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gc.c
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gc.c
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/**********************************************************************
gc.c -
$Author$
created at: Tue Oct 5 09:44:46 JST 1993
Copyright (C) 1993-2007 Yukihiro Matsumoto
Copyright (C) 2000 Network Applied Communication Laboratory, Inc.
Copyright (C) 2000 Information-technology Promotion Agency, Japan
**********************************************************************/
#define rb_data_object_alloc rb_data_object_alloc
#define rb_data_typed_object_alloc rb_data_typed_object_alloc
#include "ruby/internal/config.h"
#ifdef _WIN32
# include "ruby/ruby.h"
#endif
#if defined(__wasm__) && !defined(__EMSCRIPTEN__)
# include "wasm/setjmp.h"
# include "wasm/machine.h"
#else
# include <setjmp.h>
#endif
#include <stdarg.h>
#include <stdio.h>
/* MALLOC_HEADERS_BEGIN */
#ifndef HAVE_MALLOC_USABLE_SIZE
# ifdef _WIN32
# define HAVE_MALLOC_USABLE_SIZE
# define malloc_usable_size(a) _msize(a)
# elif defined HAVE_MALLOC_SIZE
# define HAVE_MALLOC_USABLE_SIZE
# define malloc_usable_size(a) malloc_size(a)
# endif
#endif
#ifdef HAVE_MALLOC_USABLE_SIZE
# ifdef RUBY_ALTERNATIVE_MALLOC_HEADER
/* Alternative malloc header is included in ruby/missing.h */
# elif defined(HAVE_MALLOC_H)
# include <malloc.h>
# elif defined(HAVE_MALLOC_NP_H)
# include <malloc_np.h>
# elif defined(HAVE_MALLOC_MALLOC_H)
# include <malloc/malloc.h>
# endif
#endif
/* MALLOC_HEADERS_END */
#ifdef HAVE_SYS_TIME_H
# include <sys/time.h>
#endif
#ifdef HAVE_SYS_RESOURCE_H
# include <sys/resource.h>
#endif
#if defined _WIN32 || defined __CYGWIN__
# include <windows.h>
#elif defined(HAVE_POSIX_MEMALIGN)
#elif defined(HAVE_MEMALIGN)
# include <malloc.h>
#endif
#include <sys/types.h>
#ifdef __EMSCRIPTEN__
#include <emscripten.h>
#endif
/* For ruby_annotate_mmap */
#ifdef HAVE_SYS_PRCTL_H
#include <sys/prctl.h>
#endif
#undef LIST_HEAD /* ccan/list conflicts with BSD-origin sys/queue.h. */
#include "constant.h"
#include "darray.h"
#include "debug_counter.h"
#include "eval_intern.h"
#include "gc/gc.h"
#include "id_table.h"
#include "internal.h"
#include "internal/class.h"
#include "internal/compile.h"
#include "internal/complex.h"
#include "internal/cont.h"
#include "internal/error.h"
#include "internal/eval.h"
#include "internal/gc.h"
#include "internal/hash.h"
#include "internal/imemo.h"
#include "internal/io.h"
#include "internal/numeric.h"
#include "internal/object.h"
#include "internal/proc.h"
#include "internal/rational.h"
#include "internal/sanitizers.h"
#include "internal/struct.h"
#include "internal/symbol.h"
#include "internal/thread.h"
#include "internal/variable.h"
#include "internal/warnings.h"
#include "rjit.h"
#include "probes.h"
#include "regint.h"
#include "ruby/debug.h"
#include "ruby/io.h"
#include "ruby/re.h"
#include "ruby/st.h"
#include "ruby/thread.h"
#include "ruby/util.h"
#include "ruby/vm.h"
#include "ruby_assert.h"
#include "ruby_atomic.h"
#include "symbol.h"
#include "vm_core.h"
#include "vm_sync.h"
#include "vm_callinfo.h"
#include "ractor_core.h"
#include "yjit.h"
#include "builtin.h"
#include "shape.h"
unsigned int
rb_gc_vm_lock(void)
{
unsigned int lev;
RB_VM_LOCK_ENTER_LEV(&lev);
return lev;
}
void
rb_gc_vm_unlock(unsigned int lev)
{
RB_VM_LOCK_LEAVE_LEV(&lev);
}
unsigned int
rb_gc_cr_lock(void)
{
unsigned int lev;
RB_VM_LOCK_ENTER_CR_LEV(GET_RACTOR(), &lev);
return lev;
}
void
rb_gc_cr_unlock(unsigned int lev)
{
RB_VM_LOCK_LEAVE_CR_LEV(GET_RACTOR(), &lev);
}
unsigned int
rb_gc_vm_lock_no_barrier(void)
{
unsigned int lev = 0;
RB_VM_LOCK_ENTER_LEV_NB(&lev);
return lev;
}
void
rb_gc_vm_unlock_no_barrier(unsigned int lev)
{
RB_VM_LOCK_LEAVE_LEV(&lev);
}
void
rb_gc_vm_barrier(void)
{
rb_vm_barrier();
}
#if USE_MODULAR_GC
void *
rb_gc_get_ractor_newobj_cache(void)
{
return GET_RACTOR()->newobj_cache;
}
void
rb_gc_initialize_vm_context(struct rb_gc_vm_context *context)
{
rb_native_mutex_initialize(&context->lock);
context->ec = GET_EC();
}
void
rb_gc_worker_thread_set_vm_context(struct rb_gc_vm_context *context)
{
rb_native_mutex_lock(&context->lock);
GC_ASSERT(rb_current_execution_context(false) == NULL);
#ifdef RB_THREAD_LOCAL_SPECIFIER
rb_current_ec_set(context->ec);
#else
native_tls_set(ruby_current_ec_key, context->ec);
#endif
}
void
rb_gc_worker_thread_unset_vm_context(struct rb_gc_vm_context *context)
{
rb_native_mutex_unlock(&context->lock);
GC_ASSERT(rb_current_execution_context(true) == context->ec);
#ifdef RB_THREAD_LOCAL_SPECIFIER
rb_current_ec_set(NULL);
#else
native_tls_set(ruby_current_ec_key, NULL);
#endif
}
#endif
bool
rb_gc_event_hook_required_p(rb_event_flag_t event)
{
return ruby_vm_event_flags & event;
}
void
rb_gc_event_hook(VALUE obj, rb_event_flag_t event)
{
if (LIKELY(!rb_gc_event_hook_required_p(event))) return;
rb_execution_context_t *ec = GET_EC();
if (!ec->cfp) return;
EXEC_EVENT_HOOK(ec, event, ec->cfp->self, 0, 0, 0, obj);
}
void *
rb_gc_get_objspace(void)
{
return GET_VM()->gc.objspace;
}
void
rb_gc_ractor_newobj_cache_foreach(void (*func)(void *cache, void *data), void *data)
{
rb_ractor_t *r = NULL;
ccan_list_for_each(&GET_VM()->ractor.set, r, vmlr_node) {
func(r->newobj_cache, data);
}
}
void
rb_gc_run_obj_finalizer(VALUE objid, long count, VALUE (*callback)(long i, void *data), void *data)
{
volatile struct {
VALUE errinfo;
VALUE final;
rb_control_frame_t *cfp;
VALUE *sp;
long finished;
} saved;
rb_execution_context_t * volatile ec = GET_EC();
#define RESTORE_FINALIZER() (\
ec->cfp = saved.cfp, \
ec->cfp->sp = saved.sp, \
ec->errinfo = saved.errinfo)
saved.errinfo = ec->errinfo;
saved.cfp = ec->cfp;
saved.sp = ec->cfp->sp;
saved.finished = 0;
saved.final = Qundef;
EC_PUSH_TAG(ec);
enum ruby_tag_type state = EC_EXEC_TAG();
if (state != TAG_NONE) {
++saved.finished; /* skip failed finalizer */
VALUE failed_final = saved.final;
saved.final = Qundef;
if (!UNDEF_P(failed_final) && !NIL_P(ruby_verbose)) {
rb_warn("Exception in finalizer %+"PRIsVALUE, failed_final);
rb_ec_error_print(ec, ec->errinfo);
}
}
for (long i = saved.finished; RESTORE_FINALIZER(), i < count; saved.finished = ++i) {
saved.final = callback(i, data);
rb_check_funcall(saved.final, idCall, 1, &objid);
}
EC_POP_TAG();
#undef RESTORE_FINALIZER
}
void
rb_gc_set_pending_interrupt(void)
{
rb_execution_context_t *ec = GET_EC();
ec->interrupt_mask |= PENDING_INTERRUPT_MASK;
}
void
rb_gc_unset_pending_interrupt(void)
{
rb_execution_context_t *ec = GET_EC();
ec->interrupt_mask &= ~PENDING_INTERRUPT_MASK;
}
bool
rb_gc_multi_ractor_p(void)
{
return rb_multi_ractor_p();
}
bool rb_obj_is_main_ractor(VALUE gv);
bool
rb_gc_shutdown_call_finalizer_p(VALUE obj)
{
switch (BUILTIN_TYPE(obj)) {
case T_DATA:
if (!ruby_free_at_exit_p() && (!DATA_PTR(obj) || !RDATA(obj)->dfree)) return false;
if (rb_obj_is_thread(obj)) return false;
if (rb_obj_is_mutex(obj)) return false;
if (rb_obj_is_fiber(obj)) return false;
if (rb_obj_is_main_ractor(obj)) return false;
return true;
case T_FILE:
return true;
case T_SYMBOL:
if (RSYMBOL(obj)->fstr &&
(BUILTIN_TYPE(RSYMBOL(obj)->fstr) == T_NONE ||
BUILTIN_TYPE(RSYMBOL(obj)->fstr) == T_ZOMBIE)) {
RSYMBOL(obj)->fstr = 0;
}
return true;
case T_NONE:
return false;
default:
return ruby_free_at_exit_p();
}
}
uint32_t
rb_gc_get_shape(VALUE obj)
{
return (uint32_t)rb_shape_get_shape_id(obj);
}
void
rb_gc_set_shape(VALUE obj, uint32_t shape_id)
{
rb_shape_set_shape_id(obj, (uint32_t)shape_id);
}
uint32_t
rb_gc_rebuild_shape(VALUE obj, size_t heap_id)
{
rb_shape_t *orig_shape = rb_shape_get_shape(obj);
if (rb_shape_obj_too_complex(obj)) return (uint32_t)OBJ_TOO_COMPLEX_SHAPE_ID;
rb_shape_t *initial_shape = rb_shape_get_shape_by_id((shape_id_t)(heap_id + FIRST_T_OBJECT_SHAPE_ID));
rb_shape_t *new_shape = rb_shape_traverse_from_new_root(initial_shape, orig_shape);
if (!new_shape) return 0;
return (uint32_t)rb_shape_id(new_shape);
}
void rb_vm_update_references(void *ptr);
#define rb_setjmp(env) RUBY_SETJMP(env)
#define rb_jmp_buf rb_jmpbuf_t
#undef rb_data_object_wrap
#if !defined(MAP_ANONYMOUS) && defined(MAP_ANON)
#define MAP_ANONYMOUS MAP_ANON
#endif
#define unless_objspace(objspace) \
void *objspace; \
rb_vm_t *unless_objspace_vm = GET_VM(); \
if (unless_objspace_vm) objspace = unless_objspace_vm->gc.objspace; \
else /* return; or objspace will be warned uninitialized */
#define RMOVED(obj) ((struct RMoved *)(obj))
#define TYPED_UPDATE_IF_MOVED(_objspace, _type, _thing) do { \
if (rb_gc_impl_object_moved_p((_objspace), (VALUE)(_thing))) { \
*(_type *)&(_thing) = (_type)gc_location_internal(_objspace, (VALUE)_thing); \
} \
} while (0)
#define UPDATE_IF_MOVED(_objspace, _thing) TYPED_UPDATE_IF_MOVED(_objspace, VALUE, _thing)
#if RUBY_MARK_FREE_DEBUG
int ruby_gc_debug_indent = 0;
#endif
#ifndef RGENGC_OBJ_INFO
# define RGENGC_OBJ_INFO RGENGC_CHECK_MODE
#endif
#ifndef CALC_EXACT_MALLOC_SIZE
# define CALC_EXACT_MALLOC_SIZE 0
#endif
VALUE rb_mGC;
static size_t malloc_offset = 0;
#if defined(HAVE_MALLOC_USABLE_SIZE)
static size_t
gc_compute_malloc_offset(void)
{
// Different allocators use different metadata storage strategies which result in different
// ideal sizes.
// For instance malloc(64) will waste 8B with glibc, but waste 0B with jemalloc.
// But malloc(56) will waste 0B with glibc, but waste 8B with jemalloc.
// So we try allocating 64, 56 and 48 bytes and select the first offset that doesn't
// waste memory.
// This was tested on Linux with glibc 2.35 and jemalloc 5, and for both it result in
// no wasted memory.
size_t offset = 0;
for (offset = 0; offset <= 16; offset += 8) {
size_t allocated = (64 - offset);
void *test_ptr = malloc(allocated);
size_t wasted = malloc_usable_size(test_ptr) - allocated;
free(test_ptr);
if (wasted == 0) {
return offset;
}
}
return 0;
}
#else
static size_t
gc_compute_malloc_offset(void)
{
// If we don't have malloc_usable_size, we use powers of 2.
return 0;
}
#endif
size_t
rb_malloc_grow_capa(size_t current, size_t type_size)
{
size_t current_capacity = current;
if (current_capacity < 4) {
current_capacity = 4;
}
current_capacity *= type_size;
// We double the current capacity.
size_t new_capacity = (current_capacity * 2);
// And round up to the next power of 2 if it's not already one.
if (rb_popcount64(new_capacity) != 1) {
new_capacity = (size_t)(1 << (64 - nlz_int64(new_capacity)));
}
new_capacity -= malloc_offset;
new_capacity /= type_size;
if (current > new_capacity) {
rb_bug("rb_malloc_grow_capa: current_capacity=%zu, new_capacity=%zu, malloc_offset=%zu", current, new_capacity, malloc_offset);
}
RUBY_ASSERT(new_capacity > current);
return new_capacity;
}
static inline struct rbimpl_size_mul_overflow_tag
size_add_overflow(size_t x, size_t y)
{
size_t z;
bool p;
#if 0
#elif defined(ckd_add)
p = ckd_add(&z, x, y);
#elif __has_builtin(__builtin_add_overflow)
p = __builtin_add_overflow(x, y, &z);
#elif defined(DSIZE_T)
RB_GNUC_EXTENSION DSIZE_T dx = x;
RB_GNUC_EXTENSION DSIZE_T dy = y;
RB_GNUC_EXTENSION DSIZE_T dz = dx + dy;
p = dz > SIZE_MAX;
z = (size_t)dz;
#else
z = x + y;
p = z < y;
#endif
return (struct rbimpl_size_mul_overflow_tag) { p, z, };
}
static inline struct rbimpl_size_mul_overflow_tag
size_mul_add_overflow(size_t x, size_t y, size_t z) /* x * y + z */
{
struct rbimpl_size_mul_overflow_tag t = rbimpl_size_mul_overflow(x, y);
struct rbimpl_size_mul_overflow_tag u = size_add_overflow(t.right, z);
return (struct rbimpl_size_mul_overflow_tag) { t.left || u.left, u.right };
}
static inline struct rbimpl_size_mul_overflow_tag
size_mul_add_mul_overflow(size_t x, size_t y, size_t z, size_t w) /* x * y + z * w */
{
struct rbimpl_size_mul_overflow_tag t = rbimpl_size_mul_overflow(x, y);
struct rbimpl_size_mul_overflow_tag u = rbimpl_size_mul_overflow(z, w);
struct rbimpl_size_mul_overflow_tag v = size_add_overflow(t.right, u.right);
return (struct rbimpl_size_mul_overflow_tag) { t.left || u.left || v.left, v.right };
}
PRINTF_ARGS(NORETURN(static void gc_raise(VALUE, const char*, ...)), 2, 3);
static inline size_t
size_mul_or_raise(size_t x, size_t y, VALUE exc)
{
struct rbimpl_size_mul_overflow_tag t = rbimpl_size_mul_overflow(x, y);
if (LIKELY(!t.left)) {
return t.right;
}
else if (rb_during_gc()) {
rb_memerror(); /* or...? */
}
else {
gc_raise(
exc,
"integer overflow: %"PRIuSIZE
" * %"PRIuSIZE
" > %"PRIuSIZE,
x, y, (size_t)SIZE_MAX);
}
}
size_t
rb_size_mul_or_raise(size_t x, size_t y, VALUE exc)
{
return size_mul_or_raise(x, y, exc);
}
static inline size_t
size_mul_add_or_raise(size_t x, size_t y, size_t z, VALUE exc)
{
struct rbimpl_size_mul_overflow_tag t = size_mul_add_overflow(x, y, z);
if (LIKELY(!t.left)) {
return t.right;
}
else if (rb_during_gc()) {
rb_memerror(); /* or...? */
}
else {
gc_raise(
exc,
"integer overflow: %"PRIuSIZE
" * %"PRIuSIZE
" + %"PRIuSIZE
" > %"PRIuSIZE,
x, y, z, (size_t)SIZE_MAX);
}
}
size_t
rb_size_mul_add_or_raise(size_t x, size_t y, size_t z, VALUE exc)
{
return size_mul_add_or_raise(x, y, z, exc);
}
static inline size_t
size_mul_add_mul_or_raise(size_t x, size_t y, size_t z, size_t w, VALUE exc)
{
struct rbimpl_size_mul_overflow_tag t = size_mul_add_mul_overflow(x, y, z, w);
if (LIKELY(!t.left)) {
return t.right;
}
else if (rb_during_gc()) {
rb_memerror(); /* or...? */
}
else {
gc_raise(
exc,
"integer overflow: %"PRIdSIZE
" * %"PRIdSIZE
" + %"PRIdSIZE
" * %"PRIdSIZE
" > %"PRIdSIZE,
x, y, z, w, (size_t)SIZE_MAX);
}
}
#if defined(HAVE_RB_GC_GUARDED_PTR_VAL) && HAVE_RB_GC_GUARDED_PTR_VAL
/* trick the compiler into thinking a external signal handler uses this */
volatile VALUE rb_gc_guarded_val;
volatile VALUE *
rb_gc_guarded_ptr_val(volatile VALUE *ptr, VALUE val)
{
rb_gc_guarded_val = val;
return ptr;
}
#endif
static const char *obj_type_name(VALUE obj);
#include "gc/default/default.c"
#if USE_MODULAR_GC && !defined(HAVE_DLOPEN)
# error "Modular GC requires dlopen"
#elif USE_MODULAR_GC
#include <dlfcn.h>
typedef struct gc_function_map {
// Bootup
void *(*objspace_alloc)(void);
void (*objspace_init)(void *objspace_ptr);
void (*objspace_free)(void *objspace_ptr);
void *(*ractor_cache_alloc)(void *objspace_ptr, void *ractor);
void (*ractor_cache_free)(void *objspace_ptr, void *cache);
void (*set_params)(void *objspace_ptr);
void (*init)(void);
size_t *(*heap_sizes)(void *objspace_ptr);
// Shutdown
void (*shutdown_free_objects)(void *objspace_ptr);
// GC
void (*start)(void *objspace_ptr, bool full_mark, bool immediate_mark, bool immediate_sweep, bool compact);
bool (*during_gc_p)(void *objspace_ptr);
void (*prepare_heap)(void *objspace_ptr);
void (*gc_enable)(void *objspace_ptr);
void (*gc_disable)(void *objspace_ptr, bool finish_current_gc);
bool (*gc_enabled_p)(void *objspace_ptr);
VALUE (*config_get)(void *objpace_ptr);
void (*config_set)(void *objspace_ptr, VALUE hash);
void (*stress_set)(void *objspace_ptr, VALUE flag);
VALUE (*stress_get)(void *objspace_ptr);
// Object allocation
VALUE (*new_obj)(void *objspace_ptr, void *cache_ptr, VALUE klass, VALUE flags, VALUE v1, VALUE v2, VALUE v3, bool wb_protected, size_t alloc_size);
size_t (*obj_slot_size)(VALUE obj);
size_t (*heap_id_for_size)(void *objspace_ptr, size_t size);
bool (*size_allocatable_p)(size_t size);
// Malloc
void *(*malloc)(void *objspace_ptr, size_t size);
void *(*calloc)(void *objspace_ptr, size_t size);
void *(*realloc)(void *objspace_ptr, void *ptr, size_t new_size, size_t old_size);
void (*free)(void *objspace_ptr, void *ptr, size_t old_size);
void (*adjust_memory_usage)(void *objspace_ptr, ssize_t diff);
// Marking
void (*mark)(void *objspace_ptr, VALUE obj);
void (*mark_and_move)(void *objspace_ptr, VALUE *ptr);
void (*mark_and_pin)(void *objspace_ptr, VALUE obj);
void (*mark_maybe)(void *objspace_ptr, VALUE obj);
void (*mark_weak)(void *objspace_ptr, VALUE *ptr);
void (*remove_weak)(void *objspace_ptr, VALUE parent_obj, VALUE *ptr);
// Compaction
bool (*object_moved_p)(void *objspace_ptr, VALUE obj);
VALUE (*location)(void *objspace_ptr, VALUE value);
// Write barriers
void (*writebarrier)(void *objspace_ptr, VALUE a, VALUE b);
void (*writebarrier_unprotect)(void *objspace_ptr, VALUE obj);
void (*writebarrier_remember)(void *objspace_ptr, VALUE obj);
// Heap walking
void (*each_objects)(void *objspace_ptr, int (*callback)(void *, void *, size_t, void *), void *data);
void (*each_object)(void *objspace_ptr, void (*func)(VALUE obj, void *data), void *data);
// Finalizers
void (*make_zombie)(void *objspace_ptr, VALUE obj, void (*dfree)(void *), void *data);
VALUE (*define_finalizer)(void *objspace_ptr, VALUE obj, VALUE block);
void (*undefine_finalizer)(void *objspace_ptr, VALUE obj);
void (*copy_finalizer)(void *objspace_ptr, VALUE dest, VALUE obj);
void (*shutdown_call_finalizer)(void *objspace_ptr);
// Object ID
VALUE (*object_id)(void *objspace_ptr, VALUE obj);
VALUE (*object_id_to_ref)(void *objspace_ptr, VALUE object_id);
// Forking
void (*before_fork)(void *objspace_ptr);
void (*after_fork)(void *objspace_ptr, rb_pid_t pid);
// Statistics
void (*set_measure_total_time)(void *objspace_ptr, VALUE flag);
bool (*get_measure_total_time)(void *objspace_ptr);
unsigned long long (*get_total_time)(void *objspace_ptr);
size_t (*gc_count)(void *objspace_ptr);
VALUE (*latest_gc_info)(void *objspace_ptr, VALUE key);
VALUE (*stat)(void *objspace_ptr, VALUE hash_or_sym);
VALUE (*stat_heap)(void *objspace_ptr, VALUE heap_name, VALUE hash_or_sym);
const char *(*active_gc_name)(void);
// Miscellaneous
size_t (*obj_flags)(void *objspace_ptr, VALUE obj, ID* flags, size_t max);
bool (*pointer_to_heap_p)(void *objspace_ptr, const void *ptr);
bool (*garbage_object_p)(void *objspace_ptr, VALUE obj);
void (*set_event_hook)(void *objspace_ptr, const rb_event_flag_t event);
void (*copy_attributes)(void *objspace_ptr, VALUE dest, VALUE obj);
bool modular_gc_loaded_p;
} rb_gc_function_map_t;
static rb_gc_function_map_t rb_gc_functions;
# define RUBY_GC_LIBRARY "RUBY_GC_LIBRARY"
# define MODULAR_GC_DIR STRINGIZE(modular_gc_dir)
static void
ruby_modular_gc_init(void)
{
// Assert that the directory path ends with a /
RUBY_ASSERT_ALWAYS(MODULAR_GC_DIR[sizeof(MODULAR_GC_DIR) - 2] == '/');
const char *gc_so_file = getenv(RUBY_GC_LIBRARY);
rb_gc_function_map_t gc_functions = { 0 };
char *gc_so_path = NULL;
void *handle = NULL;
if (gc_so_file) {
/* Check to make sure that gc_so_file matches /[\w-_]+/ so that it does
* not load a shared object outside of the directory. */
for (size_t i = 0; i < strlen(gc_so_file); i++) {
char c = gc_so_file[i];
if (isalnum(c)) continue;
switch (c) {
case '-':
case '_':
break;
default:
fprintf(stderr, "Only alphanumeric, dash, and underscore is allowed in "RUBY_GC_LIBRARY"\n");
exit(1);
}
}
size_t gc_so_path_size = strlen(MODULAR_GC_DIR "librubygc." DLEXT) + strlen(gc_so_file) + 1;
#ifdef LOAD_RELATIVE
Dl_info dli;
size_t prefix_len = 0;
if (dladdr((void *)(uintptr_t)ruby_modular_gc_init, &dli)) {
const char *base = strrchr(dli.dli_fname, '/');
if (base) {
size_t tail = 0;
# define end_with_p(lit) \
(prefix_len >= (tail = rb_strlen_lit(lit)) && \
memcmp(base - tail, lit, tail) == 0)
prefix_len = base - dli.dli_fname;
if (end_with_p("/bin") || end_with_p("/lib")) {
prefix_len -= tail;
}
prefix_len += MODULAR_GC_DIR[0] != '/';
gc_so_path_size += prefix_len;
}
}
#endif
gc_so_path = alloca(gc_so_path_size);
{
size_t gc_so_path_idx = 0;
#define GC_SO_PATH_APPEND(str) do { \
gc_so_path_idx += strlcpy(gc_so_path + gc_so_path_idx, str, gc_so_path_size - gc_so_path_idx); \
} while (0)
#ifdef LOAD_RELATIVE
if (prefix_len > 0) {
memcpy(gc_so_path, dli.dli_fname, prefix_len);
gc_so_path_idx = prefix_len;
}
#endif
GC_SO_PATH_APPEND(MODULAR_GC_DIR "librubygc.");
GC_SO_PATH_APPEND(gc_so_file);
GC_SO_PATH_APPEND(DLEXT);
GC_ASSERT(gc_so_path_idx == gc_so_path_size - 1);
#undef GC_SO_PATH_APPEND
}
handle = dlopen(gc_so_path, RTLD_LAZY | RTLD_GLOBAL);
if (!handle) {
fprintf(stderr, "ruby_modular_gc_init: Shared library %s cannot be opened: %s\n", gc_so_path, dlerror());
exit(1);
}
gc_functions.modular_gc_loaded_p = true;
}
# define load_modular_gc_func(name) do { \
if (handle) { \
const char *func_name = "rb_gc_impl_" #name; \
gc_functions.name = dlsym(handle, func_name); \
if (!gc_functions.name) { \
fprintf(stderr, "ruby_modular_gc_init: %s function not exported by library %s\n", func_name, gc_so_path); \
exit(1); \
} \
} \
else { \
gc_functions.name = rb_gc_impl_##name; \
} \
} while (0)
// Bootup
load_modular_gc_func(objspace_alloc);
load_modular_gc_func(objspace_init);
load_modular_gc_func(objspace_free);
load_modular_gc_func(ractor_cache_alloc);
load_modular_gc_func(ractor_cache_free);
load_modular_gc_func(set_params);
load_modular_gc_func(init);
load_modular_gc_func(heap_sizes);
// Shutdown
load_modular_gc_func(shutdown_free_objects);
// GC
load_modular_gc_func(start);
load_modular_gc_func(during_gc_p);
load_modular_gc_func(prepare_heap);
load_modular_gc_func(gc_enable);
load_modular_gc_func(gc_disable);
load_modular_gc_func(gc_enabled_p);
load_modular_gc_func(config_set);
load_modular_gc_func(config_get);
load_modular_gc_func(stress_set);
load_modular_gc_func(stress_get);
// Object allocation
load_modular_gc_func(new_obj);
load_modular_gc_func(obj_slot_size);
load_modular_gc_func(heap_id_for_size);
load_modular_gc_func(size_allocatable_p);
// Malloc
load_modular_gc_func(malloc);
load_modular_gc_func(calloc);
load_modular_gc_func(realloc);
load_modular_gc_func(free);
load_modular_gc_func(adjust_memory_usage);
// Marking
load_modular_gc_func(mark);
load_modular_gc_func(mark_and_move);
load_modular_gc_func(mark_and_pin);
load_modular_gc_func(mark_maybe);
load_modular_gc_func(mark_weak);
load_modular_gc_func(remove_weak);
// Compaction
load_modular_gc_func(object_moved_p);
load_modular_gc_func(location);
// Write barriers
load_modular_gc_func(writebarrier);
load_modular_gc_func(writebarrier_unprotect);
load_modular_gc_func(writebarrier_remember);
// Heap walking
load_modular_gc_func(each_objects);
load_modular_gc_func(each_object);
// Finalizers
load_modular_gc_func(make_zombie);
load_modular_gc_func(define_finalizer);
load_modular_gc_func(undefine_finalizer);
load_modular_gc_func(copy_finalizer);
load_modular_gc_func(shutdown_call_finalizer);
// Object ID
load_modular_gc_func(object_id);
load_modular_gc_func(object_id_to_ref);
// Forking
load_modular_gc_func(before_fork);
load_modular_gc_func(after_fork);
// Statistics
load_modular_gc_func(set_measure_total_time);
load_modular_gc_func(get_measure_total_time);
load_modular_gc_func(get_total_time);
load_modular_gc_func(gc_count);
load_modular_gc_func(latest_gc_info);
load_modular_gc_func(stat);
load_modular_gc_func(stat_heap);
load_modular_gc_func(active_gc_name);
// Miscellaneous
load_modular_gc_func(obj_flags);
load_modular_gc_func(pointer_to_heap_p);
load_modular_gc_func(garbage_object_p);
load_modular_gc_func(set_event_hook);
load_modular_gc_func(copy_attributes);
# undef load_modular_gc_func
rb_gc_functions = gc_functions;
}
// Bootup
# define rb_gc_impl_objspace_alloc rb_gc_functions.objspace_alloc
# define rb_gc_impl_objspace_init rb_gc_functions.objspace_init
# define rb_gc_impl_objspace_free rb_gc_functions.objspace_free
# define rb_gc_impl_ractor_cache_alloc rb_gc_functions.ractor_cache_alloc
# define rb_gc_impl_ractor_cache_free rb_gc_functions.ractor_cache_free
# define rb_gc_impl_set_params rb_gc_functions.set_params
# define rb_gc_impl_init rb_gc_functions.init
# define rb_gc_impl_heap_sizes rb_gc_functions.heap_sizes
// Shutdown
# define rb_gc_impl_shutdown_free_objects rb_gc_functions.shutdown_free_objects
// GC
# define rb_gc_impl_start rb_gc_functions.start
# define rb_gc_impl_during_gc_p rb_gc_functions.during_gc_p
# define rb_gc_impl_prepare_heap rb_gc_functions.prepare_heap
# define rb_gc_impl_gc_enable rb_gc_functions.gc_enable
# define rb_gc_impl_gc_disable rb_gc_functions.gc_disable
# define rb_gc_impl_gc_enabled_p rb_gc_functions.gc_enabled_p
# define rb_gc_impl_config_get rb_gc_functions.config_get
# define rb_gc_impl_config_set rb_gc_functions.config_set
# define rb_gc_impl_stress_set rb_gc_functions.stress_set
# define rb_gc_impl_stress_get rb_gc_functions.stress_get
// Object allocation
# define rb_gc_impl_new_obj rb_gc_functions.new_obj
# define rb_gc_impl_obj_slot_size rb_gc_functions.obj_slot_size
# define rb_gc_impl_heap_id_for_size rb_gc_functions.heap_id_for_size
# define rb_gc_impl_size_allocatable_p rb_gc_functions.size_allocatable_p
// Malloc
# define rb_gc_impl_malloc rb_gc_functions.malloc
# define rb_gc_impl_calloc rb_gc_functions.calloc
# define rb_gc_impl_realloc rb_gc_functions.realloc
# define rb_gc_impl_free rb_gc_functions.free
# define rb_gc_impl_adjust_memory_usage rb_gc_functions.adjust_memory_usage
// Marking
# define rb_gc_impl_mark rb_gc_functions.mark
# define rb_gc_impl_mark_and_move rb_gc_functions.mark_and_move
# define rb_gc_impl_mark_and_pin rb_gc_functions.mark_and_pin
# define rb_gc_impl_mark_maybe rb_gc_functions.mark_maybe
# define rb_gc_impl_mark_weak rb_gc_functions.mark_weak
# define rb_gc_impl_remove_weak rb_gc_functions.remove_weak
// Compaction
# define rb_gc_impl_object_moved_p rb_gc_functions.object_moved_p
# define rb_gc_impl_location rb_gc_functions.location
// Write barriers
# define rb_gc_impl_writebarrier rb_gc_functions.writebarrier
# define rb_gc_impl_writebarrier_unprotect rb_gc_functions.writebarrier_unprotect
# define rb_gc_impl_writebarrier_remember rb_gc_functions.writebarrier_remember
// Heap walking
# define rb_gc_impl_each_objects rb_gc_functions.each_objects
# define rb_gc_impl_each_object rb_gc_functions.each_object
// Finalizers
# define rb_gc_impl_make_zombie rb_gc_functions.make_zombie
# define rb_gc_impl_define_finalizer rb_gc_functions.define_finalizer
# define rb_gc_impl_undefine_finalizer rb_gc_functions.undefine_finalizer
# define rb_gc_impl_copy_finalizer rb_gc_functions.copy_finalizer
# define rb_gc_impl_shutdown_call_finalizer rb_gc_functions.shutdown_call_finalizer
// Object ID
# define rb_gc_impl_object_id rb_gc_functions.object_id
# define rb_gc_impl_object_id_to_ref rb_gc_functions.object_id_to_ref
// Forking
# define rb_gc_impl_before_fork rb_gc_functions.before_fork
# define rb_gc_impl_after_fork rb_gc_functions.after_fork
// Statistics
# define rb_gc_impl_set_measure_total_time rb_gc_functions.set_measure_total_time
# define rb_gc_impl_get_measure_total_time rb_gc_functions.get_measure_total_time
# define rb_gc_impl_get_total_time rb_gc_functions.get_total_time
# define rb_gc_impl_gc_count rb_gc_functions.gc_count
# define rb_gc_impl_latest_gc_info rb_gc_functions.latest_gc_info
# define rb_gc_impl_stat rb_gc_functions.stat
# define rb_gc_impl_stat_heap rb_gc_functions.stat_heap
# define rb_gc_impl_active_gc_name rb_gc_functions.active_gc_name
// Miscellaneous
# define rb_gc_impl_obj_flags rb_gc_functions.obj_flags
# define rb_gc_impl_pointer_to_heap_p rb_gc_functions.pointer_to_heap_p
# define rb_gc_impl_garbage_object_p rb_gc_functions.garbage_object_p
# define rb_gc_impl_set_event_hook rb_gc_functions.set_event_hook
# define rb_gc_impl_copy_attributes rb_gc_functions.copy_attributes
#endif
#ifdef RUBY_ASAN_ENABLED
static void
asan_death_callback(void)
{
if (GET_VM()) {
rb_bug_without_die("ASAN error");
}
}
#endif
static VALUE initial_stress = Qfalse;
void *
rb_objspace_alloc(void)
{
#if USE_MODULAR_GC
ruby_modular_gc_init();
#endif
void *objspace = rb_gc_impl_objspace_alloc();
ruby_current_vm_ptr->gc.objspace = objspace;
rb_gc_impl_objspace_init(objspace);
rb_gc_impl_stress_set(objspace, initial_stress);
#ifdef RUBY_ASAN_ENABLED
__sanitizer_set_death_callback(asan_death_callback);
#endif
return objspace;
}
void
rb_objspace_free(void *objspace)
{
rb_gc_impl_objspace_free(objspace);