data */
+ || (page_table[page_index + 1].bytes_used == 0)
+ /* next page is in different generation */
+ || (page_table[page_index + 1].gen != gen)
+ /* next page starts its own contiguous block */
+ || (page_starts_contiguous_block_p(page_index + 1)));
}
/* Find the page index within the page_table for the given
* address. Return -1 on failure. */
-inline int
+inline page_index_t
find_page_index(void *addr)
{
- int index = addr-heap_base;
-
- if (index >= 0) {
- index = ((unsigned int)index)/4096;
- if (index < NUM_PAGES)
- return (index);
+ if (addr >= heap_base) {
+ page_index_t index = ((pointer_sized_uint_t)addr -
+ (pointer_sized_uint_t)heap_base) / GENCGC_CARD_BYTES;
+ if (index < page_table_pages)
+ return (index);
}
-
return (-1);
}
-/* a structure to hold the state of a generation */
+static os_vm_size_t
+npage_bytes(page_index_t npages)
+{
+ gc_assert(npages>=0);
+ return ((os_vm_size_t)npages)*GENCGC_CARD_BYTES;
+}
+
+/* Check that X is a higher address than Y and return offset from Y to
+ * X in bytes. */
+static inline os_vm_size_t
+void_diff(void *x, void *y)
+{
+ gc_assert(x >= y);
+ return (pointer_sized_uint_t)x - (pointer_sized_uint_t)y;
+}
+
+/* a structure to hold the state of a generation
+ *
+ * CAUTION: If you modify this, make sure to touch up the alien
+ * definition in src/code/gc.lisp accordingly. ...or better yes,
+ * deal with the FIXME there...
+ */
struct generation {
/* the first page that gc_alloc() checks on its next call */
- int alloc_start_page;
+ page_index_t alloc_start_page;
/* the first page that gc_alloc_unboxed() checks on its next call */
- int alloc_unboxed_start_page;
+ page_index_t alloc_unboxed_start_page;
/* the first page that gc_alloc_large (boxed) considers on its next
* call. (Although it always allocates after the boxed_region.) */
- int alloc_large_start_page;
+ page_index_t alloc_large_start_page;
/* the first page that gc_alloc_large (unboxed) considers on its
* next call. (Although it always allocates after the
* current_unboxed_region.) */
- int alloc_large_unboxed_start_page;
+ page_index_t alloc_large_unboxed_start_page;
/* the bytes allocated to this generation */
- int bytes_allocated;
+ os_vm_size_t bytes_allocated;
/* the number of bytes at which to trigger a GC */
- int gc_trigger;
+ os_vm_size_t gc_trigger;
/* to calculate a new level for gc_trigger */
- int bytes_consed_between_gc;
+ os_vm_size_t bytes_consed_between_gc;
/* the number of GCs since the last raise */
int num_gc;
- /* the average age after which a GC will raise objects to the
+ /* the number of GCs to run on the generations before raising objects to the
* next generation */
- int trigger_age;
+ int number_of_gcs_before_promotion;
/* the cumulative sum of the bytes allocated to this generation. It is
* cleared after a GC on this generations, and update before new
* objects are added from a GC of a younger generation. Dividing by
* the bytes_allocated will give the average age of the memory in
* this generation since its last GC. */
- int cum_sum_bytes_allocated;
+ os_vm_size_t cum_sum_bytes_allocated;
/* a minimum average memory age before a GC will occur helps
* prevent a GC when a large number of new live objects have been
* added, in which case a GC could be a waste of time */
- double min_av_mem_age;
+ double minimum_age_before_gc;
};
/* an array of generation structures. There needs to be one more
* generation structure than actual generations as the oldest
* generation is temporarily raised then lowered. */
-static struct generation generations[NUM_GENERATIONS+1];
+struct generation generations[NUM_GENERATIONS];
/* the oldest generation that is will currently be GCed by default.
- * Valid values are: 0, 1, ... (NUM_GENERATIONS-1)
+ * Valid values are: 0, 1, ... HIGHEST_NORMAL_GENERATION
*
- * The default of (NUM_GENERATIONS-1) enables GC on all generations.
+ * The default of HIGHEST_NORMAL_GENERATION enables GC on all generations.
*
* Setting this to 0 effectively disables the generational nature of
* the GC. In some applications generational GC may not be useful
* An intermediate value could be handy after moving long-lived data
* into an older generation so an unnecessary GC of this long-lived
* data can be avoided. */
-unsigned int gencgc_oldest_gen_to_gc = NUM_GENERATIONS-1;
+generation_index_t gencgc_oldest_gen_to_gc = HIGHEST_NORMAL_GENERATION;
/* The maximum free page in the heap is maintained and used to update
* ALLOCATION_POINTER which is used by the room function to limit its
* search of the heap. XX Gencgc obviously needs to be better
* integrated with the Lisp code. */
-static int last_free_page;
-static int last_used_page = 0;
+page_index_t last_free_page;
+\f
+#ifdef LISP_FEATURE_SB_THREAD
+/* This lock is to prevent multiple threads from simultaneously
+ * allocating new regions which overlap each other. Note that the
+ * majority of GC is single-threaded, but alloc() may be called from
+ * >1 thread at a time and must be thread-safe. This lock must be
+ * seized before all accesses to generations[] or to parts of
+ * page_table[] that other threads may want to see */
+static pthread_mutex_t free_pages_lock = PTHREAD_MUTEX_INITIALIZER;
+/* This lock is used to protect non-thread-local allocation. */
+static pthread_mutex_t allocation_lock = PTHREAD_MUTEX_INITIALIZER;
+#endif
+
+extern os_vm_size_t gencgc_release_granularity;
+os_vm_size_t gencgc_release_granularity = GENCGC_RELEASE_GRANULARITY;
+
+extern os_vm_size_t gencgc_alloc_granularity;
+os_vm_size_t gencgc_alloc_granularity = GENCGC_ALLOC_GRANULARITY;
+
\f
/*
* miscellaneous heap functions
/* Count the number of pages which are write-protected within the
* given generation. */
-static int
-count_write_protect_generation_pages(int generation)
+static page_index_t
+count_write_protect_generation_pages(generation_index_t generation)
{
- int i;
- int count = 0;
+ page_index_t i, count = 0;
for (i = 0; i < last_free_page; i++)
- if ((page_table[i].allocated != FREE_PAGE)
- && (page_table[i].gen == generation)
- && (page_table[i].write_protected == 1))
- count++;
+ if (page_allocated_p(i)
+ && (page_table[i].gen == generation)
+ && (page_table[i].write_protected == 1))
+ count++;
return count;
}
/* Count the number of pages within the given generation. */
-static int
-count_generation_pages(int generation)
+static page_index_t
+count_generation_pages(generation_index_t generation)
{
- int i;
- int count = 0;
+ page_index_t i;
+ page_index_t count = 0;
for (i = 0; i < last_free_page; i++)
- if ((page_table[i].allocated != 0)
- && (page_table[i].gen == generation))
- count++;
+ if (page_allocated_p(i)
+ && (page_table[i].gen == generation))
+ count++;
return count;
}
-/* Count the number of dont_move pages. */
-static int
+#if QSHOW
+static page_index_t
count_dont_move_pages(void)
{
- int i;
- int count = 0;
+ page_index_t i;
+ page_index_t count = 0;
for (i = 0; i < last_free_page; i++) {
- if ((page_table[i].allocated != 0) && (page_table[i].dont_move != 0)) {
- ++count;
- }
+ if (page_allocated_p(i)
+ && (page_table[i].dont_move != 0)) {
+ ++count;
+ }
}
return count;
}
+#endif /* QSHOW */
/* Work through the pages and add up the number of bytes used for the
* given generation. */
-static int
-count_generation_bytes_allocated (int gen)
+static os_vm_size_t
+count_generation_bytes_allocated (generation_index_t gen)
{
- int i;
- int result = 0;
+ page_index_t i;
+ os_vm_size_t result = 0;
for (i = 0; i < last_free_page; i++) {
- if ((page_table[i].allocated != 0) && (page_table[i].gen == gen))
- result += page_table[i].bytes_used;
+ if (page_allocated_p(i)
+ && (page_table[i].gen == gen))
+ result += page_table[i].bytes_used;
}
return result;
}
/* Return the average age of the memory in a generation. */
-static double
-gen_av_mem_age(int gen)
+extern double
+generation_average_age(generation_index_t gen)
{
if (generations[gen].bytes_allocated == 0)
- return 0.0;
+ return 0.0;
return
- ((double)generations[gen].cum_sum_bytes_allocated)
- / ((double)generations[gen].bytes_allocated);
+ ((double)generations[gen].cum_sum_bytes_allocated)
+ / ((double)generations[gen].bytes_allocated);
}
-/* The verbose argument controls how much to print: 0 for normal
- * level of detail; 1 for debugging. */
-static void
-print_generation_stats(int verbose) /* FIXME: should take FILE argument */
+extern void
+write_generation_stats(FILE *file)
{
- int i, gens;
- int fpu_state[27];
+ generation_index_t i;
+
+#if defined(LISP_FEATURE_X86) || defined(LISP_FEATURE_X86_64)
+#define FPU_STATE_SIZE 27
+ int fpu_state[FPU_STATE_SIZE];
+#elif defined(LISP_FEATURE_PPC)
+#define FPU_STATE_SIZE 32
+ long long fpu_state[FPU_STATE_SIZE];
+#elif defined(LISP_FEATURE_SPARC)
+ /*
+ * 32 (single-precision) FP registers, and the FP state register.
+ * But Sparc V9 has 32 double-precision registers (equivalent to 64
+ * single-precision, but can't be accessed), so we leave enough room
+ * for that.
+ */
+#define FPU_STATE_SIZE (((32 + 32 + 1) + 1)/2)
+ long long fpu_state[FPU_STATE_SIZE];
+#endif
/* This code uses the FP instructions which may be set up for Lisp
* so they need to be saved and reset for C. */
fpu_save(fpu_state);
- /* number of generations to print */
- if (verbose)
- gens = NUM_GENERATIONS+1;
- else
- gens = NUM_GENERATIONS;
-
/* Print the heap stats. */
- fprintf(stderr,
- " Generation Boxed Unboxed LB LUB Alloc Waste Trig WP GCs Mem-age\n");
-
- for (i = 0; i < gens; i++) {
- int j;
- int boxed_cnt = 0;
- int unboxed_cnt = 0;
- int large_boxed_cnt = 0;
- int large_unboxed_cnt = 0;
-
- for (j = 0; j < last_free_page; j++)
- if (page_table[j].gen == i) {
-
- /* Count the number of boxed pages within the given
- * generation. */
- if (page_table[j].allocated == BOXED_PAGE) {
- if (page_table[j].large_object)
- large_boxed_cnt++;
- else
- boxed_cnt++;
- }
-
- /* Count the number of unboxed pages within the given
- * generation. */
- if (page_table[j].allocated == UNBOXED_PAGE) {
- if (page_table[j].large_object)
- large_unboxed_cnt++;
- else
- unboxed_cnt++;
- }
- }
-
- gc_assert(generations[i].bytes_allocated
- == count_generation_bytes_allocated(i));
- fprintf(stderr,
- " %8d: %5d %5d %5d %5d %8d %5d %8d %4d %3d %7.4f\n",
- i,
- boxed_cnt, unboxed_cnt, large_boxed_cnt, large_unboxed_cnt,
- generations[i].bytes_allocated,
- (count_generation_pages(i)*4096
- - generations[i].bytes_allocated),
- generations[i].gc_trigger,
- count_write_protect_generation_pages(i),
- generations[i].num_gc,
- gen_av_mem_age(i));
+ fprintf(file,
+ " Gen StaPg UbSta LaSta LUbSt Boxed Unboxed LB LUB !move Alloc Waste Trig WP GCs Mem-age\n");
+
+ for (i = 0; i < SCRATCH_GENERATION; i++) {
+ page_index_t j;
+ page_index_t boxed_cnt = 0;
+ page_index_t unboxed_cnt = 0;
+ page_index_t large_boxed_cnt = 0;
+ page_index_t large_unboxed_cnt = 0;
+ page_index_t pinned_cnt=0;
+
+ for (j = 0; j < last_free_page; j++)
+ if (page_table[j].gen == i) {
+
+ /* Count the number of boxed pages within the given
+ * generation. */
+ if (page_boxed_p(j)) {
+ if (page_table[j].large_object)
+ large_boxed_cnt++;
+ else
+ boxed_cnt++;
+ }
+ if(page_table[j].dont_move) pinned_cnt++;
+ /* Count the number of unboxed pages within the given
+ * generation. */
+ if (page_unboxed_p(j)) {
+ if (page_table[j].large_object)
+ large_unboxed_cnt++;
+ else
+ unboxed_cnt++;
+ }
+ }
+
+ gc_assert(generations[i].bytes_allocated
+ == count_generation_bytes_allocated(i));
+ fprintf(file,
+ " %1d: %5ld %5ld %5ld %5ld",
+ i,
+ generations[i].alloc_start_page,
+ generations[i].alloc_unboxed_start_page,
+ generations[i].alloc_large_start_page,
+ generations[i].alloc_large_unboxed_start_page);
+ fprintf(file,
+ " %5"PAGE_INDEX_FMT" %5"PAGE_INDEX_FMT" %5"PAGE_INDEX_FMT
+ " %5"PAGE_INDEX_FMT" %5"PAGE_INDEX_FMT,
+ boxed_cnt, unboxed_cnt, large_boxed_cnt,
+ large_unboxed_cnt, pinned_cnt);
+ fprintf(file,
+ " %8"OS_VM_SIZE_FMT
+ " %5"OS_VM_SIZE_FMT
+ " %8"OS_VM_SIZE_FMT
+ " %4"PAGE_INDEX_FMT" %3d %7.4f\n",
+ generations[i].bytes_allocated,
+ (npage_bytes(count_generation_pages(i)) - generations[i].bytes_allocated),
+ generations[i].gc_trigger,
+ count_write_protect_generation_pages(i),
+ generations[i].num_gc,
+ generation_average_age(i));
}
- fprintf(stderr," Total bytes allocated=%ld\n", bytes_allocated);
+ fprintf(file," Total bytes allocated = %"OS_VM_SIZE_FMT"\n", bytes_allocated);
+ fprintf(file," Dynamic-space-size bytes = %"OS_VM_SIZE_FMT"\n", dynamic_space_size);
fpu_restore(fpu_state);
}
+
+extern void
+write_heap_exhaustion_report(FILE *file, long available, long requested,
+ struct thread *thread)
+{
+ fprintf(file,
+ "Heap exhausted during %s: %ld bytes available, %ld requested.\n",
+ gc_active_p ? "garbage collection" : "allocation",
+ available,
+ requested);
+ write_generation_stats(file);
+ fprintf(file, "GC control variables:\n");
+ fprintf(file, " *GC-INHIBIT* = %s\n *GC-PENDING* = %s\n",
+ SymbolValue(GC_INHIBIT,thread)==NIL ? "false" : "true",
+ (SymbolValue(GC_PENDING, thread) == T) ?
+ "true" : ((SymbolValue(GC_PENDING, thread) == NIL) ?
+ "false" : "in progress"));
+#ifdef LISP_FEATURE_SB_THREAD
+ fprintf(file, " *STOP-FOR-GC-PENDING* = %s\n",
+ SymbolValue(STOP_FOR_GC_PENDING,thread)==NIL ? "false" : "true");
+#endif
+}
+
+extern void
+print_generation_stats(void)
+{
+ write_generation_stats(stderr);
+}
+
+extern char* gc_logfile;
+char * gc_logfile = NULL;
+
+extern void
+log_generation_stats(char *logfile, char *header)
+{
+ if (logfile) {
+ FILE * log = fopen(logfile, "a");
+ if (log) {
+ fprintf(log, "%s\n", header);
+ write_generation_stats(log);
+ fclose(log);
+ } else {
+ fprintf(stderr, "Could not open gc logfile: %s\n", logfile);
+ fflush(stderr);
+ }
+ }
+}
+
+extern void
+report_heap_exhaustion(long available, long requested, struct thread *th)
+{
+ if (gc_logfile) {
+ FILE * log = fopen(gc_logfile, "a");
+ if (log) {
+ write_heap_exhaustion_report(log, available, requested, th);
+ fclose(log);
+ } else {
+ fprintf(stderr, "Could not open gc logfile: %s\n", gc_logfile);
+ fflush(stderr);
+ }
+ }
+ /* Always to stderr as well. */
+ write_heap_exhaustion_report(stderr, available, requested, th);
+}
\f
-/*
- * allocation routines
+
+#if defined(LISP_FEATURE_X86)
+void fast_bzero(void*, size_t); /* in <arch>-assem.S */
+#endif
+
+/* Zero the pages from START to END (inclusive), but use mmap/munmap instead
+ * if zeroing it ourselves, i.e. in practice give the memory back to the
+ * OS. Generally done after a large GC.
+ */
+void zero_pages_with_mmap(page_index_t start, page_index_t end) {
+ page_index_t i;
+ void *addr = page_address(start), *new_addr;
+ os_vm_size_t length = npage_bytes(1+end-start);
+
+ if (start > end)
+ return;
+
+ gc_assert(length >= gencgc_release_granularity);
+ gc_assert((length % gencgc_release_granularity) == 0);
+
+ os_invalidate(addr, length);
+ new_addr = os_validate(addr, length);
+ if (new_addr == NULL || new_addr != addr) {
+ lose("remap_free_pages: page moved, 0x%08x ==> 0x%08x",
+ start, new_addr);
+ }
+
+ for (i = start; i <= end; i++) {
+ page_table[i].need_to_zero = 0;
+ }
+}
+
+/* Zero the pages from START to END (inclusive). Generally done just after
+ * a new region has been allocated.
+ */
+static void
+zero_pages(page_index_t start, page_index_t end) {
+ if (start > end)
+ return;
+
+#if defined(LISP_FEATURE_X86) || defined(LISP_FEATURE_X86_64)
+ fast_bzero(page_address(start), npage_bytes(1+end-start));
+#else
+ bzero(page_address(start), npage_bytes(1+end-start));
+#endif
+
+}
+
+static void
+zero_and_mark_pages(page_index_t start, page_index_t end) {
+ page_index_t i;
+
+ zero_pages(start, end);
+ for (i = start; i <= end; i++)
+ page_table[i].need_to_zero = 0;
+}
+
+/* Zero the pages from START to END (inclusive), except for those
+ * pages that are known to already zeroed. Mark all pages in the
+ * ranges as non-zeroed.
*/
+static void
+zero_dirty_pages(page_index_t start, page_index_t end) {
+ page_index_t i, j;
+
+ for (i = start; i <= end; i++) {
+ if (!page_table[i].need_to_zero) continue;
+ for (j = i+1; (j <= end) && (page_table[j].need_to_zero); j++);
+ zero_pages(i, j-1);
+ i = j;
+ }
+
+ for (i = start; i <= end; i++) {
+ page_table[i].need_to_zero = 1;
+ }
+}
+
/*
* To support quick and inline allocation, regions of memory can be
* e.g. boxed/unboxed, generation, ages; there may need to be many
* allocation regions.
*
- * Each allocation region may be start within a partly used page. Many
+ * Each allocation region may start within a partly used page. Many
* features of memory use are noted on a page wise basis, e.g. the
* generation; so if a region starts within an existing allocated page
* it must be consistent with this page.
struct alloc_region boxed_region;
struct alloc_region unboxed_region;
-/* XX hack. Current Lisp code uses the following. Need copying in/out. */
-void *current_region_free_pointer;
-void *current_region_end_addr;
-
/* The generation currently being allocated to. */
-static int gc_alloc_generation;
+static generation_index_t gc_alloc_generation;
+
+static inline page_index_t
+generation_alloc_start_page(generation_index_t generation, int page_type_flag, int large)
+{
+ if (large) {
+ if (UNBOXED_PAGE_FLAG == page_type_flag) {
+ return generations[generation].alloc_large_unboxed_start_page;
+ } else if (BOXED_PAGE_FLAG & page_type_flag) {
+ /* Both code and data. */
+ return generations[generation].alloc_large_start_page;
+ } else {
+ lose("bad page type flag: %d", page_type_flag);
+ }
+ } else {
+ if (UNBOXED_PAGE_FLAG == page_type_flag) {
+ return generations[generation].alloc_unboxed_start_page;
+ } else if (BOXED_PAGE_FLAG & page_type_flag) {
+ /* Both code and data. */
+ return generations[generation].alloc_start_page;
+ } else {
+ lose("bad page_type_flag: %d", page_type_flag);
+ }
+ }
+}
+
+static inline void
+set_generation_alloc_start_page(generation_index_t generation, int page_type_flag, int large,
+ page_index_t page)
+{
+ if (large) {
+ if (UNBOXED_PAGE_FLAG == page_type_flag) {
+ generations[generation].alloc_large_unboxed_start_page = page;
+ } else if (BOXED_PAGE_FLAG & page_type_flag) {
+ /* Both code and data. */
+ generations[generation].alloc_large_start_page = page;
+ } else {
+ lose("bad page type flag: %d", page_type_flag);
+ }
+ } else {
+ if (UNBOXED_PAGE_FLAG == page_type_flag) {
+ generations[generation].alloc_unboxed_start_page = page;
+ } else if (BOXED_PAGE_FLAG & page_type_flag) {
+ /* Both code and data. */
+ generations[generation].alloc_start_page = page;
+ } else {
+ lose("bad page type flag: %d", page_type_flag);
+ }
+ }
+}
/* Find a new region with room for at least the given number of bytes.
*
* are allocated, although they will initially be empty.
*/
static void
-gc_alloc_new_region(int nbytes, int unboxed, struct alloc_region *alloc_region)
+gc_alloc_new_region(sword_t nbytes, int page_type_flag, struct alloc_region *alloc_region)
{
- int first_page;
- int last_page;
- int region_size;
- int restart_page;
- int bytes_found;
- int num_pages;
- int i;
+ page_index_t first_page;
+ page_index_t last_page;
+ os_vm_size_t bytes_found;
+ page_index_t i;
+ int ret;
/*
FSHOW((stderr,
- "/alloc_new_region for %d bytes from gen %d\n",
- nbytes, gc_alloc_generation));
+ "/alloc_new_region for %d bytes from gen %d\n",
+ nbytes, gc_alloc_generation));
*/
/* Check that the region is in a reset state. */
gc_assert((alloc_region->first_page == 0)
- && (alloc_region->last_page == -1)
- && (alloc_region->free_pointer == alloc_region->end_addr));
-
- if (unboxed) {
- restart_page =
- generations[gc_alloc_generation].alloc_unboxed_start_page;
- } else {
- restart_page =
- generations[gc_alloc_generation].alloc_start_page;
- }
-
- /* Search for a contiguous free region of at least nbytes with the
- * given properties: boxed/unboxed, generation. */
- do {
- first_page = restart_page;
-
- /* First search for a page with at least 32 bytes free, which is
- * not write-protected, and which is not marked dont_move.
- *
- * FIXME: This looks extremely similar, perhaps identical, to
- * code in gc_alloc_large(). It should be shared somehow. */
- while ((first_page < NUM_PAGES)
- && (page_table[first_page].allocated != FREE_PAGE) /* not free page */
- && ((unboxed &&
- (page_table[first_page].allocated != UNBOXED_PAGE))
- || (!unboxed &&
- (page_table[first_page].allocated != BOXED_PAGE))
- || (page_table[first_page].large_object != 0)
- || (page_table[first_page].gen != gc_alloc_generation)
- || (page_table[first_page].bytes_used >= (4096-32))
- || (page_table[first_page].write_protected != 0)
- || (page_table[first_page].dont_move != 0)))
- first_page++;
- /* Check for a failure. */
- if (first_page >= NUM_PAGES) {
- fprintf(stderr,
- "Argh! gc_alloc_new_region failed on first_page, nbytes=%d.\n",
- nbytes);
- print_generation_stats(1);
- lose(NULL);
- }
-
- gc_assert(page_table[first_page].write_protected == 0);
-
- /*
- FSHOW((stderr,
- "/first_page=%d bytes_used=%d\n",
- first_page, page_table[first_page].bytes_used));
- */
-
- /* Now search forward to calculate the available region size. It
- * tries to keeps going until nbytes are found and the number of
- * pages is greater than some level. This helps keep down the
- * number of pages in a region. */
- last_page = first_page;
- bytes_found = 4096 - page_table[first_page].bytes_used;
- num_pages = 1;
- while (((bytes_found < nbytes) || (num_pages < 2))
- && (last_page < (NUM_PAGES-1))
- && (page_table[last_page+1].allocated == FREE_PAGE)) {
- last_page++;
- num_pages++;
- bytes_found += 4096;
- gc_assert(page_table[last_page].write_protected == 0);
- }
-
- region_size = (4096 - page_table[first_page].bytes_used)
- + 4096*(last_page-first_page);
-
- gc_assert(bytes_found == region_size);
-
- /*
- FSHOW((stderr,
- "/last_page=%d bytes_found=%d num_pages=%d\n",
- last_page, bytes_found, num_pages));
- */
-
- restart_page = last_page + 1;
- } while ((restart_page < NUM_PAGES) && (bytes_found < nbytes));
-
- /* Check for a failure. */
- if ((restart_page >= NUM_PAGES) && (bytes_found < nbytes)) {
- fprintf(stderr,
- "Argh! gc_alloc_new_region() failed on restart_page, nbytes=%d.\n",
- nbytes);
- print_generation_stats(1);
- lose(NULL);
- }
-
- /*
- FSHOW((stderr,
- "/gc_alloc_new_region() gen %d: %d bytes: pages %d to %d: addr=%x\n",
- gc_alloc_generation,
- bytes_found,
- first_page,
- last_page,
- page_address(first_page)));
- */
+ && (alloc_region->last_page == -1)
+ && (alloc_region->free_pointer == alloc_region->end_addr));
+ ret = thread_mutex_lock(&free_pages_lock);
+ gc_assert(ret == 0);
+ first_page = generation_alloc_start_page(gc_alloc_generation, page_type_flag, 0);
+ last_page=gc_find_freeish_pages(&first_page, nbytes, page_type_flag);
+ bytes_found=(GENCGC_CARD_BYTES - page_table[first_page].bytes_used)
+ + npage_bytes(last_page-first_page);
/* Set up the alloc_region. */
alloc_region->first_page = first_page;
alloc_region->last_page = last_page;
alloc_region->start_addr = page_table[first_page].bytes_used
- + page_address(first_page);
+ + page_address(first_page);
alloc_region->free_pointer = alloc_region->start_addr;
alloc_region->end_addr = alloc_region->start_addr + bytes_found;
- if (gencgc_zero_check) {
- int *p;
- for (p = (int *)alloc_region->start_addr;
- p < (int *)alloc_region->end_addr; p++) {
- if (*p != 0) {
- /* KLUDGE: It would be nice to use %lx and explicit casts
- * (long) in code like this, so that it is less likely to
- * break randomly when running on a machine with different
- * word sizes. -- WHN 19991129 */
- lose("The new region at %x is not zero.", p);
- }
- }
- }
-
/* Set up the pages. */
/* The first page may have already been in use. */
if (page_table[first_page].bytes_used == 0) {
- if (unboxed)
- page_table[first_page].allocated = UNBOXED_PAGE;
- else
- page_table[first_page].allocated = BOXED_PAGE;
- page_table[first_page].gen = gc_alloc_generation;
- page_table[first_page].large_object = 0;
- page_table[first_page].first_object_offset = 0;
+ page_table[first_page].allocated = page_type_flag;
+ page_table[first_page].gen = gc_alloc_generation;
+ page_table[first_page].large_object = 0;
+ page_table[first_page].scan_start_offset = 0;
}
- if (unboxed)
- gc_assert(page_table[first_page].allocated == UNBOXED_PAGE);
- else
- gc_assert(page_table[first_page].allocated == BOXED_PAGE);
+ gc_assert(page_table[first_page].allocated == page_type_flag);
+ page_table[first_page].allocated |= OPEN_REGION_PAGE_FLAG;
+
gc_assert(page_table[first_page].gen == gc_alloc_generation);
gc_assert(page_table[first_page].large_object == 0);
for (i = first_page+1; i <= last_page; i++) {
- if (unboxed)
- page_table[i].allocated = UNBOXED_PAGE;
- else
- page_table[i].allocated = BOXED_PAGE;
- page_table[i].gen = gc_alloc_generation;
- page_table[i].large_object = 0;
- /* This may not be necessary for unboxed regions (think it was
- * broken before!) */
- page_table[i].first_object_offset =
- alloc_region->start_addr - page_address(i);
+ page_table[i].allocated = page_type_flag;
+ page_table[i].gen = gc_alloc_generation;
+ page_table[i].large_object = 0;
+ /* This may not be necessary for unboxed regions (think it was
+ * broken before!) */
+ page_table[i].scan_start_offset =
+ void_diff(page_address(i),alloc_region->start_addr);
+ page_table[i].allocated |= OPEN_REGION_PAGE_FLAG ;
}
-
/* Bump up last_free_page. */
if (last_page+1 > last_free_page) {
- last_free_page = last_page+1;
- SetSymbolValue(ALLOCATION_POINTER,
- (lispobj)(((char *)heap_base) + last_free_page*4096));
- if (last_page+1 > last_used_page)
- last_used_page = last_page+1;
+ last_free_page = last_page+1;
+ /* do we only want to call this on special occasions? like for
+ * boxed_region? */
+ set_alloc_pointer((lispobj)page_address(last_free_page));
+ }
+ ret = thread_mutex_unlock(&free_pages_lock);
+ gc_assert(ret == 0);
+
+#ifdef READ_PROTECT_FREE_PAGES
+ os_protect(page_address(first_page),
+ npage_bytes(1+last_page-first_page),
+ OS_VM_PROT_ALL);
+#endif
+
+ /* If the first page was only partial, don't check whether it's
+ * zeroed (it won't be) and don't zero it (since the parts that
+ * we're interested in are guaranteed to be zeroed).
+ */
+ if (page_table[first_page].bytes_used) {
+ first_page++;
+ }
+
+ zero_dirty_pages(first_page, last_page);
+
+ /* we can do this after releasing free_pages_lock */
+ if (gencgc_zero_check) {
+ word_t *p;
+ for (p = (word_t *)alloc_region->start_addr;
+ p < (word_t *)alloc_region->end_addr; p++) {
+ if (*p != 0) {
+ lose("The new region is not zero at %p (start=%p, end=%p).\n",
+ p, alloc_region->start_addr, alloc_region->end_addr);
+ }
+ }
}
}
* scavenge of a generation. */
#define NUM_NEW_AREAS 512
static int record_new_objects = 0;
-static int new_areas_ignore_page;
+static page_index_t new_areas_ignore_page;
struct new_area {
- int page;
- int offset;
- int size;
+ page_index_t page;
+ size_t offset;
+ size_t size;
};
static struct new_area (*new_areas)[];
-static int new_areas_index;
-int max_new_areas;
+static size_t new_areas_index;
+size_t max_new_areas;
/* Add a new area to new_areas. */
static void
-add_new_area(int first_page, int offset, int size)
+add_new_area(page_index_t first_page, size_t offset, size_t size)
{
- unsigned new_area_start,c;
- int i;
+ size_t new_area_start, c;
+ ssize_t i;
/* Ignore if full. */
if (new_areas_index >= NUM_NEW_AREAS)
- return;
+ return;
switch (record_new_objects) {
case 0:
- return;
+ return;
case 1:
- if (first_page > new_areas_ignore_page)
- return;
- break;
+ if (first_page > new_areas_ignore_page)
+ return;
+ break;
case 2:
- break;
+ break;
default:
- gc_abort();
+ gc_abort();
}
- new_area_start = 4096*first_page + offset;
+ new_area_start = npage_bytes(first_page) + offset;
/* Search backwards for a prior area that this follows from. If
found this will save adding a new area. */
for (i = new_areas_index-1, c = 0; (i >= 0) && (c < 8); i--, c++) {
- unsigned area_end =
- 4096*((*new_areas)[i].page)
- + (*new_areas)[i].offset
- + (*new_areas)[i].size;
- /*FSHOW((stderr,
- "/add_new_area S1 %d %d %d %d\n",
- i, c, new_area_start, area_end));*/
- if (new_area_start == area_end) {
- /*FSHOW((stderr,
- "/adding to [%d] %d %d %d with %d %d %d:\n",
- i,
- (*new_areas)[i].page,
- (*new_areas)[i].offset,
- (*new_areas)[i].size,
- first_page,
- offset,
- size));*/
- (*new_areas)[i].size += size;
- return;
- }
+ size_t area_end =
+ npage_bytes((*new_areas)[i].page)
+ + (*new_areas)[i].offset
+ + (*new_areas)[i].size;
+ /*FSHOW((stderr,
+ "/add_new_area S1 %d %d %d %d\n",
+ i, c, new_area_start, area_end));*/
+ if (new_area_start == area_end) {
+ /*FSHOW((stderr,
+ "/adding to [%d] %d %d %d with %d %d %d:\n",
+ i,
+ (*new_areas)[i].page,
+ (*new_areas)[i].offset,
+ (*new_areas)[i].size,
+ first_page,
+ offset,
+ size);*/
+ (*new_areas)[i].size += size;
+ return;
+ }
}
- /*FSHOW((stderr, "/add_new_area S1 %d %d %d\n", i, c, new_area_start));*/
(*new_areas)[new_areas_index].page = first_page;
(*new_areas)[new_areas_index].offset = offset;
(*new_areas)[new_areas_index].size = size;
/*FSHOW((stderr,
- "/new_area %d page %d offset %d size %d\n",
- new_areas_index, first_page, offset, size));*/
+ "/new_area %d page %d offset %d size %d\n",
+ new_areas_index, first_page, offset, size));*/
new_areas_index++;
/* Note the max new_areas used. */
if (new_areas_index > max_new_areas)
- max_new_areas = new_areas_index;
+ max_new_areas = new_areas_index;
}
-/* Update the tables for the alloc_region. The region maybe added to
+/* Update the tables for the alloc_region. The region may be added to
* the new_areas.
*
* When done the alloc_region is set up so that the next quick alloc
* it is safe to try to re-update the page table of this reset
* alloc_region. */
void
-gc_alloc_update_page_tables(int unboxed, struct alloc_region *alloc_region)
+gc_alloc_update_page_tables(int page_type_flag, struct alloc_region *alloc_region)
{
- int more;
- int first_page;
- int next_page;
- int bytes_used;
- int orig_first_page_bytes_used;
- int region_size;
- int byte_cnt;
+ boolean more;
+ page_index_t first_page;
+ page_index_t next_page;
+ os_vm_size_t bytes_used;
+ os_vm_size_t region_size;
+ os_vm_size_t byte_cnt;
+ page_bytes_t orig_first_page_bytes_used;
+ int ret;
- /*
- FSHOW((stderr,
- "/gc_alloc_update_page_tables() to gen %d:\n",
- gc_alloc_generation));
- */
first_page = alloc_region->first_page;
/* Catch an unused alloc_region. */
if ((first_page == 0) && (alloc_region->last_page == -1))
- return;
+ return;
next_page = first_page+1;
- /* Skip if no bytes were allocated. */
+ ret = thread_mutex_lock(&free_pages_lock);
+ gc_assert(ret == 0);
if (alloc_region->free_pointer != alloc_region->start_addr) {
- orig_first_page_bytes_used = page_table[first_page].bytes_used;
-
- gc_assert(alloc_region->start_addr == (page_address(first_page) + page_table[first_page].bytes_used));
-
- /* All the pages used need to be updated */
-
- /* Update the first page. */
-
- /* If the page was free then set up the gen, and
- * first_object_offset. */
- if (page_table[first_page].bytes_used == 0)
- gc_assert(page_table[first_page].first_object_offset == 0);
-
- if (unboxed)
- gc_assert(page_table[first_page].allocated == UNBOXED_PAGE);
- else
- gc_assert(page_table[first_page].allocated == BOXED_PAGE);
- gc_assert(page_table[first_page].gen == gc_alloc_generation);
- gc_assert(page_table[first_page].large_object == 0);
-
- byte_cnt = 0;
-
- /* Calculate the number of bytes used in this page. This is not
- * always the number of new bytes, unless it was free. */
- more = 0;
- if ((bytes_used = (alloc_region->free_pointer - page_address(first_page)))>4096) {
- bytes_used = 4096;
- more = 1;
- }
- page_table[first_page].bytes_used = bytes_used;
- byte_cnt += bytes_used;
-
-
- /* All the rest of the pages should be free. We need to set their
- * first_object_offset pointer to the start of the region, and set
- * the bytes_used. */
- while (more) {
- if (unboxed)
- gc_assert(page_table[next_page].allocated == UNBOXED_PAGE);
- else
- gc_assert(page_table[next_page].allocated == BOXED_PAGE);
- gc_assert(page_table[next_page].bytes_used == 0);
- gc_assert(page_table[next_page].gen == gc_alloc_generation);
- gc_assert(page_table[next_page].large_object == 0);
-
- gc_assert(page_table[next_page].first_object_offset ==
- alloc_region->start_addr - page_address(next_page));
-
- /* Calculate the number of bytes used in this page. */
- more = 0;
- if ((bytes_used = (alloc_region->free_pointer
- - page_address(next_page)))>4096) {
- bytes_used = 4096;
- more = 1;
- }
- page_table[next_page].bytes_used = bytes_used;
- byte_cnt += bytes_used;
-
- next_page++;
- }
-
- region_size = alloc_region->free_pointer - alloc_region->start_addr;
- bytes_allocated += region_size;
- generations[gc_alloc_generation].bytes_allocated += region_size;
-
- gc_assert((byte_cnt- orig_first_page_bytes_used) == region_size);
-
- /* Set the generations alloc restart page to the last page of
- * the region. */
- if (unboxed)
- generations[gc_alloc_generation].alloc_unboxed_start_page =
- next_page-1;
- else
- generations[gc_alloc_generation].alloc_start_page = next_page-1;
-
- /* Add the region to the new_areas if requested. */
- if (!unboxed)
- add_new_area(first_page,orig_first_page_bytes_used, region_size);
-
- /*
- FSHOW((stderr,
- "/gc_alloc_update_page_tables update %d bytes to gen %d\n",
- region_size,
- gc_alloc_generation));
- */
+ /* some bytes were allocated in the region */
+ orig_first_page_bytes_used = page_table[first_page].bytes_used;
+
+ gc_assert(alloc_region->start_addr ==
+ (page_address(first_page)
+ + page_table[first_page].bytes_used));
+
+ /* All the pages used need to be updated */
+
+ /* Update the first page. */
+
+ /* If the page was free then set up the gen, and
+ * scan_start_offset. */
+ if (page_table[first_page].bytes_used == 0)
+ gc_assert(page_starts_contiguous_block_p(first_page));
+ page_table[first_page].allocated &= ~(OPEN_REGION_PAGE_FLAG);
+
+ gc_assert(page_table[first_page].allocated & page_type_flag);
+ gc_assert(page_table[first_page].gen == gc_alloc_generation);
+ gc_assert(page_table[first_page].large_object == 0);
+
+ byte_cnt = 0;
+
+ /* Calculate the number of bytes used in this page. This is not
+ * always the number of new bytes, unless it was free. */
+ more = 0;
+ if ((bytes_used = void_diff(alloc_region->free_pointer,
+ page_address(first_page)))
+ >GENCGC_CARD_BYTES) {
+ bytes_used = GENCGC_CARD_BYTES;
+ more = 1;
+ }
+ page_table[first_page].bytes_used = bytes_used;
+ byte_cnt += bytes_used;
+
+
+ /* All the rest of the pages should be free. We need to set
+ * their scan_start_offset pointer to the start of the
+ * region, and set the bytes_used. */
+ while (more) {
+ page_table[next_page].allocated &= ~(OPEN_REGION_PAGE_FLAG);
+ gc_assert(page_table[next_page].allocated & page_type_flag);
+ gc_assert(page_table[next_page].bytes_used == 0);
+ gc_assert(page_table[next_page].gen == gc_alloc_generation);
+ gc_assert(page_table[next_page].large_object == 0);
+
+ gc_assert(page_table[next_page].scan_start_offset ==
+ void_diff(page_address(next_page),
+ alloc_region->start_addr));
+
+ /* Calculate the number of bytes used in this page. */
+ more = 0;
+ if ((bytes_used = void_diff(alloc_region->free_pointer,
+ page_address(next_page)))>GENCGC_CARD_BYTES) {
+ bytes_used = GENCGC_CARD_BYTES;
+ more = 1;
+ }
+ page_table[next_page].bytes_used = bytes_used;
+ byte_cnt += bytes_used;
+
+ next_page++;
+ }
+
+ region_size = void_diff(alloc_region->free_pointer,
+ alloc_region->start_addr);
+ bytes_allocated += region_size;
+ generations[gc_alloc_generation].bytes_allocated += region_size;
+
+ gc_assert((byte_cnt- orig_first_page_bytes_used) == region_size);
+
+ /* Set the generations alloc restart page to the last page of
+ * the region. */
+ set_generation_alloc_start_page(gc_alloc_generation, page_type_flag, 0, next_page-1);
+
+ /* Add the region to the new_areas if requested. */
+ if (BOXED_PAGE_FLAG & page_type_flag)
+ add_new_area(first_page,orig_first_page_bytes_used, region_size);
+
+ /*
+ FSHOW((stderr,
+ "/gc_alloc_update_page_tables update %d bytes to gen %d\n",
+ region_size,
+ gc_alloc_generation));
+ */
} else {
- /* There are no bytes allocated. Unallocate the first_page if
- * there are 0 bytes_used. */
- if (page_table[first_page].bytes_used == 0)
- page_table[first_page].allocated = FREE_PAGE;
+ /* There are no bytes allocated. Unallocate the first_page if
+ * there are 0 bytes_used. */
+ page_table[first_page].allocated &= ~(OPEN_REGION_PAGE_FLAG);
+ if (page_table[first_page].bytes_used == 0)
+ page_table[first_page].allocated = FREE_PAGE_FLAG;
}
/* Unallocate any unused pages. */
while (next_page <= alloc_region->last_page) {
- gc_assert(page_table[next_page].bytes_used == 0);
- page_table[next_page].allocated = FREE_PAGE;
- next_page++;
+ gc_assert(page_table[next_page].bytes_used == 0);
+ page_table[next_page].allocated = FREE_PAGE_FLAG;
+ next_page++;
}
+ ret = thread_mutex_unlock(&free_pages_lock);
+ gc_assert(ret == 0);
- /* Reset the alloc_region. */
- alloc_region->first_page = 0;
- alloc_region->last_page = -1;
- alloc_region->start_addr = page_address(0);
- alloc_region->free_pointer = page_address(0);
- alloc_region->end_addr = page_address(0);
+ /* alloc_region is per-thread, we're ok to do this unlocked */
+ gc_set_region_empty(alloc_region);
}
-static inline void *gc_quick_alloc(int nbytes);
+static inline void *gc_quick_alloc(word_t nbytes);
/* Allocate a possibly large object. */
-static void *
-gc_alloc_large(int nbytes, int unboxed, struct alloc_region *alloc_region)
-{
- int first_page;
- int last_page;
- int region_size;
- int restart_page;
- int bytes_found;
- int num_pages;
- int orig_first_page_bytes_used;
- int byte_cnt;
- int more;
- int bytes_used;
- int next_page;
- int large = (nbytes >= large_object_size);
-
- /*
- if (nbytes > 200000)
- FSHOW((stderr, "/alloc_large %d\n", nbytes));
- */
-
- /*
- FSHOW((stderr,
- "/gc_alloc_large() for %d bytes from gen %d\n",
- nbytes, gc_alloc_generation));
- */
-
- /* If the object is small, and there is room in the current region
- then allocation it in the current region. */
- if (!large
- && ((alloc_region->end_addr-alloc_region->free_pointer) >= nbytes))
- return gc_quick_alloc(nbytes);
-
- /* Search for a contiguous free region of at least nbytes. If it's a
- large object then align it on a page boundary by searching for a
- free page. */
-
- /* To allow the allocation of small objects without the danger of
- using a page in the current boxed region, the search starts after
- the current boxed free region. XX could probably keep a page
- index ahead of the current region and bumped up here to save a
- lot of re-scanning. */
- if (unboxed) {
- restart_page =
- generations[gc_alloc_generation].alloc_large_unboxed_start_page;
- } else {
- restart_page = generations[gc_alloc_generation].alloc_large_start_page;
- }
- if (restart_page <= alloc_region->last_page) {
- restart_page = alloc_region->last_page+1;
- }
-
- do {
- first_page = restart_page;
-
- if (large)
- while ((first_page < NUM_PAGES)
- && (page_table[first_page].allocated != FREE_PAGE))
- first_page++;
- else
- /* FIXME: This looks extremely similar, perhaps identical,
- * to code in gc_alloc_new_region(). It should be shared
- * somehow. */
- while ((first_page < NUM_PAGES)
- && (page_table[first_page].allocated != FREE_PAGE)
- && ((unboxed &&
- (page_table[first_page].allocated != UNBOXED_PAGE))
- || (!unboxed &&
- (page_table[first_page].allocated != BOXED_PAGE))
- || (page_table[first_page].large_object != 0)
- || (page_table[first_page].gen != gc_alloc_generation)
- || (page_table[first_page].bytes_used >= (4096-32))
- || (page_table[first_page].write_protected != 0)
- || (page_table[first_page].dont_move != 0)))
- first_page++;
-
- if (first_page >= NUM_PAGES) {
- fprintf(stderr,
- "Argh! gc_alloc_large failed (first_page), nbytes=%d.\n",
- nbytes);
- print_generation_stats(1);
- lose(NULL);
- }
-
- gc_assert(page_table[first_page].write_protected == 0);
-
- /*
- FSHOW((stderr,
- "/first_page=%d bytes_used=%d\n",
- first_page, page_table[first_page].bytes_used));
- */
-
- last_page = first_page;
- bytes_found = 4096 - page_table[first_page].bytes_used;
- num_pages = 1;
- while ((bytes_found < nbytes)
- && (last_page < (NUM_PAGES-1))
- && (page_table[last_page+1].allocated == FREE_PAGE)) {
- last_page++;
- num_pages++;
- bytes_found += 4096;
- gc_assert(page_table[last_page].write_protected == 0);
- }
-
- region_size = (4096 - page_table[first_page].bytes_used)
- + 4096*(last_page-first_page);
-
- gc_assert(bytes_found == region_size);
-
- /*
- FSHOW((stderr,
- "/last_page=%d bytes_found=%d num_pages=%d\n",
- last_page, bytes_found, num_pages));
- */
-
- restart_page = last_page + 1;
- } while ((restart_page < NUM_PAGES) && (bytes_found < nbytes));
-
- /* Check for a failure */
- if ((restart_page >= NUM_PAGES) && (bytes_found < nbytes)) {
- fprintf(stderr,
- "Argh! gc_alloc_large failed (restart_page), nbytes=%d.\n",
- nbytes);
- print_generation_stats(1);
- lose(NULL);
+void *
+gc_alloc_large(sword_t nbytes, int page_type_flag, struct alloc_region *alloc_region)
+{
+ boolean more;
+ page_index_t first_page, next_page, last_page;
+ page_bytes_t orig_first_page_bytes_used;
+ os_vm_size_t byte_cnt;
+ os_vm_size_t bytes_used;
+ int ret;
+
+ ret = thread_mutex_lock(&free_pages_lock);
+ gc_assert(ret == 0);
+
+ first_page = generation_alloc_start_page(gc_alloc_generation, page_type_flag, 1);
+ if (first_page <= alloc_region->last_page) {
+ first_page = alloc_region->last_page+1;
}
- /*
- if (large)
- FSHOW((stderr,
- "/gc_alloc_large() gen %d: %d of %d bytes: from pages %d to %d: addr=%x\n",
- gc_alloc_generation,
- nbytes,
- bytes_found,
- first_page,
- last_page,
- page_address(first_page)));
- */
+ last_page=gc_find_freeish_pages(&first_page,nbytes, page_type_flag);
gc_assert(first_page > alloc_region->last_page);
- if (unboxed)
- generations[gc_alloc_generation].alloc_large_unboxed_start_page =
- last_page;
- else
- generations[gc_alloc_generation].alloc_large_start_page = last_page;
+
+ set_generation_alloc_start_page(gc_alloc_generation, page_type_flag, 1, last_page);
/* Set up the pages. */
orig_first_page_bytes_used = page_table[first_page].bytes_used;
/* If the first page was free then set up the gen, and
- * first_object_offset. */
+ * scan_start_offset. */
if (page_table[first_page].bytes_used == 0) {
- if (unboxed)
- page_table[first_page].allocated = UNBOXED_PAGE;
- else
- page_table[first_page].allocated = BOXED_PAGE;
- page_table[first_page].gen = gc_alloc_generation;
- page_table[first_page].first_object_offset = 0;
- page_table[first_page].large_object = large;
+ page_table[first_page].allocated = page_type_flag;
+ page_table[first_page].gen = gc_alloc_generation;
+ page_table[first_page].scan_start_offset = 0;
+ page_table[first_page].large_object = 1;
}
- if (unboxed)
- gc_assert(page_table[first_page].allocated == UNBOXED_PAGE);
- else
- gc_assert(page_table[first_page].allocated == BOXED_PAGE);
+ gc_assert(page_table[first_page].allocated == page_type_flag);
gc_assert(page_table[first_page].gen == gc_alloc_generation);
- gc_assert(page_table[first_page].large_object == large);
+ gc_assert(page_table[first_page].large_object == 1);
byte_cnt = 0;
/* Calc. the number of bytes used in this page. This is not
* always the number of new bytes, unless it was free. */
more = 0;
- if ((bytes_used = nbytes+orig_first_page_bytes_used) > 4096) {
- bytes_used = 4096;
- more = 1;
+ if ((bytes_used = nbytes+orig_first_page_bytes_used) > GENCGC_CARD_BYTES) {
+ bytes_used = GENCGC_CARD_BYTES;
+ more = 1;
}
page_table[first_page].bytes_used = bytes_used;
byte_cnt += bytes_used;
next_page = first_page+1;
/* All the rest of the pages should be free. We need to set their
- * first_object_offset pointer to the start of the region, and
- * set the bytes_used. */
+ * scan_start_offset pointer to the start of the region, and set
+ * the bytes_used. */
while (more) {
- gc_assert(page_table[next_page].allocated == FREE_PAGE);
- gc_assert(page_table[next_page].bytes_used == 0);
- if (unboxed)
- page_table[next_page].allocated = UNBOXED_PAGE;
- else
- page_table[next_page].allocated = BOXED_PAGE;
- page_table[next_page].gen = gc_alloc_generation;
- page_table[next_page].large_object = large;
-
- page_table[next_page].first_object_offset =
- orig_first_page_bytes_used - 4096*(next_page-first_page);
-
- /* Calculate the number of bytes used in this page. */
- more = 0;
- if ((bytes_used=(nbytes+orig_first_page_bytes_used)-byte_cnt) > 4096) {
- bytes_used = 4096;
- more = 1;
- }
- page_table[next_page].bytes_used = bytes_used;
- byte_cnt += bytes_used;
-
- next_page++;
+ gc_assert(page_free_p(next_page));
+ gc_assert(page_table[next_page].bytes_used == 0);
+ page_table[next_page].allocated = page_type_flag;
+ page_table[next_page].gen = gc_alloc_generation;
+ page_table[next_page].large_object = 1;
+
+ page_table[next_page].scan_start_offset =
+ npage_bytes(next_page-first_page) - orig_first_page_bytes_used;
+
+ /* Calculate the number of bytes used in this page. */
+ more = 0;
+ bytes_used=(nbytes+orig_first_page_bytes_used)-byte_cnt;
+ if (bytes_used > GENCGC_CARD_BYTES) {
+ bytes_used = GENCGC_CARD_BYTES;
+ more = 1;
+ }
+ page_table[next_page].bytes_used = bytes_used;
+ page_table[next_page].write_protected=0;
+ page_table[next_page].dont_move=0;
+ byte_cnt += bytes_used;
+ next_page++;
}
gc_assert((byte_cnt-orig_first_page_bytes_used) == nbytes);
generations[gc_alloc_generation].bytes_allocated += nbytes;
/* Add the region to the new_areas if requested. */
- if (!unboxed)
- add_new_area(first_page,orig_first_page_bytes_used,nbytes);
+ if (BOXED_PAGE_FLAG & page_type_flag)
+ add_new_area(first_page,orig_first_page_bytes_used,nbytes);
/* Bump up last_free_page */
if (last_page+1 > last_free_page) {
- last_free_page = last_page+1;
- SetSymbolValue(ALLOCATION_POINTER,
- (lispobj)(((char *)heap_base) + last_free_page*4096));
- if (last_page+1 > last_used_page)
- last_used_page = last_page+1;
+ last_free_page = last_page+1;
+ set_alloc_pointer((lispobj)(page_address(last_free_page)));
}
+ ret = thread_mutex_unlock(&free_pages_lock);
+ gc_assert(ret == 0);
- return((void *)(page_address(first_page)+orig_first_page_bytes_used));
-}
+#ifdef READ_PROTECT_FREE_PAGES
+ os_protect(page_address(first_page),
+ npage_bytes(1+last_page-first_page),
+ OS_VM_PROT_ALL);
+#endif
-/* Allocate bytes from the boxed_region. First checks whether there is
- * room. If not then call gc_alloc_new_region() to find a new region
- * with enough space. Return a pointer to the start of the region. */
-static void *
-gc_alloc(int nbytes)
-{
- void *new_free_pointer;
+ zero_dirty_pages(first_page, last_page);
+
+ return page_address(first_page);
+}
- /* FSHOW((stderr, "/gc_alloc %d\n", nbytes)); */
+static page_index_t gencgc_alloc_start_page = -1;
- /* Check whether there is room in the current alloc region. */
- new_free_pointer = boxed_region.free_pointer + nbytes;
-
- if (new_free_pointer <= boxed_region.end_addr) {
- /* If so then allocate from the current alloc region. */
- void *new_obj = boxed_region.free_pointer;
- boxed_region.free_pointer = new_free_pointer;
-
- /* Check whether the alloc region is almost empty. */
- if ((boxed_region.end_addr - boxed_region.free_pointer) <= 32) {
- /* If so finished with the current region. */
- gc_alloc_update_page_tables(0, &boxed_region);
- /* Set up a new region. */
- gc_alloc_new_region(32, 0, &boxed_region);
- }
- return((void *)new_obj);
+void
+gc_heap_exhausted_error_or_lose (sword_t available, sword_t requested)
+{
+ struct thread *thread = arch_os_get_current_thread();
+ /* Write basic information before doing anything else: if we don't
+ * call to lisp this is a must, and even if we do there is always
+ * the danger that we bounce back here before the error has been
+ * handled, or indeed even printed.
+ */
+ report_heap_exhaustion(available, requested, thread);
+ if (gc_active_p || (available == 0)) {
+ /* If we are in GC, or totally out of memory there is no way
+ * to sanely transfer control to the lisp-side of things.
+ */
+ lose("Heap exhausted, game over.");
+ }
+ else {
+ /* FIXME: assert free_pages_lock held */
+ (void)thread_mutex_unlock(&free_pages_lock);
+#if !(defined(LISP_FEATURE_WIN32) && defined(LISP_FEATURE_SB_THREAD))
+ gc_assert(get_pseudo_atomic_atomic(thread));
+ clear_pseudo_atomic_atomic(thread);
+ if (get_pseudo_atomic_interrupted(thread))
+ do_pending_interrupt();
+#endif
+ /* Another issue is that signalling HEAP-EXHAUSTED error leads
+ * to running user code at arbitrary places, even in a
+ * WITHOUT-INTERRUPTS which may lead to a deadlock without
+ * running out of the heap. So at this point all bets are
+ * off. */
+ if (SymbolValue(INTERRUPTS_ENABLED,thread) == NIL)
+ corruption_warning_and_maybe_lose
+ ("Signalling HEAP-EXHAUSTED in a WITHOUT-INTERRUPTS.");
+ funcall2(StaticSymbolFunction(HEAP_EXHAUSTED_ERROR),
+ alloc_number(available), alloc_number(requested));
+ lose("HEAP-EXHAUSTED-ERROR fell through");
}
+}
- /* Else not enough free space in the current region. */
+page_index_t
+gc_find_freeish_pages(page_index_t *restart_page_ptr, sword_t bytes,
+ int page_type_flag)
+{
+ page_index_t most_bytes_found_from = 0, most_bytes_found_to = 0;
+ page_index_t first_page, last_page, restart_page = *restart_page_ptr;
+ os_vm_size_t nbytes = bytes;
+ os_vm_size_t nbytes_goal = nbytes;
+ os_vm_size_t bytes_found = 0;
+ os_vm_size_t most_bytes_found = 0;
+ boolean small_object = nbytes < GENCGC_CARD_BYTES;
+ /* FIXME: assert(free_pages_lock is held); */
- /* If there some room left in the current region, enough to be worth
- * saving, then allocate a large object. */
- /* FIXME: "32" should be a named parameter. */
- if ((boxed_region.end_addr-boxed_region.free_pointer) > 32)
- return gc_alloc_large(nbytes, 0, &boxed_region);
+ if (nbytes_goal < gencgc_alloc_granularity)
+ nbytes_goal = gencgc_alloc_granularity;
- /* Else find a new region. */
+ /* Toggled by gc_and_save for heap compaction, normally -1. */
+ if (gencgc_alloc_start_page != -1) {
+ restart_page = gencgc_alloc_start_page;
+ }
- /* Finished with the current region. */
- gc_alloc_update_page_tables(0, &boxed_region);
+ /* FIXME: This is on bytes instead of nbytes pending cleanup of
+ * long from the interface. */
+ gc_assert(bytes>=0);
+ /* Search for a page with at least nbytes of space. We prefer
+ * not to split small objects on multiple pages, to reduce the
+ * number of contiguous allocation regions spaning multiple
+ * pages: this helps avoid excessive conservativism.
+ *
+ * For other objects, we guarantee that they start on their own
+ * page boundary.
+ */
+ first_page = restart_page;
+ while (first_page < page_table_pages) {
+ bytes_found = 0;
+ if (page_free_p(first_page)) {
+ gc_assert(0 == page_table[first_page].bytes_used);
+ bytes_found = GENCGC_CARD_BYTES;
+ } else if (small_object &&
+ (page_table[first_page].allocated == page_type_flag) &&
+ (page_table[first_page].large_object == 0) &&
+ (page_table[first_page].gen == gc_alloc_generation) &&
+ (page_table[first_page].write_protected == 0) &&
+ (page_table[first_page].dont_move == 0)) {
+ bytes_found = GENCGC_CARD_BYTES - page_table[first_page].bytes_used;
+ if (bytes_found < nbytes) {
+ if (bytes_found > most_bytes_found)
+ most_bytes_found = bytes_found;
+ first_page++;
+ continue;
+ }
+ } else {
+ first_page++;
+ continue;
+ }
+
+ gc_assert(page_table[first_page].write_protected == 0);
+ for (last_page = first_page+1;
+ ((last_page < page_table_pages) &&
+ page_free_p(last_page) &&
+ (bytes_found < nbytes_goal));
+ last_page++) {
+ bytes_found += GENCGC_CARD_BYTES;
+ gc_assert(0 == page_table[last_page].bytes_used);
+ gc_assert(0 == page_table[last_page].write_protected);
+ }
+
+ if (bytes_found > most_bytes_found) {
+ most_bytes_found = bytes_found;
+ most_bytes_found_from = first_page;
+ most_bytes_found_to = last_page;
+ }
+ if (bytes_found >= nbytes_goal)
+ break;
+
+ first_page = last_page;
+ }
- /* Set up a new region. */
- gc_alloc_new_region(nbytes, 0, &boxed_region);
+ bytes_found = most_bytes_found;
+ restart_page = first_page + 1;
- /* Should now be enough room. */
+ /* Check for a failure */
+ if (bytes_found < nbytes) {
+ gc_assert(restart_page >= page_table_pages);
+ gc_heap_exhausted_error_or_lose(most_bytes_found, nbytes);
+ }
- /* Check whether there is room in the current region. */
- new_free_pointer = boxed_region.free_pointer + nbytes;
+ gc_assert(most_bytes_found_to);
+ *restart_page_ptr = most_bytes_found_from;
+ return most_bytes_found_to-1;
+}
- if (new_free_pointer <= boxed_region.end_addr) {
- /* If so then allocate from the current region. */
- void *new_obj = boxed_region.free_pointer;
- boxed_region.free_pointer = new_free_pointer;
+/* Allocate bytes. All the rest of the special-purpose allocation
+ * functions will eventually call this */
- /* Check whether the current region is almost empty. */
- if ((boxed_region.end_addr - boxed_region.free_pointer) <= 32) {
- /* If so find, finished with the current region. */
- gc_alloc_update_page_tables(0, &boxed_region);
+void *
+gc_alloc_with_region(sword_t nbytes,int page_type_flag, struct alloc_region *my_region,
+ int quick_p)
+{
+ void *new_free_pointer;
- /* Set up a new region. */
- gc_alloc_new_region(32, 0, &boxed_region);
- }
+ if (nbytes>=large_object_size)
+ return gc_alloc_large(nbytes, page_type_flag, my_region);
- return((void *)new_obj);
+ /* Check whether there is room in the current alloc region. */
+ new_free_pointer = my_region->free_pointer + nbytes;
+
+ /* fprintf(stderr, "alloc %d bytes from %p to %p\n", nbytes,
+ my_region->free_pointer, new_free_pointer); */
+
+ if (new_free_pointer <= my_region->end_addr) {
+ /* If so then allocate from the current alloc region. */
+ void *new_obj = my_region->free_pointer;
+ my_region->free_pointer = new_free_pointer;
+
+ /* Unless a `quick' alloc was requested, check whether the
+ alloc region is almost empty. */
+ if (!quick_p &&
+ void_diff(my_region->end_addr,my_region->free_pointer) <= 32) {
+ /* If so, finished with the current region. */
+ gc_alloc_update_page_tables(page_type_flag, my_region);
+ /* Set up a new region. */
+ gc_alloc_new_region(32 /*bytes*/, page_type_flag, my_region);
+ }
+
+ return((void *)new_obj);
}
- /* shouldn't happen */
- gc_assert(0);
- return((void *) NIL); /* dummy value: return something ... */
+ /* Else not enough free space in the current region: retry with a
+ * new region. */
+
+ gc_alloc_update_page_tables(page_type_flag, my_region);
+ gc_alloc_new_region(nbytes, page_type_flag, my_region);
+ return gc_alloc_with_region(nbytes, page_type_flag, my_region,0);
}
-/* Allocate space from the boxed_region. If there is not enough free
- * space then call gc_alloc to do the job. A pointer to the start of
- * the region is returned. */
+/* these are only used during GC: all allocation from the mutator calls
+ * alloc() -> gc_alloc_with_region() with the appropriate per-thread
+ * region */
+
static inline void *
-gc_quick_alloc(int nbytes)
+gc_quick_alloc(word_t nbytes)
{
- void *new_free_pointer;
-
- /* Check whether there is room in the current region. */
- new_free_pointer = boxed_region.free_pointer + nbytes;
-
- if (new_free_pointer <= boxed_region.end_addr) {
- /* Allocate from the current region. */
- void *new_obj = boxed_region.free_pointer;
- boxed_region.free_pointer = new_free_pointer;
- return((void *)new_obj);
- } else {
- /* Let full gc_alloc() handle it. */
- return gc_alloc(nbytes);
- }
+ return gc_general_alloc(nbytes, BOXED_PAGE_FLAG, ALLOC_QUICK);
}
-/* Allocate space for the boxed object. If it is a large object then
- * do a large alloc else allocate from the current region. If there is
- * not enough free space then call gc_alloc() to do the job. A pointer
- * to the start of the region is returned. */
static inline void *
-gc_quick_alloc_large(int nbytes)
+gc_alloc_unboxed(word_t nbytes)
{
- void *new_free_pointer;
-
- if (nbytes >= large_object_size)
- return gc_alloc_large(nbytes, 0, &boxed_region);
-
- /* Check whether there is room in the current region. */
- new_free_pointer = boxed_region.free_pointer + nbytes;
-
- if (new_free_pointer <= boxed_region.end_addr) {
- /* If so then allocate from the current region. */
- void *new_obj = boxed_region.free_pointer;
- boxed_region.free_pointer = new_free_pointer;
- return((void *)new_obj);
- } else {
- /* Let full gc_alloc() handle it. */
- return gc_alloc(nbytes);
- }
+ return gc_general_alloc(nbytes, UNBOXED_PAGE_FLAG, 0);
}
-static void *
-gc_alloc_unboxed(int nbytes)
+static inline void *
+gc_quick_alloc_unboxed(word_t nbytes)
{
- void *new_free_pointer;
-
- /*
- FSHOW((stderr, "/gc_alloc_unboxed() %d\n", nbytes));
- */
-
- /* Check whether there is room in the current region. */
- new_free_pointer = unboxed_region.free_pointer + nbytes;
-
- if (new_free_pointer <= unboxed_region.end_addr) {
- /* If so then allocate from the current region. */
- void *new_obj = unboxed_region.free_pointer;
- unboxed_region.free_pointer = new_free_pointer;
-
- /* Check whether the current region is almost empty. */
- if ((unboxed_region.end_addr - unboxed_region.free_pointer) <= 32) {
- /* If so finished with the current region. */
- gc_alloc_update_page_tables(1, &unboxed_region);
+ return gc_general_alloc(nbytes, UNBOXED_PAGE_FLAG, ALLOC_QUICK);
+}
+\f
+/* Copy a large object. If the object is in a large object region then
+ * it is simply promoted, else it is copied. If it's large enough then
+ * it's copied to a large object region.
+ *
+ * Bignums and vectors may have shrunk. If the object is not copied
+ * the space needs to be reclaimed, and the page_tables corrected. */
+static lispobj
+general_copy_large_object(lispobj object, word_t nwords, boolean boxedp)
+{
+ int tag;
+ lispobj *new;
+ page_index_t first_page;
- /* Set up a new region. */
- gc_alloc_new_region(32, 1, &unboxed_region);
- }
+ gc_assert(is_lisp_pointer(object));
+ gc_assert(from_space_p(object));
+ gc_assert((nwords & 0x01) == 0);
- return((void *)new_obj);
+ if ((nwords > 1024*1024) && gencgc_verbose) {
+ FSHOW((stderr, "/general_copy_large_object: %d bytes\n",
+ nwords*N_WORD_BYTES));
}
- /* Else not enough free space in the current region. */
-
- /* If there is a bit of room left in the current region then
- allocate a large object. */
- if ((unboxed_region.end_addr-unboxed_region.free_pointer) > 32)
- return gc_alloc_large(nbytes,1,&unboxed_region);
-
- /* Else find a new region. */
-
- /* Finished with the current region. */
- gc_alloc_update_page_tables(1, &unboxed_region);
-
- /* Set up a new region. */
- gc_alloc_new_region(nbytes, 1, &unboxed_region);
-
- /* (There should now be enough room.) */
+ /* Check whether it's a large object. */
+ first_page = find_page_index((void *)object);
+ gc_assert(first_page >= 0);
- /* Check whether there is room in the current region. */
- new_free_pointer = unboxed_region.free_pointer + nbytes;
+ if (page_table[first_page].large_object) {
+ /* Promote the object. Note: Unboxed objects may have been
+ * allocated to a BOXED region so it may be necessary to
+ * change the region to UNBOXED. */
+ os_vm_size_t remaining_bytes;
+ os_vm_size_t bytes_freed;
+ page_index_t next_page;
+ page_bytes_t old_bytes_used;
+
+ /* FIXME: This comment is somewhat stale.
+ *
+ * Note: Any page write-protection must be removed, else a
+ * later scavenge_newspace may incorrectly not scavenge these
+ * pages. This would not be necessary if they are added to the
+ * new areas, but let's do it for them all (they'll probably
+ * be written anyway?). */
+
+ gc_assert(page_starts_contiguous_block_p(first_page));
+ next_page = first_page;
+ remaining_bytes = nwords*N_WORD_BYTES;
+
+ while (remaining_bytes > GENCGC_CARD_BYTES) {
+ gc_assert(page_table[next_page].gen == from_space);
+ gc_assert(page_table[next_page].large_object);
+ gc_assert(page_table[next_page].scan_start_offset ==
+ npage_bytes(next_page-first_page));
+ gc_assert(page_table[next_page].bytes_used == GENCGC_CARD_BYTES);
+ /* Should have been unprotected by unprotect_oldspace()
+ * for boxed objects, and after promotion unboxed ones
+ * should not be on protected pages at all. */
+ gc_assert(!page_table[next_page].write_protected);
+
+ if (boxedp)
+ gc_assert(page_boxed_p(next_page));
+ else {
+ gc_assert(page_allocated_no_region_p(next_page));
+ page_table[next_page].allocated = UNBOXED_PAGE_FLAG;
+ }
+ page_table[next_page].gen = new_space;
+
+ remaining_bytes -= GENCGC_CARD_BYTES;
+ next_page++;
+ }
+
+ /* Now only one page remains, but the object may have shrunk so
+ * there may be more unused pages which will be freed. */
+
+ /* Object may have shrunk but shouldn't have grown - check. */
+ gc_assert(page_table[next_page].bytes_used >= remaining_bytes);
+
+ page_table[next_page].gen = new_space;
+
+ if (boxedp)
+ gc_assert(page_boxed_p(next_page));
+ else
+ page_table[next_page].allocated = UNBOXED_PAGE_FLAG;
+
+ /* Adjust the bytes_used. */
+ old_bytes_used = page_table[next_page].bytes_used;
+ page_table[next_page].bytes_used = remaining_bytes;
+
+ bytes_freed = old_bytes_used - remaining_bytes;
+
+ /* Free any remaining pages; needs care. */
+ next_page++;
+ while ((old_bytes_used == GENCGC_CARD_BYTES) &&
+ (page_table[next_page].gen == from_space) &&
+ /* FIXME: It is not obvious to me why this is necessary
+ * as a loop condition: it seems to me that the
+ * scan_start_offset test should be sufficient, but
+ * experimentally that is not the case. --NS
+ * 2011-11-28 */
+ (boxedp ?
+ page_boxed_p(next_page) :
+ page_allocated_no_region_p(next_page)) &&
+ page_table[next_page].large_object &&
+ (page_table[next_page].scan_start_offset ==
+ npage_bytes(next_page - first_page))) {
+ /* Checks out OK, free the page. Don't need to both zeroing
+ * pages as this should have been done before shrinking the
+ * object. These pages shouldn't be write-protected, even if
+ * boxed they should be zero filled. */
+ gc_assert(page_table[next_page].write_protected == 0);
+
+ old_bytes_used = page_table[next_page].bytes_used;
+ page_table[next_page].allocated = FREE_PAGE_FLAG;
+ page_table[next_page].bytes_used = 0;
+ bytes_freed += old_bytes_used;
+ next_page++;
+ }
+
+ if ((bytes_freed > 0) && gencgc_verbose) {
+ FSHOW((stderr,
+ "/general_copy_large_object bytes_freed=%"OS_VM_SIZE_FMT"\n",
+ bytes_freed));
+ }
+
+ generations[from_space].bytes_allocated -= nwords*N_WORD_BYTES
+ + bytes_freed;
+ generations[new_space].bytes_allocated += nwords*N_WORD_BYTES;
+ bytes_allocated -= bytes_freed;
+
+ /* Add the region to the new_areas if requested. */
+ if (boxedp)
+ add_new_area(first_page,0,nwords*N_WORD_BYTES);
+
+ return(object);
- if (new_free_pointer <= unboxed_region.end_addr) {
- /* If so then allocate from the current region. */
- void *new_obj = unboxed_region.free_pointer;
- unboxed_region.free_pointer = new_free_pointer;
+ } else {
+ /* Get tag of object. */
+ tag = lowtag_of(object);
- /* Check whether the current region is almost empty. */
- if ((unboxed_region.end_addr - unboxed_region.free_pointer) <= 32) {
- /* If so find, finished with the current region. */
- gc_alloc_update_page_tables(1, &unboxed_region);
+ /* Allocate space. */
+ new = gc_general_alloc(nwords*N_WORD_BYTES,
+ (boxedp ? BOXED_PAGE_FLAG : UNBOXED_PAGE_FLAG),
+ ALLOC_QUICK);
- /* Set up a new region. */
- gc_alloc_new_region(32, 1, &unboxed_region);
- }
+ /* Copy the object. */
+ memcpy(new,native_pointer(object),nwords*N_WORD_BYTES);
- return((void *)new_obj);
+ /* Return Lisp pointer of new object. */
+ return ((lispobj) new) | tag;
}
+}
- /* shouldn't happen? */
- gc_assert(0);
- return((void *) NIL); /* dummy value: return something ... */
+lispobj
+copy_large_object(lispobj object, sword_t nwords)
+{
+ return general_copy_large_object(object, nwords, 1);
}
-static inline void *
-gc_quick_alloc_unboxed(int nbytes)
+lispobj
+copy_large_unboxed_object(lispobj object, sword_t nwords)
{
- void *new_free_pointer;
-
- /* Check whether there is room in the current region. */
- new_free_pointer = unboxed_region.free_pointer + nbytes;
-
- if (new_free_pointer <= unboxed_region.end_addr) {
- /* If so then allocate from the current region. */
- void *new_obj = unboxed_region.free_pointer;
- unboxed_region.free_pointer = new_free_pointer;
-
- return((void *)new_obj);
- } else {
- /* Let general gc_alloc_unboxed() handle it. */
- return gc_alloc_unboxed(nbytes);
- }
-}
-
-/* Allocate space for the object. If it is a large object then do a
- * large alloc else allocate from the current region. If there is not
- * enough free space then call general gc_alloc_unboxed() to do the job.
- *
- * A pointer to the start of the region is returned. */
-static inline void *
-gc_quick_alloc_large_unboxed(int nbytes)
-{
- void *new_free_pointer;
-
- if (nbytes >= large_object_size)
- return gc_alloc_large(nbytes,1,&unboxed_region);
-
- /* Check whether there is room in the current region. */
- new_free_pointer = unboxed_region.free_pointer + nbytes;
- if (new_free_pointer <= unboxed_region.end_addr) {
- /* Allocate from the current region. */
- void *new_obj = unboxed_region.free_pointer;
- unboxed_region.free_pointer = new_free_pointer;
- return((void *)new_obj);
- } else {
- /* Let full gc_alloc() handle it. */
- return gc_alloc_unboxed(nbytes);
- }
-}
-\f
-/*
- * scavenging/transporting routines derived from gc.c in CMU CL ca. 18b
- */
-
-static int (*scavtab[256])(lispobj *where, lispobj object);
-static lispobj (*transother[256])(lispobj object);
-static int (*sizetab[256])(lispobj *where);
-
-static struct weak_pointer *weak_pointers;
-
-#define CEILING(x,y) (((x) + ((y) - 1)) & (~((y) - 1)))
-\f
-/*
- * predicates
- */
-
-static inline boolean
-from_space_p(lispobj obj)
-{
- int page_index=(void*)obj - heap_base;
- return ((page_index >= 0)
- && ((page_index = ((unsigned int)page_index)/4096) < NUM_PAGES)
- && (page_table[page_index].gen == from_space));
-}
-
-static inline boolean
-new_space_p(lispobj obj)
-{
- int page_index = (void*)obj - heap_base;
- return ((page_index >= 0)
- && ((page_index = ((unsigned int)page_index)/4096) < NUM_PAGES)
- && (page_table[page_index].gen == new_space));
-}
-\f
-/*
- * copying objects
- */
-
-/* to copy a boxed object */
-static inline lispobj
-copy_object(lispobj object, int nwords)
-{
- int tag;
- lispobj *new;
- lispobj *source, *dest;
-
- gc_assert(is_lisp_pointer(object));
- gc_assert(from_space_p(object));
- gc_assert((nwords & 0x01) == 0);
-
- /* Get tag of object. */
- tag = LowtagOf(object);
-
- /* Allocate space. */
- new = gc_quick_alloc(nwords*4);
-
- dest = new;
- source = (lispobj *) native_pointer(object);
-
- /* Copy the object. */
- while (nwords > 0) {
- dest[0] = source[0];
- dest[1] = source[1];
- dest += 2;
- source += 2;
- nwords -= 2;
- }
-
- /* Return Lisp pointer of new object. */
- return ((lispobj) new) | tag;
-}
-
-/* to copy a large boxed object. If the object is in a large object
- * region then it is simply promoted, else it is copied. If it's large
- * enough then it's copied to a large object region.
- *
- * Vectors may have shrunk. If the object is not copied the space
- * needs to be reclaimed, and the page_tables corrected. */
-static lispobj
-copy_large_object(lispobj object, int nwords)
-{
- int tag;
- lispobj *new;
- lispobj *source, *dest;
- int first_page;
-
- gc_assert(is_lisp_pointer(object));
- gc_assert(from_space_p(object));
- gc_assert((nwords & 0x01) == 0);
-
- if ((nwords > 1024*1024) && gencgc_verbose) {
- FSHOW((stderr, "/copy_large_object: %d bytes\n", nwords*4));
- }
-
- /* Check whether it's a large object. */
- first_page = find_page_index((void *)object);
- gc_assert(first_page >= 0);
-
- if (page_table[first_page].large_object) {
-
- /* Promote the object. */
-
- int remaining_bytes;
- int next_page;
- int bytes_freed;
- int old_bytes_used;
-
- /* Note: Any page write-protection must be removed, else a
- * later scavenge_newspace may incorrectly not scavenge these
- * pages. This would not be necessary if they are added to the
- * new areas, but let's do it for them all (they'll probably
- * be written anyway?). */
-
- gc_assert(page_table[first_page].first_object_offset == 0);
-
- next_page = first_page;
- remaining_bytes = nwords*4;
- while (remaining_bytes > 4096) {
- gc_assert(page_table[next_page].gen == from_space);
- gc_assert(page_table[next_page].allocated == BOXED_PAGE);
- gc_assert(page_table[next_page].large_object);
- gc_assert(page_table[next_page].first_object_offset==
- -4096*(next_page-first_page));
- gc_assert(page_table[next_page].bytes_used == 4096);
-
- page_table[next_page].gen = new_space;
-
- /* Remove any write-protection. We should be able to rely
- * on the write-protect flag to avoid redundant calls. */
- if (page_table[next_page].write_protected) {
- os_protect(page_address(next_page), 4096, OS_VM_PROT_ALL);
- page_table[next_page].write_protected = 0;
- }
- remaining_bytes -= 4096;
- next_page++;
- }
-
- /* Now only one page remains, but the object may have shrunk
- * so there may be more unused pages which will be freed. */
-
- /* The object may have shrunk but shouldn't have grown. */
- gc_assert(page_table[next_page].bytes_used >= remaining_bytes);
-
- page_table[next_page].gen = new_space;
- gc_assert(page_table[next_page].allocated = BOXED_PAGE);
-
- /* Adjust the bytes_used. */
- old_bytes_used = page_table[next_page].bytes_used;
- page_table[next_page].bytes_used = remaining_bytes;
-
- bytes_freed = old_bytes_used - remaining_bytes;
-
- /* Free any remaining pages; needs care. */
- next_page++;
- while ((old_bytes_used == 4096) &&
- (page_table[next_page].gen == from_space) &&
- (page_table[next_page].allocated == BOXED_PAGE) &&
- page_table[next_page].large_object &&
- (page_table[next_page].first_object_offset ==
- -(next_page - first_page)*4096)) {
- /* Checks out OK, free the page. Don't need to both zeroing
- * pages as this should have been done before shrinking the
- * object. These pages shouldn't be write-protected as they
- * should be zero filled. */
- gc_assert(page_table[next_page].write_protected == 0);
-
- old_bytes_used = page_table[next_page].bytes_used;
- page_table[next_page].allocated = FREE_PAGE;
- page_table[next_page].bytes_used = 0;
- bytes_freed += old_bytes_used;
- next_page++;
- }
-
- if ((bytes_freed > 0) && gencgc_verbose)
- FSHOW((stderr, "/copy_large_boxed bytes_freed=%d\n", bytes_freed));
-
- generations[from_space].bytes_allocated -= 4*nwords + bytes_freed;
- generations[new_space].bytes_allocated += 4*nwords;
- bytes_allocated -= bytes_freed;
-
- /* Add the region to the new_areas if requested. */
- add_new_area(first_page,0,nwords*4);
-
- return(object);
- } else {
- /* Get tag of object. */
- tag = LowtagOf(object);
-
- /* Allocate space. */
- new = gc_quick_alloc_large(nwords*4);
-
- dest = new;
- source = (lispobj *) native_pointer(object);
-
- /* Copy the object. */
- while (nwords > 0) {
- dest[0] = source[0];
- dest[1] = source[1];
- dest += 2;
- source += 2;
- nwords -= 2;
- }
-
- /* Return Lisp pointer of new object. */
- return ((lispobj) new) | tag;
- }
-}
+ return general_copy_large_object(object, nwords, 0);
+}
/* to copy unboxed objects */
-static inline lispobj
-copy_unboxed_object(lispobj object, int nwords)
-{
- int tag;
- lispobj *new;
- lispobj *source, *dest;
-
- gc_assert(is_lisp_pointer(object));
- gc_assert(from_space_p(object));
- gc_assert((nwords & 0x01) == 0);
-
- /* Get tag of object. */
- tag = LowtagOf(object);
-
- /* Allocate space. */
- new = gc_quick_alloc_unboxed(nwords*4);
-
- dest = new;
- source = (lispobj *) native_pointer(object);
-
- /* Copy the object. */
- while (nwords > 0) {
- dest[0] = source[0];
- dest[1] = source[1];
- dest += 2;
- source += 2;
- nwords -= 2;
- }
-
- /* Return Lisp pointer of new object. */
- return ((lispobj) new) | tag;
-}
-
-/* to copy large unboxed objects
- *
- * If the object is in a large object region then it is simply
- * promoted, else it is copied. If it's large enough then it's copied
- * to a large object region.
- *
- * Bignums and vectors may have shrunk. If the object is not copied
- * the space needs to be reclaimed, and the page_tables corrected.
- *
- * KLUDGE: There's a lot of cut-and-paste duplication between this
- * function and copy_large_object(..). -- WHN 20000619 */
-static lispobj
-copy_large_unboxed_object(lispobj object, int nwords)
+lispobj
+copy_unboxed_object(lispobj object, sword_t nwords)
{
- int tag;
- lispobj *new;
- lispobj *source, *dest;
- int first_page;
-
- gc_assert(is_lisp_pointer(object));
- gc_assert(from_space_p(object));
- gc_assert((nwords & 0x01) == 0);
-
- if ((nwords > 1024*1024) && gencgc_verbose)
- FSHOW((stderr, "/copy_large_unboxed_object: %d bytes\n", nwords*4));
-
- /* Check whether it's a large object. */
- first_page = find_page_index((void *)object);
- gc_assert(first_page >= 0);
-
- if (page_table[first_page].large_object) {
- /* Promote the object. Note: Unboxed objects may have been
- * allocated to a BOXED region so it may be necessary to
- * change the region to UNBOXED. */
- int remaining_bytes;
- int next_page;
- int bytes_freed;
- int old_bytes_used;
-
- gc_assert(page_table[first_page].first_object_offset == 0);
-
- next_page = first_page;
- remaining_bytes = nwords*4;
- while (remaining_bytes > 4096) {
- gc_assert(page_table[next_page].gen == from_space);
- gc_assert((page_table[next_page].allocated == UNBOXED_PAGE)
- || (page_table[next_page].allocated == BOXED_PAGE));
- gc_assert(page_table[next_page].large_object);
- gc_assert(page_table[next_page].first_object_offset==
- -4096*(next_page-first_page));
- gc_assert(page_table[next_page].bytes_used == 4096);
-
- page_table[next_page].gen = new_space;
- page_table[next_page].allocated = UNBOXED_PAGE;
- remaining_bytes -= 4096;
- next_page++;
- }
-
- /* Now only one page remains, but the object may have shrunk so
- * there may be more unused pages which will be freed. */
-
- /* Object may have shrunk but shouldn't have grown - check. */
- gc_assert(page_table[next_page].bytes_used >= remaining_bytes);
-
- page_table[next_page].gen = new_space;
- page_table[next_page].allocated = UNBOXED_PAGE;
-
- /* Adjust the bytes_used. */
- old_bytes_used = page_table[next_page].bytes_used;
- page_table[next_page].bytes_used = remaining_bytes;
-
- bytes_freed = old_bytes_used - remaining_bytes;
-
- /* Free any remaining pages; needs care. */
- next_page++;
- while ((old_bytes_used == 4096) &&
- (page_table[next_page].gen == from_space) &&
- ((page_table[next_page].allocated == UNBOXED_PAGE)
- || (page_table[next_page].allocated == BOXED_PAGE)) &&
- page_table[next_page].large_object &&
- (page_table[next_page].first_object_offset ==
- -(next_page - first_page)*4096)) {
- /* Checks out OK, free the page. Don't need to both zeroing
- * pages as this should have been done before shrinking the
- * object. These pages shouldn't be write-protected, even if
- * boxed they should be zero filled. */
- gc_assert(page_table[next_page].write_protected == 0);
-
- old_bytes_used = page_table[next_page].bytes_used;
- page_table[next_page].allocated = FREE_PAGE;
- page_table[next_page].bytes_used = 0;
- bytes_freed += old_bytes_used;
- next_page++;
- }
-
- if ((bytes_freed > 0) && gencgc_verbose)
- FSHOW((stderr,
- "/copy_large_unboxed bytes_freed=%d\n",
- bytes_freed));
-
- generations[from_space].bytes_allocated -= 4*nwords + bytes_freed;
- generations[new_space].bytes_allocated += 4*nwords;
- bytes_allocated -= bytes_freed;
-
- return(object);
- }
- else {
- /* Get tag of object. */
- tag = LowtagOf(object);
-
- /* Allocate space. */
- new = gc_quick_alloc_large_unboxed(nwords*4);
-
- dest = new;
- source = (lispobj *) native_pointer(object);
-
- /* Copy the object. */
- while (nwords > 0) {
- dest[0] = source[0];
- dest[1] = source[1];
- dest += 2;
- source += 2;
- nwords -= 2;
- }
-
- /* Return Lisp pointer of new object. */
- return ((lispobj) new) | tag;
- }
+ return gc_general_copy_object(object, nwords, UNBOXED_PAGE_FLAG);
}
\f
-/*
- * scavenging
- */
-/* FIXME: Most calls end up going to some trouble to compute an
- * 'n_words' value for this function. The system might be a little
- * simpler if this function used an 'end' parameter instead. */
-static void
-scavenge(lispobj *start, long n_words)
-{
- lispobj *end = start + n_words;
- lispobj *object_ptr;
- int n_words_scavenged;
-
- for (object_ptr = start;
- object_ptr < end;
- object_ptr += n_words_scavenged) {
-
- lispobj object = *object_ptr;
-
- gc_assert(object != 0x01); /* not a forwarding pointer */
-
- if (is_lisp_pointer(object)) {
- if (from_space_p(object)) {
- /* It currently points to old space. Check for a
- * forwarding pointer. */
- lispobj *ptr = (lispobj *)native_pointer(object);
- lispobj first_word = *ptr;
- if (first_word == 0x01) {
- /* Yes, there's a forwarding pointer. */
- *object_ptr = ptr[1];
- n_words_scavenged = 1;
- } else {
- /* Scavenge that pointer. */
- n_words_scavenged =
- (scavtab[TypeOf(object)])(object_ptr, object);
- }
- } else {
- /* It points somewhere other than oldspace. Leave it
- * alone. */
- n_words_scavenged = 1;
- }
- } else if ((object & 3) == 0) {
- /* It's a fixnum: really easy.. */
- n_words_scavenged = 1;
- } else {
- /* It's some sort of header object or another. */
- n_words_scavenged =
- (scavtab[TypeOf(object)])(object_ptr, object);
- }
- }
- gc_assert(object_ptr == end);
-}
-\f
/*
* code and code-related objects
*/
-
-#define RAW_ADDR_OFFSET (6*sizeof(lispobj) - type_FunctionPointer)
-
-static lispobj trans_function_header(lispobj object);
+/*
+static lispobj trans_fun_header(lispobj object);
static lispobj trans_boxed(lispobj object);
-
-static int
-scav_function_pointer(lispobj *where, lispobj object)
-{
- lispobj *first_pointer;
- lispobj copy;
-
- gc_assert(is_lisp_pointer(object));
-
- /* Object is a pointer into from space - no a FP. */
- first_pointer = (lispobj *) native_pointer(object);
-
- /* must transport object -- object may point to either a function
- * header, a closure function header, or to a closure header. */
-
- switch (TypeOf(*first_pointer)) {
- case type_FunctionHeader:
- case type_ClosureFunctionHeader:
- copy = trans_function_header(object);
- break;
- default:
- copy = trans_boxed(object);
- break;
- }
-
- if (copy != object) {
- /* Set forwarding pointer */
- first_pointer[0] = 0x01;
- first_pointer[1] = copy;
- }
-
- gc_assert(is_lisp_pointer(copy));
- gc_assert(!from_space_p(copy));
-
- *where = copy;
-
- return 1;
-}
+*/
/* Scan a x86 compiled code object, looking for possible fixups that
* have been missed after a move.
*
* Currently only absolute fixups to the constant vector, or to the
* code area are checked. */
+#ifdef LISP_FEATURE_X86
void
-sniff_code_object(struct code *code, unsigned displacement)
+sniff_code_object(struct code *code, os_vm_size_t displacement)
{
- int nheader_words, ncode_words, nwords;
- void *p;
- void *constants_start_addr, *constants_end_addr;
- void *code_start_addr, *code_end_addr;
+ sword_t nheader_words, ncode_words, nwords;
+ os_vm_address_t constants_start_addr = NULL, constants_end_addr, p;
+ os_vm_address_t code_start_addr, code_end_addr;
+ os_vm_address_t code_addr = (os_vm_address_t)code;
int fixup_found = 0;
if (!check_code_fixups)
- return;
+ return;
- /* It's ok if it's byte compiled code. The trace table offset will
- * be a fixnum if it's x86 compiled code - check. */
- if (code->trace_table_offset & 0x3) {
- FSHOW((stderr, "/Sniffing byte compiled code object at %x.\n", code));
- return;
- }
-
- /* Else it's x86 machine code. */
+ FSHOW((stderr, "/sniffing code: %p, %lu\n", code, displacement));
ncode_words = fixnum_value(code->code_size);
nheader_words = HeaderValue(*(lispobj *)code);
nwords = ncode_words + nheader_words;
- constants_start_addr = (void *)code + 5*4;
- constants_end_addr = (void *)code + nheader_words*4;
- code_start_addr = (void *)code + nheader_words*4;
- code_end_addr = (void *)code + nwords*4;
+ constants_start_addr = code_addr + 5*N_WORD_BYTES;
+ constants_end_addr = code_addr + nheader_words*N_WORD_BYTES;
+ code_start_addr = code_addr + nheader_words*N_WORD_BYTES;
+ code_end_addr = code_addr + nwords*N_WORD_BYTES;
/* Work through the unboxed code. */
for (p = code_start_addr; p < code_end_addr; p++) {
- void *data = *(void **)p;
- unsigned d1 = *((unsigned char *)p - 1);
- unsigned d2 = *((unsigned char *)p - 2);
- unsigned d3 = *((unsigned char *)p - 3);
- unsigned d4 = *((unsigned char *)p - 4);
+ void *data = *(void **)p;
+ unsigned d1 = *((unsigned char *)p - 1);
+ unsigned d2 = *((unsigned char *)p - 2);
+ unsigned d3 = *((unsigned char *)p - 3);
+ unsigned d4 = *((unsigned char *)p - 4);
#if QSHOW
- unsigned d5 = *((unsigned char *)p - 5);
- unsigned d6 = *((unsigned char *)p - 6);
+ unsigned d5 = *((unsigned char *)p - 5);
+ unsigned d6 = *((unsigned char *)p - 6);
#endif
- /* Check for code references. */
- /* Check for a 32 bit word that looks like an absolute
- reference to within the code adea of the code object. */
- if ((data >= (code_start_addr-displacement))
- && (data < (code_end_addr-displacement))) {
- /* function header */
- if ((d4 == 0x5e)
- && (((unsigned)p - 4 - 4*HeaderValue(*((unsigned *)p-1))) == (unsigned)code)) {
- /* Skip the function header */
- p += 6*4 - 4 - 1;
- continue;
- }
- /* the case of PUSH imm32 */
- if (d1 == 0x68) {
- fixup_found = 1;
- FSHOW((stderr,
- "/code ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
- p, d6, d5, d4, d3, d2, d1, data));
- FSHOW((stderr, "/PUSH $0x%.8x\n", data));
- }
- /* the case of MOV [reg-8],imm32 */
- if ((d3 == 0xc7)
- && (d2==0x40 || d2==0x41 || d2==0x42 || d2==0x43
- || d2==0x45 || d2==0x46 || d2==0x47)
- && (d1 == 0xf8)) {
- fixup_found = 1;
- FSHOW((stderr,
- "/code ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
- p, d6, d5, d4, d3, d2, d1, data));
- FSHOW((stderr, "/MOV [reg-8],$0x%.8x\n", data));
- }
- /* the case of LEA reg,[disp32] */
- if ((d2 == 0x8d) && ((d1 & 0xc7) == 5)) {
- fixup_found = 1;
- FSHOW((stderr,
- "/code ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
- p, d6, d5, d4, d3, d2, d1, data));
- FSHOW((stderr,"/LEA reg,[$0x%.8x]\n", data));
- }
- }
-
- /* Check for constant references. */
- /* Check for a 32 bit word that looks like an absolute
- reference to within the constant vector. Constant references
- will be aligned. */
- if ((data >= (constants_start_addr-displacement))
- && (data < (constants_end_addr-displacement))
- && (((unsigned)data & 0x3) == 0)) {
- /* Mov eax,m32 */
- if (d1 == 0xa1) {
- fixup_found = 1;
- FSHOW((stderr,
- "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
- p, d6, d5, d4, d3, d2, d1, data));
- FSHOW((stderr,"/MOV eax,0x%.8x\n", data));
- }
-
- /* the case of MOV m32,EAX */
- if (d1 == 0xa3) {
- fixup_found = 1;
- FSHOW((stderr,
- "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
- p, d6, d5, d4, d3, d2, d1, data));
- FSHOW((stderr, "/MOV 0x%.8x,eax\n", data));
- }
-
- /* the case of CMP m32,imm32 */
- if ((d1 == 0x3d) && (d2 == 0x81)) {
- fixup_found = 1;
- FSHOW((stderr,
- "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
- p, d6, d5, d4, d3, d2, d1, data));
- /* XX Check this */
- FSHOW((stderr, "/CMP 0x%.8x,immed32\n", data));
- }
-
- /* Check for a mod=00, r/m=101 byte. */
- if ((d1 & 0xc7) == 5) {
- /* Cmp m32,reg */
- if (d2 == 0x39) {
- fixup_found = 1;
- FSHOW((stderr,
- "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
- p, d6, d5, d4, d3, d2, d1, data));
- FSHOW((stderr,"/CMP 0x%.8x,reg\n", data));
- }
- /* the case of CMP reg32,m32 */
- if (d2 == 0x3b) {
- fixup_found = 1;
- FSHOW((stderr,
- "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
- p, d6, d5, d4, d3, d2, d1, data));
- FSHOW((stderr, "/CMP reg32,0x%.8x\n", data));
- }
- /* the case of MOV m32,reg32 */
- if (d2 == 0x89) {
- fixup_found = 1;
- FSHOW((stderr,
- "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
- p, d6, d5, d4, d3, d2, d1, data));
- FSHOW((stderr, "/MOV 0x%.8x,reg32\n", data));
- }
- /* the case of MOV reg32,m32 */
- if (d2 == 0x8b) {
- fixup_found = 1;
- FSHOW((stderr,
- "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
- p, d6, d5, d4, d3, d2, d1, data));
- FSHOW((stderr, "/MOV reg32,0x%.8x\n", data));
- }
- /* the case of LEA reg32,m32 */
- if (d2 == 0x8d) {
- fixup_found = 1;
- FSHOW((stderr,
- "abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
- p, d6, d5, d4, d3, d2, d1, data));
- FSHOW((stderr, "/LEA reg32,0x%.8x\n", data));
- }
- }
- }
+ /* Check for code references. */
+ /* Check for a 32 bit word that looks like an absolute
+ reference to within the code adea of the code object. */
+ if ((data >= (void*)(code_start_addr-displacement))
+ && (data < (void*)(code_end_addr-displacement))) {
+ /* function header */
+ if ((d4 == 0x5e)
+ && (((unsigned)p - 4 - 4*HeaderValue(*((unsigned *)p-1))) ==
+ (unsigned)code)) {
+ /* Skip the function header */
+ p += 6*4 - 4 - 1;
+ continue;
+ }
+ /* the case of PUSH imm32 */
+ if (d1 == 0x68) {
+ fixup_found = 1;
+ FSHOW((stderr,
+ "/code ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
+ p, d6, d5, d4, d3, d2, d1, data));
+ FSHOW((stderr, "/PUSH $0x%.8x\n", data));
+ }
+ /* the case of MOV [reg-8],imm32 */
+ if ((d3 == 0xc7)
+ && (d2==0x40 || d2==0x41 || d2==0x42 || d2==0x43
+ || d2==0x45 || d2==0x46 || d2==0x47)
+ && (d1 == 0xf8)) {
+ fixup_found = 1;
+ FSHOW((stderr,
+ "/code ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
+ p, d6, d5, d4, d3, d2, d1, data));
+ FSHOW((stderr, "/MOV [reg-8],$0x%.8x\n", data));
+ }
+ /* the case of LEA reg,[disp32] */
+ if ((d2 == 0x8d) && ((d1 & 0xc7) == 5)) {
+ fixup_found = 1;
+ FSHOW((stderr,
+ "/code ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
+ p, d6, d5, d4, d3, d2, d1, data));
+ FSHOW((stderr,"/LEA reg,[$0x%.8x]\n", data));
+ }
+ }
+
+ /* Check for constant references. */
+ /* Check for a 32 bit word that looks like an absolute
+ reference to within the constant vector. Constant references
+ will be aligned. */
+ if ((data >= (void*)(constants_start_addr-displacement))
+ && (data < (void*)(constants_end_addr-displacement))
+ && (((unsigned)data & 0x3) == 0)) {
+ /* Mov eax,m32 */
+ if (d1 == 0xa1) {
+ fixup_found = 1;
+ FSHOW((stderr,
+ "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
+ p, d6, d5, d4, d3, d2, d1, data));
+ FSHOW((stderr,"/MOV eax,0x%.8x\n", data));
+ }
+
+ /* the case of MOV m32,EAX */
+ if (d1 == 0xa3) {
+ fixup_found = 1;
+ FSHOW((stderr,
+ "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
+ p, d6, d5, d4, d3, d2, d1, data));
+ FSHOW((stderr, "/MOV 0x%.8x,eax\n", data));
+ }
+
+ /* the case of CMP m32,imm32 */
+ if ((d1 == 0x3d) && (d2 == 0x81)) {
+ fixup_found = 1;
+ FSHOW((stderr,
+ "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
+ p, d6, d5, d4, d3, d2, d1, data));
+ /* XX Check this */
+ FSHOW((stderr, "/CMP 0x%.8x,immed32\n", data));
+ }
+
+ /* Check for a mod=00, r/m=101 byte. */
+ if ((d1 & 0xc7) == 5) {
+ /* Cmp m32,reg */
+ if (d2 == 0x39) {
+ fixup_found = 1;
+ FSHOW((stderr,
+ "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
+ p, d6, d5, d4, d3, d2, d1, data));
+ FSHOW((stderr,"/CMP 0x%.8x,reg\n", data));
+ }
+ /* the case of CMP reg32,m32 */
+ if (d2 == 0x3b) {
+ fixup_found = 1;
+ FSHOW((stderr,
+ "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
+ p, d6, d5, d4, d3, d2, d1, data));
+ FSHOW((stderr, "/CMP reg32,0x%.8x\n", data));
+ }
+ /* the case of MOV m32,reg32 */
+ if (d2 == 0x89) {
+ fixup_found = 1;
+ FSHOW((stderr,
+ "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
+ p, d6, d5, d4, d3, d2, d1, data));
+ FSHOW((stderr, "/MOV 0x%.8x,reg32\n", data));
+ }
+ /* the case of MOV reg32,m32 */
+ if (d2 == 0x8b) {
+ fixup_found = 1;
+ FSHOW((stderr,
+ "/abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
+ p, d6, d5, d4, d3, d2, d1, data));
+ FSHOW((stderr, "/MOV reg32,0x%.8x\n", data));
+ }
+ /* the case of LEA reg32,m32 */
+ if (d2 == 0x8d) {
+ fixup_found = 1;
+ FSHOW((stderr,
+ "abs const ref @%x: %.2x %.2x %.2x %.2x %.2x %.2x (%.8x)\n",
+ p, d6, d5, d4, d3, d2, d1, data));
+ FSHOW((stderr, "/LEA reg32,0x%.8x\n", data));
+ }
+ }
+ }
}
/* If anything was found, print some information on the code
* object. */
if (fixup_found) {
- FSHOW((stderr,
- "/compiled code object at %x: header words = %d, code words = %d\n",
- code, nheader_words, ncode_words));
- FSHOW((stderr,
- "/const start = %x, end = %x\n",
- constants_start_addr, constants_end_addr));
- FSHOW((stderr,
- "/code start = %x, end = %x\n",
- code_start_addr, code_end_addr));
+ FSHOW((stderr,
+ "/compiled code object at %x: header words = %d, code words = %d\n",
+ code, nheader_words, ncode_words));
+ FSHOW((stderr,
+ "/const start = %x, end = %x\n",
+ constants_start_addr, constants_end_addr));
+ FSHOW((stderr,
+ "/code start = %x, end = %x\n",
+ code_start_addr, code_end_addr));
}
}
+#endif
-static void
-apply_code_fixups(struct code *old_code, struct code *new_code)
-{
- int nheader_words, ncode_words, nwords;
- void *constants_start_addr, *constants_end_addr;
- void *code_start_addr, *code_end_addr;
+#ifdef LISP_FEATURE_X86
+void
+gencgc_apply_code_fixups(struct code *old_code, struct code *new_code)
+{
+ sword_t nheader_words, ncode_words, nwords;
+ os_vm_address_t constants_start_addr, constants_end_addr;
+ os_vm_address_t code_start_addr, code_end_addr;
+ os_vm_address_t code_addr = (os_vm_address_t)new_code;
+ os_vm_address_t old_addr = (os_vm_address_t)old_code;
+ os_vm_size_t displacement = code_addr - old_addr;
lispobj fixups = NIL;
- unsigned displacement = (unsigned)new_code - (unsigned)old_code;
struct vector *fixups_vector;
- /* It's OK if it's byte compiled code. The trace table offset will
- * be a fixnum if it's x86 compiled code - check. */
- if (new_code->trace_table_offset & 0x3) {
-/* FSHOW((stderr, "/byte compiled code object at %x\n", new_code)); */
- return;
- }
-
- /* Else it's x86 machine code. */
ncode_words = fixnum_value(new_code->code_size);
nheader_words = HeaderValue(*(lispobj *)new_code);
nwords = ncode_words + nheader_words;
/* FSHOW((stderr,
- "/compiled code object at %x: header words = %d, code words = %d\n",
- new_code, nheader_words, ncode_words)); */
- constants_start_addr = (void *)new_code + 5*4;
- constants_end_addr = (void *)new_code + nheader_words*4;
- code_start_addr = (void *)new_code + nheader_words*4;
- code_end_addr = (void *)new_code + nwords*4;
+ "/compiled code object at %x: header words = %d, code words = %d\n",
+ new_code, nheader_words, ncode_words)); */
+ constants_start_addr = code_addr + 5*N_WORD_BYTES;
+ constants_end_addr = code_addr + nheader_words*N_WORD_BYTES;
+ code_start_addr = code_addr + nheader_words*N_WORD_BYTES;
+ code_end_addr = code_addr + nwords*N_WORD_BYTES;
/*
FSHOW((stderr,
- "/const start = %x, end = %x\n",
- constants_start_addr,constants_end_addr));
+ "/const start = %x, end = %x\n",
+ constants_start_addr,constants_end_addr));
FSHOW((stderr,
- "/code start = %x; end = %x\n",
- code_start_addr,code_end_addr));
+ "/code start = %x; end = %x\n",
+ code_start_addr,code_end_addr));
*/
/* The first constant should be a pointer to the fixups for this
code objects. Check. */
fixups = new_code->constants[0];
- /* It will be 0 or the unbound-marker if there are no fixups, and
- * will be an other pointer if it is valid. */
- if ((fixups == 0) || (fixups == type_UnboundMarker) ||
- !is_lisp_pointer(fixups)) {
- /* Check for possible errors. */
- if (check_code_fixups)
- sniff_code_object(new_code, displacement);
-
- /*fprintf(stderr,"Fixups for code object not found!?\n");
- fprintf(stderr,"*** Compiled code object at %x: header_words=%d code_words=%d .\n",
- new_code, nheader_words, ncode_words);
- fprintf(stderr,"*** Const. start = %x; end= %x; Code start = %x; end = %x\n",
- constants_start_addr,constants_end_addr,
- code_start_addr,code_end_addr);*/
- return;
+ /* It will be 0 or the unbound-marker if there are no fixups (as
+ * will be the case if the code object has been purified, for
+ * example) and will be an other pointer if it is valid. */
+ if ((fixups == 0) || (fixups == UNBOUND_MARKER_WIDETAG) ||
+ !is_lisp_pointer(fixups)) {
+ /* Check for possible errors. */
+ if (check_code_fixups)
+ sniff_code_object(new_code, displacement);
+
+ return;
}
fixups_vector = (struct vector *)native_pointer(fixups);
/* Could be pointing to a forwarding pointer. */
+ /* FIXME is this always in from_space? if so, could replace this code with
+ * forwarding_pointer_p/forwarding_pointer_value */
if (is_lisp_pointer(fixups) &&
- (find_page_index((void*)fixups_vector) != -1) &&
- (fixups_vector->header == 0x01)) {
- /* If so, then follow it. */
- /*SHOW("following pointer to a forwarding pointer");*/
- fixups_vector = (struct vector *)native_pointer((lispobj)fixups_vector->length);
+ (find_page_index((void*)fixups_vector) != -1) &&
+ (fixups_vector->header == 0x01)) {
+ /* If so, then follow it. */
+ /*SHOW("following pointer to a forwarding pointer");*/
+ fixups_vector =
+ (struct vector *)native_pointer((lispobj)fixups_vector->length);
}
/*SHOW("got fixups");*/
- if (TypeOf(fixups_vector->header) == type_SimpleArrayUnsignedByte32) {
- /* Got the fixups for the code block. Now work through the vector,
- and apply a fixup at each address. */
- int length = fixnum_value(fixups_vector->length);
- int i;
- for (i = 0; i < length; i++) {
- unsigned offset = fixups_vector->data[i];
- /* Now check the current value of offset. */
- unsigned old_value =
- *(unsigned *)((unsigned)code_start_addr + offset);
-
- /* If it's within the old_code object then it must be an
- * absolute fixup (relative ones are not saved) */
- if ((old_value >= (unsigned)old_code)
- && (old_value < ((unsigned)old_code + nwords*4)))
- /* So add the dispacement. */
- *(unsigned *)((unsigned)code_start_addr + offset) =
- old_value + displacement;
- else
- /* It is outside the old code object so it must be a
- * relative fixup (absolute fixups are not saved). So
- * subtract the displacement. */
- *(unsigned *)((unsigned)code_start_addr + offset) =
- old_value - displacement;
- }
+ if (widetag_of(fixups_vector->header) == SIMPLE_ARRAY_WORD_WIDETAG) {
+ /* Got the fixups for the code block. Now work through the vector,
+ and apply a fixup at each address. */
+ sword_t length = fixnum_value(fixups_vector->length);
+ sword_t i;
+ for (i = 0; i < length; i++) {
+ long offset = fixups_vector->data[i];
+ /* Now check the current value of offset. */
+ os_vm_address_t old_value = *(os_vm_address_t *)(code_start_addr + offset);
+
+ /* If it's within the old_code object then it must be an
+ * absolute fixup (relative ones are not saved) */
+ if ((old_value >= old_addr)
+ && (old_value < (old_addr + nwords*N_WORD_BYTES)))
+ /* So add the dispacement. */
+ *(os_vm_address_t *)(code_start_addr + offset) =
+ old_value + displacement;
+ else
+ /* It is outside the old code object so it must be a
+ * relative fixup (absolute fixups are not saved). So
+ * subtract the displacement. */
+ *(os_vm_address_t *)(code_start_addr + offset) =
+ old_value - displacement;
+ }
+ } else {
+ /* This used to just print a note to stderr, but a bogus fixup seems to
+ * indicate real heap corruption, so a hard hailure is in order. */
+ lose("fixup vector %p has a bad widetag: %d\n",
+ fixups_vector, widetag_of(fixups_vector->header));
}
/* Check for possible errors. */
if (check_code_fixups) {
- sniff_code_object(new_code,displacement);
+ sniff_code_object(new_code,displacement);
}
}
+#endif
-static struct code *
-trans_code(struct code *code)
+static lispobj
+trans_boxed_large(lispobj object)
{
- struct code *new_code;
- lispobj l_code, l_new_code;
- int nheader_words, ncode_words, nwords;
- unsigned long displacement;
- lispobj fheaderl, *prev_pointer;
-
- /* FSHOW((stderr,
- "\n/transporting code object located at 0x%08x\n",
- (unsigned long) code)); */
-
- /* If object has already been transported, just return pointer. */
- if (*((lispobj *)code) == 0x01)
- return (struct code*)(((lispobj *)code)[1]);
-
- gc_assert(TypeOf(code->header) == type_CodeHeader);
-
- /* Prepare to transport the code vector. */
- l_code = (lispobj) code | type_OtherPointer;
-
- ncode_words = fixnum_value(code->code_size);
- nheader_words = HeaderValue(code->header);
- nwords = ncode_words + nheader_words;
- nwords = CEILING(nwords, 2);
-
- l_new_code = copy_large_object(l_code, nwords);
- new_code = (struct code *) native_pointer(l_new_code);
-
- /* may not have been moved.. */
- if (new_code == code)
- return new_code;
-
- displacement = l_new_code - l_code;
-
- /*
- FSHOW((stderr,
- "/old code object at 0x%08x, new code object at 0x%08x\n",
- (unsigned long) code,
- (unsigned long) new_code));
- FSHOW((stderr, "/Code object is %d words long.\n", nwords));
- */
+ lispobj header;
+ uword_t length;
- /* Set forwarding pointer. */
- ((lispobj *)code)[0] = 0x01;
- ((lispobj *)code)[1] = l_new_code;
+ gc_assert(is_lisp_pointer(object));
- /* Set forwarding pointers for all the function headers in the
- * code object. Also fix all self pointers. */
+ header = *((lispobj *) native_pointer(object));
+ length = HeaderValue(header) + 1;
+ length = CEILING(length, 2);
- fheaderl = code->entry_points;
- prev_pointer = &new_code->entry_points;
+ return copy_large_object(object, length);
+}
- while (fheaderl != NIL) {
- struct function *fheaderp, *nfheaderp;
- lispobj nfheaderl;
+/* Doesn't seem to be used, delete it after the grace period. */
+#if 0
+static lispobj
+trans_unboxed_large(lispobj object)
+{
+ lispobj header;
+ uword_t length;
- fheaderp = (struct function *) native_pointer(fheaderl);
- gc_assert(TypeOf(fheaderp->header) == type_FunctionHeader);
+ gc_assert(is_lisp_pointer(object));
- /* Calculate the new function pointer and the new */
- /* function header. */
- nfheaderl = fheaderl + displacement;
- nfheaderp = (struct function *) native_pointer(nfheaderl);
+ header = *((lispobj *) native_pointer(object));
+ length = HeaderValue(header) + 1;
+ length = CEILING(length, 2);
- /* Set forwarding pointer. */
- ((lispobj *)fheaderp)[0] = 0x01;
- ((lispobj *)fheaderp)[1] = nfheaderl;
+ return copy_large_unboxed_object(object, length);
+}
+#endif
+\f
+/*
+ * weak pointers
+ */
- /* Fix self pointer. */
- nfheaderp->self = nfheaderl + RAW_ADDR_OFFSET;
+/* XX This is a hack adapted from cgc.c. These don't work too
+ * efficiently with the gencgc as a list of the weak pointers is
+ * maintained within the objects which causes writes to the pages. A
+ * limited attempt is made to avoid unnecessary writes, but this needs
+ * a re-think. */
+#define WEAK_POINTER_NWORDS \
+ CEILING((sizeof(struct weak_pointer) / sizeof(lispobj)), 2)
- *prev_pointer = nfheaderl;
+static sword_t
+scav_weak_pointer(lispobj *where, lispobj object)
+{
+ /* Since we overwrite the 'next' field, we have to make
+ * sure not to do so for pointers already in the list.
+ * Instead of searching the list of weak_pointers each
+ * time, we ensure that next is always NULL when the weak
+ * pointer isn't in the list, and not NULL otherwise.
+ * Since we can't use NULL to denote end of list, we
+ * use a pointer back to the same weak_pointer.
+ */
+ struct weak_pointer * wp = (struct weak_pointer*)where;
- fheaderl = fheaderp->next;
- prev_pointer = &nfheaderp->next;
+ if (NULL == wp->next) {
+ wp->next = weak_pointers;
+ weak_pointers = wp;
+ if (NULL == wp->next)
+ wp->next = wp;
}
- /* sniff_code_object(new_code,displacement);*/
- apply_code_fixups(code,new_code);
+ /* Do not let GC scavenge the value slot of the weak pointer.
+ * (That is why it is a weak pointer.) */
- return new_code;
+ return WEAK_POINTER_NWORDS;
}
-static int
-scav_code_header(lispobj *where, lispobj object)
+\f
+lispobj *
+search_read_only_space(void *pointer)
{
- struct code *code;
- int n_header_words, n_code_words, n_words;
- lispobj entry_point; /* tagged pointer to entry point */
- struct function *function_ptr; /* untagged pointer to entry point */
-
- code = (struct code *) where;
- n_code_words = fixnum_value(code->code_size);
- n_header_words = HeaderValue(object);
- n_words = n_code_words + n_header_words;
- n_words = CEILING(n_words, 2);
-
- /* Scavenge the boxed section of the code data block. */
- scavenge(where + 1, n_header_words - 1);
-
- /* Scavenge the boxed section of each function object in the */
- /* code data block. */
- for (entry_point = code->entry_points;
- entry_point != NIL;
- entry_point = function_ptr->next) {
-
- gc_assert(is_lisp_pointer(entry_point));
-
- function_ptr = (struct function *) native_pointer(entry_point);
- gc_assert(TypeOf(function_ptr->header) == type_FunctionHeader);
-
- scavenge(&function_ptr->name, 1);
- scavenge(&function_ptr->arglist, 1);
- scavenge(&function_ptr->type, 1);
- }
-
- return n_words;
+ lispobj *start = (lispobj *) READ_ONLY_SPACE_START;
+ lispobj *end = (lispobj *) SymbolValue(READ_ONLY_SPACE_FREE_POINTER,0);
+ if ((pointer < (void *)start) || (pointer >= (void *)end))
+ return NULL;
+ return (gc_search_space(start,
+ (((lispobj *)pointer)+2)-start,
+ (lispobj *) pointer));
}
-static lispobj
-trans_code_header(lispobj object)
+lispobj *
+search_static_space(void *pointer)
{
- struct code *ncode;
-
- ncode = trans_code((struct code *) native_pointer(object));
- return (lispobj) ncode | type_OtherPointer;
+ lispobj *start = (lispobj *)STATIC_SPACE_START;
+ lispobj *end = (lispobj *)SymbolValue(STATIC_SPACE_FREE_POINTER,0);
+ if ((pointer < (void *)start) || (pointer >= (void *)end))
+ return NULL;
+ return (gc_search_space(start,
+ (((lispobj *)pointer)+2)-start,
+ (lispobj *) pointer));
}
-static int
-size_code_header(lispobj *where)
+/* a faster version for searching the dynamic space. This will work even
+ * if the object is in a current allocation region. */
+lispobj *
+search_dynamic_space(void *pointer)
{
- struct code *code;
- int nheader_words, ncode_words, nwords;
-
- code = (struct code *) where;
-
- ncode_words = fixnum_value(code->code_size);
- nheader_words = HeaderValue(code->header);
- nwords = ncode_words + nheader_words;
- nwords = CEILING(nwords, 2);
+ page_index_t page_index = find_page_index(pointer);
+ lispobj *start;
- return nwords;
+ /* The address may be invalid, so do some checks. */
+ if ((page_index == -1) || page_free_p(page_index))
+ return NULL;
+ start = (lispobj *)page_scan_start(page_index);
+ return (gc_search_space(start,
+ (((lispobj *)pointer)+2)-start,
+ (lispobj *)pointer));
}
-static int
-scav_return_pc_header(lispobj *where, lispobj object)
-{
- lose("attempted to scavenge a return PC header where=0x%08x object=0x%08x",
- (unsigned long) where,
- (unsigned long) object);
- return 0; /* bogus return value to satisfy static type checking */
-}
+#if defined(LISP_FEATURE_X86) || defined(LISP_FEATURE_X86_64)
-static lispobj
-trans_return_pc_header(lispobj object)
+/* Is there any possibility that pointer is a valid Lisp object
+ * reference, and/or something else (e.g. subroutine call return
+ * address) which should prevent us from moving the referred-to thing?
+ * This is called from preserve_pointers() */
+static int
+possibly_valid_dynamic_space_pointer(lispobj *pointer)
{
- struct function *return_pc;
- unsigned long offset;
- struct code *code, *ncode;
-
- SHOW("/trans_return_pc_header: Will this work?");
-
- return_pc = (struct function *) native_pointer(object);
- offset = HeaderValue(return_pc->header) * 4;
-
- /* Transport the whole code object. */
- code = (struct code *) ((unsigned long) return_pc - offset);
- ncode = trans_code(code);
+ lispobj *start_addr;
- return ((lispobj) ncode + offset) | type_OtherPointer;
-}
+ /* Find the object start address. */
+ if ((start_addr = search_dynamic_space(pointer)) == NULL) {
+ return 0;
+ }
-/* On the 386, closures hold a pointer to the raw address instead of the
- * function object. */
-#ifdef __i386__
-static int
-scav_closure_header(lispobj *where, lispobj object)
-{
- struct closure *closure;
- lispobj fun;
-
- closure = (struct closure *)where;
- fun = closure->function - RAW_ADDR_OFFSET;
- scavenge(&fun, 1);
- /* The function may have moved so update the raw address. But
- * don't write unnecessarily. */
- if (closure->function != fun + RAW_ADDR_OFFSET)
- closure->function = fun + RAW_ADDR_OFFSET;
-
- return 2;
+ return looks_like_valid_lisp_pointer_p(pointer, start_addr);
}
-#endif
-static int
-scav_function_header(lispobj *where, lispobj object)
-{
- lose("attempted to scavenge a function header where=0x%08x object=0x%08x",
- (unsigned long) where,
- (unsigned long) object);
- return 0; /* bogus return value to satisfy static type checking */
-}
+#endif // defined(LISP_FEATURE_X86) || defined(LISP_FEATURE_X86_64)
-static lispobj
-trans_function_header(lispobj object)
+/* Adjust large bignum and vector objects. This will adjust the
+ * allocated region if the size has shrunk, and move unboxed objects
+ * into unboxed pages. The pages are not promoted here, and the
+ * promoted region is not added to the new_regions; this is really
+ * only designed to be called from preserve_pointer(). Shouldn't fail
+ * if this is missed, just may delay the moving of objects to unboxed
+ * pages, and the freeing of pages. */
+static void
+maybe_adjust_large_object(lispobj *where)
{
- struct function *fheader;
- unsigned long offset;
- struct code *code, *ncode;
+ page_index_t first_page;
+ page_index_t next_page;
+ sword_t nwords;
- fheader = (struct function *) native_pointer(object);
- offset = HeaderValue(fheader->header) * 4;
+ uword_t remaining_bytes;
+ uword_t bytes_freed;
+ uword_t old_bytes_used;
- /* Transport the whole code object. */
- code = (struct code *) ((unsigned long) fheader - offset);
- ncode = trans_code(code);
+ int boxed;
- return ((lispobj) ncode + offset) | type_FunctionPointer;
-}
-\f
-/*
- * instances
- */
+ /* Check whether it's a vector or bignum object. */
+ switch (widetag_of(where[0])) {
+ case SIMPLE_VECTOR_WIDETAG:
+ boxed = BOXED_PAGE_FLAG;
+ break;
+ case BIGNUM_WIDETAG:
+ case SIMPLE_BASE_STRING_WIDETAG:
+#ifdef SIMPLE_CHARACTER_STRING_WIDETAG
+ case SIMPLE_CHARACTER_STRING_WIDETAG:
+#endif
+ case SIMPLE_BIT_VECTOR_WIDETAG:
+ case SIMPLE_ARRAY_NIL_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_2_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_4_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_7_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_8_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_15_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_16_WIDETAG:
+
+ case SIMPLE_ARRAY_UNSIGNED_FIXNUM_WIDETAG:
+
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_31_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_32_WIDETAG:
+#ifdef SIMPLE_ARRAY_UNSIGNED_BYTE_63_WIDETAG
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_63_WIDETAG:
+#endif
+#ifdef SIMPLE_ARRAY_UNSIGNED_BYTE_64_WIDETAG
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_64_WIDETAG:
+#endif
+#ifdef SIMPLE_ARRAY_SIGNED_BYTE_8_WIDETAG
+ case SIMPLE_ARRAY_SIGNED_BYTE_8_WIDETAG:
+#endif
+#ifdef SIMPLE_ARRAY_SIGNED_BYTE_16_WIDETAG
+ case SIMPLE_ARRAY_SIGNED_BYTE_16_WIDETAG:
+#endif
-static int
-scav_instance_pointer(lispobj *where, lispobj object)
-{
- lispobj copy, *first_pointer;
-
- /* Object is a pointer into from space - not a FP. */
- copy = trans_boxed(object);
-
- gc_assert(copy != object);
-
- first_pointer = (lispobj *) native_pointer(object);
-
- /* Set forwarding pointer. */
- first_pointer[0] = 0x01;
- first_pointer[1] = copy;
- *where = copy;
-
- return 1;
-}
-\f
-/*
- * lists and conses
- */
-
-static lispobj trans_list(lispobj object);
-
-static int
-scav_list_pointer(lispobj *where, lispobj object)
-{
- lispobj first, *first_pointer;
-
- gc_assert(is_lisp_pointer(object));
-
- /* Object is a pointer into from space - not FP. */
-
- first = trans_list(object);
- gc_assert(first != object);
-
- first_pointer = (lispobj *) native_pointer(object);
-
- /* Set forwarding pointer */
- first_pointer[0] = 0x01;
- first_pointer[1] = first;
-
- gc_assert(is_lisp_pointer(first));
- gc_assert(!from_space_p(first));
- *where = first;
- return 1;
-}
-
-static lispobj
-trans_list(lispobj object)
-{
- lispobj new_list_pointer;
- struct cons *cons, *new_cons;
- lispobj cdr;
-
- gc_assert(from_space_p(object));
-
- cons = (struct cons *) native_pointer(object);
-
- /* Copy 'object'. */
- new_cons = (struct cons *) gc_quick_alloc(sizeof(struct cons));
- new_cons->car = cons->car;
- new_cons->cdr = cons->cdr; /* updated later */
- new_list_pointer = (lispobj)new_cons | LowtagOf(object);
-
- /* Grab the cdr before it is clobbered. */
- cdr = cons->cdr;
-
- /* Set forwarding pointer (clobbers start of list). */
- cons->car = 0x01;
- cons->cdr = new_list_pointer;
-
- /* Try to linearize the list in the cdr direction to help reduce
- * paging. */
- while (1) {
- lispobj new_cdr;
- struct cons *cdr_cons, *new_cdr_cons;
-
- if (LowtagOf(cdr) != type_ListPointer || !from_space_p(cdr)
- || (*((lispobj *)native_pointer(cdr)) == 0x01))
- break;
-
- cdr_cons = (struct cons *) native_pointer(cdr);
-
- /* Copy 'cdr'. */
- new_cdr_cons = (struct cons*) gc_quick_alloc(sizeof(struct cons));
- new_cdr_cons->car = cdr_cons->car;
- new_cdr_cons->cdr = cdr_cons->cdr;
- new_cdr = (lispobj)new_cdr_cons | LowtagOf(cdr);
-
- /* Grab the cdr before it is clobbered. */
- cdr = cdr_cons->cdr;
-
- /* Set forwarding pointer. */
- cdr_cons->car = 0x01;
- cdr_cons->cdr = new_cdr;
-
- /* Update the cdr of the last cons copied into new space to
- * keep the newspace scavenge from having to do it. */
- new_cons->cdr = new_cdr;
-
- new_cons = new_cdr_cons;
- }
-
- return new_list_pointer;
-}
-
-\f
-/*
- * scavenging and transporting other pointers
- */
-
-static int
-scav_other_pointer(lispobj *where, lispobj object)
-{
- lispobj first, *first_pointer;
-
- gc_assert(is_lisp_pointer(object));
-
- /* Object is a pointer into from space - not FP. */
- first_pointer = (lispobj *) native_pointer(object);
-
- first = (transother[TypeOf(*first_pointer)])(object);
-
- if (first != object) {
- /* Set forwarding pointer. */
- first_pointer[0] = 0x01;
- first_pointer[1] = first;
- *where = first;
- }
-
- gc_assert(is_lisp_pointer(first));
- gc_assert(!from_space_p(first));
-
- return 1;
-}
-\f
-/*
- * immediate, boxed, and unboxed objects
- */
-
-static int
-size_pointer(lispobj *where)
-{
- return 1;
-}
-
-static int
-scav_immediate(lispobj *where, lispobj object)
-{
- return 1;
-}
-
-static lispobj
-trans_immediate(lispobj object)
-{
- lose("trying to transport an immediate");
- return NIL; /* bogus return value to satisfy static type checking */
-}
-
-static int
-size_immediate(lispobj *where)
-{
- return 1;
-}
-
-
-static int
-scav_boxed(lispobj *where, lispobj object)
-{
- return 1;
-}
-
-static lispobj
-trans_boxed(lispobj object)
-{
- lispobj header;
- unsigned long length;
-
- gc_assert(is_lisp_pointer(object));
-
- header = *((lispobj *) native_pointer(object));
- length = HeaderValue(header) + 1;
- length = CEILING(length, 2);
-
- return copy_object(object, length);
-}
-
-static lispobj
-trans_boxed_large(lispobj object)
-{
- lispobj header;
- unsigned long length;
-
- gc_assert(is_lisp_pointer(object));
-
- header = *((lispobj *) native_pointer(object));
- length = HeaderValue(header) + 1;
- length = CEILING(length, 2);
-
- return copy_large_object(object, length);
-}
-
-static int
-size_boxed(lispobj *where)
-{
- lispobj header;
- unsigned long length;
-
- header = *where;
- length = HeaderValue(header) + 1;
- length = CEILING(length, 2);
-
- return length;
-}
-
-static int
-scav_fdefn(lispobj *where, lispobj object)
-{
- struct fdefn *fdefn;
-
- fdefn = (struct fdefn *)where;
-
- /* FSHOW((stderr, "scav_fdefn, function = %p, raw_addr = %p\n",
- fdefn->function, fdefn->raw_addr)); */
-
- if ((char *)(fdefn->function + RAW_ADDR_OFFSET) == fdefn->raw_addr) {
- scavenge(where + 1, sizeof(struct fdefn)/sizeof(lispobj) - 1);
-
- /* Don't write unnecessarily. */
- if (fdefn->raw_addr != (char *)(fdefn->function + RAW_ADDR_OFFSET))
- fdefn->raw_addr = (char *)(fdefn->function + RAW_ADDR_OFFSET);
-
- return sizeof(struct fdefn) / sizeof(lispobj);
- } else {
- return 1;
- }
-}
-
-static int
-scav_unboxed(lispobj *where, lispobj object)
-{
- unsigned long length;
-
- length = HeaderValue(object) + 1;
- length = CEILING(length, 2);
-
- return length;
-}
-
-static lispobj
-trans_unboxed(lispobj object)
-{
- lispobj header;
- unsigned long length;
-
-
- gc_assert(is_lisp_pointer(object));
-
- header = *((lispobj *) native_pointer(object));
- length = HeaderValue(header) + 1;
- length = CEILING(length, 2);
-
- return copy_unboxed_object(object, length);
-}
-
-static lispobj
-trans_unboxed_large(lispobj object)
-{
- lispobj header;
- unsigned long length;
-
-
- gc_assert(is_lisp_pointer(object));
-
- header = *((lispobj *) native_pointer(object));
- length = HeaderValue(header) + 1;
- length = CEILING(length, 2);
-
- return copy_large_unboxed_object(object, length);
-}
-
-static int
-size_unboxed(lispobj *where)
-{
- lispobj header;
- unsigned long length;
-
- header = *where;
- length = HeaderValue(header) + 1;
- length = CEILING(length, 2);
-
- return length;
-}
-\f
-/*
- * vector-like objects
- */
-
-#define NWORDS(x,y) (CEILING((x),(y)) / (y))
-
-static int
-scav_string(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- /* NOTE: Strings contain one more byte of data than the length */
- /* slot indicates. */
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length) + 1;
- nwords = CEILING(NWORDS(length, 4) + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_string(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- /* NOTE: A string contains one more byte of data (a terminating
- * '\0' to help when interfacing with C functions) than indicated
- * by the length slot. */
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length) + 1;
- nwords = CEILING(NWORDS(length, 4) + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_string(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- /* NOTE: A string contains one more byte of data (a terminating
- * '\0' to help when interfacing with C functions) than indicated
- * by the length slot. */
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length) + 1;
- nwords = CEILING(NWORDS(length, 4) + 2, 2);
-
- return nwords;
-}
-
-/* FIXME: What does this mean? */
-int gencgc_hash = 1;
-
-static int
-scav_vector(lispobj *where, lispobj object)
-{
- unsigned int kv_length;
- lispobj *kv_vector;
- unsigned int length = 0; /* (0 = dummy to stop GCC warning) */
- lispobj *hash_table;
- lispobj empty_symbol;
- unsigned int *index_vector = NULL; /* (NULL = dummy to stop GCC warning) */
- unsigned int *next_vector = NULL; /* (NULL = dummy to stop GCC warning) */
- unsigned int *hash_vector = NULL; /* (NULL = dummy to stop GCC warning) */
- lispobj weak_p_obj;
- unsigned next_vector_length = 0;
-
- /* FIXME: A comment explaining this would be nice. It looks as
- * though SB-VM:VECTOR-VALID-HASHING-SUBTYPE is set for EQ-based
- * hash tables in the Lisp HASH-TABLE code, and nowhere else. */
- if (HeaderValue(object) != subtype_VectorValidHashing)
- return 1;
-
- if (!gencgc_hash) {
- /* This is set for backward compatibility. FIXME: Do we need
- * this any more? */
- *where = (subtype_VectorMustRehash << type_Bits) | type_SimpleVector;
- return 1;
- }
-
- kv_length = fixnum_value(where[1]);
- kv_vector = where + 2; /* Skip the header and length. */
- /*FSHOW((stderr,"/kv_length = %d\n", kv_length));*/
-
- /* Scavenge element 0, which may be a hash-table structure. */
- scavenge(where+2, 1);
- if (!is_lisp_pointer(where[2])) {
- lose("no pointer at %x in hash table", where[2]);
- }
- hash_table = (lispobj *)native_pointer(where[2]);
- /*FSHOW((stderr,"/hash_table = %x\n", hash_table));*/
- if (TypeOf(hash_table[0]) != type_InstanceHeader) {
- lose("hash table not instance (%x at %x)", hash_table[0], hash_table);
- }
-
- /* Scavenge element 1, which should be some internal symbol that
- * the hash table code reserves for marking empty slots. */
- scavenge(where+3, 1);
- if (!is_lisp_pointer(where[3])) {
- lose("not empty-hash-table-slot symbol pointer: %x", where[3]);
- }
- empty_symbol = where[3];
- /* fprintf(stderr,"* empty_symbol = %x\n", empty_symbol);*/
- if (TypeOf(*(lispobj *)native_pointer(empty_symbol)) != type_SymbolHeader) {
- lose("not a symbol where empty-hash-table-slot symbol expected: %x",
- *(lispobj *)native_pointer(empty_symbol));
- }
-
- /* Scavenge hash table, which will fix the positions of the other
- * needed objects. */
- scavenge(hash_table, 16);
-
- /* Cross-check the kv_vector. */
- if (where != (lispobj *)native_pointer(hash_table[9])) {
- lose("hash_table table!=this table %x", hash_table[9]);
- }
-
- /* WEAK-P */
- weak_p_obj = hash_table[10];
-
- /* index vector */
- {
- lispobj index_vector_obj = hash_table[13];
-
- if (is_lisp_pointer(index_vector_obj) &&
- (TypeOf(*(lispobj *)native_pointer(index_vector_obj)) == type_SimpleArrayUnsignedByte32)) {
- index_vector = ((unsigned int *)native_pointer(index_vector_obj)) + 2;
- /*FSHOW((stderr, "/index_vector = %x\n",index_vector));*/
- length = fixnum_value(((unsigned int *)native_pointer(index_vector_obj))[1]);
- /*FSHOW((stderr, "/length = %d\n", length));*/
- } else {
- lose("invalid index_vector %x", index_vector_obj);
- }
- }
-
- /* next vector */
- {
- lispobj next_vector_obj = hash_table[14];
-
- if (is_lisp_pointer(next_vector_obj) &&
- (TypeOf(*(lispobj *)native_pointer(next_vector_obj)) == type_SimpleArrayUnsignedByte32)) {
- next_vector = ((unsigned int *)native_pointer(next_vector_obj)) + 2;
- /*FSHOW((stderr, "/next_vector = %x\n", next_vector));*/
- next_vector_length = fixnum_value(((unsigned int *)native_pointer(next_vector_obj))[1]);
- /*FSHOW((stderr, "/next_vector_length = %d\n", next_vector_length));*/
- } else {
- lose("invalid next_vector %x", next_vector_obj);
- }
- }
-
- /* maybe hash vector */
- {
- /* FIXME: This bare "15" offset should become a symbolic
- * expression of some sort. And all the other bare offsets
- * too. And the bare "16" in scavenge(hash_table, 16). And
- * probably other stuff too. Ugh.. */
- lispobj hash_vector_obj = hash_table[15];
-
- if (is_lisp_pointer(hash_vector_obj) &&
- (TypeOf(*(lispobj *)native_pointer(hash_vector_obj))
- == type_SimpleArrayUnsignedByte32)) {
- hash_vector = ((unsigned int *)native_pointer(hash_vector_obj)) + 2;
- /*FSHOW((stderr, "/hash_vector = %x\n", hash_vector));*/
- gc_assert(fixnum_value(((unsigned int *)native_pointer(hash_vector_obj))[1])
- == next_vector_length);
- } else {
- hash_vector = NULL;
- /*FSHOW((stderr, "/no hash_vector: %x\n", hash_vector_obj));*/
- }
- }
-
- /* These lengths could be different as the index_vector can be a
- * different length from the others, a larger index_vector could help
- * reduce collisions. */
- gc_assert(next_vector_length*2 == kv_length);
-
- /* now all set up.. */
-
- /* Work through the KV vector. */
- {
- int i;
- for (i = 1; i < next_vector_length; i++) {
- lispobj old_key = kv_vector[2*i];
- unsigned int old_index = (old_key & 0x1fffffff)%length;
-
- /* Scavenge the key and value. */
- scavenge(&kv_vector[2*i],2);
-
- /* Check whether the key has moved and is EQ based. */
- {
- lispobj new_key = kv_vector[2*i];
- unsigned int new_index = (new_key & 0x1fffffff)%length;
-
- if ((old_index != new_index) &&
- ((!hash_vector) || (hash_vector[i] == 0x80000000)) &&
- ((new_key != empty_symbol) ||
- (kv_vector[2*i] != empty_symbol))) {
-
- /*FSHOW((stderr,
- "* EQ key %d moved from %x to %x; index %d to %d\n",
- i, old_key, new_key, old_index, new_index));*/
-
- if (index_vector[old_index] != 0) {
- /*FSHOW((stderr, "/P1 %d\n", index_vector[old_index]));*/
-
- /* Unlink the key from the old_index chain. */
- if (index_vector[old_index] == i) {
- /*FSHOW((stderr, "/P2a %d\n", next_vector[i]));*/
- index_vector[old_index] = next_vector[i];
- /* Link it into the needing rehash chain. */
- next_vector[i] = fixnum_value(hash_table[11]);
- hash_table[11] = make_fixnum(i);
- /*SHOW("P2");*/
- } else {
- unsigned prior = index_vector[old_index];
- unsigned next = next_vector[prior];
-
- /*FSHOW((stderr, "/P3a %d %d\n", prior, next));*/
-
- while (next != 0) {
- /*FSHOW((stderr, "/P3b %d %d\n", prior, next));*/
- if (next == i) {
- /* Unlink it. */
- next_vector[prior] = next_vector[next];
- /* Link it into the needing rehash
- * chain. */
- next_vector[next] =
- fixnum_value(hash_table[11]);
- hash_table[11] = make_fixnum(next);
- /*SHOW("/P3");*/
- break;
- }
- prior = next;
- next = next_vector[next];
- }
- }
- }
- }
- }
- }
- }
- return (CEILING(kv_length + 2, 2));
-}
-
-static lispobj
-trans_vector(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
-
- length = fixnum_value(vector->length);
- nwords = CEILING(length + 2, 2);
-
- return copy_large_object(object, nwords);
-}
-
-static int
-size_vector(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length + 2, 2);
-
- return nwords;
-}
-
-
-static int
-scav_vector_bit(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 32) + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_vector_bit(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 32) + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_vector_bit(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 32) + 2, 2);
-
- return nwords;
-}
-
-
-static int
-scav_vector_unsigned_byte_2(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 16) + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_vector_unsigned_byte_2(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 16) + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_vector_unsigned_byte_2(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 16) + 2, 2);
-
- return nwords;
-}
-
-
-static int
-scav_vector_unsigned_byte_4(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 8) + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_vector_unsigned_byte_4(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 8) + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_vector_unsigned_byte_4(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 8) + 2, 2);
-
- return nwords;
-}
-
-static int
-scav_vector_unsigned_byte_8(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 4) + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_vector_unsigned_byte_8(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 4) + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_vector_unsigned_byte_8(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 4) + 2, 2);
-
- return nwords;
-}
-
-
-static int
-scav_vector_unsigned_byte_16(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 2) + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_vector_unsigned_byte_16(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 2) + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_vector_unsigned_byte_16(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(NWORDS(length, 2) + 2, 2);
-
- return nwords;
-}
-
-static int
-scav_vector_unsigned_byte_32(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_vector_unsigned_byte_32(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length);
- nwords = CEILING(length + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_vector_unsigned_byte_32(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length + 2, 2);
-
- return nwords;
-}
-
-static int
-scav_vector_single_float(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_vector_single_float(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length);
- nwords = CEILING(length + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_vector_single_float(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length + 2, 2);
-
- return nwords;
-}
-
-static int
-scav_vector_double_float(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 2 + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_vector_double_float(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 2 + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_vector_double_float(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 2 + 2, 2);
-
- return nwords;
-}
-
-#ifdef type_SimpleArrayLongFloat
-static int
-scav_vector_long_float(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 3 + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_vector_long_float(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 3 + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_vector_long_float(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 3 + 2, 2);
-
- return nwords;
-}
-#endif
-
-
-#ifdef type_SimpleArrayComplexSingleFloat
-static int
-scav_vector_complex_single_float(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 2 + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_vector_complex_single_float(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 2 + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_vector_complex_single_float(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 2 + 2, 2);
-
- return nwords;
-}
-#endif
-
-#ifdef type_SimpleArrayComplexDoubleFloat
-static int
-scav_vector_complex_double_float(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 4 + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_vector_complex_double_float(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 4 + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_vector_complex_double_float(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 4 + 2, 2);
-
- return nwords;
-}
-#endif
-
-
-#ifdef type_SimpleArrayComplexLongFloat
-static int
-scav_vector_complex_long_float(lispobj *where, lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 6 + 2, 2);
-
- return nwords;
-}
-
-static lispobj
-trans_vector_complex_long_float(lispobj object)
-{
- struct vector *vector;
- int length, nwords;
-
- gc_assert(is_lisp_pointer(object));
-
- vector = (struct vector *) native_pointer(object);
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 6 + 2, 2);
-
- return copy_large_unboxed_object(object, nwords);
-}
-
-static int
-size_vector_complex_long_float(lispobj *where)
-{
- struct vector *vector;
- int length, nwords;
-
- vector = (struct vector *) where;
- length = fixnum_value(vector->length);
- nwords = CEILING(length * 6 + 2, 2);
-
- return nwords;
-}
-#endif
-
-\f
-/*
- * weak pointers
- */
-
-/* XX This is a hack adapted from cgc.c. These don't work too well with the
- * gencgc as a list of the weak pointers is maintained within the
- * objects which causes writes to the pages. A limited attempt is made
- * to avoid unnecessary writes, but this needs a re-think. */
-
-#define WEAK_POINTER_NWORDS \
- CEILING((sizeof(struct weak_pointer) / sizeof(lispobj)), 2)
-
-static int
-scav_weak_pointer(lispobj *where, lispobj object)
-{
- struct weak_pointer *wp = weak_pointers;
- /* Push the weak pointer onto the list of weak pointers.
- * Do I have to watch for duplicates? Originally this was
- * part of trans_weak_pointer but that didn't work in the
- * case where the WP was in a promoted region.
- */
-
- /* Check whether it's already in the list. */
- while (wp != NULL) {
- if (wp == (struct weak_pointer*)where) {
- break;
- }
- wp = wp->next;
- }
- if (wp == NULL) {
- /* Add it to the start of the list. */
- wp = (struct weak_pointer*)where;
- if (wp->next != weak_pointers) {
- wp->next = weak_pointers;
- } else {
- /*SHOW("avoided write to weak pointer");*/
- }
- weak_pointers = wp;
- }
-
- /* Do not let GC scavenge the value slot of the weak pointer.
- * (That is why it is a weak pointer.) */
-
- return WEAK_POINTER_NWORDS;
-}
-
-static lispobj
-trans_weak_pointer(lispobj object)
-{
- lispobj copy;
- /* struct weak_pointer *wp; */
-
- gc_assert(is_lisp_pointer(object));
-
-#if defined(DEBUG_WEAK)
- FSHOW((stderr, "Transporting weak pointer from 0x%08x\n", object));
-#endif
-
- /* Need to remember where all the weak pointers are that have */
- /* been transported so they can be fixed up in a post-GC pass. */
-
- copy = copy_object(object, WEAK_POINTER_NWORDS);
- /* wp = (struct weak_pointer *) native_pointer(copy);*/
-
-
- /* Push the weak pointer onto the list of weak pointers. */
- /* wp->next = weak_pointers;
- * weak_pointers = wp;*/
-
- return copy;
-}
-
-static int
-size_weak_pointer(lispobj *where)
-{
- return WEAK_POINTER_NWORDS;
-}
-
-void scan_weak_pointers(void)
-{
- struct weak_pointer *wp;
- for (wp = weak_pointers; wp != NULL; wp = wp->next) {
- lispobj value = wp->value;
- lispobj *first_pointer;
-
- first_pointer = (lispobj *)native_pointer(value);
-
- /*
- FSHOW((stderr, "/weak pointer at 0x%08x\n", (unsigned long) wp));
- FSHOW((stderr, "/value: 0x%08x\n", (unsigned long) value));
- */
-
- if (is_lisp_pointer(value) && from_space_p(value)) {
- /* Now, we need to check whether the object has been forwarded. If
- * it has been, the weak pointer is still good and needs to be
- * updated. Otherwise, the weak pointer needs to be nil'ed
- * out. */
- if (first_pointer[0] == 0x01) {
- wp->value = first_pointer[1];
- } else {
- /* Break it. */
- SHOW("broken");
- wp->value = NIL;
- wp->broken = T;
- }
- }
- }
-}
-\f
-/*
- * initialization
- */
-
-static int
-scav_lose(lispobj *where, lispobj object)
-{
- lose("no scavenge function for object 0x%08x", (unsigned long) object);
- return 0; /* bogus return value to satisfy static type checking */
-}
-
-static lispobj
-trans_lose(lispobj object)
-{
- lose("no transport function for object 0x%08x", (unsigned long) object);
- return NIL; /* bogus return value to satisfy static type checking */
-}
-
-static int
-size_lose(lispobj *where)
-{
- lose("no size function for object at 0x%08x", (unsigned long) where);
- return 1; /* bogus return value to satisfy static type checking */
-}
-
-static void
-gc_init_tables(void)
-{
- int i;
-
- /* Set default value in all slots of scavenge table. */
- for (i = 0; i < 256; i++) { /* FIXME: bare constant length, ick! */
- scavtab[i] = scav_lose;
- }
-
- /* For each type which can be selected by the low 3 bits of the tag
- * alone, set multiple entries in our 8-bit scavenge table (one for each
- * possible value of the high 5 bits). */
- for (i = 0; i < 32; i++) { /* FIXME: bare constant length, ick! */
- scavtab[type_EvenFixnum|(i<<3)] = scav_immediate;
- scavtab[type_FunctionPointer|(i<<3)] = scav_function_pointer;
- /* OtherImmediate0 */
- scavtab[type_ListPointer|(i<<3)] = scav_list_pointer;
- scavtab[type_OddFixnum|(i<<3)] = scav_immediate;
- scavtab[type_InstancePointer|(i<<3)] = scav_instance_pointer;
- /* OtherImmediate1 */
- scavtab[type_OtherPointer|(i<<3)] = scav_other_pointer;
- }
-
- /* Other-pointer types (those selected by all eight bits of the tag) get
- * one entry each in the scavenge table. */
- scavtab[type_Bignum] = scav_unboxed;
- scavtab[type_Ratio] = scav_boxed;
- scavtab[type_SingleFloat] = scav_unboxed;
- scavtab[type_DoubleFloat] = scav_unboxed;
-#ifdef type_LongFloat
- scavtab[type_LongFloat] = scav_unboxed;
-#endif
- scavtab[type_Complex] = scav_boxed;
-#ifdef type_ComplexSingleFloat
- scavtab[type_ComplexSingleFloat] = scav_unboxed;
-#endif
-#ifdef type_ComplexDoubleFloat
- scavtab[type_ComplexDoubleFloat] = scav_unboxed;
-#endif
-#ifdef type_ComplexLongFloat
- scavtab[type_ComplexLongFloat] = scav_unboxed;
-#endif
- scavtab[type_SimpleArray] = scav_boxed;
- scavtab[type_SimpleString] = scav_string;
- scavtab[type_SimpleBitVector] = scav_vector_bit;
- scavtab[type_SimpleVector] = scav_vector;
- scavtab[type_SimpleArrayUnsignedByte2] = scav_vector_unsigned_byte_2;
- scavtab[type_SimpleArrayUnsignedByte4] = scav_vector_unsigned_byte_4;
- scavtab[type_SimpleArrayUnsignedByte8] = scav_vector_unsigned_byte_8;
- scavtab[type_SimpleArrayUnsignedByte16] = scav_vector_unsigned_byte_16;
- scavtab[type_SimpleArrayUnsignedByte32] = scav_vector_unsigned_byte_32;
-#ifdef type_SimpleArraySignedByte8
- scavtab[type_SimpleArraySignedByte8] = scav_vector_unsigned_byte_8;
-#endif
-#ifdef type_SimpleArraySignedByte16
- scavtab[type_SimpleArraySignedByte16] = scav_vector_unsigned_byte_16;
-#endif
-#ifdef type_SimpleArraySignedByte30
- scavtab[type_SimpleArraySignedByte30] = scav_vector_unsigned_byte_32;
-#endif
-#ifdef type_SimpleArraySignedByte32
- scavtab[type_SimpleArraySignedByte32] = scav_vector_unsigned_byte_32;
-#endif
- scavtab[type_SimpleArraySingleFloat] = scav_vector_single_float;
- scavtab[type_SimpleArrayDoubleFloat] = scav_vector_double_float;
-#ifdef type_SimpleArrayLongFloat
- scavtab[type_SimpleArrayLongFloat] = scav_vector_long_float;
-#endif
-#ifdef type_SimpleArrayComplexSingleFloat
- scavtab[type_SimpleArrayComplexSingleFloat] = scav_vector_complex_single_float;
-#endif
-#ifdef type_SimpleArrayComplexDoubleFloat
- scavtab[type_SimpleArrayComplexDoubleFloat] = scav_vector_complex_double_float;
-#endif
-#ifdef type_SimpleArrayComplexLongFloat
- scavtab[type_SimpleArrayComplexLongFloat] = scav_vector_complex_long_float;
-#endif
- scavtab[type_ComplexString] = scav_boxed;
- scavtab[type_ComplexBitVector] = scav_boxed;
- scavtab[type_ComplexVector] = scav_boxed;
- scavtab[type_ComplexArray] = scav_boxed;
- scavtab[type_CodeHeader] = scav_code_header;
- /*scavtab[type_FunctionHeader] = scav_function_header;*/
- /*scavtab[type_ClosureFunctionHeader] = scav_function_header;*/
- /*scavtab[type_ReturnPcHeader] = scav_return_pc_header;*/
-#ifdef __i386__
- scavtab[type_ClosureHeader] = scav_closure_header;
- scavtab[type_FuncallableInstanceHeader] = scav_closure_header;
- scavtab[type_ByteCodeFunction] = scav_closure_header;
- scavtab[type_ByteCodeClosure] = scav_closure_header;
-#else
- scavtab[type_ClosureHeader] = scav_boxed;
- scavtab[type_FuncallableInstanceHeader] = scav_boxed;
- scavtab[type_ByteCodeFunction] = scav_boxed;
- scavtab[type_ByteCodeClosure] = scav_boxed;
-#endif
- scavtab[type_ValueCellHeader] = scav_boxed;
- scavtab[type_SymbolHeader] = scav_boxed;
- scavtab[type_BaseChar] = scav_immediate;
- scavtab[type_Sap] = scav_unboxed;
- scavtab[type_UnboundMarker] = scav_immediate;
- scavtab[type_WeakPointer] = scav_weak_pointer;
- scavtab[type_InstanceHeader] = scav_boxed;
- scavtab[type_Fdefn] = scav_fdefn;
-
- /* transport other table, initialized same way as scavtab */
- for (i = 0; i < 256; i++)
- transother[i] = trans_lose;
- transother[type_Bignum] = trans_unboxed;
- transother[type_Ratio] = trans_boxed;
- transother[type_SingleFloat] = trans_unboxed;
- transother[type_DoubleFloat] = trans_unboxed;
-#ifdef type_LongFloat
- transother[type_LongFloat] = trans_unboxed;
-#endif
- transother[type_Complex] = trans_boxed;
-#ifdef type_ComplexSingleFloat
- transother[type_ComplexSingleFloat] = trans_unboxed;
-#endif
-#ifdef type_ComplexDoubleFloat
- transother[type_ComplexDoubleFloat] = trans_unboxed;
-#endif
-#ifdef type_ComplexLongFloat
- transother[type_ComplexLongFloat] = trans_unboxed;
-#endif
- transother[type_SimpleArray] = trans_boxed_large;
- transother[type_SimpleString] = trans_string;
- transother[type_SimpleBitVector] = trans_vector_bit;
- transother[type_SimpleVector] = trans_vector;
- transother[type_SimpleArrayUnsignedByte2] = trans_vector_unsigned_byte_2;
- transother[type_SimpleArrayUnsignedByte4] = trans_vector_unsigned_byte_4;
- transother[type_SimpleArrayUnsignedByte8] = trans_vector_unsigned_byte_8;
- transother[type_SimpleArrayUnsignedByte16] = trans_vector_unsigned_byte_16;
- transother[type_SimpleArrayUnsignedByte32] = trans_vector_unsigned_byte_32;
-#ifdef type_SimpleArraySignedByte8
- transother[type_SimpleArraySignedByte8] = trans_vector_unsigned_byte_8;
-#endif
-#ifdef type_SimpleArraySignedByte16
- transother[type_SimpleArraySignedByte16] = trans_vector_unsigned_byte_16;
-#endif
-#ifdef type_SimpleArraySignedByte30
- transother[type_SimpleArraySignedByte30] = trans_vector_unsigned_byte_32;
-#endif
-#ifdef type_SimpleArraySignedByte32
- transother[type_SimpleArraySignedByte32] = trans_vector_unsigned_byte_32;
-#endif
- transother[type_SimpleArraySingleFloat] = trans_vector_single_float;
- transother[type_SimpleArrayDoubleFloat] = trans_vector_double_float;
-#ifdef type_SimpleArrayLongFloat
- transother[type_SimpleArrayLongFloat] = trans_vector_long_float;
-#endif
-#ifdef type_SimpleArrayComplexSingleFloat
- transother[type_SimpleArrayComplexSingleFloat] = trans_vector_complex_single_float;
-#endif
-#ifdef type_SimpleArrayComplexDoubleFloat
- transother[type_SimpleArrayComplexDoubleFloat] = trans_vector_complex_double_float;
-#endif
-#ifdef type_SimpleArrayComplexLongFloat
- transother[type_SimpleArrayComplexLongFloat] = trans_vector_complex_long_float;
-#endif
- transother[type_ComplexString] = trans_boxed;
- transother[type_ComplexBitVector] = trans_boxed;
- transother[type_ComplexVector] = trans_boxed;
- transother[type_ComplexArray] = trans_boxed;
- transother[type_CodeHeader] = trans_code_header;
- transother[type_FunctionHeader] = trans_function_header;
- transother[type_ClosureFunctionHeader] = trans_function_header;
- transother[type_ReturnPcHeader] = trans_return_pc_header;
- transother[type_ClosureHeader] = trans_boxed;
- transother[type_FuncallableInstanceHeader] = trans_boxed;
- transother[type_ByteCodeFunction] = trans_boxed;
- transother[type_ByteCodeClosure] = trans_boxed;
- transother[type_ValueCellHeader] = trans_boxed;
- transother[type_SymbolHeader] = trans_boxed;
- transother[type_BaseChar] = trans_immediate;
- transother[type_Sap] = trans_unboxed;
- transother[type_UnboundMarker] = trans_immediate;
- transother[type_WeakPointer] = trans_weak_pointer;
- transother[type_InstanceHeader] = trans_boxed;
- transother[type_Fdefn] = trans_boxed;
-
- /* size table, initialized the same way as scavtab */
- for (i = 0; i < 256; i++)
- sizetab[i] = size_lose;
- for (i = 0; i < 32; i++) {
- sizetab[type_EvenFixnum|(i<<3)] = size_immediate;
- sizetab[type_FunctionPointer|(i<<3)] = size_pointer;
- /* OtherImmediate0 */
- sizetab[type_ListPointer|(i<<3)] = size_pointer;
- sizetab[type_OddFixnum|(i<<3)] = size_immediate;
- sizetab[type_InstancePointer|(i<<3)] = size_pointer;
- /* OtherImmediate1 */
- sizetab[type_OtherPointer|(i<<3)] = size_pointer;
- }
- sizetab[type_Bignum] = size_unboxed;
- sizetab[type_Ratio] = size_boxed;
- sizetab[type_SingleFloat] = size_unboxed;
- sizetab[type_DoubleFloat] = size_unboxed;
-#ifdef type_LongFloat
- sizetab[type_LongFloat] = size_unboxed;
-#endif
- sizetab[type_Complex] = size_boxed;
-#ifdef type_ComplexSingleFloat
- sizetab[type_ComplexSingleFloat] = size_unboxed;
-#endif
-#ifdef type_ComplexDoubleFloat
- sizetab[type_ComplexDoubleFloat] = size_unboxed;
-#endif
-#ifdef type_ComplexLongFloat
- sizetab[type_ComplexLongFloat] = size_unboxed;
-#endif
- sizetab[type_SimpleArray] = size_boxed;
- sizetab[type_SimpleString] = size_string;
- sizetab[type_SimpleBitVector] = size_vector_bit;
- sizetab[type_SimpleVector] = size_vector;
- sizetab[type_SimpleArrayUnsignedByte2] = size_vector_unsigned_byte_2;
- sizetab[type_SimpleArrayUnsignedByte4] = size_vector_unsigned_byte_4;
- sizetab[type_SimpleArrayUnsignedByte8] = size_vector_unsigned_byte_8;
- sizetab[type_SimpleArrayUnsignedByte16] = size_vector_unsigned_byte_16;
- sizetab[type_SimpleArrayUnsignedByte32] = size_vector_unsigned_byte_32;
-#ifdef type_SimpleArraySignedByte8
- sizetab[type_SimpleArraySignedByte8] = size_vector_unsigned_byte_8;
-#endif
-#ifdef type_SimpleArraySignedByte16
- sizetab[type_SimpleArraySignedByte16] = size_vector_unsigned_byte_16;
-#endif
-#ifdef type_SimpleArraySignedByte30
- sizetab[type_SimpleArraySignedByte30] = size_vector_unsigned_byte_32;
-#endif
-#ifdef type_SimpleArraySignedByte32
- sizetab[type_SimpleArraySignedByte32] = size_vector_unsigned_byte_32;
-#endif
- sizetab[type_SimpleArraySingleFloat] = size_vector_single_float;
- sizetab[type_SimpleArrayDoubleFloat] = size_vector_double_float;
-#ifdef type_SimpleArrayLongFloat
- sizetab[type_SimpleArrayLongFloat] = size_vector_long_float;
-#endif
-#ifdef type_SimpleArrayComplexSingleFloat
- sizetab[type_SimpleArrayComplexSingleFloat] = size_vector_complex_single_float;
-#endif
-#ifdef type_SimpleArrayComplexDoubleFloat
- sizetab[type_SimpleArrayComplexDoubleFloat] = size_vector_complex_double_float;
-#endif
-#ifdef type_SimpleArrayComplexLongFloat
- sizetab[type_SimpleArrayComplexLongFloat] = size_vector_complex_long_float;
-#endif
- sizetab[type_ComplexString] = size_boxed;
- sizetab[type_ComplexBitVector] = size_boxed;
- sizetab[type_ComplexVector] = size_boxed;
- sizetab[type_ComplexArray] = size_boxed;
- sizetab[type_CodeHeader] = size_code_header;
-#if 0
- /* We shouldn't see these, so just lose if it happens. */
- sizetab[type_FunctionHeader] = size_function_header;
- sizetab[type_ClosureFunctionHeader] = size_function_header;
- sizetab[type_ReturnPcHeader] = size_return_pc_header;
-#endif
- sizetab[type_ClosureHeader] = size_boxed;
- sizetab[type_FuncallableInstanceHeader] = size_boxed;
- sizetab[type_ValueCellHeader] = size_boxed;
- sizetab[type_SymbolHeader] = size_boxed;
- sizetab[type_BaseChar] = size_immediate;
- sizetab[type_Sap] = size_unboxed;
- sizetab[type_UnboundMarker] = size_immediate;
- sizetab[type_WeakPointer] = size_weak_pointer;
- sizetab[type_InstanceHeader] = size_boxed;
- sizetab[type_Fdefn] = size_boxed;
-}
-\f
-/* Scan an area looking for an object which encloses the given pointer.
- * Return the object start on success or NULL on failure. */
-static lispobj *
-search_space(lispobj *start, size_t words, lispobj *pointer)
-{
- while (words > 0) {
- size_t count = 1;
- lispobj thing = *start;
-
- /* If thing is an immediate then this is a cons. */
- if (is_lisp_pointer(thing)
- || ((thing & 3) == 0) /* fixnum */
- || (TypeOf(thing) == type_BaseChar)
- || (TypeOf(thing) == type_UnboundMarker))
- count = 2;
- else
- count = (sizetab[TypeOf(thing)])(start);
-
- /* Check whether the pointer is within this object. */
- if ((pointer >= start) && (pointer < (start+count))) {
- /* found it! */
- /*FSHOW((stderr,"/found %x in %x %x\n", pointer, start, thing));*/
- return(start);
- }
-
- /* Round up the count. */
- count = CEILING(count,2);
-
- start += count;
- words -= count;
- }
- return (NULL);
-}
-
-static lispobj*
-search_read_only_space(lispobj *pointer)
-{
- lispobj* start = (lispobj*)READ_ONLY_SPACE_START;
- lispobj* end = (lispobj*)SymbolValue(READ_ONLY_SPACE_FREE_POINTER);
- if ((pointer < start) || (pointer >= end))
- return NULL;
- return (search_space(start, (pointer+2)-start, pointer));
-}
-
-static lispobj *
-search_static_space(lispobj *pointer)
-{
- lispobj* start = (lispobj*)STATIC_SPACE_START;
- lispobj* end = (lispobj*)SymbolValue(STATIC_SPACE_FREE_POINTER);
- if ((pointer < start) || (pointer >= end))
- return NULL;
- return (search_space(start, (pointer+2)-start, pointer));
-}
-
-/* a faster version for searching the dynamic space. This will work even
- * if the object is in a current allocation region. */
-lispobj *
-search_dynamic_space(lispobj *pointer)
-{
- int page_index = find_page_index(pointer);
- lispobj *start;
-
- /* The address may be invalid, so do some checks. */
- if ((page_index == -1) || (page_table[page_index].allocated == FREE_PAGE))
- return NULL;
- start = (lispobj *)((void *)page_address(page_index)
- + page_table[page_index].first_object_offset);
- return (search_space(start, (pointer+2)-start, pointer));
-}
-
-/* Is there any possibility that pointer is a valid Lisp object
- * reference, and/or something else (e.g. subroutine call return
- * address) which should prevent us from moving the referred-to thing? */
-static int
-possibly_valid_dynamic_space_pointer(lispobj *pointer)
-{
- lispobj *start_addr;
-
- /* Find the object start address. */
- if ((start_addr = search_dynamic_space(pointer)) == NULL) {
- return 0;
- }
-
- /* We need to allow raw pointers into Code objects for return
- * addresses. This will also pick up pointers to functions in code
- * objects. */
- if (TypeOf(*start_addr) == type_CodeHeader) {
- /* XXX could do some further checks here */
- return 1;
- }
-
- /* If it's not a return address then it needs to be a valid Lisp
- * pointer. */
- if (!is_lisp_pointer((lispobj)pointer)) {
- return 0;
- }
-
- /* Check that the object pointed to is consistent with the pointer
- * low tag.
- *
- * FIXME: It's not safe to rely on the result from this check
- * before an object is initialized. Thus, if we were interrupted
- * just as an object had been allocated but not initialized, the
- * GC relying on this result could bogusly reclaim the memory.
- * However, we can't really afford to do without this check. So
- * we should make it safe somehow.
- * (1) Perhaps just review the code to make sure
- * that WITHOUT-GCING or WITHOUT-INTERRUPTS or some such
- * thing is wrapped around critical sections where allocated
- * memory type bits haven't been set.
- * (2) Perhaps find some other hack to protect against this, e.g.
- * recording the result of the last call to allocate-lisp-memory,
- * and returning true from this function when *pointer is
- * a reference to that result. */
- switch (LowtagOf((lispobj)pointer)) {
- case type_FunctionPointer:
- /* Start_addr should be the enclosing code object, or a closure
- * header. */
- switch (TypeOf(*start_addr)) {
- case type_CodeHeader:
- /* This case is probably caught above. */
- break;
- case type_ClosureHeader:
- case type_FuncallableInstanceHeader:
- case type_ByteCodeFunction:
- case type_ByteCodeClosure:
- if ((unsigned)pointer !=
- ((unsigned)start_addr+type_FunctionPointer)) {
- if (gencgc_verbose)
- FSHOW((stderr,
- "/Wf2: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
- }
- break;
- default:
- if (gencgc_verbose)
- FSHOW((stderr,
- "/Wf3: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
- }
- break;
- case type_ListPointer:
- if ((unsigned)pointer !=
- ((unsigned)start_addr+type_ListPointer)) {
- if (gencgc_verbose)
- FSHOW((stderr,
- "/Wl1: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
- }
- /* Is it plausible cons? */
- if ((is_lisp_pointer(start_addr[0])
- || ((start_addr[0] & 3) == 0) /* fixnum */
- || (TypeOf(start_addr[0]) == type_BaseChar)
- || (TypeOf(start_addr[0]) == type_UnboundMarker))
- && (is_lisp_pointer(start_addr[1])
- || ((start_addr[1] & 3) == 0) /* fixnum */
- || (TypeOf(start_addr[1]) == type_BaseChar)
- || (TypeOf(start_addr[1]) == type_UnboundMarker)))
- break;
- else {
- if (gencgc_verbose)
- FSHOW((stderr,
- "/Wl2: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
- }
- case type_InstancePointer:
- if ((unsigned)pointer !=
- ((unsigned)start_addr+type_InstancePointer)) {
- if (gencgc_verbose)
- FSHOW((stderr,
- "/Wi1: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
- }
- if (TypeOf(start_addr[0]) != type_InstanceHeader) {
- if (gencgc_verbose)
- FSHOW((stderr,
- "/Wi2: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
- }
- break;
- case type_OtherPointer:
- if ((unsigned)pointer !=
- ((int)start_addr+type_OtherPointer)) {
- if (gencgc_verbose)
- FSHOW((stderr,
- "/Wo1: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
- }
- /* Is it plausible? Not a cons. XXX should check the headers. */
- if (is_lisp_pointer(start_addr[0]) || ((start_addr[0] & 3) == 0)) {
- if (gencgc_verbose)
- FSHOW((stderr,
- "/Wo2: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
- }
- switch (TypeOf(start_addr[0])) {
- case type_UnboundMarker:
- case type_BaseChar:
- if (gencgc_verbose)
- FSHOW((stderr,
- "*Wo3: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
-
- /* only pointed to by function pointers? */
- case type_ClosureHeader:
- case type_FuncallableInstanceHeader:
- case type_ByteCodeFunction:
- case type_ByteCodeClosure:
- if (gencgc_verbose)
- FSHOW((stderr,
- "*Wo4: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
-
- case type_InstanceHeader:
- if (gencgc_verbose)
- FSHOW((stderr,
- "*Wo5: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
-
- /* the valid other immediate pointer objects */
- case type_SimpleVector:
- case type_Ratio:
- case type_Complex:
-#ifdef type_ComplexSingleFloat
- case type_ComplexSingleFloat:
-#endif
-#ifdef type_ComplexDoubleFloat
- case type_ComplexDoubleFloat:
-#endif
-#ifdef type_ComplexLongFloat
- case type_ComplexLongFloat:
-#endif
- case type_SimpleArray:
- case type_ComplexString:
- case type_ComplexBitVector:
- case type_ComplexVector:
- case type_ComplexArray:
- case type_ValueCellHeader:
- case type_SymbolHeader:
- case type_Fdefn:
- case type_CodeHeader:
- case type_Bignum:
- case type_SingleFloat:
- case type_DoubleFloat:
-#ifdef type_LongFloat
- case type_LongFloat:
-#endif
- case type_SimpleString:
- case type_SimpleBitVector:
- case type_SimpleArrayUnsignedByte2:
- case type_SimpleArrayUnsignedByte4:
- case type_SimpleArrayUnsignedByte8:
- case type_SimpleArrayUnsignedByte16:
- case type_SimpleArrayUnsignedByte32:
-#ifdef type_SimpleArraySignedByte8
- case type_SimpleArraySignedByte8:
-#endif
-#ifdef type_SimpleArraySignedByte16
- case type_SimpleArraySignedByte16:
-#endif
-#ifdef type_SimpleArraySignedByte30
- case type_SimpleArraySignedByte30:
-#endif
-#ifdef type_SimpleArraySignedByte32
- case type_SimpleArraySignedByte32:
-#endif
- case type_SimpleArraySingleFloat:
- case type_SimpleArrayDoubleFloat:
-#ifdef type_SimpleArrayLongFloat
- case type_SimpleArrayLongFloat:
-#endif
-#ifdef type_SimpleArrayComplexSingleFloat
- case type_SimpleArrayComplexSingleFloat:
-#endif
-#ifdef type_SimpleArrayComplexDoubleFloat
- case type_SimpleArrayComplexDoubleFloat:
-#endif
-#ifdef type_SimpleArrayComplexLongFloat
- case type_SimpleArrayComplexLongFloat:
-#endif
- case type_Sap:
- case type_WeakPointer:
- break;
-
- default:
- if (gencgc_verbose)
- FSHOW((stderr,
- "/Wo6: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
- }
- break;
- default:
- if (gencgc_verbose)
- FSHOW((stderr,
- "*W?: %x %x %x\n",
- pointer, start_addr, *start_addr));
- return 0;
- }
-
- /* looks good */
- return 1;
-}
-
-/* Adjust large bignum and vector objects. This will adjust the
- * allocated region if the size has shrunk, and move unboxed objects
- * into unboxed pages. The pages are not promoted here, and the
- * promoted region is not added to the new_regions; this is really
- * only designed to be called from preserve_pointer(). Shouldn't fail
- * if this is missed, just may delay the moving of objects to unboxed
- * pages, and the freeing of pages. */
-static void
-maybe_adjust_large_object(lispobj *where)
-{
- int first_page;
- int nwords;
-
- int remaining_bytes;
- int next_page;
- int bytes_freed;
- int old_bytes_used;
-
- int boxed;
-
- /* Check whether it's a vector or bignum object. */
- switch (TypeOf(where[0])) {
- case type_SimpleVector:
- boxed = BOXED_PAGE;
- break;
- case type_Bignum:
- case type_SimpleString:
- case type_SimpleBitVector:
- case type_SimpleArrayUnsignedByte2:
- case type_SimpleArrayUnsignedByte4:
- case type_SimpleArrayUnsignedByte8:
- case type_SimpleArrayUnsignedByte16:
- case type_SimpleArrayUnsignedByte32:
-#ifdef type_SimpleArraySignedByte8
- case type_SimpleArraySignedByte8:
-#endif
-#ifdef type_SimpleArraySignedByte16
- case type_SimpleArraySignedByte16:
-#endif
-#ifdef type_SimpleArraySignedByte30
- case type_SimpleArraySignedByte30:
+ case SIMPLE_ARRAY_FIXNUM_WIDETAG:
+
+#ifdef SIMPLE_ARRAY_SIGNED_BYTE_32_WIDETAG
+ case SIMPLE_ARRAY_SIGNED_BYTE_32_WIDETAG:
#endif
-#ifdef type_SimpleArraySignedByte32
- case type_SimpleArraySignedByte32:
+#ifdef SIMPLE_ARRAY_SIGNED_BYTE_64_WIDETAG
+ case SIMPLE_ARRAY_SIGNED_BYTE_64_WIDETAG:
#endif
- case type_SimpleArraySingleFloat:
- case type_SimpleArrayDoubleFloat:
-#ifdef type_SimpleArrayLongFloat
- case type_SimpleArrayLongFloat:
+ case SIMPLE_ARRAY_SINGLE_FLOAT_WIDETAG:
+ case SIMPLE_ARRAY_DOUBLE_FLOAT_WIDETAG:
+#ifdef SIMPLE_ARRAY_LONG_FLOAT_WIDETAG
+ case SIMPLE_ARRAY_LONG_FLOAT_WIDETAG:
#endif
-#ifdef type_SimpleArrayComplexSingleFloat
- case type_SimpleArrayComplexSingleFloat:
+#ifdef SIMPLE_ARRAY_COMPLEX_SINGLE_FLOAT_WIDETAG
+ case SIMPLE_ARRAY_COMPLEX_SINGLE_FLOAT_WIDETAG:
#endif
-#ifdef type_SimpleArrayComplexDoubleFloat
- case type_SimpleArrayComplexDoubleFloat:
+#ifdef SIMPLE_ARRAY_COMPLEX_DOUBLE_FLOAT_WIDETAG
+ case SIMPLE_ARRAY_COMPLEX_DOUBLE_FLOAT_WIDETAG:
#endif
-#ifdef type_SimpleArrayComplexLongFloat
- case type_SimpleArrayComplexLongFloat:
+#ifdef SIMPLE_ARRAY_COMPLEX_LONG_FLOAT_WIDETAG
+ case SIMPLE_ARRAY_COMPLEX_LONG_FLOAT_WIDETAG:
#endif
- boxed = UNBOXED_PAGE;
- break;
+ boxed = UNBOXED_PAGE_FLAG;
+ break;
default:
- return;
+ return;
}
/* Find its current size. */
- nwords = (sizetab[TypeOf(where[0])])(where);
+ nwords = (sizetab[widetag_of(where[0])])(where);
first_page = find_page_index((void *)where);
gc_assert(first_page >= 0);
* but lets do it for them all (they'll probably be written
* anyway?). */
- gc_assert(page_table[first_page].first_object_offset == 0);
+ gc_assert(page_starts_contiguous_block_p(first_page));
next_page = first_page;
- remaining_bytes = nwords*4;
- while (remaining_bytes > 4096) {
- gc_assert(page_table[next_page].gen == from_space);
- gc_assert((page_table[next_page].allocated == BOXED_PAGE)
- || (page_table[next_page].allocated == UNBOXED_PAGE));
- gc_assert(page_table[next_page].large_object);
- gc_assert(page_table[next_page].first_object_offset ==
- -4096*(next_page-first_page));
- gc_assert(page_table[next_page].bytes_used == 4096);
-
- page_table[next_page].allocated = boxed;
-
- /* Shouldn't be write-protected at this stage. Essential that the
- * pages aren't. */
- gc_assert(!page_table[next_page].write_protected);
- remaining_bytes -= 4096;
- next_page++;
+ remaining_bytes = nwords*N_WORD_BYTES;
+ while (remaining_bytes > GENCGC_CARD_BYTES) {
+ gc_assert(page_table[next_page].gen == from_space);
+ gc_assert(page_allocated_no_region_p(next_page));
+ gc_assert(page_table[next_page].large_object);
+ gc_assert(page_table[next_page].scan_start_offset ==
+ npage_bytes(next_page-first_page));
+ gc_assert(page_table[next_page].bytes_used == GENCGC_CARD_BYTES);
+
+ page_table[next_page].allocated = boxed;
+
+ /* Shouldn't be write-protected at this stage. Essential that the
+ * pages aren't. */
+ gc_assert(!page_table[next_page].write_protected);
+ remaining_bytes -= GENCGC_CARD_BYTES;
+ next_page++;
}
/* Now only one page remains, but the object may have shrunk so
page_table[next_page].allocated = boxed;
gc_assert(page_table[next_page].allocated ==
- page_table[first_page].allocated);
+ page_table[first_page].allocated);
/* Adjust the bytes_used. */
old_bytes_used = page_table[next_page].bytes_used;
/* Free any remaining pages; needs care. */
next_page++;
- while ((old_bytes_used == 4096) &&
- (page_table[next_page].gen == from_space) &&
- ((page_table[next_page].allocated == UNBOXED_PAGE)
- || (page_table[next_page].allocated == BOXED_PAGE)) &&
- page_table[next_page].large_object &&
- (page_table[next_page].first_object_offset ==
- -(next_page - first_page)*4096)) {
- /* It checks out OK, free the page. We don't need to both zeroing
- * pages as this should have been done before shrinking the
- * object. These pages shouldn't be write protected as they
- * should be zero filled. */
- gc_assert(page_table[next_page].write_protected == 0);
-
- old_bytes_used = page_table[next_page].bytes_used;
- page_table[next_page].allocated = FREE_PAGE;
- page_table[next_page].bytes_used = 0;
- bytes_freed += old_bytes_used;
- next_page++;
+ while ((old_bytes_used == GENCGC_CARD_BYTES) &&
+ (page_table[next_page].gen == from_space) &&
+ page_allocated_no_region_p(next_page) &&
+ page_table[next_page].large_object &&
+ (page_table[next_page].scan_start_offset ==
+ npage_bytes(next_page - first_page))) {
+ /* It checks out OK, free the page. We don't need to both zeroing
+ * pages as this should have been done before shrinking the
+ * object. These pages shouldn't be write protected as they
+ * should be zero filled. */
+ gc_assert(page_table[next_page].write_protected == 0);
+
+ old_bytes_used = page_table[next_page].bytes_used;
+ page_table[next_page].allocated = FREE_PAGE_FLAG;
+ page_table[next_page].bytes_used = 0;
+ bytes_freed += old_bytes_used;
+ next_page++;
}
if ((bytes_freed > 0) && gencgc_verbose) {
- FSHOW((stderr,
- "/maybe_adjust_large_object() freed %d\n",
- bytes_freed));
+ FSHOW((stderr,
+ "/maybe_adjust_large_object() freed %d\n",
+ bytes_freed));
}
generations[from_space].bytes_allocated -= bytes_freed;
* page_table so that it will not be relocated during a GC.
*
* This involves locating the page it points to, then backing up to
- * the first page that has its first object start at offset 0, and
- * then marking all pages dont_move from the first until a page that
- * ends by being full, or having free gen.
- *
- * This ensures that objects spanning pages are not broken.
+ * the start of its region, then marking all pages dont_move from there
+ * up to the first page that's not full or has a different generation
*
* It is assumed that all the page static flags have been cleared at
* the start of a GC.
*
* It is also assumed that the current gc_alloc() region has been
* flushed and the tables updated. */
+
static void
preserve_pointer(void *addr)
{
- int addr_page_index = find_page_index(addr);
- int first_page;
- int i;
- unsigned region_allocation;
+ page_index_t addr_page_index = find_page_index(addr);
+ page_index_t first_page;
+ page_index_t i;
+ unsigned int region_allocation;
/* quick check 1: Address is quite likely to have been invalid. */
if ((addr_page_index == -1)
- || (page_table[addr_page_index].allocated == FREE_PAGE)
- || (page_table[addr_page_index].bytes_used == 0)
- || (page_table[addr_page_index].gen != from_space)
- /* Skip if already marked dont_move. */
- || (page_table[addr_page_index].dont_move != 0))
- return;
-
+ || page_free_p(addr_page_index)
+ || (page_table[addr_page_index].bytes_used == 0)
+ || (page_table[addr_page_index].gen != from_space)
+ /* Skip if already marked dont_move. */
+ || (page_table[addr_page_index].dont_move != 0))
+ return;
+ gc_assert(!(page_table[addr_page_index].allocated&OPEN_REGION_PAGE_FLAG));
/* (Now that we know that addr_page_index is in range, it's
* safe to index into page_table[] with it.) */
region_allocation = page_table[addr_page_index].allocated;
/* quick check 2: Check the offset within the page.
*
- * FIXME: The mask should have a symbolic name, and ideally should
- * be derived from page size instead of hardwired to 0xfff.
- * (Also fix other uses of 0xfff, elsewhere.) */
- if (((unsigned)addr & 0xfff) > page_table[addr_page_index].bytes_used)
- return;
+ */
+ if (((uword_t)addr & (GENCGC_CARD_BYTES - 1)) >
+ page_table[addr_page_index].bytes_used)
+ return;
/* Filter out anything which can't be a pointer to a Lisp object
* (or, as a special case which also requires dont_move, a return
* address referring to something in a CodeObject). This is
* expensive but important, since it vastly reduces the
- * probability that random garbage will be bogusly interpreter as
- * a pointer which prevents a page from moving. */
- if (!possibly_valid_dynamic_space_pointer(addr))
- return;
-
- /* Work backwards to find a page with a first_object_offset of 0.
- * The pages should be contiguous with all bytes used in the same
- * gen. Assumes the first_object_offset is negative or zero. */
+ * probability that random garbage will be bogusly interpreted as
+ * a pointer which prevents a page from moving.
+ *
+ * This only needs to happen on x86oids, where this is used for
+ * conservative roots. Non-x86oid systems only ever call this
+ * function on known-valid lisp objects. */
+#if defined(LISP_FEATURE_X86) || defined(LISP_FEATURE_X86_64)
+ if (!(code_page_p(addr_page_index)
+ || (is_lisp_pointer((lispobj)addr) &&
+ possibly_valid_dynamic_space_pointer(addr))))
+ return;
+#endif
+
+ /* Find the beginning of the region. Note that there may be
+ * objects in the region preceding the one that we were passed a
+ * pointer to: if this is the case, we will write-protect all the
+ * previous objects' pages too. */
+
+#if 0
+ /* I think this'd work just as well, but without the assertions.
+ * -dan 2004.01.01 */
+ first_page = find_page_index(page_scan_start(addr_page_index))
+#else
first_page = addr_page_index;
- while (page_table[first_page].first_object_offset != 0) {
- --first_page;
- /* Do some checks. */
- gc_assert(page_table[first_page].bytes_used == 4096);
- gc_assert(page_table[first_page].gen == from_space);
- gc_assert(page_table[first_page].allocated == region_allocation);
+ while (!page_starts_contiguous_block_p(first_page)) {
+ --first_page;
+ /* Do some checks. */
+ gc_assert(page_table[first_page].bytes_used == GENCGC_CARD_BYTES);
+ gc_assert(page_table[first_page].gen == from_space);
+ gc_assert(page_table[first_page].allocated == region_allocation);
}
+#endif
/* Adjust any large objects before promotion as they won't be
* copied after promotion. */
if (page_table[first_page].large_object) {
- maybe_adjust_large_object(page_address(first_page));
- /* If a large object has shrunk then addr may now point to a
- * free area in which case it's ignored here. Note it gets
- * through the valid pointer test above because the tail looks
- * like conses. */
- if ((page_table[addr_page_index].allocated == FREE_PAGE)
- || (page_table[addr_page_index].bytes_used == 0)
- /* Check the offset within the page. */
- || (((unsigned)addr & 0xfff)
- > page_table[addr_page_index].bytes_used)) {
- FSHOW((stderr,
- "weird? ignore ptr 0x%x to freed area of large object\n",
- addr));
- return;
- }
- /* It may have moved to unboxed pages. */
- region_allocation = page_table[first_page].allocated;
+ /* Large objects (specifically vectors and bignums) can
+ * shrink, leaving a "tail" of zeroed space, which appears to
+ * the filter above as a seris of valid conses, both car and
+ * cdr of which contain the fixnum zero, but will be
+ * deallocated when the GC shrinks the large object region to
+ * fit the object within. We allow raw pointers within code
+ * space, but for boxed and unboxed space we do not, nor do
+ * pointers to within a non-code object appear valid above. A
+ * cons cell will never merit allocation to a large object
+ * page, so pick them off now, before we try to adjust the
+ * object. */
+ if ((lowtag_of((lispobj)addr) == LIST_POINTER_LOWTAG) &&
+ !code_page_p(first_page)) {
+ return;
+ }
+ maybe_adjust_large_object(page_address(first_page));
+ /* It may have moved to unboxed pages. */
+ region_allocation = page_table[first_page].allocated;
}
/* Now work forward until the end of this contiguous area is found,
* marking all pages as dont_move. */
for (i = first_page; ;i++) {
- gc_assert(page_table[i].allocated == region_allocation);
-
- /* Mark the page static. */
- page_table[i].dont_move = 1;
-
- /* Move the page to the new_space. XX I'd rather not do this
- * but the GC logic is not quite able to copy with the static
- * pages remaining in the from space. This also requires the
- * generation bytes_allocated counters be updated. */
- page_table[i].gen = new_space;
- generations[new_space].bytes_allocated += page_table[i].bytes_used;
- generations[from_space].bytes_allocated -= page_table[i].bytes_used;
-
- /* It is essential that the pages are not write protected as
- * they may have pointers into the old-space which need
- * scavenging. They shouldn't be write protected at this
- * stage. */
- gc_assert(!page_table[i].write_protected);
-
- /* Check whether this is the last page in this contiguous block.. */
- if ((page_table[i].bytes_used < 4096)
- /* ..or it is 4096 and is the last in the block */
- || (page_table[i+1].allocated == FREE_PAGE)
- || (page_table[i+1].bytes_used == 0) /* next page free */
- || (page_table[i+1].gen != from_space) /* diff. gen */
- || (page_table[i+1].first_object_offset == 0))
- break;
+ gc_assert(page_table[i].allocated == region_allocation);
+
+ /* Mark the page static. */
+ page_table[i].dont_move = 1;
+
+ /* It is essential that the pages are not write protected as
+ * they may have pointers into the old-space which need
+ * scavenging. They shouldn't be write protected at this
+ * stage. */
+ gc_assert(!page_table[i].write_protected);
+
+ /* Check whether this is the last page in this contiguous block.. */
+ if (page_ends_contiguous_block_p(i, from_space))
+ break;
}
/* Check that the page is now static. */
*
* We return 1 if the page was write-protected, else 0. */
static int
-update_page_write_prot(int page)
+update_page_write_prot(page_index_t page)
{
- int gen = page_table[page].gen;
- int j;
+ generation_index_t gen = page_table[page].gen;
+ sword_t j;
int wp_it = 1;
void **page_addr = (void **)page_address(page);
- int num_words = page_table[page].bytes_used / 4;
+ sword_t num_words = page_table[page].bytes_used / N_WORD_BYTES;
/* Shouldn't be a free page. */
- gc_assert(page_table[page].allocated != FREE_PAGE);
+ gc_assert(page_allocated_p(page));
gc_assert(page_table[page].bytes_used != 0);
- /* Skip if it's already write-protected or an unboxed page. */
+ /* Skip if it's already write-protected, pinned, or unboxed */
if (page_table[page].write_protected
- || (page_table[page].allocated == UNBOXED_PAGE))
- return (0);
+ /* FIXME: What's the reason for not write-protecting pinned pages? */
+ || page_table[page].dont_move
+ || page_unboxed_p(page))
+ return (0);
/* Scan the page for pointers to younger generations or the
* top temp. generation. */
for (j = 0; j < num_words; j++) {
- void *ptr = *(page_addr+j);
- int index = find_page_index(ptr);
-
- /* Check that it's in the dynamic space */
- if (index != -1)
- if (/* Does it point to a younger or the temp. generation? */
- ((page_table[index].allocated != FREE_PAGE)
- && (page_table[index].bytes_used != 0)
- && ((page_table[index].gen < gen)
- || (page_table[index].gen == NUM_GENERATIONS)))
-
- /* Or does it point within a current gc_alloc() region? */
- || ((boxed_region.start_addr <= ptr)
- && (ptr <= boxed_region.free_pointer))
- || ((unboxed_region.start_addr <= ptr)
- && (ptr <= unboxed_region.free_pointer))) {
- wp_it = 0;
- break;
- }
+ void *ptr = *(page_addr+j);
+ page_index_t index = find_page_index(ptr);
+
+ /* Check that it's in the dynamic space */
+ if (index != -1)
+ if (/* Does it point to a younger or the temp. generation? */
+ (page_allocated_p(index)
+ && (page_table[index].bytes_used != 0)
+ && ((page_table[index].gen < gen)
+ || (page_table[index].gen == SCRATCH_GENERATION)))
+
+ /* Or does it point within a current gc_alloc() region? */
+ || ((boxed_region.start_addr <= ptr)
+ && (ptr <= boxed_region.free_pointer))
+ || ((unboxed_region.start_addr <= ptr)
+ && (ptr <= unboxed_region.free_pointer))) {
+ wp_it = 0;
+ break;
+ }
}
if (wp_it == 1) {
- /* Write-protect the page. */
- /*FSHOW((stderr, "/write-protecting page %d gen %d\n", page, gen));*/
+ /* Write-protect the page. */
+ /*FSHOW((stderr, "/write-protecting page %d gen %d\n", page, gen));*/
- os_protect((void *)page_addr,
- 4096,
- OS_VM_PROT_READ|OS_VM_PROT_EXECUTE);
+ os_protect((void *)page_addr,
+ GENCGC_CARD_BYTES,
+ OS_VM_PROT_READ|OS_VM_PROT_EXECUTE);
- /* Note the page as protected in the page tables. */
- page_table[page].write_protected = 1;
+ /* Note the page as protected in the page tables. */
+ page_table[page].write_protected = 1;
}
return (wp_it);
}
-/* Scavenge a generation.
- *
- * This will not resolve all pointers when generation is the new
- * space, as new objects may be added which are not check here - use
- * scavenge_newspace generation.
+/* Scavenge all generations from FROM to TO, inclusive, except for
+ * new_space which needs special handling, as new objects may be
+ * added which are not checked here - use scavenge_newspace generation.
*
* Write-protected pages should not have any pointers to the
* from_space so do need scavenging; thus write-protected pages are
* pointers as the objects contain a link to the next and are written
* if a weak pointer is scavenged. Still it's a useful check. */
static void
-scavenge_generation(int generation)
+scavenge_generations(generation_index_t from, generation_index_t to)
{
- int i;
- int num_wp = 0;
+ page_index_t i;
+ page_index_t num_wp = 0;
#define SC_GEN_CK 0
#if SC_GEN_CK
/* Clear the write_protected_cleared flags on all pages. */
- for (i = 0; i < NUM_PAGES; i++)
- page_table[i].write_protected_cleared = 0;
+ for (i = 0; i < page_table_pages; i++)
+ page_table[i].write_protected_cleared = 0;
#endif
for (i = 0; i < last_free_page; i++) {
- if ((page_table[i].allocated == BOXED_PAGE)
- && (page_table[i].bytes_used != 0)
- && (page_table[i].gen == generation)) {
- int last_page;
-
- /* This should be the start of a contiguous block. */
- gc_assert(page_table[i].first_object_offset == 0);
-
- /* We need to find the full extent of this contiguous
- * block in case objects span pages. */
-
- /* Now work forward until the end of this contiguous area
- * is found. A small area is preferred as there is a
- * better chance of its pages being write-protected. */
- for (last_page = i; ; last_page++)
- /* Check whether this is the last page in this contiguous
- * block. */
- if ((page_table[last_page].bytes_used < 4096)
- /* Or it is 4096 and is the last in the block */
- || (page_table[last_page+1].allocated != BOXED_PAGE)
- || (page_table[last_page+1].bytes_used == 0)
- || (page_table[last_page+1].gen != generation)
- || (page_table[last_page+1].first_object_offset == 0))
- break;
-
- /* Do a limited check for write_protected pages. If all pages
- * are write_protected then there is no need to scavenge. */
- {
- int j, all_wp = 1;
- for (j = i; j <= last_page; j++)
- if (page_table[j].write_protected == 0) {
- all_wp = 0;
- break;
- }
-#if !SC_GEN_CK
- if (all_wp == 0)
-#endif
- {
- scavenge(page_address(i), (page_table[last_page].bytes_used
- + (last_page-i)*4096)/4);
-
- /* Now scan the pages and write protect those
- * that don't have pointers to younger
- * generations. */
- if (enable_page_protection) {
- for (j = i; j <= last_page; j++) {
- num_wp += update_page_write_prot(j);
- }
- }
- }
- }
- i = last_page;
- }
- }
-
- if ((gencgc_verbose > 1) && (num_wp != 0)) {
- FSHOW((stderr,
- "/write protected %d pages within generation %d\n",
- num_wp, generation));
+ generation_index_t generation = page_table[i].gen;
+ if (page_boxed_p(i)
+ && (page_table[i].bytes_used != 0)
+ && (generation != new_space)
+ && (generation >= from)
+ && (generation <= to)) {
+ page_index_t last_page,j;
+ int write_protected=1;
+
+ /* This should be the start of a region */
+ gc_assert(page_starts_contiguous_block_p(i));
+
+ /* Now work forward until the end of the region */
+ for (last_page = i; ; last_page++) {
+ write_protected =
+ write_protected && page_table[last_page].write_protected;
+ if (page_ends_contiguous_block_p(last_page, generation))
+ break;
+ }
+ if (!write_protected) {
+ scavenge(page_address(i),
+ ((uword_t)(page_table[last_page].bytes_used
+ + npage_bytes(last_page-i)))
+ /N_WORD_BYTES);
+
+ /* Now scan the pages and write protect those that
+ * don't have pointers to younger generations. */
+ if (enable_page_protection) {
+ for (j = i; j <= last_page; j++) {
+ num_wp += update_page_write_prot(j);
+ }
+ }
+ if ((gencgc_verbose > 1) && (num_wp != 0)) {
+ FSHOW((stderr,
+ "/write protected %d pages within generation %d\n",
+ num_wp, generation));
+ }
+ }
+ i = last_page;
+ }
}
#if SC_GEN_CK
/* Check that none of the write_protected pages in this generation
* have been written to. */
- for (i = 0; i < NUM_PAGES; i++) {
- if ((page_table[i].allocation ! =FREE_PAGE)
- && (page_table[i].bytes_used != 0)
- && (page_table[i].gen == generation)
- && (page_table[i].write_protected_cleared != 0)) {
- FSHOW((stderr, "/scavenge_generation() %d\n", generation));
- FSHOW((stderr,
- "/page bytes_used=%d first_object_offset=%d dont_move=%d\n",
- page_table[i].bytes_used,
- page_table[i].first_object_offset,
- page_table[i].dont_move));
- lose("write to protected page %d in scavenge_generation()", i);
- }
+ for (i = 0; i < page_table_pages; i++) {
+ if (page_allocated_p(i)
+ && (page_table[i].bytes_used != 0)
+ && (page_table[i].gen == generation)
+ && (page_table[i].write_protected_cleared != 0)) {
+ FSHOW((stderr, "/scavenge_generation() %d\n", generation));
+ FSHOW((stderr,
+ "/page bytes_used=%d scan_start_offset=%lu dont_move=%d\n",
+ page_table[i].bytes_used,
+ page_table[i].scan_start_offset,
+ page_table[i].dont_move));
+ lose("write to protected page %d in scavenge_generation()\n", i);
+ }
}
#endif
}
* complete the job as new objects may be added to the generation in
* the process which are not scavenged. */
static void
-scavenge_newspace_generation_one_scan(int generation)
+scavenge_newspace_generation_one_scan(generation_index_t generation)
{
- int i;
+ page_index_t i;
FSHOW((stderr,
- "/starting one full scan of newspace generation %d\n",
- generation));
-
+ "/starting one full scan of newspace generation %d\n",
+ generation));
for (i = 0; i < last_free_page; i++) {
- if ((page_table[i].allocated == BOXED_PAGE)
- && (page_table[i].bytes_used != 0)
- && (page_table[i].gen == generation)
- && ((page_table[i].write_protected == 0)
- /* (This may be redundant as write_protected is now
- * cleared before promotion.) */
- || (page_table[i].dont_move == 1))) {
- int last_page;
-
- /* The scavenge will start at the first_object_offset of page i.
- *
- * We need to find the full extent of this contiguous
- * block in case objects span pages.
- *
- * Now work forward until the end of this contiguous area
- * is found. A small area is preferred as there is a
- * better chance of its pages being write-protected. */
- for (last_page = i; ;last_page++) {
- /* Check whether this is the last page in this
- * contiguous block */
- if ((page_table[last_page].bytes_used < 4096)
- /* Or it is 4096 and is the last in the block */
- || (page_table[last_page+1].allocated != BOXED_PAGE)
- || (page_table[last_page+1].bytes_used == 0)
- || (page_table[last_page+1].gen != generation)
- || (page_table[last_page+1].first_object_offset == 0))
- break;
- }
-
- /* Do a limited check for write-protected pages. If all
- * pages are write-protected then no need to scavenge,
- * except if the pages are marked dont_move. */
- {
- int j, all_wp = 1;
- for (j = i; j <= last_page; j++)
- if ((page_table[j].write_protected == 0)
- || (page_table[j].dont_move != 0)) {
- all_wp = 0;
- break;
- }
-
- if (!all_wp) {
- int size;
-
- /* Calculate the size. */
- if (last_page == i)
- size = (page_table[last_page].bytes_used
- - page_table[i].first_object_offset)/4;
- else
- size = (page_table[last_page].bytes_used
- + (last_page-i)*4096
- - page_table[i].first_object_offset)/4;
-
- {
- new_areas_ignore_page = last_page;
-
- scavenge(page_address(i) +
- page_table[i].first_object_offset,
- size);
-
- }
- }
- }
-
- i = last_page;
- }
+ /* Note that this skips over open regions when it encounters them. */
+ if (page_boxed_p(i)
+ && (page_table[i].bytes_used != 0)
+ && (page_table[i].gen == generation)
+ && ((page_table[i].write_protected == 0)
+ /* (This may be redundant as write_protected is now
+ * cleared before promotion.) */
+ || (page_table[i].dont_move == 1))) {
+ page_index_t last_page;
+ int all_wp=1;
+
+ /* The scavenge will start at the scan_start_offset of
+ * page i.
+ *
+ * We need to find the full extent of this contiguous
+ * block in case objects span pages.
+ *
+ * Now work forward until the end of this contiguous area
+ * is found. A small area is preferred as there is a
+ * better chance of its pages being write-protected. */
+ for (last_page = i; ;last_page++) {
+ /* If all pages are write-protected and movable,
+ * then no need to scavenge */
+ all_wp=all_wp && page_table[last_page].write_protected &&
+ !page_table[last_page].dont_move;
+
+ /* Check whether this is the last page in this
+ * contiguous block */
+ if (page_ends_contiguous_block_p(last_page, generation))
+ break;
+ }
+
+ /* Do a limited check for write-protected pages. */
+ if (!all_wp) {
+ sword_t nwords = (((uword_t)
+ (page_table[last_page].bytes_used
+ + npage_bytes(last_page-i)
+ + page_table[i].scan_start_offset))
+ / N_WORD_BYTES);
+ new_areas_ignore_page = last_page;
+
+ scavenge(page_scan_start(i), nwords);
+
+ }
+ i = last_page;
+ }
}
FSHOW((stderr,
- "/done with one full scan of newspace generation %d\n",
- generation));
+ "/done with one full scan of newspace generation %d\n",
+ generation));
}
/* Do a complete scavenge of the newspace generation. */
static void
-scavenge_newspace_generation(int generation)
+scavenge_newspace_generation(generation_index_t generation)
{
- int i;
+ size_t i;
/* the new_areas array currently being written to by gc_alloc() */
struct new_area (*current_new_areas)[] = &new_areas_1;
- int current_new_areas_index;
+ size_t current_new_areas_index;
- /* the new_areas created but the previous scavenge cycle */
+ /* the new_areas created by the previous scavenge cycle */
struct new_area (*previous_new_areas)[] = NULL;
- int previous_new_areas_index;
+ size_t previous_new_areas_index;
/* Flush the current regions updating the tables. */
- gc_alloc_update_page_tables(0, &boxed_region);
- gc_alloc_update_page_tables(1, &unboxed_region);
+ gc_alloc_update_all_page_tables();
/* Turn on the recording of new areas by gc_alloc(). */
new_areas = current_new_areas;
/* Record all new areas now. */
record_new_objects = 2;
+ /* Give a chance to weak hash tables to make other objects live.
+ * FIXME: The algorithm implemented here for weak hash table gcing
+ * is O(W^2+N) as Bruno Haible warns in
+ * http://www.haible.de/bruno/papers/cs/weak/WeakDatastructures-writeup.html
+ * see "Implementation 2". */
+ scav_weak_hash_tables();
+
/* Flush the current regions updating the tables. */
- gc_alloc_update_page_tables(0, &boxed_region);
- gc_alloc_update_page_tables(1, &unboxed_region);
+ gc_alloc_update_all_page_tables();
/* Grab new_areas_index. */
current_new_areas_index = new_areas_index;
/*FSHOW((stderr,
- "The first scan is finished; current_new_areas_index=%d.\n",
- current_new_areas_index));*/
+ "The first scan is finished; current_new_areas_index=%d.\n",
+ current_new_areas_index));*/
while (current_new_areas_index > 0) {
- /* Move the current to the previous new areas */
- previous_new_areas = current_new_areas;
- previous_new_areas_index = current_new_areas_index;
-
- /* Scavenge all the areas in previous new areas. Any new areas
- * allocated are saved in current_new_areas. */
-
- /* Allocate an array for current_new_areas; alternating between
- * new_areas_1 and 2 */
- if (previous_new_areas == &new_areas_1)
- current_new_areas = &new_areas_2;
- else
- current_new_areas = &new_areas_1;
-
- /* Set up for gc_alloc(). */
- new_areas = current_new_areas;
- new_areas_index = 0;
-
- /* Check whether previous_new_areas had overflowed. */
- if (previous_new_areas_index >= NUM_NEW_AREAS) {
-
- /* New areas of objects allocated have been lost so need to do a
- * full scan to be sure! If this becomes a problem try
- * increasing NUM_NEW_AREAS. */
- if (gencgc_verbose)
- SHOW("new_areas overflow, doing full scavenge");
-
- /* Don't need to record new areas that get scavenge anyway
- * during scavenge_newspace_generation_one_scan. */
- record_new_objects = 1;
-
- scavenge_newspace_generation_one_scan(generation);
-
- /* Record all new areas now. */
- record_new_objects = 2;
-
- /* Flush the current regions updating the tables. */
- gc_alloc_update_page_tables(0, &boxed_region);
- gc_alloc_update_page_tables(1, &unboxed_region);
-
- } else {
-
- /* Work through previous_new_areas. */
- for (i = 0; i < previous_new_areas_index; i++) {
- /* FIXME: All these bare *4 and /4 should be something
- * like BYTES_PER_WORD or WBYTES. */
- int page = (*previous_new_areas)[i].page;
- int offset = (*previous_new_areas)[i].offset;
- int size = (*previous_new_areas)[i].size / 4;
- gc_assert((*previous_new_areas)[i].size % 4 == 0);
-
- scavenge(page_address(page)+offset, size);
- }
-
- /* Flush the current regions updating the tables. */
- gc_alloc_update_page_tables(0, &boxed_region);
- gc_alloc_update_page_tables(1, &unboxed_region);
- }
-
- current_new_areas_index = new_areas_index;
-
- /*FSHOW((stderr,
- "The re-scan has finished; current_new_areas_index=%d.\n",
- current_new_areas_index));*/
+ /* Move the current to the previous new areas */
+ previous_new_areas = current_new_areas;
+ previous_new_areas_index = current_new_areas_index;
+
+ /* Scavenge all the areas in previous new areas. Any new areas
+ * allocated are saved in current_new_areas. */
+
+ /* Allocate an array for current_new_areas; alternating between
+ * new_areas_1 and 2 */
+ if (previous_new_areas == &new_areas_1)
+ current_new_areas = &new_areas_2;
+ else
+ current_new_areas = &new_areas_1;
+
+ /* Set up for gc_alloc(). */
+ new_areas = current_new_areas;
+ new_areas_index = 0;
+
+ /* Check whether previous_new_areas had overflowed. */
+ if (previous_new_areas_index >= NUM_NEW_AREAS) {
+
+ /* New areas of objects allocated have been lost so need to do a
+ * full scan to be sure! If this becomes a problem try
+ * increasing NUM_NEW_AREAS. */
+ if (gencgc_verbose) {
+ SHOW("new_areas overflow, doing full scavenge");
+ }
+
+ /* Don't need to record new areas that get scavenged
+ * anyway during scavenge_newspace_generation_one_scan. */
+ record_new_objects = 1;
+
+ scavenge_newspace_generation_one_scan(generation);
+
+ /* Record all new areas now. */
+ record_new_objects = 2;
+
+ scav_weak_hash_tables();
+
+ /* Flush the current regions updating the tables. */
+ gc_alloc_update_all_page_tables();
+
+ } else {
+
+ /* Work through previous_new_areas. */
+ for (i = 0; i < previous_new_areas_index; i++) {
+ page_index_t page = (*previous_new_areas)[i].page;
+ size_t offset = (*previous_new_areas)[i].offset;
+ size_t size = (*previous_new_areas)[i].size / N_WORD_BYTES;
+ gc_assert((*previous_new_areas)[i].size % N_WORD_BYTES == 0);
+ scavenge(page_address(page)+offset, size);
+ }
+
+ scav_weak_hash_tables();
+
+ /* Flush the current regions updating the tables. */
+ gc_alloc_update_all_page_tables();
+ }
+
+ current_new_areas_index = new_areas_index;
+
+ /*FSHOW((stderr,
+ "The re-scan has finished; current_new_areas_index=%d.\n",
+ current_new_areas_index));*/
}
/* Turn off recording of areas allocated by gc_alloc(). */
record_new_objects = 0;
#if SC_NS_GEN_CK
- /* Check that none of the write_protected pages in this generation
- * have been written to. */
- for (i = 0; i < NUM_PAGES; i++) {
- if ((page_table[i].allocation != FREE_PAGE)
- && (page_table[i].bytes_used != 0)
- && (page_table[i].gen == generation)
- && (page_table[i].write_protected_cleared != 0)
- && (page_table[i].dont_move == 0)) {
- lose("write protected page %d written to in scavenge_newspace_generation\ngeneration=%d dont_move=%d",
- i, generation, page_table[i].dont_move);
- }
+ {
+ page_index_t i;
+ /* Check that none of the write_protected pages in this generation
+ * have been written to. */
+ for (i = 0; i < page_table_pages; i++) {
+ if (page_allocated_p(i)
+ && (page_table[i].bytes_used != 0)
+ && (page_table[i].gen == generation)
+ && (page_table[i].write_protected_cleared != 0)
+ && (page_table[i].dont_move == 0)) {
+ lose("write protected page %d written to in scavenge_newspace_generation\ngeneration=%d dont_move=%d\n",
+ i, generation, page_table[i].dont_move);
+ }
+ }
}
#endif
}
static void
unprotect_oldspace(void)
{
- int i;
+ page_index_t i;
+ void *region_addr = 0;
+ void *page_addr = 0;
+ uword_t region_bytes = 0;
for (i = 0; i < last_free_page; i++) {
- if ((page_table[i].allocated != FREE_PAGE)
- && (page_table[i].bytes_used != 0)
- && (page_table[i].gen == from_space)) {
- void *page_start;
-
- page_start = (void *)page_address(i);
-
- /* Remove any write-protection. We should be able to rely
- * on the write-protect flag to avoid redundant calls. */
- if (page_table[i].write_protected) {
- os_protect(page_start, 4096, OS_VM_PROT_ALL);
- page_table[i].write_protected = 0;
- }
- }
+ if (page_allocated_p(i)
+ && (page_table[i].bytes_used != 0)
+ && (page_table[i].gen == from_space)) {
+
+ /* Remove any write-protection. We should be able to rely
+ * on the write-protect flag to avoid redundant calls. */
+ if (page_table[i].write_protected) {
+ page_table[i].write_protected = 0;
+ page_addr = page_address(i);
+ if (!region_addr) {
+ /* First region. */
+ region_addr = page_addr;
+ region_bytes = GENCGC_CARD_BYTES;
+ } else if (region_addr + region_bytes == page_addr) {
+ /* Region continue. */
+ region_bytes += GENCGC_CARD_BYTES;
+ } else {
+ /* Unprotect previous region. */
+ os_protect(region_addr, region_bytes, OS_VM_PROT_ALL);
+ /* First page in new region. */
+ region_addr = page_addr;
+ region_bytes = GENCGC_CARD_BYTES;
+ }
+ }
+ }
+ }
+ if (region_addr) {
+ /* Unprotect last region. */
+ os_protect(region_addr, region_bytes, OS_VM_PROT_ALL);
}
}
* assumes that all objects have been copied or promoted to an older
* generation. Bytes_allocated and the generation bytes_allocated
* counter are updated. The number of bytes freed is returned. */
-extern void i586_bzero(void *addr, int nbytes);
-static int
+static uword_t
free_oldspace(void)
{
- int bytes_freed = 0;
- int first_page, last_page;
+ uword_t bytes_freed = 0;
+ page_index_t first_page, last_page;
first_page = 0;
do {
- /* Find a first page for the next region of pages. */
- while ((first_page < last_free_page)
- && ((page_table[first_page].allocated == FREE_PAGE)
- || (page_table[first_page].bytes_used == 0)
- || (page_table[first_page].gen != from_space)))
- first_page++;
-
- if (first_page >= last_free_page)
- break;
-
- /* Find the last page of this region. */
- last_page = first_page;
-
- do {
- /* Free the page. */
- bytes_freed += page_table[last_page].bytes_used;
- generations[page_table[last_page].gen].bytes_allocated -=
- page_table[last_page].bytes_used;
- page_table[last_page].allocated = FREE_PAGE;
- page_table[last_page].bytes_used = 0;
-
- /* Remove any write-protection. We should be able to rely
- * on the write-protect flag to avoid redundant calls. */
- {
- void *page_start = (void *)page_address(last_page);
-
- if (page_table[last_page].write_protected) {
- os_protect(page_start, 4096, OS_VM_PROT_ALL);
- page_table[last_page].write_protected = 0;
- }
- }
- last_page++;
- }
- while ((last_page < last_free_page)
- && (page_table[last_page].allocated != FREE_PAGE)
- && (page_table[last_page].bytes_used != 0)
- && (page_table[last_page].gen == from_space));
-
- /* Zero pages from first_page to (last_page-1).
- *
- * FIXME: Why not use os_zero(..) function instead of
- * hand-coding this again? (Check other gencgc_unmap_zero
- * stuff too. */
- if (gencgc_unmap_zero) {
- void *page_start, *addr;
-
- page_start = (void *)page_address(first_page);
-
- os_invalidate(page_start, 4096*(last_page-first_page));
- addr = os_validate(page_start, 4096*(last_page-first_page));
- if (addr == NULL || addr != page_start) {
- /* Is this an error condition? I couldn't really tell from
- * the old CMU CL code, which fprintf'ed a message with
- * an exclamation point at the end. But I've never seen the
- * message, so it must at least be unusual..
- *
- * (The same condition is also tested for in gc_free_heap.)
- *
- * -- WHN 19991129 */
- lose("i586_bzero: page moved, 0x%08x ==> 0x%08x",
- page_start,
- addr);
- }
- } else {
- int *page_start;
-
- page_start = (int *)page_address(first_page);
- i586_bzero(page_start, 4096*(last_page-first_page));
- }
-
- first_page = last_page;
-
+ /* Find a first page for the next region of pages. */
+ while ((first_page < last_free_page)
+ && (page_free_p(first_page)
+ || (page_table[first_page].bytes_used == 0)
+ || (page_table[first_page].gen != from_space)))
+ first_page++;
+
+ if (first_page >= last_free_page)
+ break;
+
+ /* Find the last page of this region. */
+ last_page = first_page;
+
+ do {
+ /* Free the page. */
+ bytes_freed += page_table[last_page].bytes_used;
+ generations[page_table[last_page].gen].bytes_allocated -=
+ page_table[last_page].bytes_used;
+ page_table[last_page].allocated = FREE_PAGE_FLAG;
+ page_table[last_page].bytes_used = 0;
+ /* Should already be unprotected by unprotect_oldspace(). */
+ gc_assert(!page_table[last_page].write_protected);
+ last_page++;
+ }
+ while ((last_page < last_free_page)
+ && page_allocated_p(last_page)
+ && (page_table[last_page].bytes_used != 0)
+ && (page_table[last_page].gen == from_space));
+
+#ifdef READ_PROTECT_FREE_PAGES
+ os_protect(page_address(first_page),
+ npage_bytes(last_page-first_page),
+ OS_VM_PROT_NONE);
+#endif
+ first_page = last_page;
} while (first_page < last_free_page);
bytes_allocated -= bytes_freed;
print_ptr(lispobj *addr)
{
/* If addr is in the dynamic space then out the page information. */
- int pi1 = find_page_index((void*)addr);
+ page_index_t pi1 = find_page_index((void*)addr);
if (pi1 != -1)
- fprintf(stderr," %x: page %d alloc %d gen %d bytes_used %d offset %d dont_move %d\n",
- (unsigned int) addr,
- pi1,
- page_table[pi1].allocated,
- page_table[pi1].gen,
- page_table[pi1].bytes_used,
- page_table[pi1].first_object_offset,
- page_table[pi1].dont_move);
+ fprintf(stderr," %p: page %d alloc %d gen %d bytes_used %d offset %lu dont_move %d\n",
+ addr,
+ pi1,
+ page_table[pi1].allocated,
+ page_table[pi1].gen,
+ page_table[pi1].bytes_used,
+ page_table[pi1].scan_start_offset,
+ page_table[pi1].dont_move);
fprintf(stderr," %x %x %x %x (%x) %x %x %x %x\n",
- *(addr-4),
- *(addr-3),
- *(addr-2),
- *(addr-1),
- *(addr-0),
- *(addr+1),
- *(addr+2),
- *(addr+3),
- *(addr+4));
+ *(addr-4),
+ *(addr-3),
+ *(addr-2),
+ *(addr-1),
+ *(addr-0),
+ *(addr+1),
+ *(addr+2),
+ *(addr+3),
+ *(addr+4));
}
#endif
-extern int undefined_tramp;
+static int
+is_in_stack_space(lispobj ptr)
+{
+ /* For space verification: Pointers can be valid if they point
+ * to a thread stack space. This would be faster if the thread
+ * structures had page-table entries as if they were part of
+ * the heap space. */
+ struct thread *th;
+ for_each_thread(th) {
+ if ((th->control_stack_start <= (lispobj *)ptr) &&
+ (th->control_stack_end >= (lispobj *)ptr)) {
+ return 1;
+ }
+ }
+ return 0;
+}
static void
verify_space(lispobj *start, size_t words)
{
int is_in_dynamic_space = (find_page_index((void*)start) != -1);
int is_in_readonly_space =
- (READ_ONLY_SPACE_START <= (unsigned)start &&
- (unsigned)start < SymbolValue(READ_ONLY_SPACE_FREE_POINTER));
+ (READ_ONLY_SPACE_START <= (uword_t)start &&
+ (uword_t)start < SymbolValue(READ_ONLY_SPACE_FREE_POINTER,0));
while (words > 0) {
- size_t count = 1;
- lispobj thing = *(lispobj*)start;
-
- if (is_lisp_pointer(thing)) {
- int page_index = find_page_index((void*)thing);
- int to_readonly_space =
- (READ_ONLY_SPACE_START <= thing &&
- thing < SymbolValue(READ_ONLY_SPACE_FREE_POINTER));
- int to_static_space =
- (STATIC_SPACE_START <= thing &&
- thing < SymbolValue(STATIC_SPACE_FREE_POINTER));
-
- /* Does it point to the dynamic space? */
- if (page_index != -1) {
- /* If it's within the dynamic space it should point to a used
- * page. XX Could check the offset too. */
- if ((page_table[page_index].allocated != FREE_PAGE)
- && (page_table[page_index].bytes_used == 0))
- lose ("Ptr %x @ %x sees free page.", thing, start);
- /* Check that it doesn't point to a forwarding pointer! */
- if (*((lispobj *)native_pointer(thing)) == 0x01) {
- lose("Ptr %x @ %x sees forwarding ptr.", thing, start);
- }
- /* Check that its not in the RO space as it would then be a
- * pointer from the RO to the dynamic space. */
- if (is_in_readonly_space) {
- lose("ptr to dynamic space %x from RO space %x",
- thing, start);
- }
- /* Does it point to a plausible object? This check slows
- * it down a lot (so it's commented out).
- *
- * FIXME: Add a variable to enable this dynamically. */
- /* if (!possibly_valid_dynamic_space_pointer((lispobj *)thing)) {
- * lose("ptr %x to invalid object %x", thing, start); */
- } else {
- /* Verify that it points to another valid space. */
- if (!to_readonly_space && !to_static_space
- && (thing != (unsigned)&undefined_tramp)) {
- lose("Ptr %x @ %x sees junk.", thing, start);
- }
- }
- } else {
- if (thing & 0x3) { /* Skip fixnums. FIXME: There should be an
- * is_fixnum for this. */
-
- switch(TypeOf(*start)) {
-
- /* boxed objects */
- case type_SimpleVector:
- case type_Ratio:
- case type_Complex:
- case type_SimpleArray:
- case type_ComplexString:
- case type_ComplexBitVector:
- case type_ComplexVector:
- case type_ComplexArray:
- case type_ClosureHeader:
- case type_FuncallableInstanceHeader:
- case type_ByteCodeFunction:
- case type_ByteCodeClosure:
- case type_ValueCellHeader:
- case type_SymbolHeader:
- case type_BaseChar:
- case type_UnboundMarker:
- case type_InstanceHeader:
- case type_Fdefn:
- count = 1;
- break;
-
- case type_CodeHeader:
- {
- lispobj object = *start;
- struct code *code;
- int nheader_words, ncode_words, nwords;
- lispobj fheaderl;
- struct function *fheaderp;
-
- code = (struct code *) start;
-
- /* Check that it's not in the dynamic space.
- * FIXME: Isn't is supposed to be OK for code
- * objects to be in the dynamic space these days? */
- if (is_in_dynamic_space
- /* It's ok if it's byte compiled code. The trace
- * table offset will be a fixnum if it's x86
- * compiled code - check. */
- && !(code->trace_table_offset & 0x3)
- /* Only when enabled */
- && verify_dynamic_code_check) {
- FSHOW((stderr,
- "/code object at %x in the dynamic space\n",
- start));
- }
-
- ncode_words = fixnum_value(code->code_size);
- nheader_words = HeaderValue(object);
- nwords = ncode_words + nheader_words;
- nwords = CEILING(nwords, 2);
- /* Scavenge the boxed section of the code data block */
- verify_space(start + 1, nheader_words - 1);
-
- /* Scavenge the boxed section of each function object in
- * the code data block. */
- fheaderl = code->entry_points;
- while (fheaderl != NIL) {
- fheaderp = (struct function *) native_pointer(fheaderl);
- gc_assert(TypeOf(fheaderp->header) == type_FunctionHeader);
- verify_space(&fheaderp->name, 1);
- verify_space(&fheaderp->arglist, 1);
- verify_space(&fheaderp->type, 1);
- fheaderl = fheaderp->next;
- }
- count = nwords;
- break;
- }
-
- /* unboxed objects */
- case type_Bignum:
- case type_SingleFloat:
- case type_DoubleFloat:
-#ifdef type_ComplexLongFloat
- case type_LongFloat:
+ size_t count = 1;
+ lispobj thing = *(lispobj*)start;
+
+ if (is_lisp_pointer(thing)) {
+ page_index_t page_index = find_page_index((void*)thing);
+ sword_t to_readonly_space =
+ (READ_ONLY_SPACE_START <= thing &&
+ thing < SymbolValue(READ_ONLY_SPACE_FREE_POINTER,0));
+ sword_t to_static_space =
+ (STATIC_SPACE_START <= thing &&
+ thing < SymbolValue(STATIC_SPACE_FREE_POINTER,0));
+
+ /* Does it point to the dynamic space? */
+ if (page_index != -1) {
+ /* If it's within the dynamic space it should point to a used
+ * page. XX Could check the offset too. */
+ if (page_allocated_p(page_index)
+ && (page_table[page_index].bytes_used == 0))
+ lose ("Ptr %p @ %p sees free page.\n", thing, start);
+ /* Check that it doesn't point to a forwarding pointer! */
+ if (*((lispobj *)native_pointer(thing)) == 0x01) {
+ lose("Ptr %p @ %p sees forwarding ptr.\n", thing, start);
+ }
+ /* Check that its not in the RO space as it would then be a
+ * pointer from the RO to the dynamic space. */
+ if (is_in_readonly_space) {
+ lose("ptr to dynamic space %p from RO space %x\n",
+ thing, start);
+ }
+ /* Does it point to a plausible object? This check slows
+ * it down a lot (so it's commented out).
+ *
+ * "a lot" is serious: it ate 50 minutes cpu time on
+ * my duron 950 before I came back from lunch and
+ * killed it.
+ *
+ * FIXME: Add a variable to enable this
+ * dynamically. */
+ /*
+ if (!possibly_valid_dynamic_space_pointer((lispobj *)thing)) {
+ lose("ptr %p to invalid object %p\n", thing, start);
+ }
+ */
+ } else {
+ extern void funcallable_instance_tramp;
+ /* Verify that it points to another valid space. */
+ if (!to_readonly_space && !to_static_space
+ && (thing != (lispobj)&funcallable_instance_tramp)
+ && !is_in_stack_space(thing)) {
+ lose("Ptr %p @ %p sees junk.\n", thing, start);
+ }
+ }
+ } else {
+ if (!(fixnump(thing))) {
+ /* skip fixnums */
+ switch(widetag_of(*start)) {
+
+ /* boxed objects */
+ case SIMPLE_VECTOR_WIDETAG:
+ case RATIO_WIDETAG:
+ case COMPLEX_WIDETAG:
+ case SIMPLE_ARRAY_WIDETAG:
+ case COMPLEX_BASE_STRING_WIDETAG:
+#ifdef COMPLEX_CHARACTER_STRING_WIDETAG
+ case COMPLEX_CHARACTER_STRING_WIDETAG:
+#endif
+ case COMPLEX_VECTOR_NIL_WIDETAG:
+ case COMPLEX_BIT_VECTOR_WIDETAG:
+ case COMPLEX_VECTOR_WIDETAG:
+ case COMPLEX_ARRAY_WIDETAG:
+ case CLOSURE_HEADER_WIDETAG:
+ case FUNCALLABLE_INSTANCE_HEADER_WIDETAG:
+ case VALUE_CELL_HEADER_WIDETAG:
+ case SYMBOL_HEADER_WIDETAG:
+ case CHARACTER_WIDETAG:
+#if N_WORD_BITS == 64
+ case SINGLE_FLOAT_WIDETAG:
#endif
-#ifdef type_ComplexSingleFloat
- case type_ComplexSingleFloat:
+ case UNBOUND_MARKER_WIDETAG:
+ case FDEFN_WIDETAG:
+ count = 1;
+ break;
+
+ case INSTANCE_HEADER_WIDETAG:
+ {
+ lispobj nuntagged;
+ sword_t ntotal = HeaderValue(thing);
+ lispobj layout = ((struct instance *)start)->slots[0];
+ if (!layout) {
+ count = 1;
+ break;
+ }
+ nuntagged = ((struct layout *)
+ native_pointer(layout))->n_untagged_slots;
+ verify_space(start + 1,
+ ntotal - fixnum_value(nuntagged));
+ count = ntotal + 1;
+ break;
+ }
+ case CODE_HEADER_WIDETAG:
+ {
+ lispobj object = *start;
+ struct code *code;
+ sword_t nheader_words, ncode_words, nwords;
+ lispobj fheaderl;
+ struct simple_fun *fheaderp;
+
+ code = (struct code *) start;
+
+ /* Check that it's not in the dynamic space.
+ * FIXME: Isn't is supposed to be OK for code
+ * objects to be in the dynamic space these days? */
+ if (is_in_dynamic_space
+ /* It's ok if it's byte compiled code. The trace
+ * table offset will be a fixnum if it's x86
+ * compiled code - check.
+ *
+ * FIXME: #^#@@! lack of abstraction here..
+ * This line can probably go away now that
+ * there's no byte compiler, but I've got
+ * too much to worry about right now to try
+ * to make sure. -- WHN 2001-10-06 */
+ && fixnump(code->trace_table_offset)
+ /* Only when enabled */
+ && verify_dynamic_code_check) {
+ FSHOW((stderr,
+ "/code object at %p in the dynamic space\n",
+ start));
+ }
+
+ ncode_words = fixnum_value(code->code_size);
+ nheader_words = HeaderValue(object);
+ nwords = ncode_words + nheader_words;
+ nwords = CEILING(nwords, 2);
+ /* Scavenge the boxed section of the code data block */
+ verify_space(start + 1, nheader_words - 1);
+
+ /* Scavenge the boxed section of each function
+ * object in the code data block. */
+ fheaderl = code->entry_points;
+ while (fheaderl != NIL) {
+ fheaderp =
+ (struct simple_fun *) native_pointer(fheaderl);
+ gc_assert(widetag_of(fheaderp->header) ==
+ SIMPLE_FUN_HEADER_WIDETAG);
+ verify_space(&fheaderp->name, 1);
+ verify_space(&fheaderp->arglist, 1);
+ verify_space(&fheaderp->type, 1);
+ fheaderl = fheaderp->next;
+ }
+ count = nwords;
+ break;
+ }
+
+ /* unboxed objects */
+ case BIGNUM_WIDETAG:
+#if N_WORD_BITS != 64
+ case SINGLE_FLOAT_WIDETAG:
#endif
-#ifdef type_ComplexDoubleFloat
- case type_ComplexDoubleFloat:
+ case DOUBLE_FLOAT_WIDETAG:
+#ifdef COMPLEX_LONG_FLOAT_WIDETAG
+ case LONG_FLOAT_WIDETAG:
#endif
-#ifdef type_ComplexLongFloat
- case type_ComplexLongFloat:
+#ifdef COMPLEX_SINGLE_FLOAT_WIDETAG
+ case COMPLEX_SINGLE_FLOAT_WIDETAG:
#endif
- case type_SimpleString:
- case type_SimpleBitVector:
- case type_SimpleArrayUnsignedByte2:
- case type_SimpleArrayUnsignedByte4:
- case type_SimpleArrayUnsignedByte8:
- case type_SimpleArrayUnsignedByte16:
- case type_SimpleArrayUnsignedByte32:
-#ifdef type_SimpleArraySignedByte8
- case type_SimpleArraySignedByte8:
+#ifdef COMPLEX_DOUBLE_FLOAT_WIDETAG
+ case COMPLEX_DOUBLE_FLOAT_WIDETAG:
#endif
-#ifdef type_SimpleArraySignedByte16
- case type_SimpleArraySignedByte16:
+#ifdef COMPLEX_LONG_FLOAT_WIDETAG
+ case COMPLEX_LONG_FLOAT_WIDETAG:
#endif
-#ifdef type_SimpleArraySignedByte30
- case type_SimpleArraySignedByte30:
+#ifdef SIMD_PACK_WIDETAG
+ case SIMD_PACK_WIDETAG:
#endif
-#ifdef type_SimpleArraySignedByte32
- case type_SimpleArraySignedByte32:
+ case SIMPLE_BASE_STRING_WIDETAG:
+#ifdef SIMPLE_CHARACTER_STRING_WIDETAG
+ case SIMPLE_CHARACTER_STRING_WIDETAG:
#endif
- case type_SimpleArraySingleFloat:
- case type_SimpleArrayDoubleFloat:
-#ifdef type_SimpleArrayComplexLongFloat
- case type_SimpleArrayLongFloat:
+ case SIMPLE_BIT_VECTOR_WIDETAG:
+ case SIMPLE_ARRAY_NIL_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_2_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_4_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_7_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_8_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_15_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_16_WIDETAG:
+
+ case SIMPLE_ARRAY_UNSIGNED_FIXNUM_WIDETAG:
+
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_31_WIDETAG:
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_32_WIDETAG:
+#ifdef SIMPLE_ARRAY_UNSIGNED_BYTE_63_WIDETAG
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_63_WIDETAG:
#endif
-#ifdef type_SimpleArrayComplexSingleFloat
- case type_SimpleArrayComplexSingleFloat:
+#ifdef SIMPLE_ARRAY_UNSIGNED_BYTE_64_WIDETAG
+ case SIMPLE_ARRAY_UNSIGNED_BYTE_64_WIDETAG:
#endif
-#ifdef type_SimpleArrayComplexDoubleFloat
- case type_SimpleArrayComplexDoubleFloat:
+#ifdef SIMPLE_ARRAY_SIGNED_BYTE_8_WIDETAG
+ case SIMPLE_ARRAY_SIGNED_BYTE_8_WIDETAG:
#endif
-#ifdef type_SimpleArrayComplexLongFloat
- case type_SimpleArrayComplexLongFloat:
+#ifdef SIMPLE_ARRAY_SIGNED_BYTE_16_WIDETAG
+ case SIMPLE_ARRAY_SIGNED_BYTE_16_WIDETAG:
#endif
- case type_Sap:
- case type_WeakPointer:
- count = (sizetab[TypeOf(*start)])(start);
- break;
-
- default:
- gc_abort();
- }
- }
- }
- start += count;
- words -= count;
+
+ case SIMPLE_ARRAY_FIXNUM_WIDETAG:
+
+#ifdef SIMPLE_ARRAY_SIGNED_BYTE_32_WIDETAG
+ case SIMPLE_ARRAY_SIGNED_BYTE_32_WIDETAG:
+#endif
+#ifdef SIMPLE_ARRAY_SIGNED_BYTE_64_WIDETAG
+ case SIMPLE_ARRAY_SIGNED_BYTE_64_WIDETAG:
+#endif
+ case SIMPLE_ARRAY_SINGLE_FLOAT_WIDETAG:
+ case SIMPLE_ARRAY_DOUBLE_FLOAT_WIDETAG:
+#ifdef SIMPLE_ARRAY_COMPLEX_LONG_FLOAT_WIDETAG
+ case SIMPLE_ARRAY_LONG_FLOAT_WIDETAG:
+#endif
+#ifdef SIMPLE_ARRAY_COMPLEX_SINGLE_FLOAT_WIDETAG
+ case SIMPLE_ARRAY_COMPLEX_SINGLE_FLOAT_WIDETAG:
+#endif
+#ifdef SIMPLE_ARRAY_COMPLEX_DOUBLE_FLOAT_WIDETAG
+ case SIMPLE_ARRAY_COMPLEX_DOUBLE_FLOAT_WIDETAG:
+#endif
+#ifdef SIMPLE_ARRAY_COMPLEX_LONG_FLOAT_WIDETAG
+ case SIMPLE_ARRAY_COMPLEX_LONG_FLOAT_WIDETAG:
+#endif
+ case SAP_WIDETAG:
+ case WEAK_POINTER_WIDETAG:
+#ifdef NO_TLS_VALUE_MARKER_WIDETAG
+ case NO_TLS_VALUE_MARKER_WIDETAG:
+#endif
+ count = (sizetab[widetag_of(*start)])(start);
+ break;
+
+ default:
+ lose("Unhandled widetag %p at %p\n",
+ widetag_of(*start), start);
+ }
+ }
+ }
+ start += count;
+ words -= count;
}
}
* Some counts of lispobjs are called foo_count; it might be good
* to grep for all foo_size and rename the appropriate ones to
* foo_count. */
- int read_only_space_size =
- (lispobj*)SymbolValue(READ_ONLY_SPACE_FREE_POINTER)
- - (lispobj*)READ_ONLY_SPACE_START;
- int static_space_size =
- (lispobj*)SymbolValue(STATIC_SPACE_FREE_POINTER)
- - (lispobj*)STATIC_SPACE_START;
- int binding_stack_size =
- (lispobj*)SymbolValue(BINDING_STACK_POINTER)
- - (lispobj*)BINDING_STACK_START;
-
+ sword_t read_only_space_size =
+ (lispobj*)SymbolValue(READ_ONLY_SPACE_FREE_POINTER,0)
+ - (lispobj*)READ_ONLY_SPACE_START;
+ sword_t static_space_size =
+ (lispobj*)SymbolValue(STATIC_SPACE_FREE_POINTER,0)
+ - (lispobj*)STATIC_SPACE_START;
+ struct thread *th;
+ for_each_thread(th) {
+ sword_t binding_stack_size =
+ (lispobj*)get_binding_stack_pointer(th)
+ - (lispobj*)th->binding_stack_start;
+ verify_space(th->binding_stack_start, binding_stack_size);
+ }
verify_space((lispobj*)READ_ONLY_SPACE_START, read_only_space_size);
verify_space((lispobj*)STATIC_SPACE_START , static_space_size);
- verify_space((lispobj*)BINDING_STACK_START , binding_stack_size);
}
static void
-verify_generation(int generation)
+verify_generation(generation_index_t generation)
{
- int i;
+ page_index_t i;
for (i = 0; i < last_free_page; i++) {
- if ((page_table[i].allocated != FREE_PAGE)
- && (page_table[i].bytes_used != 0)
- && (page_table[i].gen == generation)) {
- int last_page;
- int region_allocation = page_table[i].allocated;
-
- /* This should be the start of a contiguous block */
- gc_assert(page_table[i].first_object_offset == 0);
-
- /* Need to find the full extent of this contiguous block in case
- objects span pages. */
-
- /* Now work forward until the end of this contiguous area is
- found. */
- for (last_page = i; ;last_page++)
- /* Check whether this is the last page in this contiguous
- * block. */
- if ((page_table[last_page].bytes_used < 4096)
- /* Or it is 4096 and is the last in the block */
- || (page_table[last_page+1].allocated != region_allocation)
- || (page_table[last_page+1].bytes_used == 0)
- || (page_table[last_page+1].gen != generation)
- || (page_table[last_page+1].first_object_offset == 0))
- break;
-
- verify_space(page_address(i), (page_table[last_page].bytes_used
- + (last_page-i)*4096)/4);
- i = last_page;
- }
+ if (page_allocated_p(i)
+ && (page_table[i].bytes_used != 0)
+ && (page_table[i].gen == generation)) {
+ page_index_t last_page;
+
+ /* This should be the start of a contiguous block */
+ gc_assert(page_starts_contiguous_block_p(i));
+
+ /* Need to find the full extent of this contiguous block in case
+ objects span pages. */
+
+ /* Now work forward until the end of this contiguous area is
+ found. */
+ for (last_page = i; ;last_page++)
+ /* Check whether this is the last page in this contiguous
+ * block. */
+ if (page_ends_contiguous_block_p(last_page, generation))
+ break;
+
+ verify_space(page_address(i),
+ ((uword_t)
+ (page_table[last_page].bytes_used
+ + npage_bytes(last_page-i)))
+ / N_WORD_BYTES);
+ i = last_page;
+ }
}
}
static void
verify_zero_fill(void)
{
- int page;
+ page_index_t page;
for (page = 0; page < last_free_page; page++) {
- if (page_table[page].allocated == FREE_PAGE) {
- /* The whole page should be zero filled. */
- int *start_addr = (int *)page_address(page);
- int size = 1024;
- int i;
- for (i = 0; i < size; i++) {
- if (start_addr[i] != 0) {
- lose("free page not zero at %x", start_addr + i);
- }
- }
- } else {
- int free_bytes = 4096 - page_table[page].bytes_used;
- if (free_bytes > 0) {
- int *start_addr = (int *)((unsigned)page_address(page)
- + page_table[page].bytes_used);
- int size = free_bytes / 4;
- int i;
- for (i = 0; i < size; i++) {
- if (start_addr[i] != 0) {
- lose("free region not zero at %x", start_addr + i);
- }
- }
- }
- }
+ if (page_free_p(page)) {
+ /* The whole page should be zero filled. */
+ sword_t *start_addr = (sword_t *)page_address(page);
+ sword_t size = 1024;
+ sword_t i;
+ for (i = 0; i < size; i++) {
+ if (start_addr[i] != 0) {
+ lose("free page not zero at %x\n", start_addr + i);
+ }
+ }
+ } else {
+ sword_t free_bytes = GENCGC_CARD_BYTES - page_table[page].bytes_used;
+ if (free_bytes > 0) {
+ sword_t *start_addr = (sword_t *)((uword_t)page_address(page)
+ + page_table[page].bytes_used);
+ sword_t size = free_bytes / N_WORD_BYTES;
+ sword_t i;
+ for (i = 0; i < size; i++) {
+ if (start_addr[i] != 0) {
+ lose("free region not zero at %x\n", start_addr + i);
+ }
+ }
+ }
+ }
}
}
gencgc_verify_zero_fill(void)
{
/* Flush the alloc regions updating the tables. */
- boxed_region.free_pointer = current_region_free_pointer;
- gc_alloc_update_page_tables(0, &boxed_region);
- gc_alloc_update_page_tables(1, &unboxed_region);
+ gc_alloc_update_all_page_tables();
SHOW("verifying zero fill");
verify_zero_fill();
- current_region_free_pointer = boxed_region.free_pointer;
- current_region_end_addr = boxed_region.end_addr;
}
static void
verify_dynamic_space(void)
{
- int i;
+ generation_index_t i;
- for (i = 0; i < NUM_GENERATIONS; i++)
- verify_generation(i);
+ for (i = 0; i <= HIGHEST_NORMAL_GENERATION; i++)
+ verify_generation(i);
if (gencgc_enable_verify_zero_fill)
- verify_zero_fill();
+ verify_zero_fill();
}
\f
/* Write-protect all the dynamic boxed pages in the given generation. */
static void
-write_protect_generation_pages(int generation)
+write_protect_generation_pages(generation_index_t generation)
{
- int i;
+ page_index_t start;
- gc_assert(generation < NUM_GENERATIONS);
+ gc_assert(generation < SCRATCH_GENERATION);
- for (i = 0; i < last_free_page; i++)
- if ((page_table[i].allocated == BOXED_PAGE)
- && (page_table[i].bytes_used != 0)
- && (page_table[i].gen == generation)) {
- void *page_start;
+ for (start = 0; start < last_free_page; start++) {
+ if (protect_page_p(start, generation)) {
+ void *page_start;
+ page_index_t last;
- page_start = (void *)page_address(i);
+ /* Note the page as protected in the page tables. */
+ page_table[start].write_protected = 1;
- os_protect(page_start,
- 4096,
- OS_VM_PROT_READ | OS_VM_PROT_EXECUTE);
+ for (last = start + 1; last < last_free_page; last++) {
+ if (!protect_page_p(last, generation))
+ break;
+ page_table[last].write_protected = 1;
+ }
- /* Note the page as protected in the page tables. */
- page_table[i].write_protected = 1;
- }
+ page_start = (void *)page_address(start);
+
+ os_protect(page_start,
+ npage_bytes(last - start),
+ OS_VM_PROT_READ | OS_VM_PROT_EXECUTE);
+
+ start = last;
+ }
+ }
if (gencgc_verbose > 1) {
- FSHOW((stderr,
- "/write protected %d of %d pages in generation %d\n",
- count_write_protect_generation_pages(generation),
- count_generation_pages(generation),
- generation));
+ FSHOW((stderr,
+ "/write protected %d of %d pages in generation %d\n",
+ count_write_protect_generation_pages(generation),
+ count_generation_pages(generation),
+ generation));
+ }
+}
+
+#if defined(LISP_FEATURE_SB_THREAD) && (defined(LISP_FEATURE_X86) || defined(LISP_FEATURE_X86_64))
+static void
+preserve_context_registers (os_context_t *c)
+{
+ void **ptr;
+ /* On Darwin the signal context isn't a contiguous block of memory,
+ * so just preserve_pointering its contents won't be sufficient.
+ */
+#if defined(LISP_FEATURE_DARWIN)||defined(LISP_FEATURE_WIN32)
+#if defined LISP_FEATURE_X86
+ preserve_pointer((void*)*os_context_register_addr(c,reg_EAX));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_ECX));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_EDX));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_EBX));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_ESI));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_EDI));
+ preserve_pointer((void*)*os_context_pc_addr(c));
+#elif defined LISP_FEATURE_X86_64
+ preserve_pointer((void*)*os_context_register_addr(c,reg_RAX));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_RCX));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_RDX));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_RBX));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_RSI));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_RDI));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_R8));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_R9));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_R10));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_R11));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_R12));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_R13));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_R14));
+ preserve_pointer((void*)*os_context_register_addr(c,reg_R15));
+ preserve_pointer((void*)*os_context_pc_addr(c));
+#else
+ #error "preserve_context_registers needs to be tweaked for non-x86 Darwin"
+#endif
+#endif
+#if !defined(LISP_FEATURE_WIN32)
+ for(ptr = ((void **)(c+1))-1; ptr>=(void **)c; ptr--) {
+ preserve_pointer(*ptr);
+ }
+#endif
+}
+#endif
+
+static void
+move_pinned_pages_to_newspace()
+{
+ page_index_t i;
+
+ /* scavenge() will evacuate all oldspace pages, but no newspace
+ * pages. Pinned pages are precisely those pages which must not
+ * be evacuated, so move them to newspace directly. */
+
+ for (i = 0; i < last_free_page; i++) {
+ if (page_table[i].dont_move &&
+ /* dont_move is cleared lazily, so validate the space as well. */
+ page_table[i].gen == from_space) {
+ page_table[i].gen = new_space;
+ /* And since we're moving the pages wholesale, also adjust
+ * the generation allocation counters. */
+ generations[new_space].bytes_allocated += page_table[i].bytes_used;
+ generations[from_space].bytes_allocated -= page_table[i].bytes_used;
+ }
}
}
/* Garbage collect a generation. If raise is 0 then the remains of the
* generation are not raised to the next generation. */
static void
-garbage_collect_generation(int generation, int raise)
+garbage_collect_generation(generation_index_t generation, int raise)
{
- unsigned long bytes_freed;
- unsigned long i;
- unsigned long read_only_space_size, static_space_size;
+ uword_t bytes_freed;
+ page_index_t i;
+ uword_t static_space_size;
+ struct thread *th;
- gc_assert(generation <= (NUM_GENERATIONS-1));
+ gc_assert(generation <= HIGHEST_NORMAL_GENERATION);
/* The oldest generation can't be raised. */
- gc_assert((generation != (NUM_GENERATIONS-1)) || (raise == 0));
+ gc_assert((generation != HIGHEST_NORMAL_GENERATION) || (raise == 0));
+
+ /* Check if weak hash tables were processed in the previous GC. */
+ gc_assert(weak_hash_tables == NULL);
/* Initialize the weak pointer list. */
weak_pointers = NULL;
* temporary generation (NUM_GENERATIONS), and lowered when
* done. Set up this new generation. There should be no pages
* allocated to it yet. */
- if (!raise)
- gc_assert(generations[NUM_GENERATIONS].bytes_allocated == 0);
+ if (!raise) {
+ gc_assert(generations[SCRATCH_GENERATION].bytes_allocated == 0);
+ }
/* Set the global src and dest. generations */
from_space = generation;
if (raise)
- new_space = generation+1;
+ new_space = generation+1;
else
- new_space = NUM_GENERATIONS;
+ new_space = SCRATCH_GENERATION;
/* Change to a new space for allocation, resetting the alloc_start_page */
gc_alloc_generation = new_space;
/* Before any pointers are preserved, the dont_move flags on the
* pages need to be cleared. */
for (i = 0; i < last_free_page; i++)
- page_table[i].dont_move = 0;
+ if(page_table[i].gen==from_space)
+ page_table[i].dont_move = 0;
/* Un-write-protect the old-space pages. This is essential for the
* promoted pages as they may contain pointers into the old-space
* be un-protected anyway before unmapping later. */
unprotect_oldspace();
- /* Scavenge the stack's conservative roots. */
- {
- void **ptr;
- for (ptr = (void **)CONTROL_STACK_END - 1;
- ptr > (void **)&raise;
- ptr--) {
- preserve_pointer(*ptr);
- }
+ /* Scavenge the stacks' conservative roots. */
+
+ /* there are potentially two stacks for each thread: the main
+ * stack, which may contain Lisp pointers, and the alternate stack.
+ * We don't ever run Lisp code on the altstack, but it may
+ * host a sigcontext with lisp objects in it */
+
+ /* what we need to do: (1) find the stack pointer for the main
+ * stack; scavenge it (2) find the interrupt context on the
+ * alternate stack that might contain lisp values, and scavenge
+ * that */
+
+ /* we assume that none of the preceding applies to the thread that
+ * initiates GC. If you ever call GC from inside an altstack
+ * handler, you will lose. */
+
+#if defined(LISP_FEATURE_X86) || defined(LISP_FEATURE_X86_64)
+ /* And if we're saving a core, there's no point in being conservative. */
+ if (conservative_stack) {
+ for_each_thread(th) {
+ void **ptr;
+ void **esp=(void **)-1;
+ if (th->state == STATE_DEAD)
+ continue;
+# if defined(LISP_FEATURE_SB_SAFEPOINT)
+ /* Conservative collect_garbage is always invoked with a
+ * foreign C call or an interrupt handler on top of every
+ * existing thread, so the stored SP in each thread
+ * structure is valid, no matter which thread we are looking
+ * at. For threads that were running Lisp code, the pitstop
+ * and edge functions maintain this value within the
+ * interrupt or exception handler. */
+ esp = os_get_csp(th);
+ assert_on_stack(th, esp);
+
+ /* In addition to pointers on the stack, also preserve the
+ * return PC, the only value from the context that we need
+ * in addition to the SP. The return PC gets saved by the
+ * foreign call wrapper, and removed from the control stack
+ * into a register. */
+ preserve_pointer(th->pc_around_foreign_call);
+
+ /* And on platforms with interrupts: scavenge ctx registers. */
+
+ /* Disabled on Windows, because it does not have an explicit
+ * stack of `interrupt_contexts'. The reported CSP has been
+ * chosen so that the current context on the stack is
+ * covered by the stack scan. See also set_csp_from_context(). */
+# ifndef LISP_FEATURE_WIN32
+ if (th != arch_os_get_current_thread()) {
+ long k = fixnum_value(
+ SymbolValue(FREE_INTERRUPT_CONTEXT_INDEX,th));
+ while (k > 0)
+ preserve_context_registers(th->interrupt_contexts[--k]);
+ }
+# endif
+# elif defined(LISP_FEATURE_SB_THREAD)
+ sword_t i,free;
+ if(th==arch_os_get_current_thread()) {
+ /* Somebody is going to burn in hell for this, but casting
+ * it in two steps shuts gcc up about strict aliasing. */
+ esp = (void **)((void *)&raise);
+ } else {
+ void **esp1;
+ free=fixnum_value(SymbolValue(FREE_INTERRUPT_CONTEXT_INDEX,th));
+ for(i=free-1;i>=0;i--) {
+ os_context_t *c=th->interrupt_contexts[i];
+ esp1 = (void **) *os_context_register_addr(c,reg_SP);
+ if (esp1>=(void **)th->control_stack_start &&
+ esp1<(void **)th->control_stack_end) {
+ if(esp1<esp) esp=esp1;
+ preserve_context_registers(c);
+ }
+ }
+ }
+# else
+ esp = (void **)((void *)&raise);
+# endif
+ if (!esp || esp == (void*) -1)
+ lose("garbage_collect: no SP known for thread %x (OS %x)",
+ th, th->os_thread);
+ for (ptr = ((void **)th->control_stack_end)-1; ptr >= esp; ptr--) {
+ preserve_pointer(*ptr);
+ }
+ }
+ }
+#else
+ /* Non-x86oid systems don't have "conservative roots" as such, but
+ * the same mechanism is used for objects pinned for use by alien
+ * code. */
+ for_each_thread(th) {
+ lispobj pin_list = SymbolTlValue(PINNED_OBJECTS,th);
+ while (pin_list != NIL) {
+ struct cons *list_entry =
+ (struct cons *)native_pointer(pin_list);
+ preserve_pointer(list_entry->car);
+ pin_list = list_entry->cdr;
+ }
}
+#endif
#if QSHOW
if (gencgc_verbose > 1) {
- int num_dont_move_pages = count_dont_move_pages();
- fprintf(stderr,
- "/non-movable pages due to conservative pointers = %d (%d bytes)\n",
- num_dont_move_pages,
- /* FIXME: 4096 should be symbolic constant here and
- * prob'ly elsewhere too. */
- num_dont_move_pages * 4096);
+ sword_t num_dont_move_pages = count_dont_move_pages();
+ fprintf(stderr,
+ "/non-movable pages due to conservative pointers = %d (%d bytes)\n",
+ num_dont_move_pages,
+ npage_bytes(num_dont_move_pages));
}
#endif
+ /* Now that all of the pinned (dont_move) pages are known, and
+ * before we start to scavenge (and thus relocate) objects,
+ * relocate the pinned pages to newspace, so that the scavenger
+ * will not attempt to relocate their contents. */
+ move_pinned_pages_to_newspace();
+
/* Scavenge all the rest of the roots. */
+#if !defined(LISP_FEATURE_X86) && !defined(LISP_FEATURE_X86_64)
+ /*
+ * If not x86, we need to scavenge the interrupt context(s) and the
+ * control stack.
+ */
+ {
+ struct thread *th;
+ for_each_thread(th) {
+ scavenge_interrupt_contexts(th);
+ scavenge_control_stack(th);
+ }
+
+# ifdef LISP_FEATURE_SB_SAFEPOINT
+ /* In this case, scrub all stacks right here from the GCing thread
+ * instead of doing what the comment below says. Suboptimal, but
+ * easier. */
+ for_each_thread(th)
+ scrub_thread_control_stack(th);
+# else
+ /* Scrub the unscavenged control stack space, so that we can't run
+ * into any stale pointers in a later GC (this is done by the
+ * stop-for-gc handler in the other threads). */
+ scrub_control_stack();
+# endif
+ }
+#endif
+
/* Scavenge the Lisp functions of the interrupt handlers, taking
* care to avoid SIG_DFL and SIG_IGN. */
for (i = 0; i < NSIG; i++) {
- union interrupt_handler handler = interrupt_handlers[i];
- if (!ARE_SAME_HANDLER(handler.c, SIG_IGN) &&
- !ARE_SAME_HANDLER(handler.c, SIG_DFL)) {
- scavenge((lispobj *)(interrupt_handlers + i), 1);
- }
+ union interrupt_handler handler = interrupt_handlers[i];
+ if (!ARE_SAME_HANDLER(handler.c, SIG_IGN) &&
+ !ARE_SAME_HANDLER(handler.c, SIG_DFL)) {
+ scavenge((lispobj *)(interrupt_handlers + i), 1);
+ }
+ }
+ /* Scavenge the binding stacks. */
+ {
+ struct thread *th;
+ for_each_thread(th) {
+ sword_t len= (lispobj *)get_binding_stack_pointer(th) -
+ th->binding_stack_start;
+ scavenge((lispobj *) th->binding_stack_start,len);
+#ifdef LISP_FEATURE_SB_THREAD
+ /* do the tls as well */
+ len=(SymbolValue(FREE_TLS_INDEX,0) >> WORD_SHIFT) -
+ (sizeof (struct thread))/(sizeof (lispobj));
+ scavenge((lispobj *) (th+1),len);
+#endif
+ }
}
-
- /* Scavenge the binding stack. */
- scavenge((lispobj *) BINDING_STACK_START,
- (lispobj *)SymbolValue(BINDING_STACK_POINTER) -
- (lispobj *)BINDING_STACK_START);
/* The original CMU CL code had scavenge-read-only-space code
* controlled by the Lisp-level variable
* please submit a patch. */
#if 0
if (SymbolValue(SCAVENGE_READ_ONLY_SPACE) != NIL) {
- read_only_space_size =
- (lispobj*)SymbolValue(READ_ONLY_SPACE_FREE_POINTER) -
- (lispobj*)READ_ONLY_SPACE_START;
- FSHOW((stderr,
- "/scavenge read only space: %d bytes\n",
- read_only_space_size * sizeof(lispobj)));
- scavenge( (lispobj *) READ_ONLY_SPACE_START, read_only_space_size);
+ uword_t read_only_space_size =
+ (lispobj*)SymbolValue(READ_ONLY_SPACE_FREE_POINTER) -
+ (lispobj*)READ_ONLY_SPACE_START;
+ FSHOW((stderr,
+ "/scavenge read only space: %d bytes\n",
+ read_only_space_size * sizeof(lispobj)));
+ scavenge( (lispobj *) READ_ONLY_SPACE_START, read_only_space_size);
}
#endif
/* Scavenge static space. */
static_space_size =
- (lispobj *)SymbolValue(STATIC_SPACE_FREE_POINTER) -
- (lispobj *)STATIC_SPACE_START;
+ (lispobj *)SymbolValue(STATIC_SPACE_FREE_POINTER,0) -
+ (lispobj *)STATIC_SPACE_START;
if (gencgc_verbose > 1) {
- FSHOW((stderr,
- "/scavenge static space: %d bytes\n",
- static_space_size * sizeof(lispobj)));
+ FSHOW((stderr,
+ "/scavenge static space: %d bytes\n",
+ static_space_size * sizeof(lispobj)));
}
scavenge( (lispobj *) STATIC_SPACE_START, static_space_size);
/* All generations but the generation being GCed need to be
* scavenged. The new_space generation needs special handling as
* objects may be moved in - it is handled separately below. */
- for (i = 0; i < NUM_GENERATIONS; i++) {
- if ((i != generation) && (i != new_space)) {
- scavenge_generation(i);
- }
- }
+ scavenge_generations(generation+1, PSEUDO_STATIC_GENERATION);
/* Finally scavenge the new_space generation. Keep going until no
* more objects are moved into the new generation */
/* As a check re-scavenge the newspace once; no new objects should
* be found. */
{
- int old_bytes_allocated = bytes_allocated;
- int bytes_allocated;
+ os_vm_size_t old_bytes_allocated = bytes_allocated;
+ os_vm_size_t bytes_allocated;
- /* Start with a full scavenge. */
- scavenge_newspace_generation_one_scan(new_space);
+ /* Start with a full scavenge. */
+ scavenge_newspace_generation_one_scan(new_space);
- /* Flush the current regions, updating the tables. */
- gc_alloc_update_page_tables(0, &boxed_region);
- gc_alloc_update_page_tables(1, &unboxed_region);
+ /* Flush the current regions, updating the tables. */
+ gc_alloc_update_all_page_tables();
- bytes_allocated = bytes_allocated - old_bytes_allocated;
+ bytes_allocated = bytes_allocated - old_bytes_allocated;
- if (bytes_allocated != 0) {
- lose("Rescan of new_space allocated %d more bytes.",
- bytes_allocated);
- }
+ if (bytes_allocated != 0) {
+ lose("Rescan of new_space allocated %d more bytes.\n",
+ bytes_allocated);
+ }
}
#endif
+ scan_weak_hash_tables();
scan_weak_pointers();
/* Flush the current regions, updating the tables. */
- gc_alloc_update_page_tables(0, &boxed_region);
- gc_alloc_update_page_tables(1, &unboxed_region);
+ gc_alloc_update_all_page_tables();
/* Free the pages in oldspace, but not those marked dont_move. */
bytes_freed = free_oldspace();
/* If the GC is not raising the age then lower the generation back
* to its normal generation number */
if (!raise) {
- for (i = 0; i < last_free_page; i++)
- if ((page_table[i].bytes_used != 0)
- && (page_table[i].gen == NUM_GENERATIONS))
- page_table[i].gen = generation;
- gc_assert(generations[generation].bytes_allocated == 0);
- generations[generation].bytes_allocated =
- generations[NUM_GENERATIONS].bytes_allocated;
- generations[NUM_GENERATIONS].bytes_allocated = 0;
+ for (i = 0; i < last_free_page; i++)
+ if ((page_table[i].bytes_used != 0)
+ && (page_table[i].gen == SCRATCH_GENERATION))
+ page_table[i].gen = generation;
+ gc_assert(generations[generation].bytes_allocated == 0);
+ generations[generation].bytes_allocated =
+ generations[SCRATCH_GENERATION].bytes_allocated;
+ generations[SCRATCH_GENERATION].bytes_allocated = 0;
}
/* Reset the alloc_start_page for generation. */
generations[generation].alloc_large_unboxed_start_page = 0;
if (generation >= verify_gens) {
- if (gencgc_verbose)
- SHOW("verifying");
- verify_gc();
- verify_dynamic_space();
+ if (gencgc_verbose) {
+ SHOW("verifying");
+ }
+ verify_gc();
+ verify_dynamic_space();
}
/* Set the new gc trigger for the GCed generation. */
generations[generation].gc_trigger =
- generations[generation].bytes_allocated
- + generations[generation].bytes_consed_between_gc;
+ generations[generation].bytes_allocated
+ + generations[generation].bytes_consed_between_gc;
if (raise)
- generations[generation].num_gc = 0;
+ generations[generation].num_gc = 0;
else
- ++generations[generation].num_gc;
+ ++generations[generation].num_gc;
+
}
/* Update last_free_page, then SymbolValue(ALLOCATION_POINTER). */
-int
-update_x86_dynamic_space_free_pointer(void)
+sword_t
+update_dynamic_space_free_pointer(void)
{
- int last_page = -1;
- int i;
+ page_index_t last_page = -1, i;
- for (i = 0; i < NUM_PAGES; i++)
- if ((page_table[i].allocated != FREE_PAGE)
- && (page_table[i].bytes_used != 0))
- last_page = i;
+ for (i = 0; i < last_free_page; i++)
+ if (page_allocated_p(i) && (page_table[i].bytes_used != 0))
+ last_page = i;
last_free_page = last_page+1;
- SetSymbolValue(ALLOCATION_POINTER,
- (lispobj)(((char *)heap_base) + last_free_page*4096));
+ set_alloc_pointer((lispobj)(page_address(last_free_page)));
return 0; /* dummy value: return something ... */
}
-/* GC all generations below last_gen, raising their objects to the
- * next generation until all generations below last_gen are empty.
- * Then if last_gen is due for a GC then GC it. In the special case
- * that last_gen==NUM_GENERATIONS, the last generation is always
- * GC'ed. The valid range for last_gen is: 0,1,...,NUM_GENERATIONS.
+static void
+remap_page_range (page_index_t from, page_index_t to)
+{
+ /* There's a mysterious Solaris/x86 problem with using mmap
+ * tricks for memory zeroing. See sbcl-devel thread
+ * "Re: patch: standalone executable redux".
+ */
+#if defined(LISP_FEATURE_SUNOS)
+ zero_and_mark_pages(from, to);
+#else
+ const page_index_t
+ release_granularity = gencgc_release_granularity/GENCGC_CARD_BYTES,
+ release_mask = release_granularity-1,
+ end = to+1,
+ aligned_from = (from+release_mask)&~release_mask,
+ aligned_end = (end&~release_mask);
+
+ if (aligned_from < aligned_end) {
+ zero_pages_with_mmap(aligned_from, aligned_end-1);
+ if (aligned_from != from)
+ zero_and_mark_pages(from, aligned_from-1);
+ if (aligned_end != end)
+ zero_and_mark_pages(aligned_end, end-1);
+ } else {
+ zero_and_mark_pages(from, to);
+ }
+#endif
+}
+
+static void
+remap_free_pages (page_index_t from, page_index_t to, int forcibly)
+{
+ page_index_t first_page, last_page;
+
+ if (forcibly)
+ return remap_page_range(from, to);
+
+ for (first_page = from; first_page <= to; first_page++) {
+ if (page_allocated_p(first_page) ||
+ (page_table[first_page].need_to_zero == 0))
+ continue;
+
+ last_page = first_page + 1;
+ while (page_free_p(last_page) &&
+ (last_page <= to) &&
+ (page_table[last_page].need_to_zero == 1))
+ last_page++;
+
+ remap_page_range(first_page, last_page-1);
+
+ first_page = last_page;
+ }
+}
+
+generation_index_t small_generation_limit = 1;
+
+/* GC all generations newer than last_gen, raising the objects in each
+ * to the next older generation - we finish when all generations below
+ * last_gen are empty. Then if last_gen is due for a GC, or if
+ * last_gen==NUM_GENERATIONS (the scratch generation? eh?) we GC that
+ * too. The valid range for last_gen is: 0,1,...,NUM_GENERATIONS.
*
- * The oldest generation to be GCed will always be
- * gencgc_oldest_gen_to_gc, partly ignoring last_gen if necessary. */
+ * We stop collecting at gencgc_oldest_gen_to_gc, even if this is less than
+ * last_gen (oh, and note that by default it is NUM_GENERATIONS-1) */
void
-collect_garbage(unsigned last_gen)
+collect_garbage(generation_index_t last_gen)
{
- int gen = 0;
- int raise;
+ generation_index_t gen = 0, i;
+ int raise, more = 0;
int gen_to_wp;
- int i;
-
- boxed_region.free_pointer = current_region_free_pointer;
+ /* The largest value of last_free_page seen since the time
+ * remap_free_pages was called. */
+ static page_index_t high_water_mark = 0;
FSHOW((stderr, "/entering collect_garbage(%d)\n", last_gen));
+ log_generation_stats(gc_logfile, "=== GC Start ===");
- if (last_gen > NUM_GENERATIONS) {
- FSHOW((stderr,
- "/collect_garbage: last_gen = %d, doing a level 0 GC\n",
- last_gen));
- last_gen = 0;
+ gc_active_p = 1;
+
+ if (last_gen > HIGHEST_NORMAL_GENERATION+1) {
+ FSHOW((stderr,
+ "/collect_garbage: last_gen = %d, doing a level 0 GC\n",
+ last_gen));
+ last_gen = 0;
}
/* Flush the alloc regions updating the tables. */
- gc_alloc_update_page_tables(0, &boxed_region);
- gc_alloc_update_page_tables(1, &unboxed_region);
+ gc_alloc_update_all_page_tables();
/* Verify the new objects created by Lisp code. */
if (pre_verify_gen_0) {
- SHOW((stderr, "pre-checking generation 0\n"));
- verify_generation(0);
+ FSHOW((stderr, "pre-checking generation 0\n"));
+ verify_generation(0);
}
if (gencgc_verbose > 1)
- print_generation_stats(0);
+ print_generation_stats();
do {
- /* Collect the generation. */
-
- if (gen >= gencgc_oldest_gen_to_gc) {
- /* Never raise the oldest generation. */
- raise = 0;
- } else {
- raise =
- (gen < last_gen)
- || (generations[gen].num_gc >= generations[gen].trigger_age);
- }
-
- if (gencgc_verbose > 1) {
- FSHOW((stderr,
- "starting GC of generation %d with raise=%d alloc=%d trig=%d GCs=%d\n",
- gen,
- raise,
- generations[gen].bytes_allocated,
- generations[gen].gc_trigger,
- generations[gen].num_gc));
- }
-
- /* If an older generation is being filled, then update its
- * memory age. */
- if (raise == 1) {
- generations[gen+1].cum_sum_bytes_allocated +=
- generations[gen+1].bytes_allocated;
- }
-
- garbage_collect_generation(gen, raise);
-
- /* Reset the memory age cum_sum. */
- generations[gen].cum_sum_bytes_allocated = 0;
-
- if (gencgc_verbose > 1) {
- FSHOW((stderr, "GC of generation %d finished:\n", gen));
- print_generation_stats(0);
- }
-
- gen++;
+ /* Collect the generation. */
+
+ if (more || (gen >= gencgc_oldest_gen_to_gc)) {
+ /* Never raise the oldest generation. Never raise the extra generation
+ * collected due to more-flag. */
+ raise = 0;
+ more = 0;
+ } else {
+ raise =
+ (gen < last_gen)
+ || (generations[gen].num_gc >= generations[gen].number_of_gcs_before_promotion);
+ /* If we would not normally raise this one, but we're
+ * running low on space in comparison to the object-sizes
+ * we've been seeing, raise it and collect the next one
+ * too. */
+ if (!raise && gen == last_gen) {
+ more = (2*large_allocation) >= (dynamic_space_size - bytes_allocated);
+ raise = more;
+ }
+ }
+
+ if (gencgc_verbose > 1) {
+ FSHOW((stderr,
+ "starting GC of generation %d with raise=%d alloc=%d trig=%d GCs=%d\n",
+ gen,
+ raise,
+ generations[gen].bytes_allocated,
+ generations[gen].gc_trigger,
+ generations[gen].num_gc));
+ }
+
+ /* If an older generation is being filled, then update its
+ * memory age. */
+ if (raise == 1) {
+ generations[gen+1].cum_sum_bytes_allocated +=
+ generations[gen+1].bytes_allocated;
+ }
+
+ garbage_collect_generation(gen, raise);
+
+ /* Reset the memory age cum_sum. */
+ generations[gen].cum_sum_bytes_allocated = 0;
+
+ if (gencgc_verbose > 1) {
+ FSHOW((stderr, "GC of generation %d finished:\n", gen));
+ print_generation_stats();
+ }
+
+ gen++;
} while ((gen <= gencgc_oldest_gen_to_gc)
- && ((gen < last_gen)
- || ((gen <= gencgc_oldest_gen_to_gc)
- && raise
- && (generations[gen].bytes_allocated
- > generations[gen].gc_trigger)
- && (gen_av_mem_age(gen)
- > generations[gen].min_av_mem_age))));
+ && ((gen < last_gen)
+ || more
+ || (raise
+ && (generations[gen].bytes_allocated
+ > generations[gen].gc_trigger)
+ && (generation_average_age(gen)
+ > generations[gen].minimum_age_before_gc))));
/* Now if gen-1 was raised all generations before gen are empty.
* If it wasn't raised then all generations before gen-1 are empty.
* generations are GCed only the pages which have been written
* need scanning. */
if (raise)
- gen_to_wp = gen;
+ gen_to_wp = gen;
else
- gen_to_wp = gen - 1;
+ gen_to_wp = gen - 1;
/* There's not much point in WPing pages in generation 0 as it is
* never scavenged (except promoted pages). */
if ((gen_to_wp > 0) && enable_page_protection) {
- /* Check that they are all empty. */
- for (i = 0; i < gen_to_wp; i++) {
- if (generations[i].bytes_allocated)
- lose("trying to write-protect gen. %d when gen. %d nonempty",
- gen_to_wp, i);
- }
- write_protect_generation_pages(gen_to_wp);
+ /* Check that they are all empty. */
+ for (i = 0; i < gen_to_wp; i++) {
+ if (generations[i].bytes_allocated)
+ lose("trying to write-protect gen. %d when gen. %d nonempty\n",
+ gen_to_wp, i);
+ }
+ write_protect_generation_pages(gen_to_wp);
}
/* Set gc_alloc() back to generation 0. The current regions should
gc_assert((boxed_region.free_pointer - boxed_region.start_addr) == 0);
gc_alloc_generation = 0;
- update_x86_dynamic_space_free_pointer();
+ /* Save the high-water mark before updating last_free_page */
+ if (last_free_page > high_water_mark)
+ high_water_mark = last_free_page;
+
+ update_dynamic_space_free_pointer();
- /* This is now done by Lisp SCRUB-CONTROL-STACK in Lisp SUB-GC, so
- * we needn't do it here: */
- /* zero_stack();*/
+ /* Update auto_gc_trigger. Make sure we trigger the next GC before
+ * running out of heap! */
+ if (bytes_consed_between_gcs <= (dynamic_space_size - bytes_allocated))
+ auto_gc_trigger = bytes_allocated + bytes_consed_between_gcs;
+ else
+ auto_gc_trigger = bytes_allocated + (dynamic_space_size - bytes_allocated)/2;
+
+ if(gencgc_verbose)
+ fprintf(stderr,"Next gc when %"OS_VM_SIZE_FMT" bytes have been consed\n",
+ auto_gc_trigger);
+
+ /* If we did a big GC (arbitrarily defined as gen > 1), release memory
+ * back to the OS.
+ */
+ if (gen > small_generation_limit) {
+ if (last_free_page > high_water_mark)
+ high_water_mark = last_free_page;
+ remap_free_pages(0, high_water_mark, 0);
+ high_water_mark = 0;
+ }
- current_region_free_pointer = boxed_region.free_pointer;
- current_region_end_addr = boxed_region.end_addr;
+ gc_active_p = 0;
+ large_allocation = 0;
+ log_generation_stats(gc_logfile, "=== GC End ===");
SHOW("returning from collect_garbage");
}
void
gc_free_heap(void)
{
- int page;
+ page_index_t page, last_page;
- if (gencgc_verbose > 1)
- SHOW("entering gc_free_heap");
-
- for (page = 0; page < NUM_PAGES; page++) {
- /* Skip free pages which should already be zero filled. */
- if (page_table[page].allocated != FREE_PAGE) {
- void *page_start, *addr;
-
- /* Mark the page free. The other slots are assumed invalid
- * when it is a FREE_PAGE and bytes_used is 0 and it
- * should not be write-protected -- except that the
- * generation is used for the current region but it sets
- * that up. */
- page_table[page].allocated = FREE_PAGE;
- page_table[page].bytes_used = 0;
-
- /* Zero the page. */
- page_start = (void *)page_address(page);
-
- /* First, remove any write-protection. */
- os_protect(page_start, 4096, OS_VM_PROT_ALL);
- page_table[page].write_protected = 0;
-
- os_invalidate(page_start,4096);
- addr = os_validate(page_start,4096);
- if (addr == NULL || addr != page_start) {
- lose("gc_free_heap: page moved, 0x%08x ==> 0x%08x",
- page_start,
- addr);
- }
- } else if (gencgc_zero_check_during_free_heap) {
- /* Double-check that the page is zero filled. */
- int *page_start, i;
- gc_assert(page_table[page].allocated == FREE_PAGE);
- gc_assert(page_table[page].bytes_used == 0);
- page_start = (int *)page_address(page);
- for (i=0; i<1024; i++) {
- if (page_start[i] != 0) {
- lose("free region not zero at %x", page_start + i);
- }
- }
- }
+ if (gencgc_verbose > 1) {
+ SHOW("entering gc_free_heap");
+ }
+
+ for (page = 0; page < page_table_pages; page++) {
+ /* Skip free pages which should already be zero filled. */
+ if (page_allocated_p(page)) {
+ void *page_start;
+ for (last_page = page;
+ (last_page < page_table_pages) && page_allocated_p(last_page);
+ last_page++) {
+ /* Mark the page free. The other slots are assumed invalid
+ * when it is a FREE_PAGE_FLAG and bytes_used is 0 and it
+ * should not be write-protected -- except that the
+ * generation is used for the current region but it sets
+ * that up. */
+ page_table[page].allocated = FREE_PAGE_FLAG;
+ page_table[page].bytes_used = 0;
+ page_table[page].write_protected = 0;
+ }
+
+#ifndef LISP_FEATURE_WIN32 /* Pages already zeroed on win32? Not sure
+ * about this change. */
+ page_start = (void *)page_address(page);
+ os_protect(page_start, npage_bytes(last_page-page), OS_VM_PROT_ALL);
+ remap_free_pages(page, last_page-1, 1);
+ page = last_page-1;
+#endif
+ } else if (gencgc_zero_check_during_free_heap) {
+ /* Double-check that the page is zero filled. */
+ sword_t *page_start;
+ page_index_t i;
+ gc_assert(page_free_p(page));
+ gc_assert(page_table[page].bytes_used == 0);
+ page_start = (sword_t *)page_address(page);
+ for (i=0; i<GENCGC_CARD_BYTES/sizeof(sword_t); i++) {
+ if (page_start[i] != 0) {
+ lose("free region not zero at %x\n", page_start + i);
+ }
+ }
+ }
}
bytes_allocated = 0;
/* Initialize the generations. */
for (page = 0; page < NUM_GENERATIONS; page++) {
- generations[page].alloc_start_page = 0;
- generations[page].alloc_unboxed_start_page = 0;
- generations[page].alloc_large_start_page = 0;
- generations[page].alloc_large_unboxed_start_page = 0;
- generations[page].bytes_allocated = 0;
- generations[page].gc_trigger = 2000000;
- generations[page].num_gc = 0;
- generations[page].cum_sum_bytes_allocated = 0;
+ generations[page].alloc_start_page = 0;
+ generations[page].alloc_unboxed_start_page = 0;
+ generations[page].alloc_large_start_page = 0;
+ generations[page].alloc_large_unboxed_start_page = 0;
+ generations[page].bytes_allocated = 0;
+ generations[page].gc_trigger = 2000000;
+ generations[page].num_gc = 0;
+ generations[page].cum_sum_bytes_allocated = 0;
}
if (gencgc_verbose > 1)
- print_generation_stats(0);
+ print_generation_stats();
/* Initialize gc_alloc(). */
gc_alloc_generation = 0;
- boxed_region.first_page = 0;
- boxed_region.last_page = -1;
- boxed_region.start_addr = page_address(0);
- boxed_region.free_pointer = page_address(0);
- boxed_region.end_addr = page_address(0);
- unboxed_region.first_page = 0;
- unboxed_region.last_page = -1;
- unboxed_region.start_addr = page_address(0);
- unboxed_region.free_pointer = page_address(0);
- unboxed_region.end_addr = page_address(0);
-
-#if 0 /* Lisp PURIFY is currently running on the C stack so don't do this. */
- zero_stack();
-#endif
- last_free_page = 0;
- SetSymbolValue(ALLOCATION_POINTER, (lispobj)((char *)heap_base));
+ gc_set_region_empty(&boxed_region);
+ gc_set_region_empty(&unboxed_region);
- current_region_free_pointer = boxed_region.free_pointer;
- current_region_end_addr = boxed_region.end_addr;
+ last_free_page = 0;
+ set_alloc_pointer((lispobj)((char *)heap_base));
if (verify_after_free_heap) {
- /* Check whether purify has left any bad pointers. */
- if (gencgc_verbose)
- SHOW("checking after free_heap\n");
- verify_gc();
+ /* Check whether purify has left any bad pointers. */
+ FSHOW((stderr, "checking after free_heap\n"));
+ verify_gc();
}
}
\f
void
gc_init(void)
{
- int i;
+ page_index_t i;
+
+#if defined(LISP_FEATURE_SB_SAFEPOINT)
+ alloc_gc_page();
+#endif
+
+ /* Compute the number of pages needed for the dynamic space.
+ * Dynamic space size should be aligned on page size. */
+ page_table_pages = dynamic_space_size/GENCGC_CARD_BYTES;
+ gc_assert(dynamic_space_size == npage_bytes(page_table_pages));
+
+ /* Default nursery size to 5% of the total dynamic space size,
+ * min 1Mb. */
+ bytes_consed_between_gcs = dynamic_space_size/(os_vm_size_t)20;
+ if (bytes_consed_between_gcs < (1024*1024))
+ bytes_consed_between_gcs = 1024*1024;
+
+ /* The page_table must be allocated using "calloc" to initialize
+ * the page structures correctly. There used to be a separate
+ * initialization loop (now commented out; see below) but that was
+ * unnecessary and did hurt startup time. */
+ page_table = calloc(page_table_pages, sizeof(struct page));
+ gc_assert(page_table);
gc_init_tables();
+ scavtab[WEAK_POINTER_WIDETAG] = scav_weak_pointer;
+ transother[SIMPLE_ARRAY_WIDETAG] = trans_boxed_large;
heap_base = (void*)DYNAMIC_SPACE_START;
- /* Initialize each page structure. */
- for (i = 0; i < NUM_PAGES; i++) {
- /* Initialize all pages as free. */
- page_table[i].allocated = FREE_PAGE;
- page_table[i].bytes_used = 0;
-
- /* Pages are not write-protected at startup. */
- page_table[i].write_protected = 0;
+ /* The page structures are initialized implicitly when page_table
+ * is allocated with "calloc" above. Formerly we had the following
+ * explicit initialization here (comments converted to C99 style
+ * for readability as C's block comments don't nest):
+ *
+ * // Initialize each page structure.
+ * for (i = 0; i < page_table_pages; i++) {
+ * // Initialize all pages as free.
+ * page_table[i].allocated = FREE_PAGE_FLAG;
+ * page_table[i].bytes_used = 0;
+ *
+ * // Pages are not write-protected at startup.
+ * page_table[i].write_protected = 0;
+ * }
+ *
+ * Without this loop the image starts up much faster when dynamic
+ * space is large -- which it is on 64-bit platforms already by
+ * default -- and when "calloc" for large arrays is implemented
+ * using copy-on-write of a page of zeroes -- which it is at least
+ * on Linux. In this case the pages that page_table_pages is stored
+ * in are mapped and cleared not before the corresponding part of
+ * dynamic space is used. For example, this saves clearing 16 MB of
+ * memory at startup if the page size is 4 KB and the size of
+ * dynamic space is 4 GB.
+ * FREE_PAGE_FLAG must be 0 for this to work correctly which is
+ * asserted below: */
+ {
+ /* Compile time assertion: If triggered, declares an array
+ * of dimension -1 forcing a syntax error. The intent of the
+ * assignment is to avoid an "unused variable" warning. */
+ char assert_free_page_flag_0[(FREE_PAGE_FLAG) ? -1 : 1];
+ assert_free_page_flag_0[0] = assert_free_page_flag_0[0];
}
bytes_allocated = 0;
*
* FIXME: very similar to code in gc_free_heap(), should be shared */
for (i = 0; i < NUM_GENERATIONS; i++) {
- generations[i].alloc_start_page = 0;
- generations[i].alloc_unboxed_start_page = 0;
- generations[i].alloc_large_start_page = 0;
- generations[i].alloc_large_unboxed_start_page = 0;
- generations[i].bytes_allocated = 0;
- generations[i].gc_trigger = 2000000;
- generations[i].num_gc = 0;
- generations[i].cum_sum_bytes_allocated = 0;
- /* the tune-able parameters */
- generations[i].bytes_consed_between_gc = 2000000;
- generations[i].trigger_age = 1;
- generations[i].min_av_mem_age = 0.75;
+ generations[i].alloc_start_page = 0;
+ generations[i].alloc_unboxed_start_page = 0;
+ generations[i].alloc_large_start_page = 0;
+ generations[i].alloc_large_unboxed_start_page = 0;
+ generations[i].bytes_allocated = 0;
+ generations[i].gc_trigger = 2000000;
+ generations[i].num_gc = 0;
+ generations[i].cum_sum_bytes_allocated = 0;
+ /* the tune-able parameters */
+ generations[i].bytes_consed_between_gc
+ = bytes_consed_between_gcs/(os_vm_size_t)HIGHEST_NORMAL_GENERATION;
+ generations[i].number_of_gcs_before_promotion = 1;
+ generations[i].minimum_age_before_gc = 0.75;
}
- /* Initialize gc_alloc.
- *
- * FIXME: identical with code in gc_free_heap(), should be shared */
+ /* Initialize gc_alloc. */
gc_alloc_generation = 0;
- boxed_region.first_page = 0;
- boxed_region.last_page = -1;
- boxed_region.start_addr = page_address(0);
- boxed_region.free_pointer = page_address(0);
- boxed_region.end_addr = page_address(0);
- unboxed_region.first_page = 0;
- unboxed_region.last_page = -1;
- unboxed_region.start_addr = page_address(0);
- unboxed_region.free_pointer = page_address(0);
- unboxed_region.end_addr = page_address(0);
+ gc_set_region_empty(&boxed_region);
+ gc_set_region_empty(&unboxed_region);
last_free_page = 0;
-
- current_region_free_pointer = boxed_region.free_pointer;
- current_region_end_addr = boxed_region.end_addr;
}
/* Pick up the dynamic space from after a core load.
*
* The ALLOCATION_POINTER points to the end of the dynamic space.
- *
- * XX A scan is needed to identify the closest first objects for pages. */
-void
+ */
+
+static void
gencgc_pickup_dynamic(void)
{
- int page = 0;
- int addr = DYNAMIC_SPACE_START;
- int alloc_ptr = SymbolValue(ALLOCATION_POINTER);
+ page_index_t page = 0;
+ void *alloc_ptr = (void *)get_alloc_pointer();
+ lispobj *prev=(lispobj *)page_address(page);
+ generation_index_t gen = PSEUDO_STATIC_GENERATION;
+
+ bytes_allocated = 0;
- /* Initialize the first region. */
do {
- page_table[page].allocated = BOXED_PAGE;
- page_table[page].gen = 0;
- page_table[page].bytes_used = 4096;
- page_table[page].large_object = 0;
- page_table[page].first_object_offset =
- (void *)DYNAMIC_SPACE_START - page_address(page);
- addr += 4096;
- page++;
- } while (addr < alloc_ptr);
-
- generations[0].bytes_allocated = 4096*page;
- bytes_allocated = 4096*page;
-
- current_region_free_pointer = boxed_region.free_pointer;
- current_region_end_addr = boxed_region.end_addr;
+ lispobj *first,*ptr= (lispobj *)page_address(page);
+
+ if (!gencgc_partial_pickup || page_allocated_p(page)) {
+ /* It is possible, though rare, for the saved page table
+ * to contain free pages below alloc_ptr. */
+ page_table[page].gen = gen;
+ page_table[page].bytes_used = GENCGC_CARD_BYTES;
+ page_table[page].large_object = 0;
+ page_table[page].write_protected = 0;
+ page_table[page].write_protected_cleared = 0;
+ page_table[page].dont_move = 0;
+ page_table[page].need_to_zero = 1;
+
+ bytes_allocated += GENCGC_CARD_BYTES;
+ }
+
+ if (!gencgc_partial_pickup) {
+ page_table[page].allocated = BOXED_PAGE_FLAG;
+ first=gc_search_space(prev,(ptr+2)-prev,ptr);
+ if(ptr == first)
+ prev=ptr;
+ page_table[page].scan_start_offset =
+ page_address(page) - (void *)prev;
+ }
+ page++;
+ } while (page_address(page) < alloc_ptr);
+
+ last_free_page = page;
+
+ generations[gen].bytes_allocated = bytes_allocated;
+
+ gc_alloc_update_all_page_tables();
+ write_protect_generation_pages(gen);
+}
+
+void
+gc_initialize_pointers(void)
+{
+ gencgc_pickup_dynamic();
}
\f
-/* a counter for how deep we are in alloc(..) calls */
-int alloc_entered = 0;
/* alloc(..) is the external interface for memory allocation. It
* allocates to generation 0. It is not called from within the garbage
* (E.g. the most significant word of a 2-word bignum in MOVE-FROM-UNSIGNED.)
*
* The check for a GC trigger is only performed when the current
- * region is full, so in most cases it's not needed. Further MAYBE-GC
- * is only called once because Lisp will remember "need to collect
- * garbage" and get around to it when it can. */
-char *
-alloc(int nbytes)
+ * region is full, so in most cases it's not needed. */
+
+static inline lispobj *
+general_alloc_internal(sword_t nbytes, int page_type_flag, struct alloc_region *region,
+ struct thread *thread)
{
+#ifndef LISP_FEATURE_WIN32
+ lispobj alloc_signal;
+#endif
+ void *new_obj;
+ void *new_free_pointer;
+ os_vm_size_t trigger_bytes = 0;
+
+ gc_assert(nbytes>0);
+
/* Check for alignment allocation problems. */
- gc_assert((((unsigned)current_region_free_pointer & 0x7) == 0)
- && ((nbytes & 0x7) == 0));
-
- if (SymbolValue(PSEUDO_ATOMIC_ATOMIC)) {/* if already in a pseudo atomic */
-
- void *new_free_pointer;
-
- retry1:
- if (alloc_entered) {
- SHOW("alloc re-entered in already-pseudo-atomic case");
- }
- ++alloc_entered;
-
- /* Check whether there is room in the current region. */
- new_free_pointer = current_region_free_pointer + nbytes;
-
- /* FIXME: Shouldn't we be doing some sort of lock here, to
- * keep from getting screwed if an interrupt service routine
- * allocates memory between the time we calculate new_free_pointer
- * and the time we write it back to current_region_free_pointer?
- * Perhaps I just don't understand pseudo-atomics..
- *
- * Perhaps I don't. It looks as though what happens is if we
- * were interrupted any time during the pseudo-atomic
- * interval (which includes now) we discard the allocated
- * memory and try again. So, at least we don't return
- * a memory area that was allocated out from underneath us
- * by code in an ISR.
- * Still, that doesn't seem to prevent
- * current_region_free_pointer from getting corrupted:
- * We read current_region_free_pointer.
- * They read current_region_free_pointer.
- * They write current_region_free_pointer.
- * We write current_region_free_pointer, scribbling over
- * whatever they wrote. */
-
- if (new_free_pointer <= boxed_region.end_addr) {
- /* If so then allocate from the current region. */
- void *new_obj = current_region_free_pointer;
- current_region_free_pointer = new_free_pointer;
- alloc_entered--;
- return((void *)new_obj);
- }
-
- if (auto_gc_trigger && bytes_allocated > auto_gc_trigger) {
- /* Double the trigger. */
- auto_gc_trigger *= 2;
- alloc_entered--;
- /* Exit the pseudo-atomic. */
- SetSymbolValue(PSEUDO_ATOMIC_ATOMIC, make_fixnum(0));
- if (SymbolValue(PSEUDO_ATOMIC_INTERRUPTED) != 0) {
- /* Handle any interrupts that occurred during
- * gc_alloc(..). */
- do_pending_interrupt();
- }
- funcall0(SymbolFunction(MAYBE_GC));
- /* Re-enter the pseudo-atomic. */
- SetSymbolValue(PSEUDO_ATOMIC_INTERRUPTED, make_fixnum(0));
- SetSymbolValue(PSEUDO_ATOMIC_ATOMIC, make_fixnum(1));
- goto retry1;
- }
- /* Call gc_alloc(). */
- boxed_region.free_pointer = current_region_free_pointer;
- {
- void *new_obj = gc_alloc(nbytes);
- current_region_free_pointer = boxed_region.free_pointer;
- current_region_end_addr = boxed_region.end_addr;
- alloc_entered--;
- return (new_obj);
- }
- } else {
- void *result;
- void *new_free_pointer;
-
- retry2:
- /* At least wrap this allocation in a pseudo atomic to prevent
- * gc_alloc() from being re-entered. */
- SetSymbolValue(PSEUDO_ATOMIC_INTERRUPTED, make_fixnum(0));
- SetSymbolValue(PSEUDO_ATOMIC_ATOMIC, make_fixnum(1));
-
- if (alloc_entered)
- SHOW("alloc re-entered in not-already-pseudo-atomic case");
- ++alloc_entered;
-
- /* Check whether there is room in the current region. */
- new_free_pointer = current_region_free_pointer + nbytes;
-
- if (new_free_pointer <= boxed_region.end_addr) {
- /* If so then allocate from the current region. */
- void *new_obj = current_region_free_pointer;
- current_region_free_pointer = new_free_pointer;
- alloc_entered--;
- SetSymbolValue(PSEUDO_ATOMIC_ATOMIC, make_fixnum(0));
- if (SymbolValue(PSEUDO_ATOMIC_INTERRUPTED)) {
- /* Handle any interrupts that occurred during
- * gc_alloc(..). */
- do_pending_interrupt();
- goto retry2;
- }
-
- return((void *)new_obj);
- }
-
- /* KLUDGE: There's lots of code around here shared with the
- * the other branch. Is there some way to factor out the
- * duplicate code? -- WHN 19991129 */
- if (auto_gc_trigger && bytes_allocated > auto_gc_trigger) {
- /* Double the trigger. */
- auto_gc_trigger *= 2;
- alloc_entered--;
- /* Exit the pseudo atomic. */
- SetSymbolValue(PSEUDO_ATOMIC_ATOMIC, make_fixnum(0));
- if (SymbolValue(PSEUDO_ATOMIC_INTERRUPTED) != 0) {
- /* Handle any interrupts that occurred during
- * gc_alloc(..); */
- do_pending_interrupt();
- }
- funcall0(SymbolFunction(MAYBE_GC));
- goto retry2;
- }
-
- /* Else call gc_alloc(). */
- boxed_region.free_pointer = current_region_free_pointer;
- result = gc_alloc(nbytes);
- current_region_free_pointer = boxed_region.free_pointer;
- current_region_end_addr = boxed_region.end_addr;
-
- alloc_entered--;
- SetSymbolValue(PSEUDO_ATOMIC_ATOMIC, make_fixnum(0));
- if (SymbolValue(PSEUDO_ATOMIC_INTERRUPTED) != 0) {
- /* Handle any interrupts that occurred during gc_alloc(..). */
- do_pending_interrupt();
- goto retry2;
- }
-
- return result;
+ gc_assert((((uword_t)region->free_pointer & LOWTAG_MASK) == 0)
+ && ((nbytes & LOWTAG_MASK) == 0));
+
+#if !(defined(LISP_FEATURE_WIN32) && defined(LISP_FEATURE_SB_THREAD))
+ /* Must be inside a PA section. */
+ gc_assert(get_pseudo_atomic_atomic(thread));
+#endif
+
+ if (nbytes > large_allocation)
+ large_allocation = nbytes;
+
+ /* maybe we can do this quickly ... */
+ new_free_pointer = region->free_pointer + nbytes;
+ if (new_free_pointer <= region->end_addr) {
+ new_obj = (void*)(region->free_pointer);
+ region->free_pointer = new_free_pointer;
+ return(new_obj); /* yup */
}
-}
-\f
-/*
- * noise to manipulate the gc trigger stuff
- */
-void
-set_auto_gc_trigger(os_vm_size_t dynamic_usage)
-{
- auto_gc_trigger += dynamic_usage;
-}
+ /* We don't want to count nbytes against auto_gc_trigger unless we
+ * have to: it speeds up the tenuring of objects and slows down
+ * allocation. However, unless we do so when allocating _very_
+ * large objects we are in danger of exhausting the heap without
+ * running sufficient GCs.
+ */
+ if (nbytes >= bytes_consed_between_gcs)
+ trigger_bytes = nbytes;
-void
-clear_auto_gc_trigger(void)
-{
- auto_gc_trigger = 0;
+ /* we have to go the long way around, it seems. Check whether we
+ * should GC in the near future
+ */
+ if (auto_gc_trigger && (bytes_allocated+trigger_bytes > auto_gc_trigger)) {
+ /* Don't flood the system with interrupts if the need to gc is
+ * already noted. This can happen for example when SUB-GC
+ * allocates or after a gc triggered in a WITHOUT-GCING. */
+ if (SymbolValue(GC_PENDING,thread) == NIL) {
+ /* set things up so that GC happens when we finish the PA
+ * section */
+ SetSymbolValue(GC_PENDING,T,thread);
+ if (SymbolValue(GC_INHIBIT,thread) == NIL) {
+#ifdef LISP_FEATURE_SB_SAFEPOINT
+ thread_register_gc_trigger();
+#else
+ set_pseudo_atomic_interrupted(thread);
+#ifdef GENCGC_IS_PRECISE
+ /* PPC calls alloc() from a trap or from pa_alloc(),
+ * look up the most context if it's from a trap. */
+ {
+ os_context_t *context =
+ thread->interrupt_data->allocation_trap_context;
+ maybe_save_gc_mask_and_block_deferrables
+ (context ? os_context_sigmask_addr(context) : NULL);
+ }
+#else
+ maybe_save_gc_mask_and_block_deferrables(NULL);
+#endif
+#endif
+ }
+ }
+ }
+ new_obj = gc_alloc_with_region(nbytes, page_type_flag, region, 0);
+
+#ifndef LISP_FEATURE_WIN32
+ /* for sb-prof, and not supported on Windows yet */
+ alloc_signal = SymbolValue(ALLOC_SIGNAL,thread);
+ if ((alloc_signal & FIXNUM_TAG_MASK) == 0) {
+ if ((sword_t) alloc_signal <= 0) {
+ SetSymbolValue(ALLOC_SIGNAL, T, thread);
+ raise(SIGPROF);
+ } else {
+ SetSymbolValue(ALLOC_SIGNAL,
+ alloc_signal - (1 << N_FIXNUM_TAG_BITS),
+ thread);
+ }
+ }
+#endif
+
+ return (new_obj);
}
-\f
-/* Find the code object for the given pc, or return NULL on failure.
- *
- * FIXME: PC shouldn't be lispobj*, should it? Maybe void*? */
+
lispobj *
-component_ptr_from_pc(lispobj *pc)
+general_alloc(sword_t nbytes, int page_type_flag)
+{
+ struct thread *thread = arch_os_get_current_thread();
+ /* Select correct region, and call general_alloc_internal with it.
+ * For other then boxed allocation we must lock first, since the
+ * region is shared. */
+ if (BOXED_PAGE_FLAG & page_type_flag) {
+#ifdef LISP_FEATURE_SB_THREAD
+ struct alloc_region *region = (thread ? &(thread->alloc_region) : &boxed_region);
+#else
+ struct alloc_region *region = &boxed_region;
+#endif
+ return general_alloc_internal(nbytes, page_type_flag, region, thread);
+ } else if (UNBOXED_PAGE_FLAG == page_type_flag) {
+ lispobj * obj;
+ gc_assert(0 == thread_mutex_lock(&allocation_lock));
+ obj = general_alloc_internal(nbytes, page_type_flag, &unboxed_region, thread);
+ gc_assert(0 == thread_mutex_unlock(&allocation_lock));
+ return obj;
+ } else {
+ lose("bad page type flag: %d", page_type_flag);
+ }
+}
+
+lispobj AMD64_SYSV_ABI *
+alloc(long nbytes)
{
- lispobj *object = NULL;
+#ifdef LISP_FEATURE_SB_SAFEPOINT_STRICTLY
+ struct thread *self = arch_os_get_current_thread();
+ int was_pseudo_atomic = get_pseudo_atomic_atomic(self);
+ if (!was_pseudo_atomic)
+ set_pseudo_atomic_atomic(self);
+#else
+ gc_assert(get_pseudo_atomic_atomic(arch_os_get_current_thread()));
+#endif
- if ( (object = search_read_only_space(pc)) )
- ;
- else if ( (object = search_static_space(pc)) )
- ;
- else
- object = search_dynamic_space(pc);
+ lispobj *result = general_alloc(nbytes, BOXED_PAGE_FLAG);
- if (object) /* if we found something */
- if (TypeOf(*object) == type_CodeHeader) /* if it's a code object */
- return(object);
+#ifdef LISP_FEATURE_SB_SAFEPOINT_STRICTLY
+ if (!was_pseudo_atomic)
+ clear_pseudo_atomic_atomic(self);
+#endif
- return (NULL);
+ return result;
}
\f
/*
* shared support for the OS-dependent signal handlers which
* catch GENCGC-related write-protect violations
*/
-
-void unhandled_sigmemoryfault(void);
+void unhandled_sigmemoryfault(void* addr);
/* Depending on which OS we're running under, different signals might
* be raised for a violation of write protection in the heap. This
*
* Return true if this signal is a normal generational GC thing that
* we were able to handle, or false if it was abnormal and control
- * should fall through to the general SIGSEGV/SIGBUS/whatever logic. */
+ * should fall through to the general SIGSEGV/SIGBUS/whatever logic.
+ *
+ * We have two control flags for this: one causes us to ignore faults
+ * on unprotected pages completely, and the second complains to stderr
+ * but allows us to continue without losing.
+ */
+extern boolean ignore_memoryfaults_on_unprotected_pages;
+boolean ignore_memoryfaults_on_unprotected_pages = 0;
+
+extern boolean continue_after_memoryfault_on_unprotected_pages;
+boolean continue_after_memoryfault_on_unprotected_pages = 0;
+
int
gencgc_handle_wp_violation(void* fault_addr)
{
- int page_index = find_page_index(fault_addr);
+ page_index_t page_index = find_page_index(fault_addr);
-#if defined QSHOW_SIGNALS
+#if QSHOW_SIGNALS
FSHOW((stderr, "heap WP violation? fault_addr=%x, page_index=%d\n",
- fault_addr, page_index));
+ fault_addr, page_index));
#endif
/* Check whether the fault is within the dynamic space. */
if (page_index == (-1)) {
- /* It can be helpful to be able to put a breakpoint on this
- * case to help diagnose low-level problems. */
- unhandled_sigmemoryfault();
+ /* It can be helpful to be able to put a breakpoint on this
+ * case to help diagnose low-level problems. */
+ unhandled_sigmemoryfault(fault_addr);
- /* not within the dynamic space -- not our responsibility */
- return 0;
+ /* not within the dynamic space -- not our responsibility */
+ return 0;
} else {
-
- /* The only acceptable reason for an signal like this from the
- * heap is that the generational GC write-protected the page. */
- if (page_table[page_index].write_protected != 1) {
- lose("access failure in heap page not marked as write-protected");
- }
-
- /* Unprotect the page. */
- os_protect(page_address(page_index), 4096, OS_VM_PROT_ALL);
- page_table[page_index].write_protected = 0;
- page_table[page_index].write_protected_cleared = 1;
-
- /* Don't worry, we can handle it. */
- return 1;
+ int ret;
+ ret = thread_mutex_lock(&free_pages_lock);
+ gc_assert(ret == 0);
+ if (page_table[page_index].write_protected) {
+ /* Unprotect the page. */
+ os_protect(page_address(page_index), GENCGC_CARD_BYTES, OS_VM_PROT_ALL);
+ page_table[page_index].write_protected_cleared = 1;
+ page_table[page_index].write_protected = 0;
+ } else if (!ignore_memoryfaults_on_unprotected_pages) {
+ /* The only acceptable reason for this signal on a heap
+ * access is that GENCGC write-protected the page.
+ * However, if two CPUs hit a wp page near-simultaneously,
+ * we had better not have the second one lose here if it
+ * does this test after the first one has already set wp=0
+ */
+ if(page_table[page_index].write_protected_cleared != 1) {
+ void lisp_backtrace(int frames);
+ lisp_backtrace(10);
+ fprintf(stderr,
+ "Fault @ %p, page %"PAGE_INDEX_FMT" not marked as write-protected:\n"
+ " boxed_region.first_page: %"PAGE_INDEX_FMT","
+ " boxed_region.last_page %"PAGE_INDEX_FMT"\n"
+ " page.scan_start_offset: %"OS_VM_SIZE_FMT"\n"
+ " page.bytes_used: %"PAGE_BYTES_FMT"\n"
+ " page.allocated: %d\n"
+ " page.write_protected: %d\n"
+ " page.write_protected_cleared: %d\n"
+ " page.generation: %d\n",
+ fault_addr,
+ page_index,
+ boxed_region.first_page,
+ boxed_region.last_page,
+ page_table[page_index].scan_start_offset,
+ page_table[page_index].bytes_used,
+ page_table[page_index].allocated,
+ page_table[page_index].write_protected,
+ page_table[page_index].write_protected_cleared,
+ page_table[page_index].gen);
+ if (!continue_after_memoryfault_on_unprotected_pages)
+ lose("Feh.\n");
+ }
+ }
+ ret = thread_mutex_unlock(&free_pages_lock);
+ gc_assert(ret == 0);
+ /* Don't worry, we can handle it. */
+ return 1;
}
}
-
/* This is to be called when we catch a SIGSEGV/SIGBUS, determine that
* it's not just a case of the program hitting the write barrier, and
* are about to let Lisp deal with it. It's basically just a
* convenient place to set a gdb breakpoint. */
void
-unhandled_sigmemoryfault()
+unhandled_sigmemoryfault(void *addr)
{}
+
+void gc_alloc_update_all_page_tables(void)
+{
+ /* Flush the alloc regions updating the tables. */
+ struct thread *th;
+ for_each_thread(th) {
+ gc_alloc_update_page_tables(BOXED_PAGE_FLAG, &th->alloc_region);
+#if defined(LISP_FEATURE_SB_SAFEPOINT_STRICTLY) && !defined(LISP_FEATURE_WIN32)
+ gc_alloc_update_page_tables(BOXED_PAGE_FLAG, &th->sprof_alloc_region);
+#endif
+ }
+ gc_alloc_update_page_tables(UNBOXED_PAGE_FLAG, &unboxed_region);
+ gc_alloc_update_page_tables(BOXED_PAGE_FLAG, &boxed_region);
+}
+
+void
+gc_set_region_empty(struct alloc_region *region)
+{
+ region->first_page = 0;
+ region->last_page = -1;
+ region->start_addr = page_address(0);
+ region->free_pointer = page_address(0);
+ region->end_addr = page_address(0);
+}
+
+static void
+zero_all_free_pages()
+{
+ page_index_t i;
+
+ for (i = 0; i < last_free_page; i++) {
+ if (page_free_p(i)) {
+#ifdef READ_PROTECT_FREE_PAGES
+ os_protect(page_address(i),
+ GENCGC_CARD_BYTES,
+ OS_VM_PROT_ALL);
+#endif
+ zero_pages(i, i);
+ }
+ }
+}
+
+/* Things to do before doing a final GC before saving a core (without
+ * purify).
+ *
+ * + Pages in large_object pages aren't moved by the GC, so we need to
+ * unset that flag from all pages.
+ * + The pseudo-static generation isn't normally collected, but it seems
+ * reasonable to collect it at least when saving a core. So move the
+ * pages to a normal generation.
+ */
+static void
+prepare_for_final_gc ()
+{
+ page_index_t i;
+ for (i = 0; i < last_free_page; i++) {
+ page_table[i].large_object = 0;
+ if (page_table[i].gen == PSEUDO_STATIC_GENERATION) {
+ int used = page_table[i].bytes_used;
+ page_table[i].gen = HIGHEST_NORMAL_GENERATION;
+ generations[PSEUDO_STATIC_GENERATION].bytes_allocated -= used;
+ generations[HIGHEST_NORMAL_GENERATION].bytes_allocated += used;
+ }
+ }
+}
+
+
+/* Do a non-conservative GC, and then save a core with the initial
+ * function being set to the value of the static symbol
+ * SB!VM:RESTART-LISP-FUNCTION */
+void
+gc_and_save(char *filename, boolean prepend_runtime,
+ boolean save_runtime_options, boolean compressed,
+ int compression_level, int application_type)
+{
+ FILE *file;
+ void *runtime_bytes = NULL;
+ size_t runtime_size;
+
+ file = prepare_to_save(filename, prepend_runtime, &runtime_bytes,
+ &runtime_size);
+ if (file == NULL)
+ return;
+
+ conservative_stack = 0;
+
+ /* The filename might come from Lisp, and be moved by the now
+ * non-conservative GC. */
+ filename = strdup(filename);
+
+ /* Collect twice: once into relatively high memory, and then back
+ * into low memory. This compacts the retained data into the lower
+ * pages, minimizing the size of the core file.
+ */
+ prepare_for_final_gc();
+ gencgc_alloc_start_page = last_free_page;
+ collect_garbage(HIGHEST_NORMAL_GENERATION+1);
+
+ prepare_for_final_gc();
+ gencgc_alloc_start_page = -1;
+ collect_garbage(HIGHEST_NORMAL_GENERATION+1);
+
+ if (prepend_runtime)
+ save_runtime_to_filehandle(file, runtime_bytes, runtime_size,
+ application_type);
+
+ /* The dumper doesn't know that pages need to be zeroed before use. */
+ zero_all_free_pages();
+ save_to_filehandle(file, filename, SymbolValue(RESTART_LISP_FUNCTION,0),
+ prepend_runtime, save_runtime_options,
+ compressed ? compression_level : COMPRESSION_LEVEL_NONE);
+ /* Oops. Save still managed to fail. Since we've mangled the stack
+ * beyond hope, there's not much we can do.
+ * (beyond FUNCALLing RESTART_LISP_FUNCTION, but I suspect that's
+ * going to be rather unsatisfactory too... */
+ lose("Attempt to save core after non-conservative GC failed.\n");
+}