Ruby 4.1.0dev (2026-05-15 revision a8bcae043f931d9b79f1cb1fe2c021985d07b984)
vm_core.h (a8bcae043f931d9b79f1cb1fe2c021985d07b984)
1#ifndef RUBY_VM_CORE_H
2#define RUBY_VM_CORE_H
3/**********************************************************************
4
5 vm_core.h -
6
7 $Author$
8 created at: 04/01/01 19:41:38 JST
9
10 Copyright (C) 2004-2007 Koichi Sasada
11
12**********************************************************************/
13
14/*
15 * Enable check mode.
16 * 1: enable local assertions.
17 */
18#ifndef VM_CHECK_MODE
19
20// respect RUBY_DUBUG: if given n is 0, then use RUBY_DEBUG
21#define N_OR_RUBY_DEBUG(n) (((n) > 0) ? (n) : RUBY_DEBUG)
22
23#define VM_CHECK_MODE N_OR_RUBY_DEBUG(0)
24#endif
25
39#ifndef VMDEBUG
40#define VMDEBUG 0
41#endif
42
43#if 0
44#undef VMDEBUG
45#define VMDEBUG 3
46#endif
47
48#include "ruby/internal/config.h"
49
50#include <stddef.h>
51#include <signal.h>
52#include <stdarg.h>
53
54#include "ruby_assert.h"
55
56#define RVALUE_SIZE (sizeof(struct RBasic) + sizeof(VALUE[RBIMPL_RVALUE_EMBED_LEN_MAX]))
57
58#if VM_CHECK_MODE > 0
59#define VM_ASSERT(expr, ...) \
60 RUBY_ASSERT_MESG_WHEN(VM_CHECK_MODE > 0, expr, #expr RBIMPL_VA_OPT_ARGS(__VA_ARGS__))
61#define VM_UNREACHABLE(func) rb_bug(#func ": unreachable")
62#define RUBY_ASSERT_CRITICAL_SECTION
63#define RUBY_DEBUG_THREAD_SCHEDULE() rb_thread_schedule()
64#else
65#define VM_ASSERT(/*expr, */...) ((void)0)
66#define VM_UNREACHABLE(func) UNREACHABLE
67#define RUBY_DEBUG_THREAD_SCHEDULE()
68#endif
69
70#define RUBY_ASSERT_MUTEX_OWNED(mutex) VM_ASSERT(rb_mutex_owned_p(mutex))
71
72#if defined(RUBY_ASSERT_CRITICAL_SECTION)
73/*
74# Critical Section Assertions
75
76These assertions are used to ensure that context switching does not occur between two points in the code. In theory,
77such code should already be protected by a mutex, but these assertions are used to ensure that the mutex is held.
78
79The specific case where it can be useful is where a mutex is held further up the call stack, and the code in question
80may not directly hold the mutex. In this case, the critical section assertions can be used to ensure that the mutex is
81held by someone else.
82
83These assertions are only enabled when RUBY_ASSERT_CRITICAL_SECTION is defined, which is only defined if VM_CHECK_MODE
84is set.
85
86## Example Usage
87
88```c
89RUBY_ASSERT_CRITICAL_SECTION_ENTER();
90// ... some code which does not invoke rb_vm_check_ints() ...
91RUBY_ASSERT_CRITICAL_SECTION_LEAVE();
92```
93
94If `rb_vm_check_ints()` is called between the `RUBY_ASSERT_CRITICAL_SECTION_ENTER()` and
95`RUBY_ASSERT_CRITICAL_SECTION_LEAVE()`, a failed assertion will result.
96*/
97extern int ruby_assert_critical_section_entered;
98#define RUBY_ASSERT_CRITICAL_SECTION_ENTER() do{ruby_assert_critical_section_entered += 1;}while(false)
99#define RUBY_ASSERT_CRITICAL_SECTION_LEAVE() do{VM_ASSERT(ruby_assert_critical_section_entered > 0);ruby_assert_critical_section_entered -= 1;}while(false)
100#else
101#define RUBY_ASSERT_CRITICAL_SECTION_ENTER()
102#define RUBY_ASSERT_CRITICAL_SECTION_LEAVE()
103#endif
104
105#if defined(__wasm__) && !defined(__EMSCRIPTEN__)
106# include "wasm/setjmp.h"
107#else
108# include <setjmp.h>
109#endif
110
111#if defined(__linux__) || defined(__FreeBSD__)
112# define RB_THREAD_T_HAS_NATIVE_ID
113#endif
114
116#include "ccan/list/list.h"
117#include "id.h"
118#include "internal.h"
119#include "internal/array.h"
120#include "internal/basic_operators.h"
121#include "internal/box.h"
122#include "internal/sanitizers.h"
123#include "internal/serial.h"
124#include "internal/set_table.h"
125#include "internal/vm.h"
126#include "method.h"
127#include "node.h"
128#include "ruby/ruby.h"
129#include "ruby/st.h"
130#include "ruby_atomic.h"
131#include "vm_opts.h"
132
133#include "ruby/thread_native.h"
134/*
135 * implementation selector of get_insn_info algorithm
136 * 0: linear search
137 * 1: binary search
138 * 2: succinct bitvector
139 */
140#ifndef VM_INSN_INFO_TABLE_IMPL
141# define VM_INSN_INFO_TABLE_IMPL 2
142#endif
143
144#if defined(NSIG_MAX) /* POSIX issue 8 */
145# undef NSIG
146# define NSIG NSIG_MAX
147#elif defined(_SIG_MAXSIG) /* FreeBSD */
148# undef NSIG
149# define NSIG _SIG_MAXSIG
150#elif defined(_SIGMAX) /* QNX */
151# define NSIG (_SIGMAX + 1)
152#elif defined(NSIG) /* 99% of everything else */
153# /* take it */
154#else /* Last resort */
155# define NSIG (sizeof(sigset_t) * CHAR_BIT + 1)
156#endif
157
158#define RUBY_NSIG NSIG
159
160#if defined(SIGCLD)
161# define RUBY_SIGCHLD (SIGCLD)
162#elif defined(SIGCHLD)
163# define RUBY_SIGCHLD (SIGCHLD)
164#endif
165
166#if defined(SIGSEGV) && defined(HAVE_SIGALTSTACK) && defined(SA_SIGINFO) && !defined(__NetBSD__)
167# define USE_SIGALTSTACK
168void *rb_allocate_sigaltstack(void);
169void *rb_register_sigaltstack(void *);
170# define RB_ALTSTACK_INIT(var, altstack) var = rb_register_sigaltstack(altstack)
171# define RB_ALTSTACK_FREE(var) free(var)
172# define RB_ALTSTACK(var) var
173#else /* noop */
174# define RB_ALTSTACK_INIT(var, altstack)
175# define RB_ALTSTACK_FREE(var)
176# define RB_ALTSTACK(var) (0)
177#endif
178
179#include THREAD_IMPL_H
180#define RUBY_VM_THREAD_MODEL 2
181
182/*****************/
183/* configuration */
184/*****************/
185
186/* gcc ver. check */
187#if defined(__GNUC__) && __GNUC__ >= 2
188
189#if OPT_TOKEN_THREADED_CODE
190#if OPT_DIRECT_THREADED_CODE
191#undef OPT_DIRECT_THREADED_CODE
192#endif
193#endif
194
195#else /* defined(__GNUC__) && __GNUC__ >= 2 */
196
197/* disable threaded code options */
198#if OPT_DIRECT_THREADED_CODE
199#undef OPT_DIRECT_THREADED_CODE
200#endif
201#if OPT_TOKEN_THREADED_CODE
202#undef OPT_TOKEN_THREADED_CODE
203#endif
204#endif
205
206/* call threaded code */
207#if OPT_CALL_THREADED_CODE
208#if OPT_DIRECT_THREADED_CODE
209#undef OPT_DIRECT_THREADED_CODE
210#endif /* OPT_DIRECT_THREADED_CODE */
211#endif /* OPT_CALL_THREADED_CODE */
212
213void rb_vm_encoded_insn_data_table_init(void);
214typedef unsigned long rb_num_t;
215typedef signed long rb_snum_t;
216
217enum ruby_tag_type {
218 RUBY_TAG_NONE = 0x0,
219 RUBY_TAG_RETURN = 0x1,
220 RUBY_TAG_BREAK = 0x2,
221 RUBY_TAG_NEXT = 0x3,
222 RUBY_TAG_RETRY = 0x4,
223 RUBY_TAG_REDO = 0x5,
224 RUBY_TAG_RAISE = 0x6,
225 RUBY_TAG_THROW = 0x7,
226 RUBY_TAG_FATAL = 0x8,
227 RUBY_TAG_MASK = 0xf
228};
229
230#define TAG_NONE RUBY_TAG_NONE
231#define TAG_RETURN RUBY_TAG_RETURN
232#define TAG_BREAK RUBY_TAG_BREAK
233#define TAG_NEXT RUBY_TAG_NEXT
234#define TAG_RETRY RUBY_TAG_RETRY
235#define TAG_REDO RUBY_TAG_REDO
236#define TAG_RAISE RUBY_TAG_RAISE
237#define TAG_THROW RUBY_TAG_THROW
238#define TAG_FATAL RUBY_TAG_FATAL
239#define TAG_MASK RUBY_TAG_MASK
240
241enum ruby_vm_throw_flags {
242 VM_THROW_NO_ESCAPE_FLAG = 0x8000,
243 VM_THROW_STATE_MASK = 0xff
244};
245
246/* forward declarations */
247struct rb_thread_struct;
249
250/* iseq data type */
252
254 rb_serial_t raw;
255 VALUE data[2];
256};
257
258#define IMEMO_CONST_CACHE_SHAREABLE IMEMO_FL_USER0
259
260// imemo_constcache
262 VALUE flags;
263
264 VALUE value;
265 const rb_cref_t *ic_cref;
266};
267STATIC_ASSERT(sizeof_iseq_inline_constant_cache_entry,
268 (offsetof(struct iseq_inline_constant_cache_entry, ic_cref) +
269 sizeof(const rb_cref_t *)) <= RVALUE_SIZE);
270
287
289 uint64_t value; // Either rb_setivar_cache or rb_getivar_cache packed in a uint64_t.
290 ID iv_set_name;
291};
292
296
298 struct {
299 struct rb_thread_struct *running_thread;
300 VALUE value;
301 } once;
302 struct iseq_inline_constant_cache ic_cache;
303 struct iseq_inline_iv_cache_entry iv_cache;
304};
305
307 const struct rb_call_data *cd;
308 const struct rb_callcache *cc;
309 VALUE block_handler;
310 VALUE recv;
311 int argc;
312 bool kw_splat;
313 VALUE heap_argv;
314};
315
316#ifndef VM_ARGC_STACK_MAX
317#define VM_ARGC_STACK_MAX 128
318#endif
319
320#define VM_KW_SPECIFIED_BITS_MAX (32-1) /* TODO: 32 -> Fixnum's max bits */
321
322# define CALLING_ARGC(calling) ((calling)->heap_argv ? RARRAY_LENINT((calling)->heap_argv) : (calling)->argc)
323
325
326#ifndef RUBY_CORE_DATA_TYPE_CHECK
327# if RUBY_DEBUG
328# define RUBY_CORE_DATA_TYPE_CHECK 1
329# else
330# define RUBY_CORE_DATA_TYPE_CHECK 0
331# endif
332#endif
333#if !RUBY_CORE_DATA_TYPE_CHECK
334#define GetCoreDataFromValue(obj, type, data_type, ptr) ((ptr) = (type*)RTYPEDDATA_GET_DATA(obj))
335#else
336#define GetCoreDataFromValue(obj, type, data_type, ptr) TypedData_Get_Struct(obj, type, data_type, ptr)
337#endif
338
340 VALUE pathobj; /* String (path) or Array [path, realpath]. Frozen. */
341 VALUE base_label; /* String */
342 VALUE label; /* String */
343 int first_lineno;
344 int node_id;
345 rb_code_location_t code_location;
347
348#define PATHOBJ_PATH 0
349#define PATHOBJ_REALPATH 1
350
351static inline VALUE
352pathobj_path(VALUE pathobj)
353{
354 if (RB_TYPE_P(pathobj, T_STRING)) {
355 return pathobj;
356 }
357 else {
358 VM_ASSERT(RB_TYPE_P(pathobj, T_ARRAY));
359 return RARRAY_AREF(pathobj, PATHOBJ_PATH);
360 }
361}
362
363static inline VALUE
364pathobj_realpath(VALUE pathobj)
365{
366 if (RB_TYPE_P(pathobj, T_STRING)) {
367 return pathobj;
368 }
369 else {
370 VM_ASSERT(RB_TYPE_P(pathobj, T_ARRAY));
371 return RARRAY_AREF(pathobj, PATHOBJ_REALPATH);
372 }
373}
374
375/* Forward declarations */
376typedef uintptr_t iseq_bits_t;
377
378#define ISEQ_IS_SIZE(body) (body->ic_size + body->ivc_size + body->ise_size + body->icvarc_size)
379
380/* [ TS_IVC | TS_ICVARC | TS_ISE | TS_IC ] */
381#define ISEQ_IS_IC_ENTRY(body, idx) (body->is_entries[(idx) + body->ise_size + body->icvarc_size + body->ivc_size].ic_cache);
382
383/* instruction sequence type */
384enum rb_iseq_type {
385 ISEQ_TYPE_TOP,
386 ISEQ_TYPE_METHOD,
387 ISEQ_TYPE_BLOCK,
388 ISEQ_TYPE_CLASS,
389 ISEQ_TYPE_RESCUE,
390 ISEQ_TYPE_ENSURE,
391 ISEQ_TYPE_EVAL,
392 ISEQ_TYPE_MAIN,
393 ISEQ_TYPE_PLAIN
394};
395
396// Attributes specified by Primitive.attr!
397enum rb_builtin_attr {
398 // The iseq does not call methods.
399 BUILTIN_ATTR_LEAF = 0x01,
400 // This iseq only contains single `opt_invokebuiltin_delegate_leave` instruction with 0 arguments.
401 BUILTIN_ATTR_SINGLE_NOARG_LEAF = 0x02,
402 // This attribute signals JIT to duplicate the iseq for each block iseq so that its `yield` will be monomorphic.
403 BUILTIN_ATTR_INLINE_BLOCK = 0x04,
404 // The iseq acts like a C method in backtraces.
405 BUILTIN_ATTR_C_TRACE = 0x08,
406 // The iseq uses noint branch/jump opcodes that skip interrupt checking.
407 BUILTIN_ATTR_WITHOUT_INTERRUPTS = 0x10,
408};
409
410typedef VALUE (*rb_jit_func_t)(struct rb_execution_context_struct *, struct rb_control_frame_struct *);
411typedef VALUE (*rb_zjit_func_t)(struct rb_execution_context_struct *, struct rb_control_frame_struct *, rb_jit_func_t);
412
414 enum rb_iseq_type type;
415
416 unsigned int iseq_size;
417 VALUE *iseq_encoded; /* encoded iseq (insn addr and operands) */
418
443 struct {
444 unsigned int has_lead : 1;
445 unsigned int has_opt : 1;
446 unsigned int has_rest : 1;
447 unsigned int has_post : 1;
448 unsigned int has_kw : 1;
449 unsigned int has_kwrest : 1;
450 unsigned int has_block : 1;
451
452 unsigned int ambiguous_param0 : 1; /* {|a|} */
453 unsigned int accepts_no_kwarg : 1;
454 unsigned int ruby2_keywords: 1;
455 unsigned int anon_rest: 1;
456 unsigned int anon_kwrest: 1;
457 unsigned int use_block: 1;
458 unsigned int forwardable: 1;
459 unsigned int accepts_no_block: 1;
460 } flags;
461
462 unsigned int size;
463
464 int lead_num;
465 int opt_num;
466 int rest_start;
467 int post_start;
468 int post_num;
469 int block_start;
470
471 const VALUE *opt_table; /* (opt_num + 1) entries. */
472 /* opt_num and opt_table:
473 *
474 * def foo o1=e1, o2=e2, ..., oN=eN
475 * #=>
476 * # prologue code
477 * A1: e1
478 * A2: e2
479 * ...
480 * AN: eN
481 * AL: body
482 * opt_num = N
483 * opt_table = [A1, A2, ..., AN, AL]
484 */
485
487 int num;
488 int required_num;
489 int bits_start;
490 int rest_start;
491 const ID *table;
492 VALUE *default_values;
493 } *keyword;
494 } param;
495
496 rb_iseq_location_t location;
497
498 /* insn info, must be freed */
500 const struct iseq_insn_info_entry *body;
501 unsigned int *positions;
502 unsigned int size;
503#if VM_INSN_INFO_TABLE_IMPL == 2
504 struct succ_index_table *succ_index_table;
505#endif
506 } insns_info;
507
508 const ID *local_table; /* must free */
509
510 enum lvar_state {
511 lvar_uninitialized,
512 lvar_initialized,
513 lvar_reassigned,
514 } *lvar_states;
515
516 /* catch table */
517 struct iseq_catch_table *catch_table;
518
519 /* for child iseq */
520 const struct rb_iseq_struct *parent_iseq;
521 struct rb_iseq_struct *local_iseq; /* local_iseq->flip_cnt can be modified */
522
523 union iseq_inline_storage_entry *is_entries; /* [ TS_IVC | TS_ICVARC | TS_ISE | TS_IC ] */
524 struct rb_call_data *call_data; //struct rb_call_data calls[ci_size];
525
526 struct {
527 rb_snum_t flip_count;
528 VALUE script_lines;
529 VALUE coverage;
530 VALUE pc2branchindex;
531 VALUE *original_iseq;
532 } variable;
533
534 unsigned int local_table_size;
535 unsigned int ic_size; // Number of IC caches
536 unsigned int ise_size; // Number of ISE caches
537 unsigned int ivc_size; // Number of IVC caches
538 unsigned int icvarc_size; // Number of ICVARC caches
539 unsigned int ci_size;
540 unsigned int stack_max; /* for stack overflow check */
541
542 unsigned int builtin_attrs; // Union of rb_builtin_attr
543
544 bool prism; // ISEQ was generated from prism compiler
545
546 union {
547 iseq_bits_t * list; /* Find references for GC */
548 iseq_bits_t single;
549 } mark_bits;
550
551 struct rb_id_table *outer_variables;
552
553 const rb_iseq_t *mandatory_only_iseq;
554
555#if USE_YJIT || USE_ZJIT
556 // Function pointer for JIT code on jit_exec()
557 rb_jit_func_t jit_entry;
558 // Number of calls on jit_exec()
559 long unsigned jit_entry_calls;
560 // Function pointer for JIT code on jit_exec_exception()
561 rb_jit_func_t jit_exception;
562 // Number of calls on jit_exec_exception()
563 long unsigned jit_exception_calls;
564#endif
565
566#if USE_YJIT
567 // YJIT stores some data on each iseq.
568 void *yjit_payload;
569 // Used to estimate how frequently this ISEQ gets called
570 uint64_t yjit_calls_at_interv;
571#endif
572
573#if USE_ZJIT
574 // ZJIT stores some data on each iseq.
575 void *zjit_payload;
576#endif
577};
578
579/* T_IMEMO/iseq */
580/* typedef rb_iseq_t is in method.h */
582 VALUE flags; /* 1 */
583 VALUE wrapper; /* 2 */
584
585 struct rb_iseq_constant_body *body; /* 3 */
586
587 union { /* 4, 5 words */
588 struct iseq_compile_data *compile_data; /* used at compile time */
589
590 struct {
591 VALUE obj;
592 int index;
593 } loader;
594
595 struct {
596 unsigned int local_hooks_cnt;
597 rb_event_flag_t global_trace_events;
598 } exec;
599 } aux;
600};
601
602#define ISEQ_BODY(iseq) ((iseq)->body)
603
604#if !defined(USE_LAZY_LOAD) || !(USE_LAZY_LOAD+0)
605#define USE_LAZY_LOAD 0
606#endif
607
608#if !USE_LAZY_LOAD
609static inline const rb_iseq_t *rb_iseq_complete(const rb_iseq_t *iseq) {return 0;}
610#endif
611const rb_iseq_t *rb_iseq_complete(const rb_iseq_t *iseq);
612
613static inline const rb_iseq_t *
614rb_iseq_check(const rb_iseq_t *iseq)
615{
616 if (USE_LAZY_LOAD && ISEQ_BODY(iseq) == NULL) {
617 rb_iseq_complete((rb_iseq_t *)iseq);
618 }
619 return iseq;
620}
621
622static inline bool
623rb_iseq_attr_p(const rb_iseq_t *iseq, enum rb_builtin_attr attr)
624{
625 return (ISEQ_BODY(iseq)->builtin_attrs & attr) == attr;
626}
627
628static inline const rb_iseq_t *
629def_iseq_ptr(rb_method_definition_t *def)
630{
631//TODO: re-visit. to check the bug, enable this assertion.
632#if VM_CHECK_MODE > 0
633 if (def->type != VM_METHOD_TYPE_ISEQ) rb_bug("def_iseq_ptr: not iseq (%d)", def->type);
634#endif
635 return rb_iseq_check(def->body.iseq.iseqptr);
636}
637
638enum ruby_special_exceptions {
639 ruby_error_reenter,
640 ruby_error_nomemory,
641 ruby_error_sysstack,
642 ruby_error_stackfatal,
643 ruby_error_stream_closed,
644 ruby_special_error_count
645};
646
647extern const rb_data_type_t ruby_vm_data_type;
648
649#define GetVMPtr(obj, ptr) \
650 GetCoreDataFromValue((obj), rb_vm_t, &ruby_vm_data_type, (ptr))
651
652struct rb_vm_struct;
653typedef void rb_vm_at_exit_func(struct rb_vm_struct*);
654
655typedef struct rb_at_exit_list {
656 rb_vm_at_exit_func *func;
657 struct rb_at_exit_list *next;
659
660void *rb_objspace_alloc(void);
661void rb_objspace_free(void *objspace);
662void rb_objspace_call_finalizer(void);
663
664enum rb_hook_list_type {
665 hook_list_type_ractor_local,
666 hook_list_type_targeted_iseq,
667 hook_list_type_targeted_def, // C function
668 hook_list_type_global
669};
670
671typedef struct rb_hook_list_struct {
672 struct rb_event_hook_struct *hooks;
673 rb_event_flag_t events;
674 unsigned int running;
675 enum rb_hook_list_type type;
676 bool need_clean;
678
679// see builtin.h for definition
680typedef const struct rb_builtin_function *RB_BUILTIN;
681
683 VALUE *varptr;
684 struct global_object_list *next;
685};
686
687typedef struct rb_vm_struct {
688 VALUE self;
689
690 struct {
691 struct ccan_list_head set;
692 unsigned int cnt;
693 unsigned int blocking_cnt;
694
695 struct rb_ractor_struct *main_ractor;
696 struct rb_thread_struct *main_thread; // == vm->ractor.main_ractor->threads.main
697
698 struct {
699 // monitor
700 rb_nativethread_lock_t lock;
701 struct rb_ractor_struct *lock_owner;
702 unsigned int lock_rec;
703
704 // join at exit
705 rb_nativethread_cond_t terminate_cond;
706 bool terminate_waiting;
707
708#ifndef RUBY_THREAD_PTHREAD_H
709 // win32
710 bool barrier_waiting;
711 unsigned int barrier_cnt;
712 rb_nativethread_cond_t barrier_complete_cond;
713 rb_nativethread_cond_t barrier_release_cond;
714#endif
715 } sync;
716
717#ifdef RUBY_THREAD_PTHREAD_H
718 // ractor scheduling
719 struct {
720 rb_nativethread_lock_t lock;
721 struct rb_ractor_struct *lock_owner;
722 bool locked;
723
724 rb_nativethread_cond_t cond; // GRQ
725 unsigned int snt_cnt; // count of shared NTs
726 unsigned int dnt_cnt; // count of dedicated NTs
727
728 unsigned int running_cnt;
729
730 unsigned int max_cpu;
731 struct ccan_list_head grq; // // Global Ready Queue
732 unsigned int grq_cnt;
733
734 // running threads
735 struct ccan_list_head running_threads;
736
737 // threads which switch context by timeslice
738 struct ccan_list_head timeslice_threads;
739
740 struct ccan_list_head zombie_threads;
741
742 // true if timeslice timer is not enable
743 bool timeslice_wait_inf;
744
745 // barrier
746 rb_nativethread_cond_t barrier_complete_cond;
747 rb_nativethread_cond_t barrier_release_cond;
748 bool barrier_waiting;
749 unsigned int barrier_waiting_cnt;
750 unsigned int barrier_serial;
751 struct rb_ractor_struct *barrier_ractor;
752 unsigned int barrier_lock_rec;
753 } sched;
754#endif
755 } ractor;
756
757#ifdef USE_SIGALTSTACK
758 void *main_altstack;
759#endif
760
761 rb_serial_t fork_gen;
762
763 /* set in single-threaded processes only: */
764 volatile int ubf_async_safe;
765
766 unsigned int running: 1;
767 unsigned int thread_abort_on_exception: 1;
768 unsigned int thread_report_on_exception: 1;
769 unsigned int thread_ignore_deadlock: 1;
770
771 /* object management */
772 VALUE mark_object_ary;
774 const VALUE special_exceptions[ruby_special_error_count];
775
776 /* Ruby Box */
777 rb_box_t *master_box;
778 rb_box_t *root_box;
779 rb_box_t *main_box;
780
781 /* load */
782 // For running the init function of statically linked
783 // extensions when they are loaded
784 struct st_table static_ext_inits;
785
786 /* signal */
787 struct {
788 VALUE cmd[RUBY_NSIG];
789 } trap_list;
790
791 /* hook (for internal events: NEWOBJ, FREEOBJ, GC events, etc.) */
792 rb_hook_list_t global_hooks;
793
794 int src_encoding_index;
795
796 /* workqueue (thread-safe, NOT async-signal-safe) */
797 struct ccan_list_head workqueue; /* <=> rb_workqueue_job.jnode */
798 rb_nativethread_lock_t workqueue_lock;
799
800 VALUE orig_progname, progname;
801 VALUE coverages, me2counter;
802 int coverage_mode;
803
804 struct {
805 struct rb_objspace *objspace;
806 struct gc_mark_func_data_struct {
807 void *data;
808 void (*mark_func)(VALUE v, void *data);
809 } *mark_func_data;
810 } gc;
811
812 rb_at_exit_list *at_exit;
813
814 const struct rb_builtin_function *builtin_function_table;
815
816 st_table ci_table;
817 struct rb_id_table negative_cme_table;
818 st_table overloaded_cme_table; // cme -> overloaded_cme
819 set_table unused_block_warning_table;
820 VALUE cc_refinement_set;
821
822 // This id table contains a mapping from ID to ICs. It does this with ID
823 // keys and nested st_tables as values. The nested tables have ICs as keys
824 // and Qtrue as values. It is used when inline constant caches need to be
825 // invalidated or ISEQs are being freed.
826 struct rb_id_table constant_cache;
827 ID inserting_constant_cache_id;
828
829#ifndef VM_GLOBAL_CC_CACHE_TABLE_SIZE
830#define VM_GLOBAL_CC_CACHE_TABLE_SIZE 1023
831#endif
832 const struct rb_callcache *global_cc_cache_table[VM_GLOBAL_CC_CACHE_TABLE_SIZE]; // vm_eval.c
833 bool global_cc_cache_table_used; // vm_eval.c
834
835#if defined(USE_VM_CLOCK) && USE_VM_CLOCK
836 uint32_t clock;
837#endif
838
839 /* params */
840 struct { /* size in byte */
841 size_t thread_vm_stack_size;
842 size_t thread_machine_stack_size;
843 size_t fiber_vm_stack_size;
844 size_t fiber_machine_stack_size;
845 } default_params;
846} rb_vm_t;
847
848extern bool ruby_vm_during_cleanup;
849
850/* default values */
851
852#define RUBY_VM_SIZE_ALIGN 4096
853
854#define RUBY_VM_THREAD_VM_STACK_SIZE ( 128 * 1024 * sizeof(VALUE)) /* 512 KB or 1024 KB */
855#define RUBY_VM_THREAD_VM_STACK_SIZE_MIN ( 2 * 1024 * sizeof(VALUE)) /* 8 KB or 16 KB */
856#define RUBY_VM_THREAD_MACHINE_STACK_SIZE ( 128 * 1024 * sizeof(VALUE)) /* 512 KB or 1024 KB */
857#define RUBY_VM_THREAD_MACHINE_STACK_SIZE_MIN ( 16 * 1024 * sizeof(VALUE)) /* 64 KB or 128 KB */
858
859#define RUBY_VM_FIBER_VM_STACK_SIZE ( 16 * 1024 * sizeof(VALUE)) /* 64 KB or 128 KB */
860#define RUBY_VM_FIBER_VM_STACK_SIZE_MIN ( 2 * 1024 * sizeof(VALUE)) /* 8 KB or 16 KB */
861#define RUBY_VM_FIBER_MACHINE_STACK_SIZE ( 64 * 1024 * sizeof(VALUE)) /* 256 KB or 512 KB */
862#if defined(__powerpc64__) || defined(__ppc64__) // macOS has __ppc64__
863#define RUBY_VM_FIBER_MACHINE_STACK_SIZE_MIN ( 32 * 1024 * sizeof(VALUE)) /* 128 KB or 256 KB */
864#else
865#define RUBY_VM_FIBER_MACHINE_STACK_SIZE_MIN ( 16 * 1024 * sizeof(VALUE)) /* 64 KB or 128 KB */
866#endif
867
868#if __has_feature(memory_sanitizer) || __has_feature(address_sanitizer) || __has_feature(leak_sanitizer)
869/* It seems sanitizers consume A LOT of machine stacks */
870#undef RUBY_VM_THREAD_MACHINE_STACK_SIZE
871#define RUBY_VM_THREAD_MACHINE_STACK_SIZE (1024 * 1024 * sizeof(VALUE))
872#undef RUBY_VM_THREAD_MACHINE_STACK_SIZE_MIN
873#define RUBY_VM_THREAD_MACHINE_STACK_SIZE_MIN ( 512 * 1024 * sizeof(VALUE))
874#undef RUBY_VM_FIBER_MACHINE_STACK_SIZE
875#define RUBY_VM_FIBER_MACHINE_STACK_SIZE ( 256 * 1024 * sizeof(VALUE))
876#undef RUBY_VM_FIBER_MACHINE_STACK_SIZE_MIN
877#define RUBY_VM_FIBER_MACHINE_STACK_SIZE_MIN ( 128 * 1024 * sizeof(VALUE))
878#endif
879
880#ifndef VM_DEBUG_BP_CHECK
881#define VM_DEBUG_BP_CHECK 0
882#endif
883
884#ifndef VM_DEBUG_VERIFY_METHOD_CACHE
885#define VM_DEBUG_VERIFY_METHOD_CACHE (VMDEBUG != 0)
886#endif
887
889 VALUE self;
890 const VALUE *ep;
891 union {
892 const rb_iseq_t *iseq;
893 const struct vm_ifunc *ifunc;
894 VALUE val;
895 } code;
896};
897
898enum rb_block_handler_type {
899 block_handler_type_iseq,
900 block_handler_type_ifunc,
901 block_handler_type_symbol,
902 block_handler_type_proc
903};
904
905enum rb_block_type {
906 block_type_iseq,
907 block_type_ifunc,
908 block_type_symbol,
909 block_type_proc
910};
911
912struct rb_block {
913 union {
914 struct rb_captured_block captured;
915 VALUE symbol;
916 VALUE proc;
917 } as;
918 enum rb_block_type type;
919};
920
922 const VALUE *pc; // cfp[0]
923 VALUE *sp; // cfp[1]
924 const rb_iseq_t *_iseq; // cfp[2] -- use CFP_ISEQ(cfp) to read
925 VALUE self; // cfp[3] / block[0]
926 const VALUE *ep; // cfp[4] / block[1]
927 const void *block_code; // cfp[5] / block[2] -- iseq, ifunc, or forwarded block handler
928 void *jit_return; // cfp[6] -- return address for JIT code
929#if VM_DEBUG_BP_CHECK
930 VALUE *bp_check; // cfp[7]
931#endif
933
934extern const rb_data_type_t ruby_threadptr_data_type;
935
936static inline struct rb_thread_struct *
937rb_thread_ptr(VALUE thval)
938{
939 return (struct rb_thread_struct *)rb_check_typeddata(thval, &ruby_threadptr_data_type);
940}
941
942enum rb_thread_status {
943 THREAD_RUNNABLE,
944 THREAD_STOPPED,
945 THREAD_STOPPED_FOREVER,
946 THREAD_KILLED
947};
948
949#ifdef RUBY_JMP_BUF
950typedef RUBY_JMP_BUF rb_jmpbuf_t;
951#else
952typedef void *rb_jmpbuf_t[5];
953#endif
954
955/*
956 `rb_vm_tag_jmpbuf_t` type represents a buffer used to
957 long jump to a C frame associated with `rb_vm_tag`.
958
959 Use-site of `rb_vm_tag_jmpbuf_t` is responsible for calling the
960 following functions:
961 - `rb_vm_tag_jmpbuf_init` once `rb_vm_tag_jmpbuf_t` is allocated.
962 - `rb_vm_tag_jmpbuf_deinit` once `rb_vm_tag_jmpbuf_t` is no longer necessary.
963
964 `RB_VM_TAG_JMPBUF_GET` transforms a `rb_vm_tag_jmpbuf_t` into a
965 `rb_jmpbuf_t` to be passed to `rb_setjmp/rb_longjmp`.
966*/
967#if defined(__wasm__) && !defined(__EMSCRIPTEN__)
968/*
969 WebAssembly target with Asyncify-based SJLJ needs
970 to capture the execution context by unwind/rewind-ing
971 call frames into a jump buffer. The buffer space tends
972 to be considerably large unlike other architectures'
973 register-based buffers.
974 Therefore, we allocates the buffer on the heap on such
975 environments.
976*/
977typedef rb_jmpbuf_t *rb_vm_tag_jmpbuf_t;
978
979#define RB_VM_TAG_JMPBUF_GET(buf) (*buf)
980
981static inline void
982rb_vm_tag_jmpbuf_init(rb_vm_tag_jmpbuf_t *jmpbuf)
983{
984 *jmpbuf = ruby_xmalloc(sizeof(rb_jmpbuf_t));
985}
986
987static inline void
988rb_vm_tag_jmpbuf_deinit(const rb_vm_tag_jmpbuf_t *jmpbuf)
989{
990 ruby_xfree(*jmpbuf);
991}
992#else
993typedef rb_jmpbuf_t rb_vm_tag_jmpbuf_t;
994
995#define RB_VM_TAG_JMPBUF_GET(buf) (buf)
996
997static inline void
998rb_vm_tag_jmpbuf_init(rb_vm_tag_jmpbuf_t *jmpbuf)
999{
1000 // no-op
1001}
1002
1003static inline void
1004rb_vm_tag_jmpbuf_deinit(const rb_vm_tag_jmpbuf_t *jmpbuf)
1005{
1006 // no-op
1007}
1008#endif
1009
1010/*
1011 the members which are written in EC_PUSH_TAG() should be placed at
1012 the beginning and the end, so that entire region is accessible.
1013*/
1015 VALUE tag;
1016 VALUE retval;
1017 rb_vm_tag_jmpbuf_t buf;
1018 struct rb_vm_tag *prev;
1019 enum ruby_tag_type state;
1020 unsigned int lock_rec;
1021};
1022
1023STATIC_ASSERT(rb_vm_tag_buf_offset, offsetof(struct rb_vm_tag, buf) > 0);
1024STATIC_ASSERT(rb_vm_tag_buf_end,
1025 offsetof(struct rb_vm_tag, buf) + sizeof(rb_vm_tag_jmpbuf_t) <
1026 sizeof(struct rb_vm_tag));
1027
1030 void *arg;
1031 rb_atomic_t event_serial;
1032};
1033
1034struct rb_mutex_struct;
1035
1036typedef struct rb_fiber_struct rb_fiber_t;
1037
1039 struct rb_waiting_list *next;
1040 struct rb_thread_struct *thread;
1041 struct rb_fiber_struct *fiber;
1042};
1043
1045 /* execution information */
1046 VALUE *vm_stack; /* must free, must mark */
1047 size_t vm_stack_size; /* size in word (byte size / sizeof(VALUE)) */
1048 rb_control_frame_t *cfp;
1049
1050 struct rb_vm_tag *tag;
1051
1052 /* interrupt flags */
1053 rb_atomic_t interrupt_flag;
1054 rb_atomic_t interrupt_mask; /* size should match flag */
1055#if defined(USE_VM_CLOCK) && USE_VM_CLOCK
1056 uint32_t checked_clock;
1057#endif
1058
1059 rb_fiber_t *fiber_ptr;
1060 struct rb_thread_struct *thread_ptr;
1061 rb_serial_t serial;
1062 rb_serial_t ractor_id;
1063
1064 /* storage (ec (fiber) local) */
1065 struct rb_id_table *local_storage;
1066 VALUE local_storage_recursive_hash;
1067 VALUE local_storage_recursive_hash_for_trace;
1068
1069 /* Inheritable fiber storage. */
1070 VALUE storage;
1071
1072 /* eval env */
1073 const VALUE *root_lep;
1074 VALUE root_svar;
1075
1076 /* trace information */
1077 struct rb_trace_arg_struct *trace_arg;
1078
1079 /* temporary places */
1080 VALUE errinfo;
1081 VALUE passed_block_handler; /* for rb_iterate */
1082
1083 uint8_t raised_flag; /* only 3 bits needed */
1084
1085 /* n.b. only 7 bits needed, really: */
1086 BITFIELD(enum method_missing_reason, method_missing_reason, 8);
1087
1088 VALUE private_const_reference;
1089
1090 struct {
1091 VALUE obj;
1092 VALUE fields_obj;
1093 } gen_fields_cache;
1094
1095 /* for GC */
1096 struct {
1097 VALUE *stack_start;
1098 VALUE *stack_end;
1099 size_t stack_maxsize;
1101
1102#ifdef RUBY_ASAN_ENABLED
1103 void *asan_fake_stack_handle;
1104#endif
1105 } machine;
1106};
1107
1108#ifndef rb_execution_context_t
1110#define rb_execution_context_t rb_execution_context_t
1111#endif
1112
1113// for builtin.h
1114#define VM_CORE_H_EC_DEFINED 1
1115
1116// Set the vm_stack pointer in the execution context.
1117void rb_ec_set_vm_stack(rb_execution_context_t *ec, VALUE *stack, size_t size);
1118
1119// Initialize the vm_stack pointer in the execution context and push the initial stack frame.
1120// @param ec the execution context to update.
1121// @param stack a pointer to the stack to use.
1122// @param size the size of the stack, as in `VALUE stack[size]`.
1123void rb_ec_initialize_vm_stack(rb_execution_context_t *ec, VALUE *stack, size_t size);
1124
1125// Clear (set to `NULL`) the vm_stack pointer.
1126// @param ec the execution context to update.
1127void rb_ec_clear_vm_stack(rb_execution_context_t *ec);
1128
1129// Close an execution context and free related resources that are no longer needed.
1130// @param ec the execution context to close.
1131void rb_ec_close(rb_execution_context_t *ec);
1132
1134 bool ractor_safe;
1135};
1136
1137typedef struct rb_ractor_struct rb_ractor_t;
1138
1139struct rb_native_thread;
1140
1141typedef struct rb_thread_struct {
1142 struct ccan_list_node lt_node; // managed by a ractor (r->threads.set)
1143 VALUE self;
1144 rb_ractor_t *ractor;
1145 rb_vm_t *vm;
1146 struct rb_native_thread *nt;
1148
1149 struct rb_thread_sched_item sched;
1150 bool mn_schedulable;
1151 rb_atomic_t serial; // only for RUBY_DEBUG_LOG()
1152
1153 VALUE last_status; /* $? */
1154
1155 /* for cfunc */
1156 struct rb_calling_info *calling;
1157
1158 /* for load(true) */
1159 VALUE top_self;
1160 VALUE top_wrapper;
1161
1162 /* thread control */
1163
1164 BITFIELD(enum rb_thread_status, status, 2);
1165 /* bit flags */
1166 unsigned int main_thread : 1;
1167 unsigned int has_dedicated_nt : 1;
1168 unsigned int to_kill : 1;
1169 unsigned int abort_on_exception: 1;
1170 unsigned int report_on_exception: 1;
1171 unsigned int pending_interrupt_queue_checked: 1;
1172 int8_t priority; /* -3 .. 3 (RUBY_THREAD_PRIORITY_{MIN,MAX}) */
1173 uint32_t running_time_us; /* 12500..800000 */
1174
1175 void *blocking_region_buffer;
1176
1177 VALUE thgroup;
1178 VALUE value;
1179
1180 /* temporary place of retval on OPT_CALL_THREADED_CODE */
1181#if OPT_CALL_THREADED_CODE
1182 VALUE retval;
1183#endif
1184
1185 /* async errinfo queue */
1186 VALUE pending_interrupt_queue;
1187 VALUE pending_interrupt_mask_stack;
1188
1189 /* interrupt management */
1190 rb_nativethread_lock_t interrupt_lock;
1191 struct rb_unblock_callback unblock;
1192 VALUE locking_mutex;
1193 struct rb_mutex_struct *keeping_mutexes;
1194 struct ccan_list_head interrupt_exec_tasks;
1195
1196 struct rb_waiting_list *join_list;
1197
1198 union {
1199 struct {
1200 VALUE proc;
1201 VALUE args;
1202 int kw_splat;
1203 } proc;
1204 struct {
1205 VALUE (*func)(void *);
1206 void *arg;
1207 } func;
1208 } invoke_arg;
1209
1210 enum thread_invoke_type {
1211 thread_invoke_type_none = 0,
1212 thread_invoke_type_proc,
1213 thread_invoke_type_ractor_proc,
1214 thread_invoke_type_func
1215 } invoke_type;
1216
1217 /* fiber */
1218 rb_fiber_t *root_fiber;
1219
1220 VALUE scheduler;
1221 unsigned int blocking;
1222
1223 /* misc */
1224 VALUE name;
1225 void **specific_storage;
1226
1227 struct rb_ext_config ext_config;
1228} rb_thread_t;
1229
1230static inline unsigned int
1231rb_th_serial(const rb_thread_t *th)
1232{
1233 return th ? (unsigned int)th->serial : 0;
1234}
1235
1236typedef enum {
1237 VM_DEFINECLASS_TYPE_CLASS = 0x00,
1238 VM_DEFINECLASS_TYPE_SINGLETON_CLASS = 0x01,
1239 VM_DEFINECLASS_TYPE_MODULE = 0x02,
1240 /* 0x03..0x06 is reserved */
1241 VM_DEFINECLASS_TYPE_MASK = 0x07
1242} rb_vm_defineclass_type_t;
1243
1244#define VM_DEFINECLASS_TYPE(x) ((rb_vm_defineclass_type_t)(x) & VM_DEFINECLASS_TYPE_MASK)
1245#define VM_DEFINECLASS_FLAG_SCOPED 0x08
1246#define VM_DEFINECLASS_FLAG_HAS_SUPERCLASS 0x10
1247#define VM_DEFINECLASS_FLAG_DYNAMIC_CREF 0x20
1248#define VM_DEFINECLASS_SCOPED_P(x) ((x) & VM_DEFINECLASS_FLAG_SCOPED)
1249#define VM_DEFINECLASS_HAS_SUPERCLASS_P(x) \
1250 ((x) & VM_DEFINECLASS_FLAG_HAS_SUPERCLASS)
1251#define VM_DEFINECLASS_DYNAMIC_CREF_P(x) \
1252 ((x) & VM_DEFINECLASS_FLAG_DYNAMIC_CREF)
1253
1254/* iseq.c */
1255RUBY_SYMBOL_EXPORT_BEGIN
1256
1257/* node -> iseq */
1258rb_iseq_t *rb_iseq_new (const VALUE ast_value, VALUE name, VALUE path, VALUE realpath, const rb_iseq_t *parent, enum rb_iseq_type);
1259rb_iseq_t *rb_iseq_new_top (const VALUE ast_value, VALUE name, VALUE path, VALUE realpath, const rb_iseq_t *parent);
1260rb_iseq_t *rb_iseq_new_main (const VALUE ast_value, VALUE path, VALUE realpath, const rb_iseq_t *parent, int opt);
1261rb_iseq_t *rb_iseq_new_eval (const VALUE ast_value, VALUE name, VALUE path, VALUE realpath, int first_lineno, const rb_iseq_t *parent, int isolated_depth);
1262rb_iseq_t *rb_iseq_new_with_opt( VALUE ast_value, VALUE name, VALUE path, VALUE realpath, int first_lineno, const rb_iseq_t *parent, int isolated_depth,
1263 enum rb_iseq_type, const rb_compile_option_t*,
1264 VALUE script_lines);
1265
1266struct iseq_link_anchor;
1268 VALUE flags;
1269 VALUE reserved;
1270 void (*func)(rb_iseq_t *, struct iseq_link_anchor *, const void *);
1271 const void *data;
1272};
1273static inline struct rb_iseq_new_with_callback_callback_func *
1274rb_iseq_new_with_callback_new_callback(
1275 void (*func)(rb_iseq_t *, struct iseq_link_anchor *, const void *), const void *ptr)
1276{
1278 IMEMO_NEW(struct rb_iseq_new_with_callback_callback_func, imemo_ifunc, Qfalse);
1279 memo->func = func;
1280 memo->data = ptr;
1281
1282 return memo;
1283}
1284rb_iseq_t *rb_iseq_new_with_callback(const struct rb_iseq_new_with_callback_callback_func * ifunc,
1285 VALUE name, VALUE path, VALUE realpath, int first_lineno,
1286 const rb_iseq_t *parent, enum rb_iseq_type, const rb_compile_option_t*);
1287
1288VALUE rb_iseq_disasm(const rb_iseq_t *iseq);
1289int rb_iseq_disasm_insn(VALUE str, const VALUE *iseqval, size_t pos, const rb_iseq_t *iseq, VALUE child);
1290
1291VALUE rb_iseq_coverage(const rb_iseq_t *iseq);
1292
1293RUBY_EXTERN VALUE rb_cISeq;
1294RUBY_EXTERN VALUE rb_cRubyVM;
1295RUBY_EXTERN VALUE rb_mRubyVMFrozenCore;
1296RUBY_EXTERN VALUE rb_block_param_proxy;
1297RUBY_SYMBOL_EXPORT_END
1298
1299extern const rb_data_type_t ruby_proc_data_type;
1300
1301#define GetProcPtr(obj, ptr) \
1302 GetCoreDataFromValue((obj), rb_proc_t, &ruby_proc_data_type, (ptr))
1303
1304typedef struct {
1305 const struct rb_block block;
1306 unsigned int is_from_method: 1; /* bool */
1307 unsigned int is_lambda: 1; /* bool */
1308 unsigned int is_isolated: 1; /* bool */
1309} rb_proc_t;
1310
1311RUBY_SYMBOL_EXPORT_BEGIN
1312VALUE rb_proc_isolate(VALUE self);
1313VALUE rb_proc_isolate_bang(VALUE self, VALUE replace_self);
1314VALUE rb_proc_ractor_make_shareable(VALUE proc, VALUE replace_self);
1315RUBY_SYMBOL_EXPORT_END
1316
1317typedef struct {
1318 VALUE flags; /* imemo header */
1319 rb_iseq_t *iseq;
1320 const VALUE *ep;
1321 const VALUE *env;
1322 unsigned int env_size;
1323} rb_env_t;
1324
1325extern const rb_data_type_t ruby_binding_data_type;
1326
1327#define GetBindingPtr(obj, ptr) \
1328 GetCoreDataFromValue((obj), rb_binding_t, &ruby_binding_data_type, (ptr))
1329
1330typedef struct {
1331 const struct rb_block block;
1332 const VALUE pathobj;
1333 int first_lineno;
1334} rb_binding_t;
1335
1336/* used by compile time and send insn */
1337
1338enum vm_check_match_type {
1339 VM_CHECKMATCH_TYPE_WHEN = 1,
1340 VM_CHECKMATCH_TYPE_CASE = 2,
1341 VM_CHECKMATCH_TYPE_RESCUE = 3
1342};
1343
1344#define VM_CHECKMATCH_TYPE_MASK 0x03
1345#define VM_CHECKMATCH_ARRAY 0x04
1346
1347enum vm_opt_newarray_send_type {
1348 VM_OPT_NEWARRAY_SEND_MAX = 1,
1349 VM_OPT_NEWARRAY_SEND_MIN = 2,
1350 VM_OPT_NEWARRAY_SEND_HASH = 3,
1351 VM_OPT_NEWARRAY_SEND_PACK = 4,
1352 VM_OPT_NEWARRAY_SEND_PACK_BUFFER = 5,
1353 VM_OPT_NEWARRAY_SEND_INCLUDE_P = 6,
1354};
1355
1356enum vm_special_object_type {
1357 VM_SPECIAL_OBJECT_VMCORE = 1,
1358 VM_SPECIAL_OBJECT_CBASE,
1359 VM_SPECIAL_OBJECT_CONST_BASE
1360};
1361
1362enum vm_svar_index {
1363 VM_SVAR_LASTLINE = 0, /* $_ */
1364 VM_SVAR_BACKREF = 1, /* $~ */
1365
1366 VM_SVAR_EXTRA_START = 2,
1367 VM_SVAR_FLIPFLOP_START = 2 /* flipflop */
1368};
1369
1370/* inline cache */
1371typedef struct iseq_inline_constant_cache *IC;
1372typedef struct iseq_inline_iv_cache_entry *IVC;
1373typedef struct iseq_inline_cvar_cache_entry *ICVARC;
1374typedef union iseq_inline_storage_entry *ISE;
1375typedef const struct rb_callinfo *CALL_INFO;
1376typedef const struct rb_callcache *CALL_CACHE;
1377typedef struct rb_call_data *CALL_DATA;
1378
1379typedef VALUE CDHASH;
1380
1381#ifndef FUNC_FASTCALL
1382#define FUNC_FASTCALL(x) x
1383#endif
1384
1385typedef rb_control_frame_t *
1386 (FUNC_FASTCALL(*rb_insn_func_t))(rb_execution_context_t *, rb_control_frame_t *);
1387
1388#define VM_TAGGED_PTR_SET(p, tag) ((VALUE)(p) | (tag))
1389#define VM_TAGGED_PTR_REF(v, mask) ((void *)((v) & ~mask))
1390
1391#define GC_GUARDED_PTR(p) VM_TAGGED_PTR_SET((p), 0x01)
1392#define GC_GUARDED_PTR_REF(p) VM_TAGGED_PTR_REF((p), 0x03)
1393#define GC_GUARDED_PTR_P(p) (((VALUE)(p)) & 0x01)
1394
1395enum vm_frame_env_flags {
1396 /* Frame/Environment flag bits:
1397 * MMMM MMMM MMMM MMMM ___F FFFF FFFE EEEX (LSB)
1398 *
1399 * X : tag for GC marking (It seems as Fixnum)
1400 * EEE : 4 bits Env flags
1401 * FF..: 8 bits Frame flags
1402 * MM..: 15 bits frame magic (to check frame corruption)
1403 */
1404
1405 /* frame types */
1406 VM_FRAME_MAGIC_METHOD = 0x11110001,
1407 VM_FRAME_MAGIC_BLOCK = 0x22220001,
1408 VM_FRAME_MAGIC_CLASS = 0x33330001,
1409 VM_FRAME_MAGIC_TOP = 0x44440001,
1410 VM_FRAME_MAGIC_CFUNC = 0x55550001,
1411 VM_FRAME_MAGIC_IFUNC = 0x66660001,
1412 VM_FRAME_MAGIC_EVAL = 0x77770001,
1413 VM_FRAME_MAGIC_RESCUE = 0x78880001,
1414 VM_FRAME_MAGIC_DUMMY = 0x79990001,
1415
1416 VM_FRAME_MAGIC_MASK = 0x7fff0001,
1417
1418 /* frame flag */
1419 VM_FRAME_FLAG_FINISH = 0x0020,
1420 VM_FRAME_FLAG_BMETHOD = 0x0040,
1421 VM_FRAME_FLAG_CFRAME = 0x0080,
1422 VM_FRAME_FLAG_LAMBDA = 0x0100,
1423 VM_FRAME_FLAG_MODIFIED_BLOCK_PARAM = 0x0200,
1424 VM_FRAME_FLAG_CFRAME_KW = 0x0400,
1425 VM_FRAME_FLAG_PASSED = 0x0800,
1426 VM_FRAME_FLAG_BOX_REQUIRE = 0x1000,
1427
1428 /* env flag */
1429 VM_ENV_FLAG_LOCAL = 0x0002,
1430 VM_ENV_FLAG_ESCAPED = 0x0004,
1431 VM_ENV_FLAG_WB_REQUIRED = 0x0008,
1432 VM_ENV_FLAG_ISOLATED = 0x0010,
1433};
1434
1435#define VM_ENV_DATA_SIZE ( 3)
1436
1437#define VM_ENV_DATA_INDEX_ME_CREF (-2) /* ep[-2] */
1438#define VM_ENV_DATA_INDEX_SPECVAL (-1) /* ep[-1] */
1439#define VM_ENV_DATA_INDEX_FLAGS ( 0) /* ep[ 0] */
1440#define VM_ENV_DATA_INDEX_ENV ( 1) /* ep[ 1] */
1441
1442#define VM_ENV_INDEX_LAST_LVAR (-VM_ENV_DATA_SIZE)
1443
1444static inline void VM_FORCE_WRITE_SPECIAL_CONST(const VALUE *ptr, VALUE special_const_value);
1445
1446static inline void
1447VM_ENV_FLAGS_SET(const VALUE *ep, VALUE flag)
1448{
1449 VALUE flags = ep[VM_ENV_DATA_INDEX_FLAGS];
1450 VM_ASSERT(FIXNUM_P(flags));
1451 VM_FORCE_WRITE_SPECIAL_CONST(&ep[VM_ENV_DATA_INDEX_FLAGS], flags | flag);
1452}
1453
1454static inline void
1455VM_ENV_FLAGS_UNSET(const VALUE *ep, VALUE flag)
1456{
1457 VALUE flags = ep[VM_ENV_DATA_INDEX_FLAGS];
1458 VM_ASSERT(FIXNUM_P(flags));
1459 VM_FORCE_WRITE_SPECIAL_CONST(&ep[VM_ENV_DATA_INDEX_FLAGS], flags & ~flag);
1460}
1461
1462static inline unsigned long
1463VM_ENV_FLAGS(const VALUE *ep, long flag)
1464{
1465 VALUE flags = ep[VM_ENV_DATA_INDEX_FLAGS];
1466 VM_ASSERT(FIXNUM_P(flags));
1467 return flags & flag;
1468}
1469
1470static inline unsigned long
1471VM_ENV_FLAGS_UNCHECKED(const VALUE *ep, long flag)
1472{
1473 VALUE flags = ep[VM_ENV_DATA_INDEX_FLAGS];
1474 return flags & flag;
1475}
1476
1477static inline unsigned long
1478VM_ENV_FRAME_TYPE_P(const VALUE *ep, unsigned long frame_type)
1479{
1480 return VM_ENV_FLAGS(ep, VM_FRAME_MAGIC_MASK) == frame_type;
1481}
1482
1483static inline unsigned long
1484VM_FRAME_TYPE(const rb_control_frame_t *cfp)
1485{
1486 return VM_ENV_FLAGS(cfp->ep, VM_FRAME_MAGIC_MASK);
1487}
1488
1489static inline unsigned long
1490VM_FRAME_TYPE_UNCHECKED(const rb_control_frame_t *cfp)
1491{
1492 return VM_ENV_FLAGS_UNCHECKED(cfp->ep, VM_FRAME_MAGIC_MASK);
1493}
1494
1495static inline int
1496VM_FRAME_LAMBDA_P(const rb_control_frame_t *cfp)
1497{
1498 return VM_ENV_FLAGS(cfp->ep, VM_FRAME_FLAG_LAMBDA) != 0;
1499}
1500
1501static inline int
1502VM_FRAME_CFRAME_KW_P(const rb_control_frame_t *cfp)
1503{
1504 return VM_ENV_FLAGS(cfp->ep, VM_FRAME_FLAG_CFRAME_KW) != 0;
1505}
1506
1507static inline int
1508VM_FRAME_FINISHED_P(const rb_control_frame_t *cfp)
1509{
1510 return VM_ENV_FLAGS(cfp->ep, VM_FRAME_FLAG_FINISH) != 0;
1511}
1512
1513static inline int
1514VM_FRAME_FINISHED_P_UNCHECKED(const rb_control_frame_t *cfp)
1515{
1516 return VM_ENV_FLAGS_UNCHECKED(cfp->ep, VM_FRAME_FLAG_FINISH) != 0;
1517}
1518
1519static inline int
1520VM_FRAME_BMETHOD_P(const rb_control_frame_t *cfp)
1521{
1522 return VM_ENV_FLAGS(cfp->ep, VM_FRAME_FLAG_BMETHOD) != 0;
1523}
1524
1525static inline int
1526rb_obj_is_iseq(VALUE iseq)
1527{
1528 return imemo_type_p(iseq, imemo_iseq);
1529}
1530
1531#if VM_CHECK_MODE > 0
1532#define RUBY_VM_NORMAL_ISEQ_P(iseq) rb_obj_is_iseq((VALUE)iseq)
1533#endif
1534
1535static inline int
1536VM_FRAME_CFRAME_P(const rb_control_frame_t *cfp)
1537{
1538 int cframe_p = VM_ENV_FLAGS(cfp->ep, VM_FRAME_FLAG_CFRAME) != 0;
1539 // With ZJIT lightweight frames, cfp->_iseq may be stale (not yet materialized),
1540 // so skip this assertion when jit_return is set (zjit.h is not available here).
1541 VM_ASSERT(cfp->jit_return ||
1542 RUBY_VM_NORMAL_ISEQ_P(cfp->_iseq) != cframe_p ||
1543 (VM_FRAME_TYPE(cfp) & VM_FRAME_MAGIC_MASK) == VM_FRAME_MAGIC_DUMMY);
1544 return cframe_p;
1545}
1546
1547static inline int
1548VM_FRAME_CFRAME_P_UNCHECKED(const rb_control_frame_t *cfp)
1549{
1550 return VM_ENV_FLAGS_UNCHECKED(cfp->ep, VM_FRAME_FLAG_CFRAME) != 0;
1551}
1552
1553static inline int
1554VM_FRAME_RUBYFRAME_P(const rb_control_frame_t *cfp)
1555{
1556 return !VM_FRAME_CFRAME_P(cfp);
1557}
1558
1559static inline int
1560VM_FRAME_RUBYFRAME_P_UNCHECKED(const rb_control_frame_t *cfp)
1561{
1562 return !VM_FRAME_CFRAME_P_UNCHECKED(cfp);
1563}
1564
1565static inline int
1566VM_FRAME_NS_REQUIRE_P(const rb_control_frame_t *cfp)
1567{
1568 return VM_ENV_FLAGS(cfp->ep, VM_FRAME_FLAG_BOX_REQUIRE) != 0;
1569}
1570
1571#define RUBYVM_CFUNC_FRAME_P(cfp) \
1572 (VM_FRAME_TYPE(cfp) == VM_FRAME_MAGIC_CFUNC)
1573
1574#define VM_GUARDED_PREV_EP(ep) GC_GUARDED_PTR(ep)
1575#define VM_BLOCK_HANDLER_NONE 0
1576
1577static inline int
1578VM_ENV_LOCAL_P(const VALUE *ep)
1579{
1580 return VM_ENV_FLAGS(ep, VM_ENV_FLAG_LOCAL) ? 1 : 0;
1581}
1582
1583static inline int
1584VM_ENV_LOCAL_P_UNCHECKED(const VALUE *ep)
1585{
1586 return VM_ENV_FLAGS_UNCHECKED(ep, VM_ENV_FLAG_LOCAL) ? 1 : 0;
1587}
1588
1589static inline const VALUE *
1590VM_ENV_PREV_EP_UNCHECKED(const VALUE *ep)
1591{
1592 return GC_GUARDED_PTR_REF(ep[VM_ENV_DATA_INDEX_SPECVAL]);
1593}
1594
1595static inline const VALUE *
1596VM_ENV_PREV_EP(const VALUE *ep)
1597{
1598 VM_ASSERT(VM_ENV_LOCAL_P(ep) == 0);
1599 return VM_ENV_PREV_EP_UNCHECKED(ep);
1600}
1601
1602static inline bool
1603VM_ENV_BOXED_P(const VALUE *ep)
1604{
1605 return VM_ENV_FRAME_TYPE_P(ep, VM_FRAME_MAGIC_CLASS) || VM_ENV_FRAME_TYPE_P(ep, VM_FRAME_MAGIC_TOP);
1606}
1607
1608static inline VALUE
1609VM_ENV_BLOCK_HANDLER(const VALUE *ep)
1610{
1611 if (VM_ENV_BOXED_P(ep)) {
1612 VM_ASSERT(VM_ENV_LOCAL_P(ep));
1613 return VM_BLOCK_HANDLER_NONE;
1614 }
1615
1616 VM_ASSERT(VM_ENV_LOCAL_P(ep));
1617 return ep[VM_ENV_DATA_INDEX_SPECVAL];
1618}
1619
1620static inline const rb_box_t *
1621VM_ENV_BOX(const VALUE *ep)
1622{
1623 VM_ASSERT(VM_ENV_BOXED_P(ep));
1624 VM_ASSERT(VM_ENV_LOCAL_P(ep));
1625 return (const rb_box_t *)GC_GUARDED_PTR_REF(ep[VM_ENV_DATA_INDEX_SPECVAL]);
1626}
1627
1628static inline const rb_box_t *
1629VM_ENV_BOX_UNCHECKED(const VALUE *ep)
1630{
1631 return (const rb_box_t *)GC_GUARDED_PTR_REF(ep[VM_ENV_DATA_INDEX_SPECVAL]);
1632}
1633
1634#if VM_CHECK_MODE > 0
1635int rb_vm_ep_in_heap_p(const VALUE *ep);
1636#endif
1637
1638static inline int
1639VM_ENV_ESCAPED_P(const VALUE *ep)
1640{
1641 VM_ASSERT(rb_vm_ep_in_heap_p(ep) == !!VM_ENV_FLAGS(ep, VM_ENV_FLAG_ESCAPED));
1642 return VM_ENV_FLAGS(ep, VM_ENV_FLAG_ESCAPED) ? 1 : 0;
1643}
1644
1646static inline VALUE
1647VM_ENV_ENVVAL(const VALUE *ep)
1648{
1649 VALUE envval = ep[VM_ENV_DATA_INDEX_ENV];
1650 VM_ASSERT(VM_ENV_ESCAPED_P(ep));
1651 VM_ASSERT(envval == Qundef || imemo_type_p(envval, imemo_env));
1652 return envval;
1653}
1654
1656static inline const rb_env_t *
1657VM_ENV_ENVVAL_PTR(const VALUE *ep)
1658{
1659 return (const rb_env_t *)VM_ENV_ENVVAL(ep);
1660}
1661
1662static inline const rb_env_t *
1663vm_env_new(VALUE *env_ep, VALUE *env_body, unsigned int env_size, const rb_iseq_t *iseq)
1664{
1665 rb_env_t *env = IMEMO_NEW(rb_env_t, imemo_env, (VALUE)iseq);
1666 env->ep = env_ep;
1667 env->env = env_body;
1668 env->env_size = env_size;
1669 env_ep[VM_ENV_DATA_INDEX_ENV] = (VALUE)env;
1670 return env;
1671}
1672
1673static inline void
1674VM_FORCE_WRITE(const VALUE *ptr, VALUE v)
1675{
1676 *((VALUE *)ptr) = v;
1677}
1678
1679static inline void
1680VM_FORCE_WRITE_SPECIAL_CONST(const VALUE *ptr, VALUE special_const_value)
1681{
1682 VM_ASSERT(RB_SPECIAL_CONST_P(special_const_value));
1683 VM_FORCE_WRITE(ptr, special_const_value);
1684}
1685
1686static inline void
1687VM_STACK_ENV_WRITE(const VALUE *ep, int index, VALUE v)
1688{
1689 VM_ASSERT(VM_ENV_FLAGS(ep, VM_ENV_FLAG_WB_REQUIRED) == 0);
1690 VM_FORCE_WRITE(&ep[index], v);
1691}
1692
1693const VALUE *rb_vm_ep_local_ep(const VALUE *ep);
1694const VALUE *rb_vm_proc_local_ep(VALUE proc);
1695void rb_vm_block_ep_update(VALUE obj, const struct rb_block *dst, const VALUE *ep);
1696void rb_vm_block_copy(VALUE obj, const struct rb_block *dst, const struct rb_block *src);
1697
1698VALUE rb_vm_frame_block_handler(const rb_control_frame_t *cfp);
1699
1700#define RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp) ((cfp)+1)
1701#define RUBY_VM_NEXT_CONTROL_FRAME(cfp) ((cfp)-1)
1702
1703#define RUBY_VM_VALID_CONTROL_FRAME_P(cfp, ecfp) \
1704 ((void *)(ecfp) > (void *)(cfp))
1705
1706static inline const rb_control_frame_t *
1707RUBY_VM_END_CONTROL_FRAME(const rb_execution_context_t *ec)
1708{
1709 return (rb_control_frame_t *)(ec->vm_stack + ec->vm_stack_size);
1710}
1711
1712static inline int
1713RUBY_VM_CONTROL_FRAME_STACK_OVERFLOW_P(const rb_execution_context_t *ec, const rb_control_frame_t *cfp)
1714{
1715 return !RUBY_VM_VALID_CONTROL_FRAME_P(cfp, RUBY_VM_END_CONTROL_FRAME(ec));
1716}
1717
1718static inline int
1719VM_BH_ISEQ_BLOCK_P(VALUE block_handler)
1720{
1721 if ((block_handler & 0x03) == 0x01) {
1722#if VM_CHECK_MODE > 0
1723 struct rb_captured_block *captured = VM_TAGGED_PTR_REF(block_handler, 0x03);
1724 VM_ASSERT(imemo_type_p(captured->code.val, imemo_iseq));
1725#endif
1726 return 1;
1727 }
1728 else {
1729 return 0;
1730 }
1731}
1732
1733static inline VALUE
1734VM_BH_FROM_ISEQ_BLOCK(const struct rb_captured_block *captured)
1735{
1736 VALUE block_handler = VM_TAGGED_PTR_SET(captured, 0x01);
1737 VM_ASSERT(VM_BH_ISEQ_BLOCK_P(block_handler));
1738 return block_handler;
1739}
1740
1741static inline const struct rb_captured_block *
1742VM_BH_TO_ISEQ_BLOCK(VALUE block_handler)
1743{
1744 struct rb_captured_block *captured = VM_TAGGED_PTR_REF(block_handler, 0x03);
1745 VM_ASSERT(VM_BH_ISEQ_BLOCK_P(block_handler));
1746 return captured;
1747}
1748
1749static inline int
1750VM_BH_IFUNC_P(VALUE block_handler)
1751{
1752 if ((block_handler & 0x03) == 0x03) {
1753#if VM_CHECK_MODE > 0
1754 struct rb_captured_block *captured = (void *)(block_handler & ~0x03);
1755 VM_ASSERT(imemo_type_p(captured->code.val, imemo_ifunc));
1756#endif
1757 return 1;
1758 }
1759 else {
1760 return 0;
1761 }
1762}
1763
1764static inline VALUE
1765VM_BH_FROM_IFUNC_BLOCK(const struct rb_captured_block *captured)
1766{
1767 VALUE block_handler = VM_TAGGED_PTR_SET(captured, 0x03);
1768 VM_ASSERT(VM_BH_IFUNC_P(block_handler));
1769 return block_handler;
1770}
1771
1772static inline const struct rb_captured_block *
1773VM_BH_TO_IFUNC_BLOCK(VALUE block_handler)
1774{
1775 struct rb_captured_block *captured = VM_TAGGED_PTR_REF(block_handler, 0x03);
1776 VM_ASSERT(VM_BH_IFUNC_P(block_handler));
1777 return captured;
1778}
1779
1780static inline const struct rb_captured_block *
1781VM_BH_TO_CAPT_BLOCK(VALUE block_handler)
1782{
1783 struct rb_captured_block *captured = VM_TAGGED_PTR_REF(block_handler, 0x03);
1784 VM_ASSERT(VM_BH_IFUNC_P(block_handler) || VM_BH_ISEQ_BLOCK_P(block_handler));
1785 return captured;
1786}
1787
1788static inline enum rb_block_handler_type
1789vm_block_handler_type(VALUE block_handler)
1790{
1791 if (VM_BH_ISEQ_BLOCK_P(block_handler)) {
1792 return block_handler_type_iseq;
1793 }
1794 else if (VM_BH_IFUNC_P(block_handler)) {
1795 return block_handler_type_ifunc;
1796 }
1797 else if (SYMBOL_P(block_handler)) {
1798 return block_handler_type_symbol;
1799 }
1800 else {
1801 VM_ASSERT(rb_obj_is_proc(block_handler));
1802 return block_handler_type_proc;
1803 }
1804}
1805
1806static inline void
1807vm_block_handler_verify(MAYBE_UNUSED(VALUE block_handler))
1808{
1809 VM_ASSERT(block_handler == VM_BLOCK_HANDLER_NONE ||
1810 (vm_block_handler_type(block_handler), 1));
1811}
1812
1813static inline enum rb_block_type
1814vm_block_type(const struct rb_block *block)
1815{
1816#if VM_CHECK_MODE > 0
1817 switch (block->type) {
1818 case block_type_iseq:
1819 VM_ASSERT(imemo_type_p(block->as.captured.code.val, imemo_iseq));
1820 break;
1821 case block_type_ifunc:
1822 VM_ASSERT(imemo_type_p(block->as.captured.code.val, imemo_ifunc));
1823 break;
1824 case block_type_symbol:
1825 VM_ASSERT(SYMBOL_P(block->as.symbol));
1826 break;
1827 case block_type_proc:
1828 VM_ASSERT(rb_obj_is_proc(block->as.proc));
1829 break;
1830 }
1831#endif
1832 return block->type;
1833}
1834
1835static inline void
1836vm_block_type_set(const struct rb_block *block, enum rb_block_type type)
1837{
1838 struct rb_block *mb = (struct rb_block *)block;
1839 mb->type = type;
1840}
1841
1842static inline const struct rb_block *
1843vm_proc_block(VALUE procval)
1844{
1845 VM_ASSERT(rb_obj_is_proc(procval));
1846 return &((rb_proc_t *)RTYPEDDATA_DATA(procval))->block;
1847}
1848
1849static inline const rb_iseq_t *vm_block_iseq(const struct rb_block *block);
1850static inline const VALUE *vm_block_ep(const struct rb_block *block);
1851
1852static inline const rb_iseq_t *
1853vm_proc_iseq(VALUE procval)
1854{
1855 return vm_block_iseq(vm_proc_block(procval));
1856}
1857
1858static inline const VALUE *
1859vm_proc_ep(VALUE procval)
1860{
1861 return vm_block_ep(vm_proc_block(procval));
1862}
1863
1864static inline const rb_iseq_t *
1865vm_block_iseq(const struct rb_block *block)
1866{
1867 switch (vm_block_type(block)) {
1868 case block_type_iseq: return rb_iseq_check(block->as.captured.code.iseq);
1869 case block_type_proc: return vm_proc_iseq(block->as.proc);
1870 case block_type_ifunc:
1871 case block_type_symbol: return NULL;
1872 }
1873 VM_UNREACHABLE(vm_block_iseq);
1874 return NULL;
1875}
1876
1877static inline const VALUE *
1878vm_block_ep(const struct rb_block *block)
1879{
1880 switch (vm_block_type(block)) {
1881 case block_type_iseq:
1882 case block_type_ifunc: return block->as.captured.ep;
1883 case block_type_proc: return vm_proc_ep(block->as.proc);
1884 case block_type_symbol: return NULL;
1885 }
1886 VM_UNREACHABLE(vm_block_ep);
1887 return NULL;
1888}
1889
1890static inline VALUE
1891vm_block_self(const struct rb_block *block)
1892{
1893 switch (vm_block_type(block)) {
1894 case block_type_iseq:
1895 case block_type_ifunc:
1896 return block->as.captured.self;
1897 case block_type_proc:
1898 return vm_block_self(vm_proc_block(block->as.proc));
1899 case block_type_symbol:
1900 return Qundef;
1901 }
1902 VM_UNREACHABLE(vm_block_self);
1903 return Qundef;
1904}
1905
1906static inline VALUE
1907VM_BH_TO_SYMBOL(VALUE block_handler)
1908{
1909 VM_ASSERT(SYMBOL_P(block_handler));
1910 return block_handler;
1911}
1912
1913static inline VALUE
1914VM_BH_FROM_SYMBOL(VALUE symbol)
1915{
1916 VM_ASSERT(SYMBOL_P(symbol));
1917 return symbol;
1918}
1919
1920static inline VALUE
1921VM_BH_TO_PROC(VALUE block_handler)
1922{
1923 VM_ASSERT(rb_obj_is_proc(block_handler));
1924 return block_handler;
1925}
1926
1927static inline VALUE
1928VM_BH_FROM_PROC(VALUE procval)
1929{
1930 VM_ASSERT(rb_obj_is_proc(procval));
1931 return procval;
1932}
1933
1934/* VM related object allocate functions */
1935VALUE rb_thread_alloc(VALUE klass);
1936VALUE rb_binding_alloc(VALUE klass);
1937VALUE rb_proc_alloc(VALUE klass);
1938VALUE rb_proc_dup(VALUE self);
1939
1940/* for debug */
1941extern bool rb_vmdebug_stack_dump_raw(const rb_execution_context_t *ec, const rb_control_frame_t *cfp, FILE *);
1942extern bool rb_vmdebug_debug_print_pre(const rb_execution_context_t *ec, const rb_control_frame_t *cfp, const VALUE *_pc, FILE *);
1943extern bool rb_vmdebug_debug_print_post(const rb_execution_context_t *ec, const rb_control_frame_t *cfp, FILE *);
1944
1945#define SDR() rb_vmdebug_stack_dump_raw(GET_EC(), GET_EC()->cfp, stderr)
1946#define SDR2(cfp) rb_vmdebug_stack_dump_raw(GET_EC(), (cfp), stderr)
1947bool rb_vm_bugreport(const void *, FILE *);
1948typedef void (*ruby_sighandler_t)(int);
1949RBIMPL_ATTR_FORMAT(RBIMPL_PRINTF_FORMAT, 4, 5)
1950NORETURN(void rb_bug_for_fatal_signal(ruby_sighandler_t default_sighandler, int sig, const void *, const char *fmt, ...));
1951
1952/* functions about thread/vm execution */
1953RUBY_SYMBOL_EXPORT_BEGIN
1954VALUE rb_iseq_eval(const rb_iseq_t *iseq, const rb_box_t *box);
1955VALUE rb_iseq_eval_main(const rb_iseq_t *iseq);
1956VALUE rb_iseq_path(const rb_iseq_t *iseq);
1957VALUE rb_iseq_realpath(const rb_iseq_t *iseq);
1958RUBY_SYMBOL_EXPORT_END
1959
1960VALUE rb_iseq_pathobj_new(VALUE path, VALUE realpath);
1961void rb_iseq_pathobj_set(const rb_iseq_t *iseq, VALUE path, VALUE realpath);
1962
1963int rb_ec_frame_method_id_and_class(const rb_execution_context_t *ec, ID *idp, ID *called_idp, VALUE *klassp);
1964void rb_ec_setup_exception(const rb_execution_context_t *ec, VALUE mesg, VALUE cause);
1965
1966VALUE rb_vm_invoke_proc(rb_execution_context_t *ec, rb_proc_t *proc, int argc, const VALUE *argv, int kw_splat, VALUE block_handler);
1967
1968VALUE rb_vm_make_proc_lambda(const rb_execution_context_t *ec, const struct rb_captured_block *captured, VALUE klass, int8_t is_lambda);
1969static inline VALUE
1970rb_vm_make_proc(const rb_execution_context_t *ec, const struct rb_captured_block *captured, VALUE klass)
1971{
1972 return rb_vm_make_proc_lambda(ec, captured, klass, 0);
1973}
1974
1975static inline VALUE
1976rb_vm_make_lambda(const rb_execution_context_t *ec, const struct rb_captured_block *captured, VALUE klass)
1977{
1978 return rb_vm_make_proc_lambda(ec, captured, klass, 1);
1979}
1980
1981VALUE rb_vm_make_binding(const rb_execution_context_t *ec, const rb_control_frame_t *src_cfp);
1982VALUE rb_vm_env_local_variables(const rb_env_t *env);
1983VALUE rb_vm_env_numbered_parameters(const rb_env_t *env);
1984const rb_env_t *rb_vm_env_prev_env(const rb_env_t *env);
1985const VALUE *rb_binding_add_dynavars(VALUE bindval, rb_binding_t *bind, int dyncount, const ID *dynvars);
1986void rb_vm_inc_const_missing_count(void);
1987VALUE rb_vm_call_kw(rb_execution_context_t *ec, VALUE recv, VALUE id, int argc,
1988 const VALUE *argv, const rb_callable_method_entry_t *me, int kw_splat);
1989void rb_vm_pop_frame_no_int(rb_execution_context_t *ec);
1990void rb_vm_pop_frame(rb_execution_context_t *ec);
1991
1992void rb_thread_start_timer_thread(void);
1993void rb_thread_stop_timer_thread(void);
1994void rb_thread_reset_timer_thread(void);
1995void rb_thread_wakeup_timer_thread(int);
1996
1997static inline void
1998rb_vm_living_threads_init(rb_vm_t *vm)
1999{
2000 ccan_list_head_init(&vm->workqueue);
2001 ccan_list_head_init(&vm->ractor.set);
2002#ifdef RUBY_THREAD_PTHREAD_H
2003 ccan_list_head_init(&vm->ractor.sched.zombie_threads);
2004#endif
2005}
2006
2007typedef int rb_backtrace_iter_func(void *, VALUE, int, VALUE);
2008rb_control_frame_t *rb_vm_get_ruby_level_next_cfp(const rb_execution_context_t *ec, const rb_control_frame_t *cfp);
2009rb_control_frame_t *rb_vm_get_binding_creatable_next_cfp(const rb_execution_context_t *ec, const rb_control_frame_t *cfp);
2010VALUE *rb_vm_svar_lep(const rb_execution_context_t *ec, const rb_control_frame_t *cfp);
2011int rb_vm_get_sourceline(const rb_control_frame_t *);
2012void rb_vm_stack_to_heap(rb_execution_context_t *ec);
2013void ruby_thread_init_stack(rb_thread_t *th, void *local_in_parent_frame);
2014void rb_thread_malloc_stack_set(rb_thread_t *th, void *stack, size_t stack_size);
2015rb_thread_t * ruby_thread_from_native(void);
2016int ruby_thread_set_native(rb_thread_t *th);
2017int rb_vm_control_frame_id_and_class(const rb_control_frame_t *cfp, ID *idp, ID *called_idp, VALUE *klassp);
2018void rb_vm_rewind_cfp(rb_execution_context_t *ec, rb_control_frame_t *cfp);
2019void rb_vm_env_write(const VALUE *ep, int index, VALUE v);
2020VALUE rb_vm_bh_to_procval(const rb_execution_context_t *ec, VALUE block_handler);
2021
2022void rb_vm_register_special_exception_str(enum ruby_special_exceptions sp, VALUE exception_class, VALUE mesg);
2023
2024#define rb_vm_register_special_exception(sp, e, m) \
2025 rb_vm_register_special_exception_str(sp, e, rb_usascii_str_new_static((m), (long)rb_strlen_lit(m)))
2026
2027void rb_gc_mark_machine_context(const rb_execution_context_t *ec);
2028
2029const rb_callable_method_entry_t *rb_vm_frame_method_entry(const rb_control_frame_t *cfp);
2030const rb_callable_method_entry_t *rb_vm_frame_method_entry_unchecked(const rb_control_frame_t *cfp);
2031
2032#define sysstack_error GET_VM()->special_exceptions[ruby_error_sysstack]
2033
2034#define CHECK_VM_STACK_OVERFLOW0(cfp, sp, margin) do { \
2035 STATIC_ASSERT(sizeof_sp, sizeof(*(sp)) == sizeof(VALUE)); \
2036 STATIC_ASSERT(sizeof_cfp, sizeof(*(cfp)) == sizeof(rb_control_frame_t)); \
2037 const struct rb_control_frame_struct *bound = (void *)&(sp)[(margin)]; \
2038 if (UNLIKELY((cfp) <= &bound[1])) { \
2039 vm_stackoverflow(); \
2040 } \
2041} while (0)
2042
2043#define CHECK_VM_STACK_OVERFLOW(cfp, margin) \
2044 CHECK_VM_STACK_OVERFLOW0((cfp), (cfp)->sp, (margin))
2045
2046VALUE rb_catch_protect(VALUE t, rb_block_call_func *func, VALUE data, enum ruby_tag_type *stateptr);
2047
2048rb_execution_context_t *rb_vm_main_ractor_ec(rb_vm_t *vm); // ractor.c
2049
2050/* for thread */
2051
2052#if RUBY_VM_THREAD_MODEL == 2
2053
2054RUBY_EXTERN struct rb_ractor_struct *ruby_single_main_ractor; // ractor.c
2055RUBY_EXTERN rb_vm_t *ruby_current_vm_ptr;
2056RUBY_EXTERN rb_event_flag_t ruby_vm_event_flags;
2057RUBY_EXTERN rb_event_flag_t ruby_vm_event_enabled_global_flags; // only ever added to
2058RUBY_EXTERN unsigned int ruby_vm_iseq_events_enabled;
2059RUBY_EXTERN unsigned int ruby_vm_c_events_enabled;
2060
2061#define GET_VM() rb_current_vm()
2062#define GET_RACTOR() rb_current_ractor()
2063#define GET_THREAD() rb_current_thread()
2064#define GET_EC() rb_current_execution_context(true)
2065
2066static inline rb_serial_t
2067rb_ec_serial(struct rb_execution_context_struct *ec)
2068{
2069 VM_ASSERT(ec->serial >= 1);
2070 return ec->serial;
2071}
2072
2073static inline rb_thread_t *
2074rb_ec_thread_ptr(const rb_execution_context_t *ec)
2075{
2076 return ec->thread_ptr;
2077}
2078
2079static inline rb_ractor_t *
2080rb_ec_ractor_ptr(const rb_execution_context_t *ec)
2081{
2082 const rb_thread_t *th = rb_ec_thread_ptr(ec);
2083 if (th) {
2084 VM_ASSERT(th->ractor != NULL);
2085 return th->ractor;
2086 }
2087 else {
2088 return NULL;
2089 }
2090}
2091
2092static inline rb_serial_t
2093rb_ec_ractor_id(const rb_execution_context_t *ec)
2094{
2095 rb_serial_t ractor_id = ec->ractor_id;
2096 RUBY_ASSERT(ractor_id);
2097 return ractor_id;
2098}
2099
2100static inline rb_vm_t *
2101rb_ec_vm_ptr(const rb_execution_context_t *ec)
2102{
2103 const rb_thread_t *th = rb_ec_thread_ptr(ec);
2104 if (th) {
2105 return th->vm;
2106 }
2107 else {
2108 return NULL;
2109 }
2110}
2111
2112NOINLINE(struct rb_execution_context_struct *rb_current_ec_noinline(void));
2113
2114static inline rb_execution_context_t *
2115rb_current_execution_context(bool expect_ec)
2116{
2117#ifdef RB_THREAD_LOCAL_SPECIFIER
2118 #ifdef RB_THREAD_CURRENT_EC_NOINLINE
2119 rb_execution_context_t * volatile ec = rb_current_ec();
2120 #else
2121 rb_execution_context_t * volatile ec = ruby_current_ec;
2122 #endif
2123
2124 /* On the shared objects, `__tls_get_addr()` is used to access the TLS
2125 * and the address of the `ruby_current_ec` can be stored on a function
2126 * frame. However, this address can be mis-used after native thread
2127 * migration of a coroutine.
2128 * 1) Get `ptr = &ruby_current_ec` on NT1 and store it on the frame.
2129 * 2) Context switch and resume it on the NT2.
2130 * 3) `ptr` is used on NT2 but it accesses the TLS of NT1.
2131 * This assertion checks such misusage.
2132 *
2133 * To avoid accidents, `GET_EC()` should be called once on the frame.
2134 * Note that inlining can produce the problem.
2135 */
2136 VM_ASSERT(ec == rb_current_ec_noinline());
2137#else
2138 rb_execution_context_t * volatile ec = native_tls_get(ruby_current_ec_key);
2139#endif
2140 VM_ASSERT(!expect_ec || ec != NULL);
2141 return ec;
2142}
2143
2144static inline rb_thread_t *
2145rb_current_thread(void)
2146{
2147 const rb_execution_context_t *ec = GET_EC();
2148 return rb_ec_thread_ptr(ec);
2149}
2150
2151static inline rb_ractor_t *
2152rb_current_ractor_raw(bool expect)
2153{
2154 if (ruby_single_main_ractor) {
2155 return ruby_single_main_ractor;
2156 }
2157 else {
2158 const rb_execution_context_t *ec = rb_current_execution_context(expect);
2159 return (expect || ec) ? rb_ec_ractor_ptr(ec) : NULL;
2160 }
2161}
2162
2163static inline rb_ractor_t *
2164rb_current_ractor(void)
2165{
2166 return rb_current_ractor_raw(true);
2167}
2168
2169static inline rb_vm_t *
2170rb_current_vm(void)
2171{
2172#if 0 // TODO: reconsider the assertions
2173 VM_ASSERT(ruby_current_vm_ptr == NULL ||
2174 ruby_current_execution_context_ptr == NULL ||
2175 rb_ec_thread_ptr(GET_EC()) == NULL ||
2176 rb_ec_thread_ptr(GET_EC())->status == THREAD_KILLED ||
2177 rb_ec_vm_ptr(GET_EC()) == ruby_current_vm_ptr);
2178#endif
2179
2180 return ruby_current_vm_ptr;
2181}
2182
2183void rb_ec_vm_lock_rec_release(const rb_execution_context_t *ec,
2184 unsigned int recorded_lock_rec,
2185 unsigned int current_lock_rec);
2186
2187/* This technically is a data race, as it's checked without the lock, however we
2188 * check against a value only our own thread will write. */
2189NO_SANITIZE("thread", static inline bool
2190vm_locked_by_ractor_p(rb_vm_t *vm, rb_ractor_t *cr))
2191{
2192 VM_ASSERT(cr == GET_RACTOR());
2193 return vm->ractor.sync.lock_owner == cr;
2194}
2195
2196static inline unsigned int
2197rb_ec_vm_lock_rec(const rb_execution_context_t *ec)
2198{
2199 rb_vm_t *vm = rb_ec_vm_ptr(ec);
2200
2201 if (!vm_locked_by_ractor_p(vm, rb_ec_ractor_ptr(ec))) {
2202 return 0;
2203 }
2204 else {
2205 return vm->ractor.sync.lock_rec;
2206 }
2207}
2208
2209#else
2210#error "unsupported thread model"
2211#endif
2212
2213enum {
2214 TIMER_INTERRUPT_MASK = 0x01,
2215 PENDING_INTERRUPT_MASK = 0x02,
2216 POSTPONED_JOB_INTERRUPT_MASK = 0x04,
2217 TRAP_INTERRUPT_MASK = 0x08,
2218 TERMINATE_INTERRUPT_MASK = 0x10,
2219 VM_BARRIER_INTERRUPT_MASK = 0x20,
2220};
2221
2222#define RUBY_VM_SET_TIMER_INTERRUPT(ec) ATOMIC_OR((ec)->interrupt_flag, TIMER_INTERRUPT_MASK)
2223#define RUBY_VM_SET_INTERRUPT(ec) ATOMIC_OR((ec)->interrupt_flag, PENDING_INTERRUPT_MASK)
2224#define RUBY_VM_SET_POSTPONED_JOB_INTERRUPT(ec) ATOMIC_OR((ec)->interrupt_flag, POSTPONED_JOB_INTERRUPT_MASK)
2225#define RUBY_VM_SET_TRAP_INTERRUPT(ec) ATOMIC_OR((ec)->interrupt_flag, TRAP_INTERRUPT_MASK)
2226#define RUBY_VM_SET_TERMINATE_INTERRUPT(ec) ATOMIC_OR((ec)->interrupt_flag, TERMINATE_INTERRUPT_MASK)
2227#define RUBY_VM_SET_VM_BARRIER_INTERRUPT(ec) ATOMIC_OR((ec)->interrupt_flag, VM_BARRIER_INTERRUPT_MASK)
2228
2229static inline bool
2230RUBY_VM_INTERRUPTED(rb_execution_context_t *ec)
2231{
2232 return (ATOMIC_LOAD_RELAXED(ec->interrupt_flag) & ~(ec->interrupt_mask) & (PENDING_INTERRUPT_MASK|TRAP_INTERRUPT_MASK));
2233}
2234
2235static inline bool
2236RUBY_VM_INTERRUPTED_ANY(rb_execution_context_t *ec)
2237{
2238#if defined(USE_VM_CLOCK) && USE_VM_CLOCK
2239 uint32_t current_clock = rb_ec_vm_ptr(ec)->clock;
2240
2241 if (current_clock != ec->checked_clock) {
2242 ec->checked_clock = current_clock;
2243 RUBY_VM_SET_TIMER_INTERRUPT(ec);
2244 }
2245#endif
2246 return ATOMIC_LOAD_RELAXED(ec->interrupt_flag) & ~(ec)->interrupt_mask;
2247}
2248
2249VALUE rb_exc_set_backtrace(VALUE exc, VALUE bt);
2250int rb_signal_buff_size(void);
2251int rb_signal_exec(rb_thread_t *th, int sig);
2252void rb_threadptr_check_signal(rb_thread_t *mth);
2253void rb_threadptr_signal_raise(rb_thread_t *th, int sig);
2254void rb_threadptr_signal_exit(rb_thread_t *th);
2255int rb_threadptr_execute_interrupts(rb_thread_t *, int);
2256void rb_threadptr_interrupt(rb_thread_t *th);
2257void rb_threadptr_unlock_all_locking_mutexes(rb_thread_t *th);
2258void rb_threadptr_pending_interrupt_clear(rb_thread_t *th);
2259void rb_threadptr_pending_interrupt_enque(rb_thread_t *th, VALUE v);
2260VALUE rb_ec_get_errinfo(const rb_execution_context_t *ec);
2261void rb_ec_error_print(rb_execution_context_t * volatile ec, volatile VALUE errinfo);
2262void rb_execution_context_update(rb_execution_context_t *ec);
2263void rb_execution_context_mark(const rb_execution_context_t *ec);
2264void rb_fiber_close(rb_fiber_t *fib);
2265void Init_native_thread(rb_thread_t *th);
2266int rb_vm_check_ints_blocking(rb_execution_context_t *ec);
2267
2268// vm_sync.h
2269void rb_vm_cond_wait(rb_vm_t *vm, rb_nativethread_cond_t *cond);
2270void rb_vm_cond_timedwait(rb_vm_t *vm, rb_nativethread_cond_t *cond, unsigned long msec);
2271
2272#define RUBY_VM_CHECK_INTS(ec) rb_vm_check_ints(ec)
2273static inline void
2274rb_vm_check_ints(rb_execution_context_t *ec)
2275{
2276#ifdef RUBY_ASSERT_CRITICAL_SECTION
2277 VM_ASSERT(ruby_assert_critical_section_entered == 0);
2278#endif
2279
2280 VM_ASSERT(ec == rb_current_ec_noinline());
2281
2282 if (UNLIKELY(RUBY_VM_INTERRUPTED_ANY(ec))) {
2283 rb_threadptr_execute_interrupts(rb_ec_thread_ptr(ec), 0);
2284 }
2285}
2286
2287/* tracer */
2288
2290 rb_event_flag_t event;
2292 const rb_control_frame_t *cfp;
2293 VALUE self;
2294 ID id;
2295 ID called_id;
2296 VALUE klass;
2297 VALUE data;
2298
2299 int klass_solved;
2300
2301 /* calc from cfp */
2302 int lineno;
2303 VALUE path;
2304};
2305
2306void rb_hook_list_mark(rb_hook_list_t *hooks);
2307void rb_hook_list_mark_and_move(rb_hook_list_t *hooks);
2308void rb_hook_list_free(rb_hook_list_t *hooks);
2309void rb_hook_list_connect_local_tracepoint(rb_hook_list_t *list, VALUE tpval, unsigned int target_line);
2310bool rb_hook_list_remove_local_tracepoint(rb_hook_list_t *list, VALUE tpval);
2311unsigned int rb_hook_list_count(rb_hook_list_t *list);
2312
2313void rb_exec_event_hooks(struct rb_trace_arg_struct *trace_arg, rb_hook_list_t *hooks, int pop_p);
2314
2315#define EXEC_EVENT_HOOK_ORIG(ec_, hooks_, flag_, self_, id_, called_id_, klass_, data_, pop_p_) do { \
2316 const rb_event_flag_t flag_arg_ = (flag_); \
2317 rb_hook_list_t *hooks_arg_ = (hooks_); \
2318 if (UNLIKELY((hooks_arg_)->events & (flag_arg_))) { \
2319 /* defer evaluating the other arguments */ \
2320 rb_exec_event_hook_orig(ec_, hooks_arg_, flag_arg_, self_, id_, called_id_, klass_, data_, pop_p_); \
2321 } \
2322} while (0)
2323
2324static inline void
2325rb_exec_event_hook_orig(rb_execution_context_t *ec, rb_hook_list_t *hooks, rb_event_flag_t flag,
2326 VALUE self, ID id, ID called_id, VALUE klass, VALUE data, int pop_p)
2327{
2328 struct rb_trace_arg_struct trace_arg;
2329
2330 VM_ASSERT((hooks->events & flag) != 0);
2331
2332 trace_arg.event = flag;
2333 trace_arg.ec = ec;
2334 trace_arg.cfp = ec->cfp;
2335 trace_arg.self = self;
2336 trace_arg.id = id;
2337 trace_arg.called_id = called_id;
2338 trace_arg.klass = klass;
2339 trace_arg.data = data;
2340 trace_arg.path = Qundef;
2341 trace_arg.klass_solved = 0;
2342
2343 rb_exec_event_hooks(&trace_arg, hooks, pop_p);
2344}
2345
2347 VALUE self;
2348 uint32_t id;
2349 rb_hook_list_t hooks;
2350 st_table targeted_hooks; // also called "local hooks". {ISEQ => hook_list, def => hook_list...}
2351 unsigned int targeted_hooks_cnt; // ex: tp.enabled(target: method(:puts))
2352};
2353
2354static inline rb_hook_list_t *
2355rb_ec_ractor_hooks(const rb_execution_context_t *ec)
2356{
2357 struct rb_ractor_pub *cr_pub = (struct rb_ractor_pub *)rb_ec_ractor_ptr(ec);
2358 return &cr_pub->hooks;
2359}
2360
2361static inline rb_hook_list_t *
2362rb_vm_global_hooks(const rb_execution_context_t *ec)
2363{
2364 return &rb_ec_vm_ptr(ec)->global_hooks;
2365}
2366
2367static inline rb_hook_list_t *
2368rb_ec_hooks(const rb_execution_context_t *ec, rb_event_flag_t event)
2369{
2370 // Should be a single bit set
2371 VM_ASSERT(event != 0 && ((event - 1) & event) == 0);
2372
2374 return rb_vm_global_hooks(ec);
2375 }
2376 else {
2377 return rb_ec_ractor_hooks(ec);
2378 }
2379}
2380
2381#define EXEC_EVENT_HOOK(ec_, flag_, self_, id_, called_id_, klass_, data_) \
2382 EXEC_EVENT_HOOK_ORIG(ec_, rb_ec_hooks(ec_, flag_), flag_, self_, id_, called_id_, klass_, data_, 0)
2383
2384#define EXEC_EVENT_HOOK_AND_POP_FRAME(ec_, flag_, self_, id_, called_id_, klass_, data_) \
2385 EXEC_EVENT_HOOK_ORIG(ec_, rb_ec_hooks(ec_, flag_), flag_, self_, id_, called_id_, klass_, data_, 1)
2386
2387static inline void
2388rb_exec_event_hook_script_compiled(rb_execution_context_t *ec, const rb_iseq_t *iseq, VALUE eval_script)
2389{
2390 EXEC_EVENT_HOOK(ec, RUBY_EVENT_SCRIPT_COMPILED, ec->cfp->self, 0, 0, 0,
2391 NIL_P(eval_script) ? (VALUE)iseq :
2392 rb_ary_new_from_args(2, eval_script, (VALUE)iseq));
2393}
2394
2395void rb_vm_trap_exit(rb_vm_t *vm);
2396void rb_vm_postponed_job_atfork(void); /* vm_trace.c */
2397size_t rb_vm_memsize_postponed_job_queue(void); /* vm_trace.c */
2398
2399RUBY_SYMBOL_EXPORT_BEGIN
2400
2401int rb_thread_check_trap_pending(void);
2402
2403/* #define RUBY_EVENT_RESERVED_FOR_INTERNAL_USE 0x030000 */ /* from vm_core.h */
2404#define RUBY_EVENT_COVERAGE_LINE 0x010000
2405#define RUBY_EVENT_COVERAGE_BRANCH 0x020000
2406
2407extern VALUE rb_get_coverages(void);
2408extern void rb_set_coverages(VALUE, int, VALUE);
2409extern void rb_clear_coverages(void);
2410extern void rb_reset_coverages(void);
2411extern void rb_resume_coverages(void);
2412extern void rb_suspend_coverages(void);
2413
2414void rb_postponed_job_flush(rb_vm_t *vm);
2415
2416// ractor.c
2417RUBY_EXTERN VALUE rb_eRactorUnsafeError;
2418RUBY_EXTERN VALUE rb_eRactorIsolationError;
2419
2420RUBY_SYMBOL_EXPORT_END
2421
2422#endif /* RUBY_VM_CORE_H */
#define RUBY_ASSERT(...)
Asserts that the given expression is truthy if and only if RUBY_DEBUG is truthy.
Definition assert.h:219
std::atomic< unsigned > rb_atomic_t
Type that is eligible for atomic operations.
Definition atomic.h:69
#define RUBY_ALIGNAS
Wraps (or simulates) alignas.
Definition stdalign.h:27
#define RUBY_EXTERN
Declaration of externally visible global variables.
Definition dllexport.h:45
#define RUBY_EVENT_SCRIPT_COMPILED
Encountered an eval.
Definition event.h:60
#define RUBY_INTERNAL_EVENT_OBJSPACE_MASK
Bitmask of GC events.
Definition event.h:100
uint32_t rb_event_flag_t
Represents event(s).
Definition event.h:108
#define T_STRING
Old name of RUBY_T_STRING.
Definition value_type.h:78
#define Qundef
Old name of RUBY_Qundef.
#define Qfalse
Old name of RUBY_Qfalse.
#define T_ARRAY
Old name of RUBY_T_ARRAY.
Definition value_type.h:56
#define NIL_P
Old name of RB_NIL_P.
#define FIXNUM_P
Old name of RB_FIXNUM_P.
#define SYMBOL_P
Old name of RB_SYMBOL_P.
Definition value_type.h:88
void * rb_check_typeddata(VALUE obj, const rb_data_type_t *data_type)
Identical to rb_typeddata_is_kind_of(), except it raises exceptions instead of returning false.
Definition error.c:1413
#define RBIMPL_ATTR_FORMAT(x, y, z)
Wraps (or simulates) __attribute__((format))
Definition format.h:33
#define RBIMPL_ATTR_NONNULL(list)
Wraps (or simulates) __attribute__((nonnull))
Definition nonnull.h:30
VALUE rb_obj_is_proc(VALUE recv)
Queries if the given object is a proc.
Definition proc.c:122
void rb_unblock_function_t(void *)
This is the type of UBFs.
Definition thread.h:336
VALUE rb_block_call_func(RB_BLOCK_CALL_FUNC_ARGLIST(yielded_arg, callback_arg))
This is the type of a function that the interpreter expect for C-backended blocks.
Definition iterator.h:83
VALUE type(ANYARGS)
ANYARGS-ed function type.
Functions related to nodes in the AST.
#define RARRAY_AREF(a, i)
Definition rarray.h:403
#define RTYPEDDATA_DATA(v)
Convenient getter macro.
Definition rtypeddata.h:106
static bool RB_SPECIAL_CONST_P(VALUE obj)
Checks if the given object is of enum ruby_special_consts.
Defines old _.
C99 shim for <stdbool.h>
Definition vm_core.h:261
const ID * segments
A null-terminated list of ids, used to represent a constant's path idNULL is used to represent the ::...
Definition vm_core.h:285
Definition vm_core.h:293
Definition vm_core.h:288
Definition iseq.h:260
Internal header for Ruby Box.
Definition box.h:14
Definition method.h:63
CREF (Class REFerence)
Definition method.h:45
Internal header for Class.
Definition class.h:30
This is the struct that holds necessary info for a struct.
Definition rtypeddata.h:229
const rb_iseq_t * iseqptr
iseq pointer, should be separated from iseqval
Definition method.h:143
Definition st.h:79
IFUNC (Internal FUNCtion)
Definition imemo.h:86
Definition vm_core.h:253
Definition vm_core.h:297
uintptr_t ID
Type that represents a Ruby identifier such as a variable name.
Definition value.h:52
#define SIZEOF_VALUE
Identical to sizeof(VALUE), except it is a macro that can also be used inside of preprocessor directi...
Definition value.h:69
uintptr_t VALUE
Type that represents a Ruby object.
Definition value.h:40
static bool RB_TYPE_P(VALUE obj, enum ruby_value_type t)
Queries if the given object is of given type.
Definition value_type.h:376