Ruby 4.1.0dev (2026-05-15 revision a8bcae043f931d9b79f1cb1fe2c021985d07b984)
vm.c (a8bcae043f931d9b79f1cb1fe2c021985d07b984)
1/**********************************************************************
2
3 Vm.c -
4
5 $Author$
6
7 Copyright (C) 2004-2007 Koichi Sasada
8
9**********************************************************************/
10
11#define vm_exec rb_vm_exec
12
13#include "eval_intern.h"
14#include "internal.h"
15#include "internal/box.h"
16#include "internal/class.h"
17#include "internal/compile.h"
18#include "internal/cont.h"
19#include "internal/error.h"
20#include "internal/encoding.h"
21#include "internal/eval.h"
22#include "internal/gc.h"
23#include "internal/inits.h"
24#include "internal/missing.h"
25#include "internal/object.h"
26#include "internal/proc.h"
27#include "internal/re.h"
28#include "internal/ruby_parser.h"
29#include "internal/st.h"
30#include "internal/symbol.h"
31#include "internal/thread.h"
32#include "internal/transcode.h"
33#include "internal/vm.h"
34#include "internal/sanitizers.h"
35#include "internal/variable.h"
36#include "iseq.h"
37#include "symbol.h" // This includes a macro for a more performant rb_id2sym.
38#include "yjit.h"
39#include "insns.inc"
40#include "zjit.h"
41#include "ruby/st.h"
42#include "ruby/vm.h"
43#include "vm_core.h"
44#include "vm_callinfo.h"
45#include "vm_debug.h"
46#include "vm_exec.h"
47#include "vm_insnhelper.h"
48#include "ractor_core.h"
49#include "vm_sync.h"
50#include "shape.h"
51
52#include "builtin.h"
53
54#include "probes.h"
55#include "probes_helper.h"
56
57#ifdef RUBY_ASSERT_CRITICAL_SECTION
58int ruby_assert_critical_section_entered = 0;
59#endif
60
61static void *native_main_thread_stack_top;
62
63bool ruby_vm_during_cleanup = false;
64
65VALUE rb_str_concat_literals(size_t, const VALUE*);
66
68
69extern const char *const rb_debug_counter_names[];
70
71PUREFUNC(static inline const VALUE *VM_EP_LEP(const VALUE *));
72static inline const VALUE *
73VM_EP_LEP(const VALUE *ep)
74{
75 while (!VM_ENV_LOCAL_P(ep)) {
76 ep = VM_ENV_PREV_EP(ep);
77 }
78 return ep;
79}
80
81static inline const rb_control_frame_t *
82rb_vm_search_cf_from_ep(const rb_execution_context_t *ec, const rb_control_frame_t *cfp, const VALUE * const ep)
83{
84 if (!ep) {
85 return NULL;
86 }
87 else {
88 const rb_control_frame_t * const eocfp = RUBY_VM_END_CONTROL_FRAME(ec); /* end of control frame pointer */
89
90 while (cfp < eocfp) {
91 if (cfp->ep == ep) {
92 return cfp;
93 }
94 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
95 }
96
97 return NULL;
98 }
99}
100
101#if VM_CHECK_MODE > 0
102// ruby_box_crashed defined in internal/box.h
103#define VM_BOX_CRASHED() {ruby_box_crashed = true;}
104#define VM_BOX_ASSERT(expr, msg) \
105 if (!(expr)) { ruby_box_crashed = true; rb_bug(msg); }
106#else
107#define VM_BOX_CRASHED() {}
108#define VM_BOX_ASSERT(expr, msg) ((void)0)
109#endif
110
111static const VALUE *
112VM_EP_RUBY_LEP(const rb_execution_context_t *ec, const rb_control_frame_t *current_cfp)
113{
114 // rb_vmdebug_box_env_dump_raw() simulates this function
115 const VALUE *ep = current_cfp->ep;
116 const rb_control_frame_t * const eocfp = RUBY_VM_END_CONTROL_FRAME(ec); /* end of control frame pointer */
117 const rb_control_frame_t *cfp = current_cfp;
118
119 if (VM_ENV_FRAME_TYPE_P(ep, VM_FRAME_MAGIC_IFUNC)) {
120 ep = VM_EP_LEP(current_cfp->ep);
149 VM_ASSERT(VM_ENV_FRAME_TYPE_P(ep, VM_FRAME_MAGIC_CFUNC));
150 return ep;
151 }
152
153 while (VM_ENV_FRAME_TYPE_P(ep, VM_FRAME_MAGIC_CFUNC)) {
154 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
155
156 VM_BOX_ASSERT(cfp, "CFUNC should have a valid previous control frame");
157 VM_BOX_ASSERT(cfp < eocfp, "CFUNC should have a valid caller frame");
158 if (!cfp || cfp >= eocfp) {
159 return NULL;
160 }
161
162 VM_BOX_ASSERT(cfp->ep, "CFUNC should have a valid caller frame with env");
163 ep = cfp->ep;
164 if (!ep) {
165 return NULL;
166 }
167 }
168
169 while (!VM_ENV_LOCAL_P(ep)) {
170 ep = VM_ENV_PREV_EP(ep);
171 }
172
173 return ep;
174}
175
176const VALUE *
177rb_vm_ep_local_ep(const VALUE *ep)
178{
179 return VM_EP_LEP(ep);
180}
181
182PUREFUNC(static inline const VALUE *VM_CF_LEP(const rb_control_frame_t * const cfp));
183static inline const VALUE *
184VM_CF_LEP(const rb_control_frame_t * const cfp)
185{
186 return VM_EP_LEP(cfp->ep);
187}
188
189static inline const VALUE *
190VM_CF_PREV_EP(const rb_control_frame_t * const cfp)
191{
192 return VM_ENV_PREV_EP(cfp->ep);
193}
194
195PUREFUNC(static inline VALUE VM_CF_BLOCK_HANDLER(const rb_control_frame_t * const cfp));
196static inline VALUE
197VM_CF_BLOCK_HANDLER(const rb_control_frame_t * const cfp)
198{
199 const VALUE *ep;
200 if (VM_ENV_BOXED_P(cfp->ep)) {
201 VM_ASSERT(VM_ENV_LOCAL_P(cfp->ep));
202 /* Never set black_handler for VM_FRAME_MAGIC_TOP or VM_FRAME_MAGIC_CLASS
203 * and the specval is used for boxes (rb_box_t) in these case
204 */
205 return VM_BLOCK_HANDLER_NONE;
206 }
207 ep = VM_CF_LEP(cfp);
208 return VM_ENV_BLOCK_HANDLER(ep);
209}
210
211int
212rb_vm_cframe_keyword_p(const rb_control_frame_t *cfp)
213{
214 return VM_FRAME_CFRAME_KW_P(cfp);
215}
216
217VALUE
218rb_vm_frame_block_handler(const rb_control_frame_t *cfp)
219{
220 return VM_CF_BLOCK_HANDLER(cfp);
221}
222
223#if VM_CHECK_MODE > 0
224static int
225VM_CFP_IN_HEAP_P(const rb_execution_context_t *ec, const rb_control_frame_t *cfp)
226{
227 const VALUE *start = ec->vm_stack;
228 const VALUE *end = (VALUE *)ec->vm_stack + ec->vm_stack_size;
229 VM_ASSERT(start != NULL);
230
231 if (start <= (VALUE *)cfp && (VALUE *)cfp < end) {
232 return FALSE;
233 }
234 else {
235 return TRUE;
236 }
237}
238
239static int
240VM_EP_IN_HEAP_P(const rb_execution_context_t *ec, const VALUE *ep)
241{
242 const VALUE *start = ec->vm_stack;
243 const VALUE *end = (VALUE *)ec->cfp;
244 VM_ASSERT(start != NULL);
245
246 if (start <= ep && ep < end) {
247 return FALSE;
248 }
249 else {
250 return TRUE;
251 }
252}
253
254static int
255vm_ep_in_heap_p_(const rb_execution_context_t *ec, const VALUE *ep)
256{
257 if (VM_EP_IN_HEAP_P(ec, ep)) {
258 VALUE envval = ep[VM_ENV_DATA_INDEX_ENV]; /* VM_ENV_ENVVAL(ep); */
259
260 if (!UNDEF_P(envval)) {
261 const rb_env_t *env = (const rb_env_t *)envval;
262
263 VM_ASSERT(imemo_type_p(envval, imemo_env));
264 VM_ASSERT(VM_ENV_FLAGS(ep, VM_ENV_FLAG_ESCAPED));
265 VM_ASSERT(env->ep == ep);
266 }
267 return TRUE;
268 }
269 else {
270 return FALSE;
271 }
272}
273
274int
275rb_vm_ep_in_heap_p(const VALUE *ep)
276{
277 const rb_execution_context_t *ec = GET_EC();
278 if (ec->vm_stack == NULL) return TRUE;
279 return vm_ep_in_heap_p_(ec, ep);
280}
281#endif
282
283static struct rb_captured_block *
284VM_CFP_TO_CAPTURED_BLOCK(const rb_control_frame_t *cfp)
285{
286 VM_ASSERT(!VM_CFP_IN_HEAP_P(GET_EC(), cfp));
287 return (struct rb_captured_block *)&cfp->self;
288}
289
290static rb_control_frame_t *
291VM_CAPTURED_BLOCK_TO_CFP(const struct rb_captured_block *captured)
292{
293 rb_control_frame_t *cfp = ((rb_control_frame_t *)((VALUE *)(captured) - 3));
294 VM_ASSERT(!VM_CFP_IN_HEAP_P(GET_EC(), cfp));
295 VM_ASSERT(sizeof(rb_control_frame_t)/sizeof(VALUE) == 7 + VM_DEBUG_BP_CHECK ? 1 : 0);
296 return cfp;
297}
298
299static int
300VM_BH_FROM_CFP_P(VALUE block_handler, const rb_control_frame_t *cfp)
301{
302 const struct rb_captured_block *captured = VM_CFP_TO_CAPTURED_BLOCK(cfp);
303 return VM_TAGGED_PTR_REF(block_handler, 0x03) == captured;
304}
305
306static VALUE
307vm_passed_block_handler(rb_execution_context_t *ec)
308{
309 VALUE block_handler = ec->passed_block_handler;
310 ec->passed_block_handler = VM_BLOCK_HANDLER_NONE;
311 vm_block_handler_verify(block_handler);
312 return block_handler;
313}
314
315static rb_cref_t *
316vm_cref_new0(VALUE klass, rb_method_visibility_t visi, int module_func, rb_cref_t *prev_cref, int pushed_by_eval, int use_prev_prev, int singleton)
317{
318 VALUE refinements = Qnil;
319 int omod_shared = FALSE;
320
321 /* scope */
322 rb_scope_visibility_t scope_visi;
323 scope_visi.method_visi = visi;
324 scope_visi.module_func = module_func;
325
326 /* refinements */
327 if (prev_cref != NULL && prev_cref != (void *)1 /* TODO: why CREF_NEXT(cref) is 1? */) {
328 refinements = CREF_REFINEMENTS(prev_cref);
329
330 if (!NIL_P(refinements)) {
331 omod_shared = TRUE;
332 CREF_OMOD_SHARED_SET(prev_cref);
333 }
334 }
335
336 VM_ASSERT(singleton || klass);
337
338 rb_cref_t *cref = SHAREABLE_IMEMO_NEW(rb_cref_t, imemo_cref, refinements);
339 cref->klass_or_self = klass;
340 cref->next = use_prev_prev ? CREF_NEXT(prev_cref) : prev_cref;
341 *((rb_scope_visibility_t *)&cref->scope_visi) = scope_visi;
342
343 if (pushed_by_eval) CREF_PUSHED_BY_EVAL_SET(cref);
344 if (omod_shared) CREF_OMOD_SHARED_SET(cref);
345 if (singleton) CREF_SINGLETON_SET(cref);
346
347 return cref;
348}
349
350static rb_cref_t *
351vm_cref_new(VALUE klass, rb_method_visibility_t visi, int module_func, rb_cref_t *prev_cref, int pushed_by_eval, int singleton)
352{
353 return vm_cref_new0(klass, visi, module_func, prev_cref, pushed_by_eval, FALSE, singleton);
354}
355
356static int
357ref_delete_symkey(VALUE key, VALUE value, VALUE unused)
358{
359 return SYMBOL_P(key) ? ST_DELETE : ST_CONTINUE;
360}
361
362static rb_cref_t *
363vm_cref_dup(const rb_cref_t *cref)
364{
365 const rb_scope_visibility_t *visi = CREF_SCOPE_VISI(cref);
366 rb_cref_t *next_cref = CREF_NEXT(cref), *new_cref;
367 int pushed_by_eval = CREF_PUSHED_BY_EVAL(cref);
368 int singleton = CREF_SINGLETON(cref);
369
370 new_cref = vm_cref_new(cref->klass_or_self, visi->method_visi, visi->module_func, next_cref, pushed_by_eval, singleton);
371
372 if (!NIL_P(CREF_REFINEMENTS(cref))) {
373 VALUE ref = rb_hash_dup(CREF_REFINEMENTS(cref));
374 rb_hash_foreach(ref, ref_delete_symkey, Qnil);
375 CREF_REFINEMENTS_SET(new_cref, ref);
376 CREF_OMOD_SHARED_UNSET(new_cref);
377 }
378
379 return new_cref;
380}
381
382
383rb_cref_t *
384rb_vm_cref_dup_without_refinements(const rb_cref_t *cref)
385{
386 const rb_scope_visibility_t *visi = CREF_SCOPE_VISI(cref);
387 rb_cref_t *next_cref = CREF_NEXT(cref), *new_cref;
388 int pushed_by_eval = CREF_PUSHED_BY_EVAL(cref);
389 int singleton = CREF_SINGLETON(cref);
390
391 new_cref = vm_cref_new(cref->klass_or_self, visi->method_visi, visi->module_func, next_cref, pushed_by_eval, singleton);
392
393 if (!NIL_P(CREF_REFINEMENTS(cref))) {
394 CREF_REFINEMENTS_SET(new_cref, Qnil);
395 CREF_OMOD_SHARED_UNSET(new_cref);
396 }
397
398 return new_cref;
399}
400
401static rb_cref_t *
402vm_cref_new_toplevel(rb_execution_context_t *ec)
403{
404 rb_cref_t *cref = vm_cref_new(rb_cObject, METHOD_VISI_PRIVATE /* toplevel visibility is private */, FALSE, NULL, FALSE, FALSE);
405 VALUE top_wrapper = rb_ec_thread_ptr(ec)->top_wrapper;
406
407 if (top_wrapper) {
408 cref = vm_cref_new(top_wrapper, METHOD_VISI_PRIVATE, FALSE, cref, FALSE, FALSE);
409 }
410
411 return cref;
412}
413
414rb_cref_t *
415rb_vm_cref_new_toplevel(void)
416{
417 return vm_cref_new_toplevel(GET_EC());
418}
419
420static void
421vm_cref_dump(const char *mesg, const rb_cref_t *cref)
422{
423 ruby_debug_printf("vm_cref_dump: %s (%p)\n", mesg, (void *)cref);
424
425 while (cref) {
426 ruby_debug_printf("= cref| klass: %s\n", RSTRING_PTR(rb_class_path(CREF_CLASS(cref))));
427 cref = CREF_NEXT(cref);
428 }
429}
430
431void
432rb_vm_block_ep_update(VALUE obj, const struct rb_block *dst, const VALUE *ep)
433{
434 *((const VALUE **)&dst->as.captured.ep) = ep;
435 RB_OBJ_WRITTEN(obj, Qundef, VM_ENV_ENVVAL(ep));
436}
437
438static void
439vm_bind_update_env(VALUE bindval, rb_binding_t *bind, VALUE envval)
440{
441 const rb_env_t *env = (rb_env_t *)envval;
442 RB_OBJ_WRITE(bindval, &bind->block.as.captured.code.iseq, env->iseq);
443 rb_vm_block_ep_update(bindval, &bind->block, env->ep);
444}
445
446#if VM_COLLECT_USAGE_DETAILS
447static void vm_collect_usage_operand(int insn, int n, VALUE op);
448static void vm_collect_usage_insn(int insn);
449static void vm_collect_usage_register(int reg, int isset);
450#endif
451
452static VALUE vm_make_env_object(const rb_execution_context_t *ec, rb_control_frame_t *cfp);
453static VALUE vm_invoke_bmethod(rb_execution_context_t *ec, rb_proc_t *proc, VALUE self,
454 int argc, const VALUE *argv, int kw_splat, VALUE block_handler,
456static VALUE vm_invoke_proc(rb_execution_context_t *ec, rb_proc_t *proc, VALUE self, int argc, const VALUE *argv, int kw_splat, VALUE block_handler);
457
458#if USE_YJIT
459// Counter to serve as a proxy for execution time, total number of calls
460static uint64_t yjit_total_entry_hits = 0;
461
462// Number of calls used to estimate how hot an ISEQ is
463#define YJIT_CALL_COUNT_INTERV 20u
464
466static inline bool
467rb_yjit_threshold_hit(const rb_iseq_t *iseq, uint64_t entry_calls)
468{
469 yjit_total_entry_hits += 1;
470
471 // Record the number of calls at the beginning of the interval
472 if (entry_calls + YJIT_CALL_COUNT_INTERV == rb_yjit_call_threshold) {
473 iseq->body->yjit_calls_at_interv = yjit_total_entry_hits;
474 }
475
476 // Try to estimate the total time taken (total number of calls) to reach 20 calls to this ISEQ
477 // This give us a ratio of how hot/cold this ISEQ is
478 if (entry_calls == rb_yjit_call_threshold) {
479 // We expect threshold 1 to compile everything immediately
480 if (rb_yjit_call_threshold < YJIT_CALL_COUNT_INTERV) {
481 return true;
482 }
483
484 uint64_t num_calls = yjit_total_entry_hits - iseq->body->yjit_calls_at_interv;
485
486 // Reject ISEQs that don't get called often enough
487 if (num_calls > rb_yjit_cold_threshold) {
488 rb_yjit_incr_counter("cold_iseq_entry");
489 return false;
490 }
491
492 return true;
493 }
494
495 return false;
496}
497#else
498#define rb_yjit_threshold_hit(iseq, entry_calls) false
499#endif
500
501#if USE_YJIT
502// Generate JIT code that supports the following kinds of ISEQ entries:
503// * The first ISEQ on vm_exec (e.g. <main>, or Ruby methods/blocks
504// called by a C method). The current frame has VM_FRAME_FLAG_FINISH.
505// The current vm_exec stops if JIT code returns a non-Qundef value.
506// * ISEQs called by the interpreter on vm_sendish (e.g. Ruby methods or
507// blocks called by a Ruby frame that isn't compiled or side-exited).
508// The current frame doesn't have VM_FRAME_FLAG_FINISH. The current
509// vm_exec does NOT stop whether JIT code returns Qundef or not.
510static inline rb_jit_func_t
511yjit_compile(rb_execution_context_t *ec)
512{
513 const rb_iseq_t *iseq = CFP_ISEQ(ec->cfp);
514 struct rb_iseq_constant_body *body = ISEQ_BODY(iseq);
515
516 // Increment the ISEQ's call counter and trigger JIT compilation if not compiled
517 if (body->jit_entry == NULL) {
518 body->jit_entry_calls++;
519 if (rb_yjit_threshold_hit(iseq, body->jit_entry_calls)) {
520 rb_yjit_compile_iseq(iseq, ec, false);
521 }
522 }
523 return body->jit_entry;
524}
525#else
526# define yjit_compile(ec) ((rb_jit_func_t)0)
527#endif
528
529#if USE_ZJIT
530static inline rb_jit_func_t
531zjit_compile(rb_execution_context_t *ec)
532{
533 const rb_iseq_t *iseq = CFP_ISEQ(ec->cfp);
534 struct rb_iseq_constant_body *body = ISEQ_BODY(iseq);
535
536 if (body->jit_entry == NULL) {
537 body->jit_entry_calls++;
538
539 // At profile-threshold, rewrite some of the YARV instructions
540 // to zjit_* instructions to profile these instructions.
541 if (body->jit_entry_calls == rb_zjit_profile_threshold) {
542 rb_zjit_profile_enable(iseq);
543 }
544
545 // At call-threshold, compile the ISEQ with ZJIT.
546 if (body->jit_entry_calls == rb_zjit_call_threshold) {
547 rb_zjit_compile_iseq(iseq, ec, false);
548 }
549 }
550 return body->jit_entry;
551}
552#else
553# define zjit_compile(ec) ((rb_jit_func_t)0)
554#endif
555
556static inline void zjit_materialize_frames(rb_control_frame_t *cfp);
557
558#if USE_YJIT || USE_ZJIT
559// Execute JIT code compiled by yjit_compile() or zjit_compile()
560static inline VALUE
561jit_exec(rb_execution_context_t *ec)
562{
563#if USE_YJIT
564 if (rb_yjit_enabled_p) {
565 rb_jit_func_t func = yjit_compile(ec);
566 if (func) {
567 return func(ec, ec->cfp);
568 }
569 return Qundef;
570 }
571#endif
572
573#if USE_ZJIT
574 void *zjit_entry = rb_zjit_entry;
575 if (zjit_entry) {
576 rb_jit_func_t func = zjit_compile(ec);
577 if (func) {
578 VALUE result = ((rb_zjit_func_t)zjit_entry)(ec, ec->cfp, func);
579 // Materialize any remaining lightweight ZJIT frames on side exit.
580 // This is done here (once per JIT entry) instead of in each side exit
581 // to reduce generated code size.
582 if (UNDEF_P(result)) {
583 ec->cfp->jit_return = 0;
584 zjit_materialize_frames(ec->cfp);
585 }
586 return result;
587 }
588 }
589#endif
590 return Qundef;
591}
592
593// Generate JIT code that supports the following kind of ISEQ entry:
594// * The first ISEQ pushed by vm_exec_handle_exception. The frame would
595// point to a location specified by a catch table, and it doesn't have
596// VM_FRAME_FLAG_FINISH. The current vm_exec stops if JIT code returns
597// a non-Qundef value. So you should not return a non-Qundef value
598// until ec->cfp is changed to a frame with VM_FRAME_FLAG_FINISH.
599static inline rb_jit_func_t
600jit_compile_exception(rb_execution_context_t *ec)
601{
602 const rb_iseq_t *iseq = CFP_ISEQ(ec->cfp);
603 struct rb_iseq_constant_body *body = ISEQ_BODY(iseq);
604
605#if USE_ZJIT
606 if (body->jit_exception == NULL && rb_zjit_enabled_p) {
607 body->jit_exception_calls++;
608
609 // At profile-threshold, rewrite some of the YARV instructions
610 // to zjit_* instructions to profile these instructions.
611 if (body->jit_exception_calls == rb_zjit_profile_threshold) {
612 rb_zjit_profile_enable(iseq);
613 }
614
615 // At call-threshold, compile the ISEQ with ZJIT.
616 if (body->jit_exception_calls == rb_zjit_call_threshold) {
617 rb_zjit_compile_iseq(iseq, ec, true);
618 }
619 }
620#endif
621
622#if USE_YJIT
623 // Increment the ISEQ's call counter and trigger JIT compilation if not compiled
624 if (body->jit_exception == NULL && rb_yjit_enabled_p) {
625 body->jit_exception_calls++;
626 if (body->jit_exception_calls == rb_yjit_call_threshold) {
627 rb_yjit_compile_iseq(iseq, ec, true);
628 }
629 }
630#endif
631 return body->jit_exception;
632}
633
634// Execute JIT code compiled by jit_compile_exception()
635static inline VALUE
636jit_exec_exception(rb_execution_context_t *ec)
637{
638 rb_jit_func_t func = jit_compile_exception(ec);
639 if (func) {
640 // Call the JIT code
641 return func(ec, ec->cfp);
642 }
643 else {
644 return Qundef;
645 }
646}
647#else
648# define jit_compile_exception(ec) ((rb_jit_func_t)0)
649# define jit_exec(ec) Qundef
650# define jit_exec_exception(ec) Qundef
651#endif
652
653static void add_opt_method_entry(const rb_method_entry_t *me);
654
655#define RB_TYPE_2_P(obj, type1, type2) \
656 (RB_TYPE_P(obj, type1) || RB_TYPE_P(obj, type2))
657#define RB_TYPE_3_P(obj, type1, type2, type3) \
658 (RB_TYPE_P(obj, type1) || RB_TYPE_P(obj, type2) || RB_TYPE_P(obj, type3))
659
660#define VM_ASSERT_TYPE(obj, type) \
661 VM_ASSERT(RB_TYPE_P(obj, type), #obj ": %s", rb_obj_info(obj))
662#define VM_ASSERT_TYPE2(obj, type1, type2) \
663 VM_ASSERT(RB_TYPE_2_P(obj, type1, type2), #obj ": %s", rb_obj_info(obj))
664#define VM_ASSERT_TYPE3(obj, type1, type2, type3) \
665 VM_ASSERT(RB_TYPE_3_P(obj, type1, type2, type3), #obj ": %s", rb_obj_info(obj))
666
667#include "vm_insnhelper.c"
668
669#include "vm_exec.c"
670
671#include "vm_method.c"
672#include "vm_eval.c"
673
674#define PROCDEBUG 0
675
676VALUE rb_cRubyVM;
678VALUE rb_mRubyVMFrozenCore;
679VALUE rb_block_param_proxy;
680
681VALUE ruby_vm_const_missing_count = 0;
682rb_vm_t *ruby_current_vm_ptr = NULL;
683rb_ractor_t *ruby_single_main_ractor;
684bool ruby_vm_keep_script_lines;
685
686#ifdef RB_THREAD_LOCAL_SPECIFIER
687RB_THREAD_LOCAL_SPECIFIER rb_execution_context_t *ruby_current_ec;
688
689#ifdef RUBY_NT_SERIAL
690RB_THREAD_LOCAL_SPECIFIER rb_atomic_t ruby_nt_serial;
691#endif
692
693// no-inline decl on vm_core.h
695rb_current_ec_noinline(void)
696{
697 return ruby_current_ec;
698}
699
700void
701rb_current_ec_set(rb_execution_context_t *ec)
702{
703 ruby_current_ec = ec;
704}
705
706
707#ifdef RB_THREAD_CURRENT_EC_NOINLINE
709rb_current_ec(void)
710{
711 return ruby_current_ec;
712}
713
714#endif
715#else
716native_tls_key_t ruby_current_ec_key;
717
718// no-inline decl on vm_core.h
720rb_current_ec_noinline(void)
721{
722 return native_tls_get(ruby_current_ec_key);
723}
724
725#endif
726
727rb_event_flag_t ruby_vm_event_flags = 0;
728rb_event_flag_t ruby_vm_event_enabled_global_flags = 0;
729unsigned int ruby_vm_c_events_enabled = 0;
730unsigned int ruby_vm_iseq_events_enabled = 0;
731
732rb_serial_t ruby_vm_constant_cache_invalidations = 0;
733rb_serial_t ruby_vm_constant_cache_misses = 0;
734rb_serial_t ruby_vm_global_cvar_state = 1;
735
736static const struct rb_callcache vm_empty_cc = {
737 .flags = T_IMEMO | (imemo_callcache << FL_USHIFT) | VM_CALLCACHE_UNMARKABLE,
738 .klass = Qundef,
739 .cme_ = NULL,
740 .call_ = vm_call_general,
741 .aux_ = {
742 .v = Qfalse,
743 }
744};
745
746static const struct rb_callcache vm_empty_cc_for_super = {
747 .flags = T_IMEMO | (imemo_callcache << FL_USHIFT) | VM_CALLCACHE_UNMARKABLE,
748 .klass = Qundef,
749 .cme_ = NULL,
750 .call_ = vm_call_super_method,
751 .aux_ = {
752 .v = Qfalse,
753 }
754};
755
756static void thread_free(void *ptr);
757
758void
759rb_vm_inc_const_missing_count(void)
760{
761 ruby_vm_const_missing_count +=1;
762}
763
764int
765rb_dtrace_setup(rb_execution_context_t *ec, VALUE klass, ID id,
766 struct ruby_dtrace_method_hook_args *args)
767{
769 if (!klass) {
770 if (!ec) ec = GET_EC();
771 if (!rb_ec_frame_method_id_and_class(ec, &id, 0, &klass) || !klass)
772 return FALSE;
773 }
774 if (RB_TYPE_P(klass, T_ICLASS)) {
775 klass = RBASIC(klass)->klass;
776 }
777 else if (RCLASS_SINGLETON_P(klass)) {
778 klass = RCLASS_ATTACHED_OBJECT(klass);
779 if (NIL_P(klass)) return FALSE;
780 }
781 type = BUILTIN_TYPE(klass);
782 if (type == T_CLASS || type == T_ICLASS || type == T_MODULE) {
783 VALUE name = rb_class_path(klass);
784 const char *classname, *filename;
785 const char *methodname = rb_id2name(id);
786 if (methodname && (filename = rb_source_location_cstr(&args->line_no)) != 0) {
787 if (NIL_P(name) || !(classname = StringValuePtr(name)))
788 classname = "<unknown>";
789 args->classname = classname;
790 args->methodname = methodname;
791 args->filename = filename;
792 args->klass = klass;
793 args->name = name;
794 return TRUE;
795 }
796 }
797 return FALSE;
798}
799
800extern unsigned int redblack_buffer_size;
801
802/*
803 * call-seq:
804 * RubyVM.stat -> Hash
805 * RubyVM.stat(hsh) -> hsh
806 * RubyVM.stat(Symbol) -> Numeric
807 *
808 * Returns a Hash containing implementation-dependent counters inside the VM.
809 *
810 * This hash includes information about method/constant caches:
811 *
812 * {
813 * :constant_cache_invalidations=>2,
814 * :constant_cache_misses=>14,
815 * :global_cvar_state=>27
816 * }
817 *
818 * If <tt>USE_DEBUG_COUNTER</tt> is enabled, debug counters will be included.
819 *
820 * The contents of the hash are implementation specific and may be changed in
821 * the future.
822 *
823 * This method is only expected to work on C Ruby.
824 */
825static VALUE
826vm_stat(int argc, VALUE *argv, VALUE self)
827{
828 static VALUE sym_constant_cache_invalidations, sym_constant_cache_misses, sym_global_cvar_state, sym_next_shape_id;
829 static VALUE sym_shape_cache_size;
830 VALUE arg = Qnil;
831 VALUE hash = Qnil, key = Qnil;
832
833 if (rb_check_arity(argc, 0, 1) == 1) {
834 arg = argv[0];
835 if (SYMBOL_P(arg))
836 key = arg;
837 else if (RB_TYPE_P(arg, T_HASH))
838 hash = arg;
839 else
840 rb_raise(rb_eTypeError, "non-hash or symbol given");
841 }
842 else {
843 hash = rb_hash_new();
844 }
845
846#define S(s) sym_##s = ID2SYM(rb_intern_const(#s))
847 S(constant_cache_invalidations);
848 S(constant_cache_misses);
849 S(global_cvar_state);
850 S(next_shape_id);
851 S(shape_cache_size);
852#undef S
853
854#define SET(name, attr) \
855 if (key == sym_##name) \
856 return SERIALT2NUM(attr); \
857 else if (hash != Qnil) \
858 rb_hash_aset(hash, sym_##name, SERIALT2NUM(attr));
859
860 SET(constant_cache_invalidations, ruby_vm_constant_cache_invalidations);
861 SET(constant_cache_misses, ruby_vm_constant_cache_misses);
862 SET(global_cvar_state, ruby_vm_global_cvar_state);
863 SET(next_shape_id, (rb_serial_t)rb_shapes_count());
864 SET(shape_cache_size, (rb_serial_t)rb_shapes_cache_size());
865#undef SET
866
867#if USE_DEBUG_COUNTER
868 ruby_debug_counter_show_at_exit(FALSE);
869 for (size_t i = 0; i < RB_DEBUG_COUNTER_MAX; i++) {
870 const VALUE name = rb_sym_intern_ascii_cstr(rb_debug_counter_names[i]);
871 const VALUE boxed_value = SIZET2NUM(rb_debug_counter[i]);
872
873 if (key == name) {
874 return boxed_value;
875 }
876 else if (hash != Qnil) {
877 rb_hash_aset(hash, name, boxed_value);
878 }
879 }
880#endif
881
882 if (!NIL_P(key)) { /* matched key should return above */
883 rb_raise(rb_eArgError, "unknown key: %"PRIsVALUE, rb_sym2str(key));
884 }
885
886 return hash;
887}
888
889/* control stack frame */
890
891static void
892vm_set_top_stack(rb_execution_context_t *ec, const rb_iseq_t *iseq, const rb_box_t *box)
893{
894 if (ISEQ_BODY(iseq)->type != ISEQ_TYPE_TOP) {
895 rb_raise(rb_eTypeError, "Not a toplevel InstructionSequence");
896 }
897
898 /* for return */
899 vm_push_frame(ec, iseq, VM_FRAME_MAGIC_TOP | VM_ENV_FLAG_LOCAL | VM_FRAME_FLAG_FINISH,
900 rb_ec_thread_ptr(ec)->top_self,
901 GC_GUARDED_PTR(box),
902 (VALUE)vm_cref_new_toplevel(ec), /* cref or me */
903 ISEQ_BODY(iseq)->iseq_encoded, ec->cfp->sp,
904 ISEQ_BODY(iseq)->local_table_size, ISEQ_BODY(iseq)->stack_max);
905}
906
907static void
908vm_set_eval_stack(rb_execution_context_t *ec, const rb_iseq_t *iseq, const rb_cref_t *cref, const struct rb_block *base_block)
909{
910 vm_push_frame(ec, iseq, VM_FRAME_MAGIC_EVAL | VM_FRAME_FLAG_FINISH,
911 vm_block_self(base_block), VM_GUARDED_PREV_EP(vm_block_ep(base_block)),
912 (VALUE)cref, /* cref or me */
913 ISEQ_BODY(iseq)->iseq_encoded,
914 ec->cfp->sp, ISEQ_BODY(iseq)->local_table_size,
915 ISEQ_BODY(iseq)->stack_max);
916}
917
918static void
919vm_set_main_stack(rb_execution_context_t *ec, const rb_iseq_t *iseq)
920{
921 VALUE toplevel_binding = rb_const_get(rb_cObject, rb_intern("TOPLEVEL_BINDING"));
922 rb_binding_t *bind;
923
924 GetBindingPtr(toplevel_binding, bind);
925 RUBY_ASSERT_MESG(bind, "TOPLEVEL_BINDING is not built");
926
927 vm_set_eval_stack(ec, iseq, 0, &bind->block);
928
929 /* save binding */
930 if (ISEQ_BODY(iseq)->local_table_size > 0) {
931 vm_bind_update_env(toplevel_binding, bind, vm_make_env_object(ec, ec->cfp));
932 }
933}
934
936rb_vm_get_binding_creatable_next_cfp(const rb_execution_context_t *ec, const rb_control_frame_t *cfp)
937{
938 while (!RUBY_VM_CONTROL_FRAME_STACK_OVERFLOW_P(ec, cfp)) {
939 if (CFP_ISEQ(cfp)) {
940 return (rb_control_frame_t *)cfp;
941 }
942 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
943 }
944 return 0;
945}
946
948rb_vm_get_ruby_level_next_cfp(const rb_execution_context_t *ec, const rb_control_frame_t *cfp)
949{
950 while (!RUBY_VM_CONTROL_FRAME_STACK_OVERFLOW_P(ec, cfp)) {
951 if (VM_FRAME_RUBYFRAME_P(cfp)) {
952 return (rb_control_frame_t *)cfp;
953 }
954 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
955 }
956 return 0;
957}
958
959static rb_control_frame_t *
960vm_get_ruby_level_caller_cfp(const rb_execution_context_t *ec, const rb_control_frame_t *cfp)
961{
962 if (VM_FRAME_RUBYFRAME_P(cfp)) {
963 return (rb_control_frame_t *)cfp;
964 }
965
966 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
967
968 while (!RUBY_VM_CONTROL_FRAME_STACK_OVERFLOW_P(ec, cfp)) {
969 if (VM_FRAME_RUBYFRAME_P(cfp)) {
970 return (rb_control_frame_t *)cfp;
971 }
972
973 if (VM_ENV_FLAGS(cfp->ep, VM_FRAME_FLAG_PASSED) == FALSE) {
974 break;
975 }
976 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
977 }
978 return 0;
979}
980
981void
982rb_vm_pop_cfunc_frame(void)
983{
984 rb_execution_context_t *ec = GET_EC();
985 rb_control_frame_t *cfp = ec->cfp;
986 const rb_callable_method_entry_t *me = rb_vm_frame_method_entry(cfp);
987
988 EXEC_EVENT_HOOK(ec, RUBY_EVENT_C_RETURN, cfp->self, me->def->original_id, me->called_id, me->owner, Qnil);
989 RUBY_DTRACE_CMETHOD_RETURN_HOOK(ec, me->owner, me->def->original_id);
990 vm_pop_frame(ec, cfp, cfp->ep);
991}
992
993void
994rb_vm_rewind_cfp(rb_execution_context_t *ec, rb_control_frame_t *cfp)
995{
996 /* check skipped frame */
997 while (ec->cfp != cfp) {
998#if VMDEBUG
999 printf("skipped frame: %s\n", vm_frametype_name(ec->cfp));
1000#endif
1001 if (VM_FRAME_TYPE(ec->cfp) != VM_FRAME_MAGIC_CFUNC) {
1002 rb_vm_pop_frame(ec);
1003 }
1004 else { /* unlikely path */
1005 rb_vm_pop_cfunc_frame();
1006 }
1007 }
1008}
1009
1010/* at exit */
1011
1012void
1013ruby_vm_at_exit(void (*func)(rb_vm_t *))
1014{
1015 rb_vm_t *vm = GET_VM();
1017 nl->func = func;
1018 nl->next = vm->at_exit;
1019 vm->at_exit = nl;
1020}
1021
1022static void
1023ruby_vm_run_at_exit_hooks(rb_vm_t *vm)
1024{
1025 rb_at_exit_list *l = vm->at_exit;
1026
1027 while (l) {
1028 rb_at_exit_list* t = l->next;
1029 rb_vm_at_exit_func *func = l->func;
1030 ruby_xfree(l);
1031 l = t;
1032 (*func)(vm);
1033 }
1034}
1035
1036/* Env */
1037
1038static VALUE check_env_value(const rb_env_t *env);
1039
1040static int
1041check_env(const rb_env_t *env)
1042{
1043 fputs("---\n", stderr);
1044 ruby_debug_printf("envptr: %p\n", (void *)&env->ep[0]);
1045 ruby_debug_printf("envval: %10p ", (void *)env->ep[1]);
1046 dp(env->ep[1]);
1047 ruby_debug_printf("ep: %10p\n", (void *)env->ep);
1048 if (rb_vm_env_prev_env(env)) {
1049 fputs(">>\n", stderr);
1050 check_env_value(rb_vm_env_prev_env(env));
1051 fputs("<<\n", stderr);
1052 }
1053 return 1;
1054}
1055
1056static VALUE
1057check_env_value(const rb_env_t *env)
1058{
1059 if (check_env(env)) {
1060 return (VALUE)env;
1061 }
1062 rb_bug("invalid env");
1063 return Qnil; /* unreachable */
1064}
1065
1066static VALUE
1067vm_block_handler_escape(const rb_execution_context_t *ec, VALUE block_handler)
1068{
1069 switch (vm_block_handler_type(block_handler)) {
1070 case block_handler_type_ifunc:
1071 case block_handler_type_iseq:
1072 return rb_vm_make_proc(ec, VM_BH_TO_CAPT_BLOCK(block_handler), rb_cProc);
1073
1074 case block_handler_type_symbol:
1075 case block_handler_type_proc:
1076 return block_handler;
1077 }
1078 VM_UNREACHABLE(vm_block_handler_escape);
1079 return Qnil;
1080}
1081
1082static VALUE
1083vm_make_env_each(const rb_execution_context_t * const ec, rb_control_frame_t *const cfp)
1084{
1085 const VALUE * const ep = cfp->ep;
1086 VALUE *env_body, *env_ep;
1087 int local_size, env_size;
1088
1089 if (VM_ENV_ESCAPED_P(ep)) {
1090 return VM_ENV_ENVVAL(ep);
1091 }
1092
1093 if (!VM_ENV_LOCAL_P(ep)) {
1094 const VALUE *prev_ep = VM_ENV_PREV_EP(ep);
1095 if (!VM_ENV_ESCAPED_P(prev_ep)) {
1096 rb_control_frame_t *prev_cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
1097
1098 while (prev_cfp->ep != prev_ep) {
1099 prev_cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(prev_cfp);
1100 VM_ASSERT(prev_cfp->ep != NULL);
1101 }
1102
1103 vm_make_env_each(ec, prev_cfp);
1104 VM_FORCE_WRITE_SPECIAL_CONST(&ep[VM_ENV_DATA_INDEX_SPECVAL], VM_GUARDED_PREV_EP(prev_cfp->ep));
1105 }
1106 }
1107 else {
1108 VM_ASSERT(VM_ENV_LOCAL_P(ep));
1109 VALUE block_handler = VM_ENV_BLOCK_HANDLER(ep);
1110
1111 if (block_handler != VM_BLOCK_HANDLER_NONE) {
1112 VALUE blockprocval = vm_block_handler_escape(ec, block_handler);
1113 VM_STACK_ENV_WRITE(ep, VM_ENV_DATA_INDEX_SPECVAL, blockprocval);
1114 }
1115 }
1116
1117 const rb_iseq_t *iseq = CFP_ISEQ(cfp);
1118 if (!VM_FRAME_RUBYFRAME_P(cfp)) {
1119 local_size = VM_ENV_DATA_SIZE;
1120 }
1121 else {
1122 local_size = ISEQ_BODY(iseq)->local_table_size;
1123 if (ISEQ_BODY(iseq)->param.flags.forwardable && VM_ENV_LOCAL_P(cfp->ep)) {
1124 int ci_offset = local_size - ISEQ_BODY(iseq)->param.size + VM_ENV_DATA_SIZE;
1125
1126 CALL_INFO ci = (CALL_INFO)VM_CF_LEP(cfp)[-ci_offset];
1127 local_size += vm_ci_argc(ci);
1128 }
1129 local_size += VM_ENV_DATA_SIZE;
1130 }
1131
1132 // Invalidate JIT code that assumes cfp->ep == vm_base_ptr(cfp).
1133 // This is done before creating the imemo_env because VM_STACK_ENV_WRITE
1134 // below leaves the on-stack ep in a state that is unsafe to GC.
1135 if (VM_FRAME_RUBYFRAME_P(cfp)) {
1136 rb_yjit_invalidate_ep_is_bp(iseq);
1137 rb_zjit_invalidate_no_ep_escape(iseq);
1138 }
1139
1140 /*
1141 * # local variables on a stack frame (N == local_size)
1142 * [lvar1, lvar2, ..., lvarN, SPECVAL]
1143 * ^
1144 * ep[0]
1145 *
1146 * # moved local variables
1147 * [lvar1, lvar2, ..., lvarN, SPECVAL, Envval, BlockProcval (if needed)]
1148 * ^ ^
1149 * env->env[0] ep[0]
1150 */
1151
1152 env_size = local_size +
1153 1 /* envval */;
1154
1155 // Careful with order in the following sequence. Each allocation can move objects.
1156 env_body = ALLOC_N(VALUE, env_size);
1157 rb_env_t *env = IMEMO_NEW(rb_env_t, imemo_env, 0);
1158
1159 // Set up env without WB since it's brand new (similar to newobj_init(), newobj_fill())
1160 MEMCPY(env_body, ep - (local_size - 1 /* specval */), VALUE, local_size);
1161
1162 env_ep = &env_body[local_size - 1 /* specval */];
1163 env_ep[VM_ENV_DATA_INDEX_ENV] = (VALUE)env;
1164
1165 env->iseq = (rb_iseq_t *)(VM_FRAME_RUBYFRAME_P(cfp) ? iseq : NULL);
1166 env->ep = env_ep;
1167 env->env = env_body;
1168 env->env_size = env_size;
1169
1170 cfp->ep = env_ep;
1171 VM_ENV_FLAGS_SET(env_ep, VM_ENV_FLAG_ESCAPED | VM_ENV_FLAG_WB_REQUIRED);
1172 VM_STACK_ENV_WRITE(ep, 0, (VALUE)env); /* GC mark */
1173
1174#if 0
1175 for (i = 0; i < local_size; i++) {
1176 if (VM_FRAME_RUBYFRAME_P(cfp)) {
1177 /* clear value stack for GC */
1178 ep[-local_size + i] = 0;
1179 }
1180 }
1181#endif
1182
1183 return (VALUE)env;
1184}
1185
1186static VALUE
1187vm_make_env_object(const rb_execution_context_t *ec, rb_control_frame_t *cfp)
1188{
1189 VALUE envval = vm_make_env_each(ec, cfp);
1190
1191 if (PROCDEBUG) {
1192 check_env_value((const rb_env_t *)envval);
1193 }
1194
1195 return envval;
1196}
1197
1198void
1199rb_vm_stack_to_heap(rb_execution_context_t *ec)
1200{
1201 rb_control_frame_t *cfp = ec->cfp;
1202 while ((cfp = rb_vm_get_binding_creatable_next_cfp(ec, cfp)) != 0) {
1203 vm_make_env_object(ec, cfp);
1204 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
1205 }
1206}
1207
1208const rb_env_t *
1209rb_vm_env_prev_env(const rb_env_t *env)
1210{
1211 const VALUE *ep = env->ep;
1212
1213 if (VM_ENV_LOCAL_P(ep)) {
1214 return NULL;
1215 }
1216 else {
1217 const VALUE *prev_ep = VM_ENV_PREV_EP(ep);
1218 return VM_ENV_ENVVAL_PTR(prev_ep);
1219 }
1220}
1221
1222static int
1223collect_local_variables_in_iseq(const rb_iseq_t *iseq, const struct local_var_list *vars)
1224{
1225 unsigned int i;
1226 if (!iseq) return 0;
1227 for (i = 0; i < ISEQ_BODY(iseq)->local_table_size; i++) {
1228 local_var_list_add(vars, ISEQ_BODY(iseq)->local_table[i]);
1229 }
1230 return 1;
1231}
1232
1233static void
1234collect_local_variables_in_env(const rb_env_t *env, const struct local_var_list *vars)
1235{
1236 do {
1237 if (VM_ENV_FLAGS(env->ep, VM_ENV_FLAG_ISOLATED)) break;
1238 collect_local_variables_in_iseq(env->iseq, vars);
1239 } while ((env = rb_vm_env_prev_env(env)) != NULL);
1240}
1241
1242static int
1243vm_collect_local_variables_in_heap(const VALUE *ep, const struct local_var_list *vars)
1244{
1245 if (VM_ENV_ESCAPED_P(ep)) {
1246 collect_local_variables_in_env(VM_ENV_ENVVAL_PTR(ep), vars);
1247 return 1;
1248 }
1249 else {
1250 return 0;
1251 }
1252}
1253
1254VALUE
1255rb_vm_env_local_variables(const rb_env_t *env)
1256{
1257 struct local_var_list vars;
1258 local_var_list_init(&vars);
1259 collect_local_variables_in_env(env, &vars);
1260 return local_var_list_finish(&vars);
1261}
1262
1263VALUE
1264rb_vm_env_numbered_parameters(const rb_env_t *env)
1265{
1266 struct local_var_list vars;
1267 local_var_list_init(&vars);
1268 // if (VM_ENV_FLAGS(env->ep, VM_ENV_FLAG_ISOLATED)) break; // TODO: is this needed?
1269 const rb_iseq_t *iseq = env->iseq;
1270 unsigned int i;
1271 if (!iseq) return 0;
1272 for (i = 0; i < ISEQ_BODY(iseq)->local_table_size; i++) {
1273 numparam_list_add(&vars, ISEQ_BODY(iseq)->local_table[i]);
1274 }
1275 return local_var_list_finish(&vars);
1276}
1277
1278VALUE
1279rb_iseq_local_variables(const rb_iseq_t *iseq)
1280{
1281 struct local_var_list vars;
1282 local_var_list_init(&vars);
1283 while (collect_local_variables_in_iseq(iseq, &vars)) {
1284 iseq = ISEQ_BODY(iseq)->parent_iseq;
1285 }
1286 return local_var_list_finish(&vars);
1287}
1288
1289/* Proc */
1290
1291static VALUE
1292vm_proc_create_from_captured(VALUE klass,
1293 const struct rb_captured_block *captured,
1294 enum rb_block_type block_type,
1295 int8_t is_from_method, int8_t is_lambda)
1296{
1297 VALUE procval = rb_proc_alloc(klass);
1298 rb_proc_t *proc = RTYPEDDATA_DATA(procval);
1299
1300 VM_ASSERT(VM_EP_IN_HEAP_P(GET_EC(), captured->ep));
1301
1302 /* copy block */
1303 RB_OBJ_WRITE(procval, &proc->block.as.captured.code.val, captured->code.val);
1304 RB_OBJ_WRITE(procval, &proc->block.as.captured.self, captured->self);
1305 rb_vm_block_ep_update(procval, &proc->block, captured->ep);
1306
1307 vm_block_type_set(&proc->block, block_type);
1308 proc->is_from_method = is_from_method;
1309 proc->is_lambda = is_lambda;
1310
1311 return procval;
1312}
1313
1314void
1315rb_vm_block_copy(VALUE obj, const struct rb_block *dst, const struct rb_block *src)
1316{
1317 /* copy block */
1318 switch (vm_block_type(src)) {
1319 case block_type_iseq:
1320 case block_type_ifunc:
1321 RB_OBJ_WRITE(obj, &dst->as.captured.self, src->as.captured.self);
1322 RB_OBJ_WRITE(obj, &dst->as.captured.code.val, src->as.captured.code.val);
1323 rb_vm_block_ep_update(obj, dst, src->as.captured.ep);
1324 break;
1325 case block_type_symbol:
1326 RB_OBJ_WRITE(obj, &dst->as.symbol, src->as.symbol);
1327 break;
1328 case block_type_proc:
1329 RB_OBJ_WRITE(obj, &dst->as.proc, src->as.proc);
1330 break;
1331 }
1332}
1333
1334static VALUE
1335proc_create(VALUE klass, const struct rb_block *block, int8_t is_from_method, int8_t is_lambda)
1336{
1337 VALUE procval = rb_proc_alloc(klass);
1338 rb_proc_t *proc = RTYPEDDATA_DATA(procval);
1339
1340 VM_ASSERT(VM_EP_IN_HEAP_P(GET_EC(), vm_block_ep(block)));
1341 rb_vm_block_copy(procval, &proc->block, block);
1342 vm_block_type_set(&proc->block, block->type);
1343 proc->is_from_method = is_from_method;
1344 proc->is_lambda = is_lambda;
1345
1346 return procval;
1347}
1348
1349VALUE
1350rb_proc_dup(VALUE self)
1351{
1352 VALUE procval;
1353 rb_proc_t *src;
1354
1355 GetProcPtr(self, src);
1356
1357 switch (vm_block_type(&src->block)) {
1358 case block_type_ifunc:
1359 procval = rb_func_proc_dup(self);
1360 break;
1361 default:
1362 procval = proc_create(rb_obj_class(self), &src->block, src->is_from_method, src->is_lambda);
1363 break;
1364 }
1365
1366 if (RB_OBJ_SHAREABLE_P(self)) RB_OBJ_SET_SHAREABLE(procval);
1367 RB_GC_GUARD(self); /* for: body = rb_proc_dup(body) */
1368 return procval;
1369}
1370
1372 VALUE ary;
1373 VALUE read_only;
1374 bool yield;
1375 bool isolate;
1376};
1377
1378static VALUE
1379ID2NUM(ID id)
1380{
1381 if (SIZEOF_VOIDP > SIZEOF_LONG)
1382 return ULL2NUM(id);
1383 else
1384 return ULONG2NUM(id);
1385}
1386
1387static ID
1388NUM2ID(VALUE num)
1389{
1390 if (SIZEOF_VOIDP > SIZEOF_LONG)
1391 return (ID)NUM2ULL(num);
1392 else
1393 return (ID)NUM2ULONG(num);
1394}
1395
1396static enum rb_id_table_iterator_result
1397collect_outer_variable_names(ID id, VALUE val, void *ptr)
1398{
1400
1401 if (id == rb_intern("yield")) {
1402 data->yield = true;
1403 }
1404 else {
1405 VALUE *store;
1406 if (data->isolate ||
1407 val == Qtrue /* write */) {
1408 store = &data->ary;
1409 }
1410 else {
1411 store = &data->read_only;
1412 }
1413 if (*store == Qfalse) *store = rb_ary_new();
1414 rb_ary_push(*store, ID2NUM(id));
1415 }
1416 return ID_TABLE_CONTINUE;
1417}
1418
1419static const rb_env_t *
1420env_copy(const VALUE *src_ep, VALUE read_only_variables)
1421{
1422 const rb_env_t *src_env = (rb_env_t *)VM_ENV_ENVVAL(src_ep);
1423 VM_ASSERT(src_env->ep == src_ep);
1424
1425 VALUE *env_body = ZALLOC_N(VALUE, src_env->env_size); // fill with Qfalse
1426 VALUE *ep = &env_body[src_env->env_size - 2];
1427 const rb_env_t *copied_env = vm_env_new(ep, env_body, src_env->env_size, src_env->iseq);
1428
1429 // Copy after allocations above, since they can move objects in src_ep.
1430 VALUE svar_val = src_ep[VM_ENV_DATA_INDEX_ME_CREF];
1431 if (imemo_type_p(svar_val, imemo_svar)) {
1432 const struct vm_svar *svar = (struct vm_svar *)svar_val;
1433
1434 if (svar->cref_or_me) {
1435 svar_val = svar->cref_or_me;
1436 }
1437 else {
1438 svar_val = Qfalse;
1439 }
1440 }
1441 RB_OBJ_WRITE(copied_env, &ep[VM_ENV_DATA_INDEX_ME_CREF], svar_val);
1442
1443 ep[VM_ENV_DATA_INDEX_FLAGS] = src_ep[VM_ENV_DATA_INDEX_FLAGS] | VM_ENV_FLAG_ISOLATED;
1444 if (!VM_ENV_LOCAL_P(src_ep)) {
1445 VM_ENV_FLAGS_SET(ep, VM_ENV_FLAG_LOCAL);
1446 }
1447
1448 if (read_only_variables) {
1449 for (int i=RARRAY_LENINT(read_only_variables)-1; i>=0; i--) {
1450 ID id = NUM2ID(RARRAY_AREF(read_only_variables, i));
1451
1452 const struct rb_iseq_constant_body *body = ISEQ_BODY(src_env->iseq);
1453 for (unsigned int j=0; j<body->local_table_size; j++) {
1454 if (id == body->local_table[j]) {
1455 // check reassignment
1456 if (body->lvar_states[j] == lvar_reassigned) {
1457 VALUE name = rb_id2str(id);
1458 VALUE msg = rb_sprintf("cannot make a shareable Proc because "
1459 "the outer variable '%" PRIsVALUE "' may be reassigned.", name);
1460 rb_exc_raise(rb_exc_new_str(rb_eRactorIsolationError, msg));
1461 }
1462
1463 // check shareable
1464 VALUE v = src_env->env[j];
1465 if (!rb_ractor_shareable_p(v)) {
1466 VALUE name = rb_id2str(id);
1467 VALUE msg = rb_sprintf("cannot make a shareable Proc because it can refer"
1468 " unshareable object %+" PRIsVALUE " from ", v);
1469 if (name)
1470 rb_str_catf(msg, "variable '%" PRIsVALUE "'", name);
1471 else
1472 rb_str_cat_cstr(msg, "a hidden variable");
1473 rb_exc_raise(rb_exc_new_str(rb_eRactorIsolationError, msg));
1474 }
1475 RB_OBJ_WRITE((VALUE)copied_env, &env_body[j], v);
1476 rb_ary_delete_at(read_only_variables, i);
1477 break;
1478 }
1479 }
1480 }
1481 }
1482
1483 if (!VM_ENV_LOCAL_P(src_ep)) {
1484 const VALUE *prev_ep = VM_ENV_PREV_EP(src_env->ep);
1485 const rb_env_t *new_prev_env = env_copy(prev_ep, read_only_variables);
1486 ep[VM_ENV_DATA_INDEX_SPECVAL] = VM_GUARDED_PREV_EP(new_prev_env->ep);
1487 RB_OBJ_WRITTEN(copied_env, Qundef, new_prev_env);
1488 VM_ENV_FLAGS_UNSET(ep, VM_ENV_FLAG_LOCAL);
1489 }
1490 else {
1491 ep[VM_ENV_DATA_INDEX_SPECVAL] = VM_BLOCK_HANDLER_NONE;
1492 }
1493
1494 RB_OBJ_SET_SHAREABLE((VALUE)copied_env);
1495 return copied_env;
1496}
1497
1498static void
1499proc_isolate_env(VALUE self, rb_proc_t *proc, VALUE read_only_variables)
1500{
1501 const struct rb_captured_block *captured = &proc->block.as.captured;
1502 const rb_env_t *env = env_copy(captured->ep, read_only_variables);
1503 *((const VALUE **)&proc->block.as.captured.ep) = env->ep;
1504 RB_OBJ_WRITTEN(self, Qundef, env);
1505}
1506
1507static VALUE
1508proc_shared_outer_variables(struct rb_id_table *outer_variables, bool isolate, const char *message)
1509{
1510 struct collect_outer_variable_name_data data = {
1511 .isolate = isolate,
1512 .ary = Qfalse,
1513 .read_only = Qfalse,
1514 .yield = false,
1515 };
1516 rb_id_table_foreach(outer_variables, collect_outer_variable_names, (void *)&data);
1517
1518 if (data.ary != Qfalse) {
1519 VALUE str = rb_sprintf("can not %s because it accesses outer variables", message);
1520 VALUE ary = data.ary;
1521 const char *sep = " (";
1522 for (long i = 0; i < RARRAY_LEN(ary); i++) {
1523 VALUE name = rb_id2str(NUM2ID(RARRAY_AREF(ary, i)));
1524 if (!name) continue;
1525 rb_str_cat_cstr(str, sep);
1526 sep = ", ";
1527 rb_str_append(str, name);
1528 }
1529 if (*sep == ',') rb_str_cat_cstr(str, ")");
1530 rb_str_cat_cstr(str, data.yield ? " and uses 'yield'." : ".");
1531 rb_exc_raise(rb_exc_new_str(rb_eRactorIsolationError, str));
1532 }
1533 else if (data.yield) {
1534 rb_raise(rb_eRactorIsolationError, "can not %s because it uses 'yield'.", message);
1535 }
1536
1537 return data.read_only;
1538}
1539
1540VALUE
1541rb_proc_isolate_bang(VALUE self, VALUE replace_self)
1542{
1543 const rb_iseq_t *iseq = vm_proc_iseq(self);
1544
1545 if (iseq) {
1546 rb_proc_t *proc = (rb_proc_t *)RTYPEDDATA_DATA(self);
1547
1548 if (!UNDEF_P(replace_self)) {
1549 VM_ASSERT(rb_ractor_shareable_p(replace_self));
1550 RB_OBJ_WRITE(self, &proc->block.as.captured.self, replace_self);
1551 }
1552
1553 if (proc->block.type != block_type_iseq) rb_raise(rb_eRuntimeError, "not supported yet");
1554
1555 if (ISEQ_BODY(iseq)->outer_variables) {
1556 proc_shared_outer_variables(ISEQ_BODY(iseq)->outer_variables, true, "isolate a Proc");
1557 }
1558
1559 proc_isolate_env(self, proc, Qfalse);
1560 proc->is_isolated = TRUE;
1561 RB_OBJ_WRITE(self, &proc->block.as.captured.self, Qnil);
1562 }
1563
1564 RB_OBJ_SET_SHAREABLE(self);
1565 return self;
1566}
1567
1568VALUE
1569rb_proc_isolate(VALUE self)
1570{
1571 VALUE dst = rb_proc_dup(self);
1572 rb_proc_isolate_bang(dst, Qundef);
1573 return dst;
1574}
1575
1576VALUE
1577rb_proc_ractor_make_shareable(VALUE self, VALUE replace_self)
1578{
1579 const rb_iseq_t *iseq = vm_proc_iseq(self);
1580
1581 if (iseq) {
1582 rb_proc_t *proc = (rb_proc_t *)RTYPEDDATA_DATA(self);
1583
1584 if (!UNDEF_P(replace_self)) {
1585 RB_OBJ_WRITE(self, &proc->block.as.captured.self, replace_self);
1586 }
1587
1588 if (proc->block.type != block_type_iseq) rb_raise(rb_eRuntimeError, "not supported yet");
1589
1590 if (!rb_ractor_shareable_p(vm_block_self(&proc->block))) {
1591 rb_raise(rb_eRactorIsolationError,
1592 "Proc's self is not shareable: %" PRIsVALUE,
1593 self);
1594 }
1595
1596 VALUE read_only_variables = Qfalse;
1597
1598 if (ISEQ_BODY(iseq)->outer_variables) {
1599 read_only_variables =
1600 proc_shared_outer_variables(ISEQ_BODY(iseq)->outer_variables, false, "make a Proc shareable");
1601 }
1602
1603 proc_isolate_env(self, proc, read_only_variables);
1604 proc->is_isolated = TRUE;
1605 }
1606 else {
1607 const struct rb_block *block = vm_proc_block(self);
1608 if (block->type != block_type_symbol) rb_raise(rb_eRuntimeError, "not supported yet");
1609
1610 VALUE proc_self = vm_block_self(block);
1611 if (!rb_ractor_shareable_p(proc_self)) {
1612 rb_raise(rb_eRactorIsolationError,
1613 "Proc's self is not shareable: %" PRIsVALUE,
1614 self);
1615 }
1616 }
1617
1618 RB_OBJ_SET_FROZEN_SHAREABLE(self);
1619 return self;
1620}
1621
1622VALUE
1623rb_vm_make_proc_lambda(const rb_execution_context_t *ec, const struct rb_captured_block *captured, VALUE klass, int8_t is_lambda)
1624{
1625 VALUE procval;
1626 enum imemo_type code_type = imemo_type(captured->code.val);
1627
1628 if (!VM_ENV_ESCAPED_P(captured->ep)) {
1629 rb_control_frame_t *cfp = VM_CAPTURED_BLOCK_TO_CFP(captured);
1630 vm_make_env_object(ec, cfp);
1631 }
1632
1633 VM_ASSERT(VM_EP_IN_HEAP_P(ec, captured->ep));
1634 VM_ASSERT(code_type == imemo_iseq || code_type == imemo_ifunc);
1635
1636 procval = vm_proc_create_from_captured(klass, captured,
1637 code_type == imemo_iseq ? block_type_iseq : block_type_ifunc,
1638 FALSE, is_lambda);
1639
1640 if (code_type == imemo_ifunc) {
1641 struct vm_ifunc *ifunc = (struct vm_ifunc *)captured->code.val;
1642 if (ifunc->svar_lep) {
1643 VALUE ep0 = ifunc->svar_lep[0];
1644 if (RB_TYPE_P(ep0, T_IMEMO) && imemo_type_p(ep0, imemo_env)) {
1645 // `ep0 == imemo_env` means this ep is escaped to heap (in env object).
1646 const rb_env_t *env = (const rb_env_t *)ep0;
1647 ifunc->svar_lep = (VALUE *)env->ep;
1648 }
1649 else {
1650 VM_ASSERT(FIXNUM_P(ep0));
1651 if (ep0 & VM_ENV_FLAG_ESCAPED) {
1652 // ok. do nothing
1653 }
1654 else {
1655 ifunc->svar_lep = NULL;
1656 }
1657 }
1658 }
1659 }
1660
1661 return procval;
1662}
1663
1664/* Binding */
1665
1666VALUE
1667rb_vm_make_binding(const rb_execution_context_t *ec, const rb_control_frame_t *src_cfp)
1668{
1669 rb_control_frame_t *cfp = rb_vm_get_binding_creatable_next_cfp(ec, src_cfp);
1670 rb_control_frame_t *ruby_level_cfp = rb_vm_get_ruby_level_next_cfp(ec, src_cfp);
1671 VALUE bindval, envval;
1672 rb_binding_t *bind;
1673
1674 if (cfp == 0 || ruby_level_cfp == 0) {
1675 rb_raise(rb_eRuntimeError, "Can't create Binding Object on top of Fiber.");
1676 }
1677 if (!VM_FRAME_RUBYFRAME_P(src_cfp) &&
1678 !VM_FRAME_RUBYFRAME_P(RUBY_VM_PREVIOUS_CONTROL_FRAME(src_cfp))) {
1679 rb_raise(rb_eRuntimeError, "Cannot create Binding object for non-Ruby caller");
1680 }
1681
1682 envval = vm_make_env_object(ec, cfp);
1683 bindval = rb_binding_alloc(rb_cBinding);
1684 GetBindingPtr(bindval, bind);
1685 vm_bind_update_env(bindval, bind, envval);
1686 RB_OBJ_WRITE(bindval, &bind->block.as.captured.self, cfp->self);
1687 RB_OBJ_WRITE(bindval, &bind->block.as.captured.code.iseq, CFP_ISEQ(cfp));
1688 RB_OBJ_WRITE(bindval, &bind->pathobj, ISEQ_BODY(CFP_ISEQ(ruby_level_cfp))->location.pathobj);
1689 bind->first_lineno = rb_vm_get_sourceline(ruby_level_cfp);
1690
1691 return bindval;
1692}
1693
1694const VALUE *
1695rb_binding_add_dynavars(VALUE bindval, rb_binding_t *bind, int dyncount, const ID *dynvars)
1696{
1697 VALUE envval, pathobj = bind->pathobj;
1698 VALUE path = pathobj_path(pathobj);
1699 VALUE realpath = pathobj_realpath(pathobj);
1700 const struct rb_block *base_block;
1701 const rb_env_t *env;
1702 rb_execution_context_t *ec = GET_EC();
1703 const rb_iseq_t *base_iseq, *iseq;
1704 rb_node_scope_t tmp_node;
1705
1706 if (dyncount < 0) return 0;
1707
1708 base_block = &bind->block;
1709 base_iseq = vm_block_iseq(base_block);
1710
1711 VALUE idtmp = 0;
1712 rb_ast_id_table_t *dyns = ALLOCV(idtmp, sizeof(rb_ast_id_table_t) + dyncount * sizeof(ID));
1713 dyns->size = dyncount;
1714 MEMCPY(dyns->ids, dynvars, ID, dyncount);
1715
1716 rb_node_init(RNODE(&tmp_node), NODE_SCOPE);
1717 tmp_node.nd_tbl = dyns;
1718 tmp_node.nd_body = 0;
1719 tmp_node.nd_parent = NULL;
1720 tmp_node.nd_args = 0;
1721
1722 VALUE ast_value = rb_ruby_ast_new(RNODE(&tmp_node));
1723
1724 if (base_iseq) {
1725 iseq = rb_iseq_new(ast_value, ISEQ_BODY(base_iseq)->location.label, path, realpath, base_iseq, ISEQ_TYPE_EVAL);
1726 }
1727 else {
1728 VALUE tempstr = rb_fstring_lit("<temp>");
1729 iseq = rb_iseq_new_top(ast_value, tempstr, tempstr, tempstr, NULL);
1730 }
1731 tmp_node.nd_tbl = 0; /* reset table */
1732 ALLOCV_END(idtmp);
1733
1734 vm_set_eval_stack(ec, iseq, 0, base_block);
1735 vm_bind_update_env(bindval, bind, envval = vm_make_env_object(ec, ec->cfp));
1736 rb_vm_pop_frame(ec);
1737
1738 env = (const rb_env_t *)envval;
1739 return env->env;
1740}
1741
1742/* C -> Ruby: block */
1743
1744static inline void
1745invoke_block(rb_execution_context_t *ec, const rb_iseq_t *iseq, VALUE self, const struct rb_captured_block *captured, const rb_cref_t *cref, VALUE type, int opt_pc)
1746{
1747 int arg_size = ISEQ_BODY(iseq)->param.size;
1748
1749 vm_push_frame(ec, iseq, type | VM_FRAME_FLAG_FINISH, self,
1750 VM_GUARDED_PREV_EP(captured->ep),
1751 (VALUE)cref, /* cref or method */
1752 ISEQ_BODY(iseq)->iseq_encoded + opt_pc,
1753 ec->cfp->sp + arg_size,
1754 ISEQ_BODY(iseq)->local_table_size - arg_size,
1755 ISEQ_BODY(iseq)->stack_max);
1756}
1757
1758static inline void
1759invoke_bmethod(rb_execution_context_t *ec, const rb_iseq_t *iseq, VALUE self, const struct rb_captured_block *captured, const rb_callable_method_entry_t *me, VALUE type, int opt_pc)
1760{
1761 /* bmethod call from outside the VM */
1762 int arg_size = ISEQ_BODY(iseq)->param.size;
1763
1764 VM_ASSERT(me->def->type == VM_METHOD_TYPE_BMETHOD);
1765
1766 vm_push_frame(ec, iseq, type | VM_FRAME_FLAG_BMETHOD, self,
1767 VM_GUARDED_PREV_EP(captured->ep),
1768 (VALUE)me,
1769 ISEQ_BODY(iseq)->iseq_encoded + opt_pc,
1770 ec->cfp->sp + 1 /* self */ + arg_size,
1771 ISEQ_BODY(iseq)->local_table_size - arg_size,
1772 ISEQ_BODY(iseq)->stack_max);
1773
1774 VM_ENV_FLAGS_SET(ec->cfp->ep, VM_FRAME_FLAG_FINISH);
1775}
1776
1777ALWAYS_INLINE(static VALUE
1778 invoke_iseq_block_from_c(rb_execution_context_t *ec, const struct rb_captured_block *captured,
1779 VALUE self, int argc, const VALUE *argv, int kw_splat, VALUE passed_block_handler,
1780 const rb_cref_t *cref, int is_lambda, const rb_callable_method_entry_t *me));
1781
1782static inline VALUE
1783invoke_iseq_block_from_c(rb_execution_context_t *ec, const struct rb_captured_block *captured,
1784 VALUE self, int argc, const VALUE *argv, int kw_splat, VALUE passed_block_handler,
1785 const rb_cref_t *cref, int is_lambda, const rb_callable_method_entry_t *me)
1786{
1787 const rb_iseq_t *iseq = rb_iseq_check(captured->code.iseq);
1788 int opt_pc;
1789 VALUE type = VM_FRAME_MAGIC_BLOCK | (is_lambda ? VM_FRAME_FLAG_LAMBDA : 0);
1790 rb_control_frame_t *cfp = ec->cfp;
1791 VALUE *sp = cfp->sp;
1792 int flags = (kw_splat ? VM_CALL_KW_SPLAT : 0);
1793 VALUE *use_argv = (VALUE *)argv;
1794 VALUE av[2];
1795
1796 stack_check(ec);
1797
1798 if (UNLIKELY(argc > VM_ARGC_STACK_MAX) &&
1799 (VM_ARGC_STACK_MAX >= 1 ||
1800 /* Skip ruby array for potential autosplat case */
1801 (argc != 1 || is_lambda))) {
1802 use_argv = vm_argv_ruby_array(av, argv, &flags, &argc, kw_splat);
1803 }
1804
1805 CHECK_VM_STACK_OVERFLOW(cfp, argc + 1);
1806 vm_check_canary(ec, sp);
1807
1808 VALUE *stack_argv = sp;
1809 if (me) {
1810 *sp = self; // bemthods need `self` on the VM stack
1811 stack_argv++;
1812 }
1813 cfp->sp = stack_argv + argc;
1814 MEMCPY(stack_argv, use_argv, VALUE, argc); // restrict: new stack space
1815
1816 opt_pc = vm_yield_setup_args(ec, iseq, argc, stack_argv, flags, passed_block_handler,
1817 (is_lambda ? arg_setup_method : arg_setup_block));
1818 cfp->sp = sp;
1819
1820 if (me == NULL) {
1821 invoke_block(ec, iseq, self, captured, cref, type, opt_pc);
1822 }
1823 else {
1824 invoke_bmethod(ec, iseq, self, captured, me, type, opt_pc);
1825 }
1826
1827 return vm_exec(ec);
1828}
1829
1830static VALUE
1831invoke_block_from_c_bh(rb_execution_context_t *ec, VALUE block_handler,
1832 int argc, const VALUE *argv,
1833 int kw_splat, VALUE passed_block_handler, const rb_cref_t *cref,
1834 int is_lambda, int force_blockarg)
1835{
1836 again:
1837 switch (vm_block_handler_type(block_handler)) {
1838 case block_handler_type_iseq:
1839 {
1840 const struct rb_captured_block *captured = VM_BH_TO_ISEQ_BLOCK(block_handler);
1841 return invoke_iseq_block_from_c(ec, captured, captured->self,
1842 argc, argv, kw_splat, passed_block_handler,
1843 cref, is_lambda, NULL);
1844 }
1845 case block_handler_type_ifunc:
1846 return vm_yield_with_cfunc(ec, VM_BH_TO_IFUNC_BLOCK(block_handler),
1847 VM_BH_TO_IFUNC_BLOCK(block_handler)->self,
1848 argc, argv, kw_splat, passed_block_handler, NULL);
1849 case block_handler_type_symbol:
1850 return vm_yield_with_symbol(ec, VM_BH_TO_SYMBOL(block_handler),
1851 argc, argv, kw_splat, passed_block_handler);
1852 case block_handler_type_proc:
1853 if (force_blockarg == FALSE) {
1854 is_lambda = block_proc_is_lambda(VM_BH_TO_PROC(block_handler));
1855 }
1856 block_handler = vm_proc_to_block_handler(VM_BH_TO_PROC(block_handler));
1857 goto again;
1858 }
1859 VM_UNREACHABLE(invoke_block_from_c_splattable);
1860 return Qundef;
1861}
1862
1863static inline VALUE
1864check_block_handler(rb_execution_context_t *ec)
1865{
1866 VALUE block_handler = VM_CF_BLOCK_HANDLER(ec->cfp);
1867 vm_block_handler_verify(block_handler);
1868 if (UNLIKELY(block_handler == VM_BLOCK_HANDLER_NONE)) {
1869 rb_vm_localjump_error("no block given", Qnil, 0);
1870 }
1871
1872 return block_handler;
1873}
1874
1875static VALUE
1876vm_yield_with_cref(rb_execution_context_t *ec, int argc, const VALUE *argv, int kw_splat, const rb_cref_t *cref, int is_lambda)
1877{
1878 return invoke_block_from_c_bh(ec, check_block_handler(ec),
1879 argc, argv, kw_splat, VM_BLOCK_HANDLER_NONE,
1880 cref, is_lambda, FALSE);
1881}
1882
1883static VALUE
1884vm_yield(rb_execution_context_t *ec, int argc, const VALUE *argv, int kw_splat)
1885{
1886 return vm_yield_with_cref(ec, argc, argv, kw_splat, NULL, FALSE);
1887}
1888
1889static VALUE
1890vm_yield_with_block(rb_execution_context_t *ec, int argc, const VALUE *argv, VALUE block_handler, int kw_splat)
1891{
1892 return invoke_block_from_c_bh(ec, check_block_handler(ec),
1893 argc, argv, kw_splat, block_handler,
1894 NULL, FALSE, FALSE);
1895}
1896
1897static VALUE
1898vm_yield_force_blockarg(rb_execution_context_t *ec, VALUE args)
1899{
1900 return invoke_block_from_c_bh(ec, check_block_handler(ec), 1, &args,
1901 RB_NO_KEYWORDS, VM_BLOCK_HANDLER_NONE, NULL, FALSE, TRUE);
1902}
1903
1904ALWAYS_INLINE(static VALUE
1905 invoke_block_from_c_proc(rb_execution_context_t *ec, const rb_proc_t *proc,
1906 VALUE self, int argc, const VALUE *argv,
1907 int kw_splat, VALUE passed_block_handler, int is_lambda,
1908 const rb_callable_method_entry_t *me));
1909
1910static inline VALUE
1911invoke_block_from_c_proc(rb_execution_context_t *ec, const rb_proc_t *proc,
1912 VALUE self, int argc, const VALUE *argv,
1913 int kw_splat, VALUE passed_block_handler, int is_lambda,
1915{
1916 const struct rb_block *block = &proc->block;
1917
1918 again:
1919 switch (vm_block_type(block)) {
1920 case block_type_iseq:
1921 return invoke_iseq_block_from_c(ec, &block->as.captured, self, argc, argv, kw_splat, passed_block_handler, NULL, is_lambda, me);
1922 case block_type_ifunc:
1923 if (kw_splat == 1) {
1924 VALUE keyword_hash = argv[argc-1];
1925 if (!RB_TYPE_P(keyword_hash, T_HASH)) {
1926 keyword_hash = rb_to_hash_type(keyword_hash);
1927 }
1928 if (RHASH_EMPTY_P(keyword_hash)) {
1929 argc--;
1930 }
1931 else {
1932 ((VALUE *)argv)[argc-1] = rb_hash_dup(keyword_hash);
1933 }
1934 }
1935 return vm_yield_with_cfunc(ec, &block->as.captured, self, argc, argv, kw_splat, passed_block_handler, me);
1936 case block_type_symbol:
1937 return vm_yield_with_symbol(ec, block->as.symbol, argc, argv, kw_splat, passed_block_handler);
1938 case block_type_proc:
1939 is_lambda = block_proc_is_lambda(block->as.proc);
1940 block = vm_proc_block(block->as.proc);
1941 goto again;
1942 }
1943 VM_UNREACHABLE(invoke_block_from_c_proc);
1944 return Qundef;
1945}
1946
1947static VALUE
1948vm_invoke_proc(rb_execution_context_t *ec, rb_proc_t *proc, VALUE self,
1949 int argc, const VALUE *argv, int kw_splat, VALUE passed_block_handler)
1950{
1951 return invoke_block_from_c_proc(ec, proc, self, argc, argv, kw_splat, passed_block_handler, proc->is_lambda, NULL);
1952}
1953
1954static VALUE
1955vm_invoke_bmethod(rb_execution_context_t *ec, rb_proc_t *proc, VALUE self,
1956 int argc, const VALUE *argv, int kw_splat, VALUE block_handler, const rb_callable_method_entry_t *me)
1957{
1958 return invoke_block_from_c_proc(ec, proc, self, argc, argv, kw_splat, block_handler, TRUE, me);
1959}
1960
1961VALUE
1962rb_vm_invoke_proc(rb_execution_context_t *ec, rb_proc_t *proc,
1963 int argc, const VALUE *argv, int kw_splat, VALUE passed_block_handler)
1964{
1965 VALUE self = vm_block_self(&proc->block);
1966 vm_block_handler_verify(passed_block_handler);
1967
1968 if (proc->is_from_method) {
1969 return vm_invoke_bmethod(ec, proc, self, argc, argv, kw_splat, passed_block_handler, NULL);
1970 }
1971 else {
1972 return vm_invoke_proc(ec, proc, self, argc, argv, kw_splat, passed_block_handler);
1973 }
1974}
1975
1976VALUE
1977rb_vm_invoke_proc_with_self(rb_execution_context_t *ec, rb_proc_t *proc, VALUE self,
1978 int argc, const VALUE *argv, int kw_splat, VALUE passed_block_handler)
1979{
1980 vm_block_handler_verify(passed_block_handler);
1981
1982 if (proc->is_from_method) {
1983 return vm_invoke_bmethod(ec, proc, self, argc, argv, kw_splat, passed_block_handler, NULL);
1984 }
1985 else {
1986 return vm_invoke_proc(ec, proc, self, argc, argv, kw_splat, passed_block_handler);
1987 }
1988}
1989
1990/* special variable */
1991
1992VALUE *
1993rb_vm_svar_lep(const rb_execution_context_t *ec, const rb_control_frame_t *cfp)
1994{
1995 while (!CFP_PC(cfp) || !CFP_ISEQ(cfp)) {
1996 if (VM_FRAME_TYPE(cfp) == VM_FRAME_MAGIC_IFUNC) {
1997 struct vm_ifunc *ifunc = (struct vm_ifunc *)CFP_ISEQ(cfp);
1998 return ifunc->svar_lep;
1999 }
2000 else {
2001 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
2002 }
2003
2004 if (RUBY_VM_CONTROL_FRAME_STACK_OVERFLOW_P(ec, cfp)) {
2005 return NULL;
2006 }
2007 }
2008
2009 return (VALUE *)VM_CF_LEP(cfp);
2010}
2011
2012static VALUE
2013vm_cfp_svar_get(const rb_execution_context_t *ec, rb_control_frame_t *cfp, VALUE key)
2014{
2015 return lep_svar_get(ec, rb_vm_svar_lep(ec, cfp), key);
2016}
2017
2018static void
2019vm_cfp_svar_set(const rb_execution_context_t *ec, rb_control_frame_t *cfp, VALUE key, const VALUE val)
2020{
2021 lep_svar_set(ec, rb_vm_svar_lep(ec, cfp), key, val);
2022}
2023
2024static VALUE
2025vm_svar_get(const rb_execution_context_t *ec, VALUE key)
2026{
2027 return vm_cfp_svar_get(ec, ec->cfp, key);
2028}
2029
2030static void
2031vm_svar_set(const rb_execution_context_t *ec, VALUE key, VALUE val)
2032{
2033 vm_cfp_svar_set(ec, ec->cfp, key, val);
2034}
2035
2036VALUE
2038{
2039 return vm_svar_get(GET_EC(), VM_SVAR_BACKREF);
2040}
2041
2042void
2044{
2045 vm_svar_set(GET_EC(), VM_SVAR_BACKREF, val);
2046}
2047
2048VALUE
2050{
2051 return vm_svar_get(GET_EC(), VM_SVAR_LASTLINE);
2052}
2053
2054void
2056{
2057 vm_svar_set(GET_EC(), VM_SVAR_LASTLINE, val);
2058}
2059
2060void
2061rb_lastline_set_up(VALUE val, unsigned int up)
2062{
2063 rb_control_frame_t * cfp = GET_EC()->cfp;
2064
2065 for(unsigned int i = 0; i < up; i++) {
2066 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
2067 }
2068 vm_cfp_svar_set(GET_EC(), cfp, VM_SVAR_LASTLINE, val);
2069}
2070
2071/* misc */
2072
2073const char *
2075{
2076 const rb_execution_context_t *ec = GET_EC();
2077 const rb_control_frame_t *cfp = rb_vm_get_ruby_level_next_cfp(ec, ec->cfp);
2078
2079 if (cfp) {
2080 return RSTRING_PTR(rb_iseq_path(CFP_ISEQ(cfp)));
2081 }
2082 else {
2083 return 0;
2084 }
2085}
2086
2087int
2089{
2090 const rb_execution_context_t *ec = GET_EC();
2091 const rb_control_frame_t *cfp = rb_vm_get_ruby_level_next_cfp(ec, ec->cfp);
2092
2093 if (cfp) {
2094 return rb_vm_get_sourceline(cfp);
2095 }
2096 else {
2097 return 0;
2098 }
2099}
2100
2101VALUE
2102rb_source_location(int *pline)
2103{
2104 const rb_execution_context_t *ec = GET_EC();
2105 const rb_control_frame_t *cfp = rb_vm_get_ruby_level_next_cfp(ec, ec->cfp);
2106
2107 if (cfp && VM_FRAME_RUBYFRAME_P(cfp)) {
2108 if (pline) *pline = rb_vm_get_sourceline(cfp);
2109 return rb_iseq_path(CFP_ISEQ(cfp));
2110 }
2111 else {
2112 if (pline) *pline = 0;
2113 return Qnil;
2114 }
2115}
2116
2117const char *
2118rb_source_location_cstr(int *pline)
2119{
2120 VALUE path = rb_source_location(pline);
2121 if (NIL_P(path)) return NULL;
2122 return RSTRING_PTR(path);
2123}
2124
2125rb_cref_t *
2126rb_vm_cref(void)
2127{
2128 const rb_execution_context_t *ec = GET_EC();
2129 return vm_ec_cref(ec);
2130}
2131
2132rb_cref_t *
2133rb_vm_cref_replace_with_duplicated_cref(void)
2134{
2135 const rb_execution_context_t *ec = GET_EC();
2136 const rb_control_frame_t *cfp = rb_vm_get_ruby_level_next_cfp(ec, ec->cfp);
2137 rb_cref_t *cref = vm_cref_replace_with_duplicated_cref(cfp->ep);
2138 ASSUME(cref);
2139 return cref;
2140}
2141
2142const rb_cref_t *
2143rb_vm_cref_in_context(VALUE self, VALUE cbase)
2144{
2145 const rb_execution_context_t *ec = GET_EC();
2146 const rb_control_frame_t *cfp = rb_vm_get_ruby_level_next_cfp(ec, ec->cfp);
2147 const rb_cref_t *cref;
2148 if (!cfp || cfp->self != self) return NULL;
2149 if (!vm_env_cref_by_cref(cfp->ep)) return NULL;
2150 cref = vm_get_cref(cfp->ep);
2151 if (CREF_CLASS(cref) != cbase) return NULL;
2152 return cref;
2153}
2154
2155#if 0
2156void
2157debug_cref(rb_cref_t *cref)
2158{
2159 while (cref) {
2160 dp(CREF_CLASS(cref));
2161 printf("%ld\n", CREF_VISI(cref));
2162 cref = CREF_NEXT(cref);
2163 }
2164}
2165#endif
2166
2167VALUE
2168rb_vm_cbase(void)
2169{
2170 const rb_execution_context_t *ec = GET_EC();
2171 const rb_control_frame_t *cfp = rb_vm_get_ruby_level_next_cfp(ec, ec->cfp);
2172
2173 if (cfp == 0) {
2174 rb_raise(rb_eRuntimeError, "Can't call on top of Fiber or Thread");
2175 }
2176 return vm_get_cbase(cfp->ep);
2177}
2178
2179/* jump */
2180
2181static VALUE
2182make_localjump_error(const char *mesg, VALUE value, int reason)
2183{
2186 ID id;
2187
2188 switch (reason) {
2189 case TAG_BREAK:
2190 CONST_ID(id, "break");
2191 break;
2192 case TAG_REDO:
2193 CONST_ID(id, "redo");
2194 break;
2195 case TAG_RETRY:
2196 CONST_ID(id, "retry");
2197 break;
2198 case TAG_NEXT:
2199 CONST_ID(id, "next");
2200 break;
2201 case TAG_RETURN:
2202 CONST_ID(id, "return");
2203 break;
2204 default:
2205 CONST_ID(id, "noreason");
2206 break;
2207 }
2208 rb_iv_set(exc, "@exit_value", value);
2209 rb_iv_set(exc, "@reason", ID2SYM(id));
2210 return exc;
2211}
2212
2213void
2214rb_vm_localjump_error(const char *mesg, VALUE value, int reason)
2215{
2216 VALUE exc = make_localjump_error(mesg, value, reason);
2217 rb_exc_raise(exc);
2218}
2219
2220VALUE
2221rb_vm_make_jump_tag_but_local_jump(enum ruby_tag_type state, VALUE val)
2222{
2223 const char *mesg;
2224
2225 switch (state) {
2226 case TAG_RETURN:
2227 mesg = "unexpected return";
2228 break;
2229 case TAG_BREAK:
2230 mesg = "unexpected break";
2231 break;
2232 case TAG_NEXT:
2233 mesg = "unexpected next";
2234 break;
2235 case TAG_REDO:
2236 mesg = "unexpected redo";
2237 val = Qnil;
2238 break;
2239 case TAG_RETRY:
2240 mesg = "retry outside of rescue clause";
2241 val = Qnil;
2242 break;
2243 default:
2244 return Qnil;
2245 }
2246 if (UNDEF_P(val)) {
2247 val = GET_EC()->tag->retval;
2248 }
2249 return make_localjump_error(mesg, val, state);
2250}
2251
2252void
2253rb_vm_jump_tag_but_local_jump(enum ruby_tag_type state)
2254{
2255 VALUE exc = rb_vm_make_jump_tag_but_local_jump(state, Qundef);
2256 if (!NIL_P(exc)) rb_exc_raise(exc);
2257 EC_JUMP_TAG(GET_EC(), state);
2258}
2259
2260static rb_control_frame_t *
2261next_not_local_frame(rb_control_frame_t *cfp)
2262{
2263 while (VM_ENV_LOCAL_P(cfp->ep)) {
2264 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
2265 }
2266 return cfp;
2267}
2268
2269NORETURN(static void vm_iter_break(rb_execution_context_t *ec, VALUE val));
2270
2271static void
2272vm_iter_break(rb_execution_context_t *ec, VALUE val)
2273{
2274 rb_control_frame_t *cfp = next_not_local_frame(ec->cfp);
2275 const VALUE *ep = VM_CF_PREV_EP(cfp);
2276 const rb_control_frame_t *target_cfp = rb_vm_search_cf_from_ep(ec, cfp, ep);
2277
2278 if (!target_cfp) {
2279 rb_vm_localjump_error("unexpected break", val, TAG_BREAK);
2280 }
2281
2282 ec->errinfo = (VALUE)THROW_DATA_NEW(val, target_cfp, TAG_BREAK);
2283 EC_JUMP_TAG(ec, TAG_BREAK);
2284}
2285
2286void
2288{
2289 vm_iter_break(GET_EC(), Qnil);
2290}
2291
2292void
2294{
2295 vm_iter_break(GET_EC(), val);
2296}
2297
2298/* optimization: redefine management */
2299
2300short ruby_vm_redefined_flag[BOP_LAST_];
2301static st_table *vm_opt_method_def_table = 0;
2302static st_table *vm_opt_mid_table = 0;
2303
2304void
2305rb_free_vm_opt_tables(void)
2306{
2307 st_free_table(vm_opt_method_def_table);
2308 st_free_table(vm_opt_mid_table);
2309}
2310
2311static int
2312vm_redefinition_check_flag(VALUE klass)
2313{
2314 if (klass == rb_cInteger) return INTEGER_REDEFINED_OP_FLAG;
2315 if (klass == rb_cFloat) return FLOAT_REDEFINED_OP_FLAG;
2316 if (klass == rb_cString) return STRING_REDEFINED_OP_FLAG;
2317 if (klass == rb_cArray) return ARRAY_REDEFINED_OP_FLAG;
2318 if (klass == rb_cHash) return HASH_REDEFINED_OP_FLAG;
2319 if (klass == rb_cSymbol) return SYMBOL_REDEFINED_OP_FLAG;
2320#if 0
2321 if (klass == rb_cTime) return TIME_REDEFINED_OP_FLAG;
2322#endif
2323 if (klass == rb_cRegexp) return REGEXP_REDEFINED_OP_FLAG;
2324 if (klass == rb_cNilClass) return NIL_REDEFINED_OP_FLAG;
2325 if (klass == rb_cTrueClass) return TRUE_REDEFINED_OP_FLAG;
2326 if (klass == rb_cFalseClass) return FALSE_REDEFINED_OP_FLAG;
2327 if (klass == rb_cProc) return PROC_REDEFINED_OP_FLAG;
2328 return 0;
2329}
2330
2331int
2332rb_vm_check_optimizable_mid(VALUE mid)
2333{
2334 if (!vm_opt_mid_table) {
2335 return FALSE;
2336 }
2337
2338 return st_lookup(vm_opt_mid_table, mid, NULL);
2339}
2340
2341static int
2342vm_redefinition_check_method_type(const rb_method_entry_t *me)
2343{
2344 if (me->called_id != me->def->original_id) {
2345 return FALSE;
2346 }
2347
2348 if (METHOD_ENTRY_BASIC(me)) return TRUE;
2349
2350 const rb_method_definition_t *def = me->def;
2351 switch (def->type) {
2352 case VM_METHOD_TYPE_CFUNC:
2353 case VM_METHOD_TYPE_OPTIMIZED:
2354 return TRUE;
2355 default:
2356 return FALSE;
2357 }
2358}
2359
2360static void
2361rb_vm_check_redefinition_opt_method(const rb_method_entry_t *me, VALUE klass)
2362{
2363 st_data_t bop;
2364 if (RB_TYPE_P(klass, T_ICLASS) && RICLASS_IS_ORIGIN_P(klass) &&
2365 RB_TYPE_P(RBASIC_CLASS(klass), T_CLASS)) {
2366 klass = RBASIC_CLASS(klass);
2367 }
2368 if (vm_redefinition_check_method_type(me)) {
2369 if (st_lookup(vm_opt_method_def_table, (st_data_t)me->def, &bop)) {
2370 int flag = vm_redefinition_check_flag(klass);
2371 if (flag != 0) {
2374 "Redefining '%s#%s' disables interpreter and JIT optimizations",
2375 rb_class2name(me->owner),
2376 rb_id2name(me->called_id)
2377 );
2378 rb_yjit_bop_redefined(flag, (enum ruby_basic_operators)bop);
2379 rb_zjit_bop_redefined(flag, (enum ruby_basic_operators)bop);
2380 ruby_vm_redefined_flag[bop] |= flag;
2381 }
2382 }
2383 }
2384}
2385
2386static enum rb_id_table_iterator_result
2387check_redefined_method(ID mid, VALUE value, void *data)
2388{
2389 VALUE klass = (VALUE)data;
2390 const rb_method_entry_t *me = (rb_method_entry_t *)value;
2391 const rb_method_entry_t *newme = rb_method_entry(klass, mid);
2392
2393 if (newme != me) rb_vm_check_redefinition_opt_method(me, me->owner);
2394
2395 return ID_TABLE_CONTINUE;
2396}
2397
2398void
2399rb_vm_check_redefinition_by_prepend(VALUE klass)
2400{
2401 if (!vm_redefinition_check_flag(klass)) return;
2402 rb_id_table_foreach(RCLASS_M_TBL(RCLASS_ORIGIN(klass)), check_redefined_method, (void *)klass);
2403}
2404
2405static void
2406add_opt_method_entry_bop(const rb_method_entry_t *me, ID mid, enum ruby_basic_operators bop)
2407{
2408 st_insert(vm_opt_method_def_table, (st_data_t)me->def, (st_data_t)bop);
2409 st_insert(vm_opt_mid_table, (st_data_t)mid, (st_data_t)Qtrue);
2410}
2411
2412static void
2413add_opt_method(VALUE klass, ID mid, enum ruby_basic_operators bop)
2414{
2415 const rb_method_entry_t *me = rb_method_entry_at(klass, mid);
2416
2417 if (me && vm_redefinition_check_method_type(me)) {
2418 add_opt_method_entry_bop(me, mid, bop);
2419 }
2420 else {
2421 rb_bug("undefined optimized method: %s", rb_id2name(mid));
2422 }
2423}
2424
2425static enum ruby_basic_operators vm_redefinition_bop_for_id(ID mid);
2426
2427static void
2428add_opt_method_entry(const rb_method_entry_t *me)
2429{
2430 if (me && vm_redefinition_check_method_type(me)) {
2431 ID mid = me->called_id;
2432 enum ruby_basic_operators bop = vm_redefinition_bop_for_id(mid);
2433 if ((int)bop >= 0) {
2434 add_opt_method_entry_bop(me, mid, bop);
2435 }
2436 }
2437}
2438
2439static void
2440vm_init_redefined_flag(void)
2441{
2442 ID mid;
2443 enum ruby_basic_operators bop;
2444
2445#define OP(mid_, bop_) (mid = id##mid_, bop = BOP_##bop_, ruby_vm_redefined_flag[bop] = 0)
2446#define C(k) add_opt_method(rb_c##k, mid, bop)
2447 OP(PLUS, PLUS), (C(Integer), C(Float), C(String), C(Array));
2448 OP(MINUS, MINUS), (C(Integer), C(Float));
2449 OP(MULT, MULT), (C(Integer), C(Float));
2450 OP(DIV, DIV), (C(Integer), C(Float));
2451 OP(MOD, MOD), (C(Integer), C(Float));
2452 OP(Eq, EQ), (C(Integer), C(Float), C(String), C(Symbol));
2453 OP(Eqq, EQQ), (C(Integer), C(Float), C(Symbol), C(String),
2454 C(NilClass), C(TrueClass), C(FalseClass));
2455 OP(LT, LT), (C(Integer), C(Float));
2456 OP(LE, LE), (C(Integer), C(Float));
2457 OP(GT, GT), (C(Integer), C(Float));
2458 OP(GE, GE), (C(Integer), C(Float));
2459 OP(LTLT, LTLT), (C(String), C(Array));
2460 OP(GTGT, GTGT), (C(Integer));
2461 OP(AREF, AREF), (C(Array), C(Hash), C(Integer));
2462 OP(ASET, ASET), (C(Array), C(Hash));
2463 OP(Length, LENGTH), (C(Array), C(String), C(Hash));
2464 OP(Size, SIZE), (C(Array), C(String), C(Hash));
2465 OP(EmptyP, EMPTY_P), (C(Array), C(String), C(Hash));
2466 OP(Succ, SUCC), (C(Integer), C(String));
2467 OP(EqTilde, MATCH), (C(Regexp), C(String));
2468 OP(Freeze, FREEZE), (C(String), C(Array), C(Hash));
2469 OP(UMinus, UMINUS), (C(String));
2470 OP(Max, MAX), (C(Array));
2471 OP(Min, MIN), (C(Array));
2472 OP(Hash, HASH), (C(Array));
2473 OP(Call, CALL), (C(Proc));
2474 OP(And, AND), (C(Integer));
2475 OP(Or, OR), (C(Integer));
2476 OP(NilP, NIL_P), (C(NilClass));
2477 OP(Cmp, CMP), (C(Integer), C(Float), C(String));
2478 OP(Default, DEFAULT), (C(Hash));
2479 OP(IncludeP, INCLUDE_P), (C(Array));
2480#undef C
2481#undef OP
2482}
2483
2484static enum ruby_basic_operators
2485vm_redefinition_bop_for_id(ID mid)
2486{
2487 switch (mid) {
2488#define OP(mid_, bop_) case id##mid_: return BOP_##bop_
2489 OP(PLUS, PLUS);
2490 OP(MINUS, MINUS);
2491 OP(MULT, MULT);
2492 OP(DIV, DIV);
2493 OP(MOD, MOD);
2494 OP(Eq, EQ);
2495 OP(Eqq, EQQ);
2496 OP(LT, LT);
2497 OP(LE, LE);
2498 OP(GT, GT);
2499 OP(GE, GE);
2500 OP(LTLT, LTLT);
2501 OP(AREF, AREF);
2502 OP(ASET, ASET);
2503 OP(Length, LENGTH);
2504 OP(Size, SIZE);
2505 OP(EmptyP, EMPTY_P);
2506 OP(Succ, SUCC);
2507 OP(EqTilde, MATCH);
2508 OP(Freeze, FREEZE);
2509 OP(UMinus, UMINUS);
2510 OP(Max, MAX);
2511 OP(Min, MIN);
2512 OP(Hash, HASH);
2513 OP(Call, CALL);
2514 OP(And, AND);
2515 OP(Or, OR);
2516 OP(NilP, NIL_P);
2517 OP(Cmp, CMP);
2518 OP(Default, DEFAULT);
2519 OP(Pack, PACK);
2520#undef OP
2521 }
2522 return -1;
2523}
2524
2525/* for vm development */
2526
2527#if VMDEBUG
2528static const char *
2529vm_frametype_name(const rb_control_frame_t *cfp)
2530{
2531 switch (VM_FRAME_TYPE(cfp)) {
2532 case VM_FRAME_MAGIC_METHOD: return "method";
2533 case VM_FRAME_MAGIC_BLOCK: return "block";
2534 case VM_FRAME_MAGIC_CLASS: return "class";
2535 case VM_FRAME_MAGIC_TOP: return "top";
2536 case VM_FRAME_MAGIC_CFUNC: return "cfunc";
2537 case VM_FRAME_MAGIC_IFUNC: return "ifunc";
2538 case VM_FRAME_MAGIC_EVAL: return "eval";
2539 case VM_FRAME_MAGIC_RESCUE: return "rescue";
2540 default:
2541 rb_bug("unknown frame");
2542 }
2543}
2544#endif
2545
2546static VALUE
2547frame_return_value(const struct vm_throw_data *err)
2548{
2549 if (THROW_DATA_P(err) &&
2550 THROW_DATA_STATE(err) == TAG_BREAK &&
2551 THROW_DATA_CONSUMED_P(err) == FALSE) {
2552 return THROW_DATA_VAL(err);
2553 }
2554 else {
2555 return Qnil;
2556 }
2557}
2558
2559#if 0
2560/* for debug */
2561static const char *
2562frame_name(const rb_control_frame_t *cfp)
2563{
2564 unsigned long type = VM_FRAME_TYPE(cfp);
2565#define C(t) if (type == VM_FRAME_MAGIC_##t) return #t
2566 C(METHOD);
2567 C(BLOCK);
2568 C(CLASS);
2569 C(TOP);
2570 C(CFUNC);
2571 C(PROC);
2572 C(IFUNC);
2573 C(EVAL);
2574 C(LAMBDA);
2575 C(RESCUE);
2576 C(DUMMY);
2577#undef C
2578 return "unknown";
2579}
2580#endif
2581
2582// cfp_returning_with_value:
2583// Whether cfp is the last frame in the unwinding process for a non-local return.
2584static void
2585hook_before_rewind(rb_execution_context_t *ec, bool cfp_returning_with_value, int state, struct vm_throw_data *err)
2586{
2587 if (state == TAG_RAISE && RBASIC(err)->klass == rb_eSysStackError) {
2588 return;
2589 }
2590 else {
2591 const rb_iseq_t *iseq = CFP_ISEQ(ec->cfp);
2592 rb_hook_list_t *local_hooks = NULL;
2593 unsigned int local_hooks_cnt = iseq->aux.exec.local_hooks_cnt;
2594 if (RB_UNLIKELY(local_hooks_cnt > 0)) {
2595 local_hooks = rb_iseq_local_hooks(iseq, rb_ec_ractor_ptr(ec), false);
2596 }
2597
2598 switch (VM_FRAME_TYPE(ec->cfp)) {
2599 case VM_FRAME_MAGIC_METHOD:
2600 RUBY_DTRACE_METHOD_RETURN_HOOK(ec, 0, 0);
2601 EXEC_EVENT_HOOK_AND_POP_FRAME(ec, RUBY_EVENT_RETURN, ec->cfp->self, 0, 0, 0, frame_return_value(err));
2602
2603 if (UNLIKELY(local_hooks && local_hooks->events & RUBY_EVENT_RETURN)) {
2604 rb_exec_event_hook_orig(ec, local_hooks, RUBY_EVENT_RETURN,
2605 ec->cfp->self, 0, 0, 0, frame_return_value(err), TRUE);
2606 }
2607
2608 THROW_DATA_CONSUMED_SET(err);
2609 break;
2610 case VM_FRAME_MAGIC_BLOCK:
2611 if (VM_FRAME_BMETHOD_P(ec->cfp)) {
2612 VALUE bmethod_return_value = frame_return_value(err);
2613 if (cfp_returning_with_value) {
2614 // Non-local return terminating at a BMETHOD control frame.
2615 bmethod_return_value = THROW_DATA_VAL(err);
2616 }
2617
2618
2619 EXEC_EVENT_HOOK_AND_POP_FRAME(ec, RUBY_EVENT_B_RETURN, ec->cfp->self, 0, 0, 0, bmethod_return_value);
2620 if (UNLIKELY(local_hooks && local_hooks->events & RUBY_EVENT_B_RETURN)) {
2621 rb_exec_event_hook_orig(ec, local_hooks, RUBY_EVENT_B_RETURN,
2622 ec->cfp->self, 0, 0, 0, bmethod_return_value, TRUE);
2623 }
2624
2625 const rb_callable_method_entry_t *me = rb_vm_frame_method_entry(ec->cfp);
2626
2627 EXEC_EVENT_HOOK_AND_POP_FRAME(ec, RUBY_EVENT_RETURN, ec->cfp->self,
2628 rb_vm_frame_method_entry(ec->cfp)->def->original_id,
2629 rb_vm_frame_method_entry(ec->cfp)->called_id,
2630 rb_vm_frame_method_entry(ec->cfp)->owner,
2631 bmethod_return_value);
2632
2633 VM_ASSERT(me->def->type == VM_METHOD_TYPE_BMETHOD);
2634 unsigned int local_hooks_cnt = me->def->body.bmethod.local_hooks_cnt;
2635 if (UNLIKELY(local_hooks_cnt > 0)) {
2636 local_hooks = rb_method_def_local_hooks(me->def, rb_ec_ractor_ptr(ec), false);
2637 if (local_hooks && local_hooks->events & RUBY_EVENT_RETURN) {
2638 rb_exec_event_hook_orig(ec, local_hooks, RUBY_EVENT_RETURN, ec->cfp->self,
2639 rb_vm_frame_method_entry(ec->cfp)->def->original_id,
2640 rb_vm_frame_method_entry(ec->cfp)->called_id,
2641 rb_vm_frame_method_entry(ec->cfp)->owner,
2642 bmethod_return_value, TRUE);
2643 }
2644 }
2645
2646 THROW_DATA_CONSUMED_SET(err);
2647 }
2648 else {
2649 EXEC_EVENT_HOOK_AND_POP_FRAME(ec, RUBY_EVENT_B_RETURN, ec->cfp->self, 0, 0, 0, frame_return_value(err));
2650 if (UNLIKELY(local_hooks && local_hooks->events & RUBY_EVENT_B_RETURN)) {
2651 rb_exec_event_hook_orig(ec, local_hooks, RUBY_EVENT_B_RETURN,
2652 ec->cfp->self, 0, 0, 0, frame_return_value(err), TRUE);
2653 }
2654 THROW_DATA_CONSUMED_SET(err);
2655 }
2656 break;
2657 case VM_FRAME_MAGIC_CLASS:
2658 EXEC_EVENT_HOOK_AND_POP_FRAME(ec, RUBY_EVENT_END, ec->cfp->self, 0, 0, 0, Qnil);
2659 break;
2660 }
2661 }
2662}
2663
2664/* evaluator body */
2665
2666/* finish
2667 VMe (h1) finish
2668 VM finish F1 F2
2669 cfunc finish F1 F2 C1
2670 rb_funcall finish F1 F2 C1
2671 VMe finish F1 F2 C1
2672 VM finish F1 F2 C1 F3
2673
2674 F1 - F3 : pushed by VM
2675 C1 : pushed by send insn (CFUNC)
2676
2677 struct CONTROL_FRAME {
2678 VALUE *pc; // cfp[0], program counter
2679 VALUE *sp; // cfp[1], stack pointer
2680 rb_iseq_t *iseq; // cfp[2], iseq
2681 VALUE self; // cfp[3], self
2682 const VALUE *ep; // cfp[4], env pointer
2683 const void *block_code; // cfp[5], block code
2684 };
2685
2686 struct rb_captured_block {
2687 VALUE self;
2688 VALUE *ep;
2689 union code;
2690 };
2691
2692 struct METHOD_ENV {
2693 VALUE param0;
2694 ...
2695 VALUE paramN;
2696 VALUE lvar1;
2697 ...
2698 VALUE lvarM;
2699 VALUE cref; // ep[-2]
2700 VALUE special; // ep[-1]
2701 VALUE flags; // ep[ 0] == lep[0]
2702 };
2703
2704 struct BLOCK_ENV {
2705 VALUE block_param0;
2706 ...
2707 VALUE block_paramN;
2708 VALUE block_lvar1;
2709 ...
2710 VALUE block_lvarM;
2711 VALUE cref; // ep[-2]
2712 VALUE special; // ep[-1]
2713 VALUE flags; // ep[ 0]
2714 };
2715
2716 struct CLASS_ENV {
2717 VALUE class_lvar0;
2718 ...
2719 VALUE class_lvarN;
2720 VALUE cref;
2721 VALUE prev_ep; // for frame jump
2722 VALUE flags;
2723 };
2724
2725 struct C_METHOD_CONTROL_FRAME {
2726 VALUE *pc; // 0
2727 VALUE *sp; // stack pointer
2728 rb_iseq_t *iseq; // cmi
2729 VALUE self; // ?
2730 VALUE *ep; // ep == lep
2731 void *code; //
2732 };
2733
2734 struct C_BLOCK_CONTROL_FRAME {
2735 VALUE *pc; // point only "finish" insn
2736 VALUE *sp; // sp
2737 rb_iseq_t *iseq; // ?
2738 VALUE self; //
2739 VALUE *ep; // ep
2740 void *code; //
2741 };
2742 */
2743
2744static inline VALUE
2745vm_exec_handle_exception(rb_execution_context_t *ec, enum ruby_tag_type state, VALUE errinfo);
2746static inline VALUE
2747vm_exec_loop(rb_execution_context_t *ec, enum ruby_tag_type state, struct rb_vm_tag *tag, VALUE result);
2748
2749// for non-Emscripten Wasm build, use vm_exec with optimized setjmp for runtime performance
2750#if defined(__wasm__) && !defined(__EMSCRIPTEN__)
2751
2752struct rb_vm_exec_context {
2753 rb_execution_context_t *const ec;
2754 struct rb_vm_tag *const tag;
2755
2756 VALUE result;
2757};
2758
2759static void
2760vm_exec_bottom_main(void *context)
2761{
2762 struct rb_vm_exec_context *ctx = context;
2763 rb_execution_context_t *ec = ctx->ec;
2764
2765 ctx->result = vm_exec_loop(ec, TAG_NONE, ctx->tag, vm_exec_core(ec));
2766}
2767
2768static void
2769vm_exec_bottom_rescue(void *context)
2770{
2771 struct rb_vm_exec_context *ctx = context;
2772 rb_execution_context_t *ec = ctx->ec;
2773
2774 ctx->result = vm_exec_loop(ec, rb_ec_tag_state(ec), ctx->tag, ec->errinfo);
2775}
2776#endif
2777
2778VALUE
2779vm_exec(rb_execution_context_t *ec)
2780{
2781 VALUE result = Qundef;
2782
2783 EC_PUSH_TAG(ec);
2784
2785 _tag.retval = Qnil;
2786
2787#if defined(__wasm__) && !defined(__EMSCRIPTEN__)
2788 struct rb_vm_exec_context ctx = {
2789 .ec = ec,
2790 .tag = &_tag,
2791 };
2792 struct rb_wasm_try_catch try_catch;
2793
2794 EC_REPUSH_TAG();
2795
2796 rb_wasm_try_catch_init(&try_catch, vm_exec_bottom_main, vm_exec_bottom_rescue, &ctx);
2797
2798 rb_wasm_try_catch_loop_run(&try_catch, &RB_VM_TAG_JMPBUF_GET(_tag.buf));
2799
2800 result = ctx.result;
2801#else
2802 enum ruby_tag_type state;
2803 if ((state = EC_EXEC_TAG()) == TAG_NONE) {
2804 if (UNDEF_P(result = jit_exec(ec))) {
2805 result = vm_exec_core(ec);
2806 }
2807 /* fallback to the VM */
2808 result = vm_exec_loop(ec, TAG_NONE, &_tag, result);
2809 }
2810 else {
2811 result = vm_exec_loop(ec, state, &_tag, ec->errinfo);
2812 }
2813#endif
2814
2815 EC_POP_TAG();
2816 return result;
2817}
2818
2819static inline VALUE
2820vm_exec_loop(rb_execution_context_t *ec, enum ruby_tag_type state,
2821 struct rb_vm_tag *tag, VALUE result)
2822{
2823 if (state == TAG_NONE) { /* no jumps, result is discarded */
2824 goto vm_loop_start;
2825 }
2826
2827 rb_ec_raised_reset(ec, RAISED_STACKOVERFLOW | RAISED_NOMEMORY);
2828 while (UNDEF_P(result = vm_exec_handle_exception(ec, state, result))) {
2829 // caught a jump, exec the handler. JIT code in jit_exec_exception()
2830 // may return Qundef to run remaining frames with vm_exec_core().
2831 if (UNDEF_P(result = jit_exec_exception(ec))) {
2832 result = vm_exec_core(ec);
2833 }
2834 vm_loop_start:
2835 VM_ASSERT(ec->tag == tag);
2836 /* when caught `throw`, `tag.state` is set. */
2837 if ((state = tag->state) == TAG_NONE) break;
2838 tag->state = TAG_NONE;
2839 }
2840
2841 return result;
2842}
2843
2844static inline void
2845zjit_materialize_frames(rb_control_frame_t *cfp)
2846{
2847 if (!rb_zjit_enabled_p) return;
2848
2849 while (true) {
2850 if (CFP_ZJIT_FRAME(cfp)) {
2851 const zjit_jit_frame_t *jit_frame = (const zjit_jit_frame_t *)cfp->jit_return;
2852 cfp->pc = jit_frame->pc;
2853 cfp->_iseq = (rb_iseq_t *)jit_frame->iseq;
2854 if (jit_frame->materialize_block_code) {
2855 cfp->block_code = NULL;
2856 }
2857 cfp->jit_return = 0;
2858 }
2859 if (VM_FRAME_FINISHED_P(cfp)) break;
2860 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
2861 }
2862}
2863
2864void
2865rb_zjit_materialize_frames(rb_control_frame_t *cfp)
2866{
2867 zjit_materialize_frames(cfp);
2868}
2869
2870static inline VALUE
2871vm_exec_handle_exception(rb_execution_context_t *ec, enum ruby_tag_type state, VALUE errinfo)
2872{
2873 struct vm_throw_data *err = (struct vm_throw_data *)errinfo;
2874
2875 for (;;) {
2876 unsigned int i;
2877 const struct iseq_catch_table_entry *entry;
2878 const struct iseq_catch_table *ct;
2879 unsigned long epc, cont_pc, cont_sp;
2880 const rb_iseq_t *catch_iseq;
2881 VALUE type;
2882 const rb_control_frame_t *escape_cfp;
2883
2884 cont_pc = cont_sp = 0;
2885 catch_iseq = NULL;
2886
2887 while (CFP_PC(ec->cfp) == 0 || CFP_ISEQ(ec->cfp) == 0) {
2888 if (UNLIKELY(VM_FRAME_TYPE(ec->cfp) == VM_FRAME_MAGIC_CFUNC)) {
2889 EXEC_EVENT_HOOK_AND_POP_FRAME(ec, RUBY_EVENT_C_RETURN, ec->cfp->self,
2890 rb_vm_frame_method_entry(ec->cfp)->def->original_id,
2891 rb_vm_frame_method_entry(ec->cfp)->called_id,
2892 rb_vm_frame_method_entry(ec->cfp)->owner, Qnil);
2893 RUBY_DTRACE_CMETHOD_RETURN_HOOK(ec,
2894 rb_vm_frame_method_entry(ec->cfp)->owner,
2895 rb_vm_frame_method_entry(ec->cfp)->def->original_id);
2896 }
2897 rb_vm_pop_frame(ec);
2898 }
2899
2900 rb_control_frame_t *const cfp = ec->cfp;
2901 epc = CFP_PC(cfp) - ISEQ_BODY(CFP_ISEQ(cfp))->iseq_encoded;
2902
2903 escape_cfp = NULL;
2904 if (state == TAG_BREAK || state == TAG_RETURN) {
2905 escape_cfp = THROW_DATA_CATCH_FRAME(err);
2906
2907 if (cfp == escape_cfp) {
2908 if (state == TAG_RETURN) {
2909 if (!VM_FRAME_FINISHED_P(cfp)) {
2910 THROW_DATA_CATCH_FRAME_SET(err, cfp + 1);
2911 THROW_DATA_STATE_SET(err, state = TAG_BREAK);
2912 }
2913 else {
2914 ct = ISEQ_BODY(CFP_ISEQ(cfp))->catch_table;
2915 if (ct) for (i = 0; i < ct->size; i++) {
2916 entry = UNALIGNED_MEMBER_PTR(ct, entries[i]);
2917 if (entry->start < epc && entry->end >= epc) {
2918 if (entry->type == CATCH_TYPE_ENSURE) {
2919 catch_iseq = entry->iseq;
2920 cont_pc = entry->cont;
2921 cont_sp = entry->sp;
2922 break;
2923 }
2924 }
2925 }
2926 if (catch_iseq == NULL) {
2927 ec->errinfo = Qnil;
2928 THROW_DATA_CATCH_FRAME_SET(err, cfp + 1);
2929 // cfp == escape_cfp here so calling with cfp_returning_with_value = true
2930 hook_before_rewind(ec, true, state, err);
2931 rb_vm_pop_frame(ec);
2932 return THROW_DATA_VAL(err);
2933 }
2934 }
2935 /* through */
2936 }
2937 else {
2938 /* TAG_BREAK */
2939 *cfp->sp++ = THROW_DATA_VAL(err);
2940 ec->errinfo = Qnil;
2941 zjit_materialize_frames(cfp);
2942 return Qundef;
2943 }
2944 }
2945 }
2946
2947 if (state == TAG_RAISE) {
2948 ct = ISEQ_BODY(CFP_ISEQ(cfp))->catch_table;
2949 if (ct) for (i = 0; i < ct->size; i++) {
2950 entry = UNALIGNED_MEMBER_PTR(ct, entries[i]);
2951 if (entry->start < epc && entry->end >= epc) {
2952
2953 if (entry->type == CATCH_TYPE_RESCUE ||
2954 entry->type == CATCH_TYPE_ENSURE) {
2955 catch_iseq = entry->iseq;
2956 cont_pc = entry->cont;
2957 cont_sp = entry->sp;
2958 break;
2959 }
2960 }
2961 }
2962 }
2963 else if (state == TAG_RETRY) {
2964 ct = ISEQ_BODY(CFP_ISEQ(cfp))->catch_table;
2965 if (ct) for (i = 0; i < ct->size; i++) {
2966 entry = UNALIGNED_MEMBER_PTR(ct, entries[i]);
2967 if (entry->start < epc && entry->end >= epc) {
2968
2969 if (entry->type == CATCH_TYPE_ENSURE) {
2970 catch_iseq = entry->iseq;
2971 cont_pc = entry->cont;
2972 cont_sp = entry->sp;
2973 break;
2974 }
2975 else if (entry->type == CATCH_TYPE_RETRY) {
2976 const rb_control_frame_t *escape_cfp;
2977 escape_cfp = THROW_DATA_CATCH_FRAME(err);
2978 if (cfp == escape_cfp) {
2979 zjit_materialize_frames(cfp);
2980 cfp->pc = ISEQ_BODY(CFP_ISEQ(cfp))->iseq_encoded + entry->cont;
2981 ec->errinfo = Qnil;
2982 return Qundef;
2983 }
2984 }
2985 }
2986 }
2987 }
2988 else if ((state == TAG_BREAK && !escape_cfp) ||
2989 (state == TAG_REDO) ||
2990 (state == TAG_NEXT)) {
2991 type = (const enum rb_catch_type[TAG_MASK]) {
2992 [TAG_BREAK] = CATCH_TYPE_BREAK,
2993 [TAG_NEXT] = CATCH_TYPE_NEXT,
2994 [TAG_REDO] = CATCH_TYPE_REDO,
2995 /* otherwise = dontcare */
2996 }[state];
2997
2998 ct = ISEQ_BODY(CFP_ISEQ(cfp))->catch_table;
2999 if (ct) for (i = 0; i < ct->size; i++) {
3000 entry = UNALIGNED_MEMBER_PTR(ct, entries[i]);
3001
3002 if (entry->start < epc && entry->end >= epc) {
3003 if (entry->type == CATCH_TYPE_ENSURE) {
3004 catch_iseq = entry->iseq;
3005 cont_pc = entry->cont;
3006 cont_sp = entry->sp;
3007 break;
3008 }
3009 else if (entry->type == type) {
3010 zjit_materialize_frames(cfp);
3011 cfp->pc = ISEQ_BODY(CFP_ISEQ(cfp))->iseq_encoded + entry->cont;
3012 cfp->sp = vm_base_ptr(cfp) + entry->sp;
3013
3014 if (state != TAG_REDO) {
3015 *cfp->sp++ = THROW_DATA_VAL(err);
3016 }
3017 ec->errinfo = Qnil;
3018 VM_ASSERT(ec->tag->state == TAG_NONE);
3019 return Qundef;
3020 }
3021 }
3022 }
3023 }
3024 else {
3025 ct = ISEQ_BODY(CFP_ISEQ(cfp))->catch_table;
3026 if (ct) for (i = 0; i < ct->size; i++) {
3027 entry = UNALIGNED_MEMBER_PTR(ct, entries[i]);
3028 if (entry->start < epc && entry->end >= epc) {
3029
3030 if (entry->type == CATCH_TYPE_ENSURE) {
3031 catch_iseq = entry->iseq;
3032 cont_pc = entry->cont;
3033 cont_sp = entry->sp;
3034 break;
3035 }
3036 }
3037 }
3038 }
3039
3040 if (catch_iseq != NULL) { /* found catch table */
3041 /* enter catch scope */
3042 const int arg_size = 1;
3043
3044 rb_iseq_check(catch_iseq);
3045 zjit_materialize_frames(cfp); // vm_base_ptr looks at cfp->_iseq
3046 cfp->sp = vm_base_ptr(cfp) + cont_sp;
3047 cfp->pc = ISEQ_BODY(CFP_ISEQ(cfp))->iseq_encoded + cont_pc;
3048
3049 /* push block frame */
3050 cfp->sp[0] = (VALUE)err;
3051 vm_push_frame(ec, catch_iseq, VM_FRAME_MAGIC_RESCUE,
3052 cfp->self,
3053 VM_GUARDED_PREV_EP(cfp->ep),
3054 0, /* cref or me */
3055 ISEQ_BODY(catch_iseq)->iseq_encoded,
3056 cfp->sp + arg_size /* push value */,
3057 ISEQ_BODY(catch_iseq)->local_table_size - arg_size,
3058 ISEQ_BODY(catch_iseq)->stack_max);
3059
3060 state = 0;
3061 ec->tag->state = TAG_NONE;
3062 ec->errinfo = Qnil;
3063
3064 return Qundef;
3065 }
3066 else {
3067 hook_before_rewind(ec, (cfp == escape_cfp), state, err);
3068
3069 if (VM_FRAME_FINISHED_P(ec->cfp)) {
3070 rb_vm_pop_frame(ec);
3071 ec->errinfo = (VALUE)err;
3072 rb_vm_tag_jmpbuf_deinit(&ec->tag->buf);
3073 ec->tag = ec->tag->prev;
3074 EC_JUMP_TAG(ec, state);
3075 }
3076 else {
3077 rb_vm_pop_frame(ec);
3078 }
3079 }
3080 }
3081}
3082
3083/* misc */
3084
3085VALUE
3086rb_iseq_eval(const rb_iseq_t *iseq, const rb_box_t *box)
3087{
3088 rb_execution_context_t *ec = GET_EC();
3089 VALUE val;
3090 vm_set_top_stack(ec, iseq, box);
3091 val = vm_exec(ec);
3092 return val;
3093}
3094
3095VALUE
3096rb_iseq_eval_main(const rb_iseq_t *iseq)
3097{
3098 rb_execution_context_t *ec = GET_EC();
3099 VALUE val;
3100 vm_set_main_stack(ec, iseq);
3101 val = vm_exec(ec);
3102 return val;
3103}
3104
3105int
3106rb_vm_control_frame_id_and_class(const rb_control_frame_t *cfp, ID *idp, ID *called_idp, VALUE *klassp)
3107{
3108 const rb_callable_method_entry_t *me = rb_vm_frame_method_entry(cfp);
3109
3110 if (me) {
3111 if (idp) *idp = me->def->original_id;
3112 if (called_idp) *called_idp = me->called_id;
3113 if (klassp) *klassp = me->owner;
3114 return TRUE;
3115 }
3116 else {
3117 return FALSE;
3118 }
3119}
3120
3121int
3122rb_ec_frame_method_id_and_class(const rb_execution_context_t *ec, ID *idp, ID *called_idp, VALUE *klassp)
3123{
3124 return rb_vm_control_frame_id_and_class(ec->cfp, idp, called_idp, klassp);
3125}
3126
3127int
3129{
3130 return rb_ec_frame_method_id_and_class(GET_EC(), idp, 0, klassp);
3131}
3132
3133VALUE
3134rb_vm_call_cfunc(VALUE recv, VALUE (*func)(VALUE), VALUE arg,
3135 VALUE block_handler, VALUE filename)
3136{
3137 rb_execution_context_t *ec = GET_EC();
3138 const rb_control_frame_t *reg_cfp = ec->cfp;
3139 const rb_iseq_t *iseq = rb_iseq_new(Qnil, filename, filename, Qnil, 0, ISEQ_TYPE_TOP);
3140 const rb_box_t *box = rb_current_box();
3141 VALUE val;
3142
3143 vm_push_frame(ec, iseq, VM_FRAME_MAGIC_TOP | VM_ENV_FLAG_LOCAL | VM_FRAME_FLAG_FINISH,
3144 recv, GC_GUARDED_PTR(box),
3145 (VALUE)vm_cref_new_toplevel(ec), /* cref or me */
3146 0, reg_cfp->sp, 0, 0);
3147
3148 val = (*func)(arg);
3149
3150 rb_vm_pop_frame(ec);
3151 return val;
3152}
3153
3154/* Ruby::Box */
3155
3156VALUE
3157rb_vm_call_cfunc_in_box(VALUE recv, VALUE (*func)(VALUE, VALUE), VALUE arg1, VALUE arg2,
3158 VALUE filename, const rb_box_t *box)
3159{
3160 rb_execution_context_t *ec = GET_EC();
3161 const rb_control_frame_t *reg_cfp = ec->cfp;
3162 const rb_iseq_t *iseq = rb_iseq_new(Qnil, filename, filename, Qnil, 0, ISEQ_TYPE_TOP);
3163 VALUE val;
3164
3165 vm_push_frame(ec, iseq, VM_FRAME_MAGIC_TOP | VM_ENV_FLAG_LOCAL | VM_FRAME_FLAG_FINISH,
3166 recv, GC_GUARDED_PTR(box),
3167 (VALUE)vm_cref_new_toplevel(ec), /* cref or me */
3168 0, reg_cfp->sp, 0, 0);
3169
3170 val = (*func)(arg1, arg2);
3171
3172 rb_vm_pop_frame(ec);
3173 return val;
3174}
3175
3176void
3177rb_vm_frame_flag_set_box_require(const rb_execution_context_t *ec)
3178{
3179 VM_ASSERT(rb_box_available());
3180 VM_ENV_FLAGS_SET(ec->cfp->ep, VM_FRAME_FLAG_BOX_REQUIRE);
3181}
3182
3183static const rb_box_t *
3184current_box_on_cfp(const rb_execution_context_t *ec, const rb_control_frame_t *cfp)
3185{
3187 const rb_box_t *box;
3188 const VALUE *lep = VM_EP_RUBY_LEP(ec, cfp);
3189 VM_BOX_ASSERT(lep, "lep should be valid");
3190 VM_BOX_ASSERT(rb_box_available(), "box should be available here");
3191
3192 if (VM_ENV_FRAME_TYPE_P(lep, VM_FRAME_MAGIC_METHOD) || VM_ENV_FRAME_TYPE_P(lep, VM_FRAME_MAGIC_CFUNC)) {
3193 cme = check_method_entry(lep[VM_ENV_DATA_INDEX_ME_CREF], TRUE);
3194 VM_BOX_ASSERT(cme, "cme should be valid");
3195 VM_BOX_ASSERT(cme->def, "cme->def shold be valid");
3196 return cme->def->box;
3197 }
3198 else if (VM_ENV_FRAME_TYPE_P(lep, VM_FRAME_MAGIC_TOP) || VM_ENV_FRAME_TYPE_P(lep, VM_FRAME_MAGIC_CLASS)) {
3199 VM_BOX_ASSERT(VM_ENV_LOCAL_P(lep), "lep should be local on MAGIC_TOP or MAGIC_CLASS frames");
3200 return VM_ENV_BOX(lep);
3201 }
3202 else if (VM_ENV_FRAME_TYPE_P(lep, VM_FRAME_MAGIC_DUMMY)) {
3203 // No valid local ep found (just after process boot?)
3204 // return the root box (the only valid box) until the main is initialized
3205 box = rb_main_box();
3206 if (box)
3207 return box;
3208 return rb_root_box();
3209 }
3210 else {
3211 VM_BOX_CRASHED();
3212 rb_bug("BUG: Local ep without cme/box, flags: %08lX", (unsigned long)lep[VM_ENV_DATA_INDEX_FLAGS]);
3213 }
3215}
3216
3217const rb_box_t *
3218rb_vm_current_box(const rb_execution_context_t *ec)
3219{
3220 return current_box_on_cfp(ec, ec->cfp);
3221}
3222
3223static const rb_control_frame_t *
3224find_loader_control_frame(const rb_execution_context_t *ec, const rb_control_frame_t *cfp, const rb_control_frame_t *end_cfp)
3225{
3226 while (RUBY_VM_VALID_CONTROL_FRAME_P(cfp, end_cfp)) {
3227 if (!VM_ENV_FRAME_TYPE_P(cfp->ep, VM_FRAME_MAGIC_CFUNC))
3228 break;
3229 if (!BOX_MASTER_P(current_box_on_cfp(ec, cfp)))
3230 break;
3231 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
3232 }
3233 VM_ASSERT(RUBY_VM_VALID_CONTROL_FRAME_P(cfp, end_cfp));
3234 return cfp;
3235}
3236
3237const rb_box_t *
3238rb_vm_loading_box(const rb_execution_context_t *ec)
3239{
3240 const rb_control_frame_t *cfp, *current_cfp, *end_cfp;
3241
3242 if (!rb_box_available() || !ec)
3243 return rb_root_box();
3244
3245 cfp = ec->cfp;
3246 current_cfp = cfp;
3247 end_cfp = RUBY_VM_END_CONTROL_FRAME(ec);
3248
3249 while (RUBY_VM_VALID_CONTROL_FRAME_P(cfp, end_cfp)) {
3250 if (VM_ENV_FLAGS(cfp->ep, VM_FRAME_FLAG_BOX_REQUIRE)) {
3251 if (RTEST(cfp->self) && BOX_OBJ_P(cfp->self)) {
3252 // Box#require, #require_relative, #load
3253 return rb_get_box_t(cfp->self);
3254 }
3255 // Kernel#require, #require_relative, #load
3256 cfp = find_loader_control_frame(ec, cfp, end_cfp);
3257 return current_box_on_cfp(ec, cfp);
3258 }
3259 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
3260 }
3261 // no require/load with explicit boxes.
3262 return current_box_on_cfp(ec, current_cfp);
3263}
3264
3265/* vm */
3266
3267void
3268rb_vm_update_references(void *ptr)
3269{
3270 if (ptr) {
3271 rb_vm_t *vm = ptr;
3272
3273 vm->self = rb_gc_location(vm->self);
3274 vm->mark_object_ary = rb_gc_location(vm->mark_object_ary);
3275 vm->orig_progname = rb_gc_location(vm->orig_progname);
3276 vm->cc_refinement_set = rb_gc_location(vm->cc_refinement_set);
3277
3278 if (vm->root_box)
3279 rb_box_gc_update_references(vm->root_box);
3280 if (vm->main_box)
3281 rb_box_gc_update_references(vm->main_box);
3282
3283 rb_gc_update_values(RUBY_NSIG, vm->trap_list.cmd);
3284
3285 if (vm->coverages) {
3286 vm->coverages = rb_gc_location(vm->coverages);
3287 vm->me2counter = rb_gc_location(vm->me2counter);
3288 }
3289 }
3290}
3291
3292void
3293rb_vm_each_stack_value(void *ptr, void (*cb)(VALUE, void*), void *ctx)
3294{
3295 if (ptr) {
3296 rb_vm_t *vm = ptr;
3297 rb_ractor_t *r = 0;
3298 ccan_list_for_each(&vm->ractor.set, r, vmlr_node) {
3299 VM_ASSERT(rb_ractor_status_p(r, ractor_blocking) ||
3300 rb_ractor_status_p(r, ractor_running));
3301 if (r->threads.cnt > 0) {
3302 rb_thread_t *th = 0;
3303 ccan_list_for_each(&r->threads.set, th, lt_node) {
3304 VM_ASSERT(th != NULL);
3305 rb_execution_context_t * ec = th->ec;
3306 if (ec->vm_stack) {
3307 VALUE *p = ec->vm_stack;
3308 VALUE *sp = ec->cfp->sp;
3309 while (p < sp) {
3310 if (!RB_SPECIAL_CONST_P(*p)) {
3311 cb(*p, ctx);
3312 }
3313 p++;
3314 }
3315 }
3316 }
3317 }
3318 }
3319 }
3320}
3321
3322static enum rb_id_table_iterator_result
3323vm_mark_negative_cme(VALUE val, void *dmy)
3324{
3325 rb_gc_mark(val);
3326 return ID_TABLE_CONTINUE;
3327}
3328
3329void rb_thread_sched_mark_zombies(rb_vm_t *vm);
3330
3331void
3332rb_vm_mark(void *ptr)
3333{
3334 RUBY_MARK_ENTER("vm");
3335 RUBY_GC_INFO("-------------------------------------------------\n");
3336 if (ptr) {
3337 rb_vm_t *vm = ptr;
3338 rb_ractor_t *r = 0;
3339 long i;
3340
3341 ccan_list_for_each(&vm->ractor.set, r, vmlr_node) {
3342 // ractor.set only contains blocking or running ractors
3343 VM_ASSERT(rb_ractor_status_p(r, ractor_blocking) ||
3344 rb_ractor_status_p(r, ractor_running));
3345 rb_gc_mark(rb_ractor_self(r));
3346 }
3347
3348 for (struct global_object_list *list = vm->global_object_list; list; list = list->next) {
3349 rb_gc_mark_maybe(*list->varptr);
3350 }
3351
3352 rb_gc_mark_movable(vm->self);
3353
3354 if (vm->root_box) {
3355 rb_box_entry_mark(vm->root_box);
3356 }
3357 if (vm->main_box) {
3358 rb_box_entry_mark(vm->main_box);
3359 }
3360
3361 rb_gc_mark_movable(vm->mark_object_ary);
3362 rb_gc_mark_movable(vm->orig_progname);
3363 rb_gc_mark_movable(vm->coverages);
3364 rb_gc_mark_movable(vm->me2counter);
3365 rb_gc_mark_movable(vm->cc_refinement_set);
3366
3367 rb_gc_mark_values(RUBY_NSIG, vm->trap_list.cmd);
3368
3369 rb_hook_list_mark(&vm->global_hooks);
3370
3371 rb_id_table_foreach_values(&vm->negative_cme_table, vm_mark_negative_cme, NULL);
3372 rb_mark_tbl_no_pin(&vm->overloaded_cme_table);
3373 for (i=0; i<VM_GLOBAL_CC_CACHE_TABLE_SIZE; i++) {
3374 const struct rb_callcache *cc = vm->global_cc_cache_table[i];
3375
3376 if (cc != NULL) {
3377 if (!vm_cc_invalidated_p(cc)) {
3378 rb_gc_mark((VALUE)cc);
3379 }
3380 else {
3381 vm->global_cc_cache_table[i] = NULL;
3382 }
3383 }
3384 }
3385
3386 rb_thread_sched_mark_zombies(vm);
3387 }
3388
3389 RUBY_MARK_LEAVE("vm");
3390}
3391
3392#undef rb_vm_register_special_exception
3393void
3394rb_vm_register_special_exception_str(enum ruby_special_exceptions sp, VALUE cls, VALUE mesg)
3395{
3396 rb_vm_t *vm = GET_VM();
3397 VALUE exc = rb_exc_new3(cls, rb_obj_freeze(mesg));
3398 OBJ_FREEZE(exc);
3399 ((VALUE *)vm->special_exceptions)[sp] = exc;
3400 rb_vm_register_global_object(exc);
3401}
3402
3403void rb_objspace_free_objects(void *objspace);
3404
3405int
3407{
3408 RUBY_FREE_ENTER("vm");
3409 ruby_vm_during_cleanup = true;
3410
3411 if (vm) {
3412 rb_thread_t *th = vm->ractor.main_thread;
3413
3414 if (rb_free_at_exit) {
3415 rb_free_encoded_insn_data();
3416 rb_free_global_enc_table();
3417 rb_free_loaded_builtin_table();
3418 rb_free_global_symbol_table();
3419
3420 rb_free_shared_fiber_pool();
3421 rb_free_transcoder_table();
3422 rb_free_vm_opt_tables();
3423 rb_free_warning();
3424 rb_free_rb_global_tbl();
3425
3426 rb_id_table_free_items(&vm->negative_cme_table);
3427 st_free_embedded_table(&vm->overloaded_cme_table);
3428
3429 // TODO: Is this ignorable for classext->m_tbl ?
3430 // rb_id_table_free(RCLASS(rb_mRubyVMFrozenCore)->m_tbl);
3431
3432 st_free_embedded_table(&vm->static_ext_inits);
3433
3434 rb_id_table_free_items(&vm->constant_cache);
3435 set_free_embedded_table(&vm->unused_block_warning_table);
3436
3437 rb_thread_free_native_thread(th);
3438
3439#ifndef HAVE_SETPROCTITLE
3440 ruby_free_proctitle();
3441#endif
3442 }
3443 else {
3444 rb_fiber_reset_root_local_storage(th);
3445 thread_free(th);
3446 }
3447
3448 struct rb_objspace *objspace = vm->gc.objspace;
3449
3450 rb_vm_living_threads_init(vm);
3451 ruby_vm_run_at_exit_hooks(vm);
3452 st_free_embedded_table(&vm->ci_table);
3453 RB_ALTSTACK_FREE(vm->main_altstack);
3454
3455 struct global_object_list *next;
3456 for (struct global_object_list *list = vm->global_object_list; list; list = next) {
3457 next = list->next;
3458 xfree(list);
3459 }
3460
3461 if (objspace) {
3462 if (rb_free_at_exit) {
3463 rb_objspace_free_objects(objspace);
3464 rb_free_generic_fields_tbl_();
3465 rb_free_default_rand_key();
3466 }
3467 rb_objspace_free(objspace);
3468 }
3469 rb_native_mutex_destroy(&vm->workqueue_lock);
3470 /* after freeing objspace, you *can't* use ruby_xfree() */
3471 ruby_current_vm_ptr = NULL;
3472
3473 if (rb_free_at_exit) {
3474#if USE_YJIT
3475 rb_yjit_free_at_exit();
3476#endif
3477 }
3478 }
3479 RUBY_FREE_LEAVE("vm");
3480 return 0;
3481}
3482
3483size_t rb_vm_memsize_workqueue(struct ccan_list_head *workqueue); // vm_trace.c
3484
3485// Used for VM memsize reporting. Returns the size of the at_exit list by
3486// looping through the linked list and adding up the size of the structs.
3487static enum rb_id_table_iterator_result
3488vm_memsize_constant_cache_i(ID id, VALUE ics, void *size)
3489{
3490 *((size_t *) size) += rb_set_memsize((set_table *) ics);
3491 return ID_TABLE_CONTINUE;
3492}
3493
3494// Returns a size_t representing the memory footprint of the VM's constant
3495// cache, which is the memsize of the table as well as the memsize of all of the
3496// nested tables.
3497static size_t
3498vm_memsize_constant_cache(void)
3499{
3500 rb_vm_t *vm = GET_VM();
3501 size_t size = rb_id_table_memsize(&vm->constant_cache) - sizeof(struct rb_id_table);
3502
3503 rb_id_table_foreach(&vm->constant_cache, vm_memsize_constant_cache_i, &size);
3504 return size;
3505}
3506
3507static size_t
3508vm_memsize_at_exit_list(rb_at_exit_list *at_exit)
3509{
3510 size_t size = 0;
3511
3512 while (at_exit) {
3513 size += sizeof(rb_at_exit_list);
3514 at_exit = at_exit->next;
3515 }
3516
3517 return size;
3518}
3519
3520// Used for VM memsize reporting. Returns the size of the builtin function
3521// table if it has been defined.
3522static size_t
3523vm_memsize_builtin_function_table(const struct rb_builtin_function *builtin_function_table)
3524{
3525 return builtin_function_table == NULL ? 0 : sizeof(struct rb_builtin_function);
3526}
3527
3528// Reports the memsize of the VM struct object and the structs that are
3529// associated with it.
3530static size_t
3531vm_memsize(const void *ptr)
3532{
3533 rb_vm_t *vm = GET_VM();
3534
3535 return (
3536 sizeof(rb_vm_t) +
3537 rb_vm_memsize_postponed_job_queue() +
3538 rb_vm_memsize_workqueue(&vm->workqueue) +
3539 vm_memsize_at_exit_list(vm->at_exit) +
3540 (rb_st_memsize(&vm->ci_table) - sizeof(struct st_table)) +
3541 vm_memsize_builtin_function_table(vm->builtin_function_table) +
3542 (rb_id_table_memsize(&vm->negative_cme_table) - sizeof(struct rb_id_table)) +
3543 (rb_st_memsize(&vm->overloaded_cme_table) - sizeof(struct st_table)) +
3544 vm_memsize_constant_cache()
3545 );
3546
3547 // TODO
3548 // struct { struct ccan_list_head set; } ractor;
3549 // void *main_altstack; #ifdef USE_SIGALTSTACK
3550 // struct rb_objspace *objspace;
3551}
3552
3553const rb_data_type_t ruby_vm_data_type = {
3554 "VM",
3555 {0, 0, vm_memsize,},
3557};
3558
3559#define vm_data_type ruby_vm_data_type
3560
3561static VALUE
3562vm_default_params(void)
3563{
3564 rb_vm_t *vm = GET_VM();
3565 VALUE result = rb_hash_new_with_size(4);
3566#define SET(name) rb_hash_aset(result, ID2SYM(rb_intern(#name)), SIZET2NUM(vm->default_params.name));
3567 SET(thread_vm_stack_size);
3568 SET(thread_machine_stack_size);
3569 SET(fiber_vm_stack_size);
3570 SET(fiber_machine_stack_size);
3571#undef SET
3572 rb_obj_freeze(result);
3573 return result;
3574}
3575
3576static size_t
3577get_param(const char *name, size_t default_value, size_t min_value)
3578{
3579 const char *envval;
3580 size_t result = default_value;
3581 if ((envval = getenv(name)) != 0) {
3582 long val = atol(envval);
3583 if (val < (long)min_value) {
3584 val = (long)min_value;
3585 }
3586 result = (size_t)(((val -1 + RUBY_VM_SIZE_ALIGN) / RUBY_VM_SIZE_ALIGN) * RUBY_VM_SIZE_ALIGN);
3587 }
3588 if (0) ruby_debug_printf("%s: %"PRIuSIZE"\n", name, result); /* debug print */
3589
3590 return result;
3591}
3592
3593static void
3594check_machine_stack_size(size_t *sizep)
3595{
3596#ifdef PTHREAD_STACK_MIN
3597 size_t size = *sizep;
3598#endif
3599
3600#ifdef PTHREAD_STACK_MIN
3601 if (size < (size_t)PTHREAD_STACK_MIN) {
3602 *sizep = (size_t)PTHREAD_STACK_MIN * 2;
3603 }
3604#endif
3605}
3606
3607static void
3608vm_default_params_setup(rb_vm_t *vm)
3609{
3610 vm->default_params.thread_vm_stack_size =
3611 get_param("RUBY_THREAD_VM_STACK_SIZE",
3612 RUBY_VM_THREAD_VM_STACK_SIZE,
3613 RUBY_VM_THREAD_VM_STACK_SIZE_MIN);
3614
3615 vm->default_params.thread_machine_stack_size =
3616 get_param("RUBY_THREAD_MACHINE_STACK_SIZE",
3617 RUBY_VM_THREAD_MACHINE_STACK_SIZE,
3618 RUBY_VM_THREAD_MACHINE_STACK_SIZE_MIN);
3619
3620 vm->default_params.fiber_vm_stack_size =
3621 get_param("RUBY_FIBER_VM_STACK_SIZE",
3622 RUBY_VM_FIBER_VM_STACK_SIZE,
3623 RUBY_VM_FIBER_VM_STACK_SIZE_MIN);
3624
3625 vm->default_params.fiber_machine_stack_size =
3626 get_param("RUBY_FIBER_MACHINE_STACK_SIZE",
3627 RUBY_VM_FIBER_MACHINE_STACK_SIZE,
3628 RUBY_VM_FIBER_MACHINE_STACK_SIZE_MIN);
3629
3630 /* environment dependent check */
3631 check_machine_stack_size(&vm->default_params.thread_machine_stack_size);
3632 check_machine_stack_size(&vm->default_params.fiber_machine_stack_size);
3633}
3634
3635static void
3636vm_init2(rb_vm_t *vm)
3637{
3638 rb_vm_living_threads_init(vm);
3639 vm->thread_report_on_exception = 1;
3640 vm->src_encoding_index = -1;
3641
3642 vm_default_params_setup(vm);
3643}
3644
3645void
3646rb_execution_context_update(rb_execution_context_t *ec)
3647{
3648 /* update VM stack */
3649 if (ec->vm_stack) {
3650 long i;
3651 VM_ASSERT(ec->cfp);
3652 VALUE *p = ec->vm_stack;
3653 VALUE *sp = ec->cfp->sp;
3654 rb_control_frame_t *cfp = ec->cfp;
3655 rb_control_frame_t *limit_cfp = (void *)(ec->vm_stack + ec->vm_stack_size);
3656
3657 for (i = 0; i < (long)(sp - p); i++) {
3658 VALUE ref = p[i];
3659 VALUE update = rb_gc_location(ref);
3660 if (ref != update) {
3661 p[i] = update;
3662 }
3663 }
3664
3665 while (cfp != limit_cfp) {
3666 const VALUE *ep = cfp->ep;
3667 cfp->self = rb_gc_location(cfp->self);
3668 if (CFP_ZJIT_FRAME(cfp)) {
3669 rb_zjit_jit_frame_update_references((zjit_jit_frame_t *)cfp->jit_return);
3670 // block_code must always be relocated. For ISEQ frames, the JIT caller
3671 // may have written it (gen_block_handler_specval) for passing blocks.
3672 // For C frames, rb_iterate0 may have written an ifunc to block_code
3673 // after the JIT pushed the frame. NULL is safe to pass to rb_gc_location.
3674 cfp->block_code = (void *)rb_gc_location((VALUE)cfp->block_code);
3675 }
3676 else {
3677 cfp->_iseq = (rb_iseq_t *)rb_gc_location((VALUE)cfp->_iseq);
3678 cfp->block_code = (void *)rb_gc_location((VALUE)cfp->block_code);
3679 }
3680
3681 if (!VM_ENV_LOCAL_P(ep)) {
3682 const VALUE *prev_ep = VM_ENV_PREV_EP(ep);
3683 if (VM_ENV_FLAGS(prev_ep, VM_ENV_FLAG_ESCAPED)) {
3684 VM_FORCE_WRITE(&prev_ep[VM_ENV_DATA_INDEX_ENV], rb_gc_location(prev_ep[VM_ENV_DATA_INDEX_ENV]));
3685 }
3686
3687 if (VM_ENV_FLAGS(ep, VM_ENV_FLAG_ESCAPED)) {
3688 VM_FORCE_WRITE(&ep[VM_ENV_DATA_INDEX_ENV], rb_gc_location(ep[VM_ENV_DATA_INDEX_ENV]));
3689 VM_FORCE_WRITE(&ep[VM_ENV_DATA_INDEX_ME_CREF], rb_gc_location(ep[VM_ENV_DATA_INDEX_ME_CREF]));
3690 }
3691 }
3692
3693 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
3694 }
3695 }
3696
3697 ec->storage = rb_gc_location(ec->storage);
3698
3699 ec->gen_fields_cache.obj = rb_gc_location(ec->gen_fields_cache.obj);
3700 ec->gen_fields_cache.fields_obj = rb_gc_location(ec->gen_fields_cache.fields_obj);
3701}
3702
3703static enum rb_id_table_iterator_result
3704mark_local_storage_i(VALUE local, void *data)
3705{
3706 rb_gc_mark(local);
3707 return ID_TABLE_CONTINUE;
3708}
3709
3710void
3711rb_execution_context_mark(const rb_execution_context_t *ec)
3712{
3713 /* mark VM stack */
3714 if (ec->vm_stack) {
3715 VM_ASSERT(ec->cfp);
3716 VALUE *p = ec->vm_stack;
3717 VALUE *sp = ec->cfp->sp;
3718 rb_control_frame_t *cfp = ec->cfp;
3719 rb_control_frame_t *limit_cfp = (void *)(ec->vm_stack + ec->vm_stack_size);
3720
3721 for (long i = 0; i < (long)(sp - p); i++) {
3722 rb_gc_mark_movable(p[i]);
3723 }
3724
3725 while (cfp != limit_cfp) {
3726 const VALUE *ep = cfp->ep;
3727 VM_ASSERT(!!VM_ENV_FLAGS(ep, VM_ENV_FLAG_ESCAPED) == vm_ep_in_heap_p_(ec, ep));
3728
3729 rb_gc_mark_movable(cfp->self);
3730 rb_gc_mark_movable((VALUE)CFP_ISEQ(cfp));
3731 // Mark block_code directly (not through rb_zjit_cfp_block_code)
3732 // because rb_iterate0 may write a valid ifunc after JIT frame push.
3733 rb_gc_mark_movable((VALUE)cfp->block_code);
3734
3735 if (VM_ENV_LOCAL_P(ep) && VM_ENV_BOXED_P(ep)) {
3736 const rb_box_t *box = VM_ENV_BOX(ep);
3737 if (BOX_USER_P(box)) {
3738 rb_gc_mark_movable(box->box_object);
3739 }
3740 }
3741
3742 if (!VM_ENV_LOCAL_P(ep)) {
3743 const VALUE *prev_ep = VM_ENV_PREV_EP(ep);
3744 if (VM_ENV_FLAGS(prev_ep, VM_ENV_FLAG_ESCAPED)) {
3745 rb_gc_mark_movable(prev_ep[VM_ENV_DATA_INDEX_ENV]);
3746 }
3747
3748 if (VM_ENV_FLAGS(ep, VM_ENV_FLAG_ESCAPED)) {
3749 rb_gc_mark_movable(ep[VM_ENV_DATA_INDEX_ENV]);
3750 rb_gc_mark(ep[VM_ENV_DATA_INDEX_ME_CREF]);
3751 }
3752 }
3753
3754 cfp = RUBY_VM_PREVIOUS_CONTROL_FRAME(cfp);
3755 }
3756 }
3757
3758 /* mark machine stack */
3759 if (ec->machine.stack_start && ec->machine.stack_end &&
3760 /* marked for current ec at the first stage of marking */
3761 ec != rb_gc_get_ec()) {
3762 rb_gc_mark_machine_context(ec);
3763 }
3764
3765 rb_gc_mark(ec->errinfo);
3766 rb_gc_mark(ec->root_svar);
3767 if (ec->local_storage) {
3768 rb_id_table_foreach_values(ec->local_storage, mark_local_storage_i, NULL);
3769 }
3770 rb_gc_mark(ec->local_storage_recursive_hash);
3771 rb_gc_mark(ec->local_storage_recursive_hash_for_trace);
3772 rb_gc_mark(ec->private_const_reference);
3773
3774 rb_gc_mark_movable(ec->storage);
3775}
3776
3777void rb_fiber_mark_self(rb_fiber_t *fib);
3778void rb_fiber_update_self(rb_fiber_t *fib);
3779void rb_threadptr_root_fiber_setup(rb_thread_t *th);
3780void rb_root_fiber_obj_setup(rb_thread_t *th);
3781void rb_threadptr_root_fiber_release(rb_thread_t *th);
3782
3783static void
3784thread_compact(void *ptr)
3785{
3786 rb_thread_t *th = ptr;
3787
3788 th->self = rb_gc_location(th->self);
3789}
3790
3791static void
3792thread_mark(void *ptr)
3793{
3794 rb_thread_t *th = ptr;
3795 RUBY_MARK_ENTER("thread");
3796
3797 // ec is null when setting up the thread in rb_threadptr_root_fiber_setup
3798 if (th->ec) {
3799 rb_fiber_mark_self(th->ec->fiber_ptr);
3800 }
3801
3802 /* mark ruby objects */
3803 switch (th->invoke_type) {
3804 case thread_invoke_type_proc:
3805 case thread_invoke_type_ractor_proc:
3806 rb_gc_mark(th->invoke_arg.proc.proc);
3807 rb_gc_mark(th->invoke_arg.proc.args);
3808 break;
3809 case thread_invoke_type_func:
3810 rb_gc_mark_maybe((VALUE)th->invoke_arg.func.arg);
3811 break;
3812 default:
3813 break;
3814 }
3815
3816 rb_gc_mark(rb_ractor_self(th->ractor));
3817 rb_gc_mark(th->thgroup);
3818 rb_gc_mark(th->value);
3819 rb_gc_mark(th->pending_interrupt_queue);
3820 rb_gc_mark(th->pending_interrupt_mask_stack);
3821 rb_gc_mark(th->top_self);
3822 rb_gc_mark(th->top_wrapper);
3823 if (th->root_fiber) rb_fiber_mark_self(th->root_fiber);
3824
3825 RUBY_ASSERT(th->ec == NULL || th->ec == rb_fiberptr_get_ec(th->ec->fiber_ptr));
3826 rb_gc_mark(th->last_status);
3827 rb_gc_mark(th->locking_mutex);
3828 rb_gc_mark(th->name);
3829
3830 rb_gc_mark(th->scheduler);
3831
3832 rb_threadptr_interrupt_exec_task_mark(th);
3833
3834 RUBY_MARK_LEAVE("thread");
3835}
3836
3837void rb_threadptr_sched_free(rb_thread_t *th); // thread_*.c
3838
3839static void
3840thread_free(void *ptr)
3841{
3842 rb_thread_t *th = ptr;
3843 RUBY_FREE_ENTER("thread");
3844
3845 rb_threadptr_sched_free(th);
3846
3847 if (th->locking_mutex != Qfalse) {
3848 rb_bug("thread_free: locking_mutex must be NULL (%p:%p)", (void *)th, (void *)th->locking_mutex);
3849 }
3850 if (th->keeping_mutexes != NULL) {
3851 rb_bug("thread_free: keeping_mutexes must be NULL (%p:%p)", (void *)th, (void *)th->keeping_mutexes);
3852 }
3853
3854 ruby_xfree(th->specific_storage);
3855
3856 if (th->vm && th->vm->ractor.main_thread == th) {
3857 RUBY_GC_INFO("MRI main thread\n");
3858 }
3859 else {
3860 // ruby_xfree(th->nt);
3861 // TODO: MN system collect nt, but without MN system it should be freed here.
3862 if (!th->main_thread) {
3863 ruby_xfree(th);
3864 }
3865 }
3866
3867 RUBY_FREE_LEAVE("thread");
3868}
3869
3870static size_t
3871thread_memsize(const void *ptr)
3872{
3873 const rb_thread_t *th = ptr;
3874 size_t size = sizeof(rb_thread_t);
3875
3876 if (!th->root_fiber) {
3877 size += th->ec->vm_stack_size * sizeof(VALUE);
3878 }
3879 if (th->ec->local_storage) {
3880 size += rb_id_table_memsize(th->ec->local_storage);
3881 }
3882 return size;
3883}
3884
3885#define thread_data_type ruby_threadptr_data_type
3886const rb_data_type_t ruby_threadptr_data_type = {
3887 "VM/thread",
3888 {
3889 thread_mark,
3890 thread_free,
3891 thread_memsize,
3892 thread_compact,
3893 },
3895};
3896
3897VALUE
3898rb_obj_is_thread(VALUE obj)
3899{
3900 return RBOOL(rb_typeddata_is_kind_of(obj, &thread_data_type));
3901}
3902
3903static VALUE
3904thread_alloc(VALUE klass)
3905{
3906 rb_thread_t *th;
3907 return TypedData_Make_Struct(klass, rb_thread_t, &thread_data_type, th);
3908}
3909
3910void
3911rb_ec_set_vm_stack(rb_execution_context_t *ec, VALUE *stack, size_t size)
3912{
3913 ec->vm_stack = stack;
3914 ec->vm_stack_size = size;
3915}
3916
3917void
3918rb_ec_initialize_vm_stack(rb_execution_context_t *ec, VALUE *stack, size_t size)
3919{
3920 rb_ec_set_vm_stack(ec, stack, size);
3921
3922#if VM_CHECK_MODE > 0
3923 MEMZERO(stack, VALUE, size); // malloc memory could have the VM canary in it
3924#endif
3925
3926 ec->cfp = (void *)(ec->vm_stack + ec->vm_stack_size);
3927
3928 vm_push_frame(ec,
3929 NULL /* dummy iseq */,
3930 VM_FRAME_MAGIC_DUMMY | VM_ENV_FLAG_LOCAL | VM_FRAME_FLAG_FINISH | VM_FRAME_FLAG_CFRAME /* dummy frame */,
3931 Qnil /* dummy self */, VM_BLOCK_HANDLER_NONE /* dummy block ptr */,
3932 0 /* dummy cref/me */,
3933 0 /* dummy pc */, ec->vm_stack, 0, 0
3934 );
3935}
3936
3937void
3938rb_ec_clear_vm_stack(rb_execution_context_t *ec)
3939{
3940 // set cfp to NULL before clearing the stack in case `thread_profile_frames`
3941 // gets called in this middle of `rb_ec_set_vm_stack` via signal handler.
3942 ec->cfp = NULL;
3943 rb_ec_set_vm_stack(ec, NULL, 0);
3944}
3945
3946void
3947rb_ec_close(rb_execution_context_t *ec)
3948{
3949 // Fiber storage is not accessible from outside the running fiber, so it is safe to clear it here.
3950 ec->storage = Qnil;
3951}
3952
3953static void
3954th_init(rb_thread_t *th, VALUE self, rb_vm_t *vm)
3955{
3956 const rb_box_t *box = rb_current_box();
3957
3958 th->self = self;
3959
3960 ccan_list_head_init(&th->interrupt_exec_tasks);
3961
3962 rb_threadptr_root_fiber_setup(th);
3963
3964 /* All threads are blocking until a non-blocking fiber is scheduled */
3965 th->blocking = 1;
3966 th->scheduler = Qnil;
3967
3968 if (self == 0) {
3969 size_t size = vm->default_params.thread_vm_stack_size / sizeof(VALUE);
3970 VALUE *stack = ALLOC_N(VALUE, size);
3971 rb_ec_initialize_vm_stack(th->ec, stack, size);
3972 rb_thread_malloc_stack_set(th, stack, size);
3973 }
3974 else {
3975 VM_ASSERT(th->ec->cfp == NULL);
3976 VM_ASSERT(th->ec->vm_stack == NULL);
3977 VM_ASSERT(th->ec->vm_stack_size == 0);
3978 }
3979
3980 th->status = THREAD_RUNNABLE;
3981 th->last_status = Qnil;
3982 th->top_wrapper = 0;
3983 if (box->top_self) {
3984 th->top_self = box->top_self;
3985 }
3986 else {
3987 th->top_self = 0;
3988 }
3989 th->value = Qundef;
3990
3991 th->ec->errinfo = Qnil;
3992 th->ec->root_svar = Qfalse;
3993 th->ec->local_storage_recursive_hash = Qnil;
3994 th->ec->local_storage_recursive_hash_for_trace = Qnil;
3995
3996 th->ec->storage = Qnil;
3997 th->ec->ractor_id = rb_ractor_id(th->ractor);
3998
3999#if OPT_CALL_THREADED_CODE
4000 th->retval = Qundef;
4001#endif
4002 th->name = Qnil;
4003 th->report_on_exception = vm->thread_report_on_exception;
4004 th->ext_config.ractor_safe = true;
4005
4006#if USE_RUBY_DEBUG_LOG
4007 static rb_atomic_t thread_serial = 1;
4008 th->serial = RUBY_ATOMIC_FETCH_ADD(thread_serial, 1);
4009
4010 RUBY_DEBUG_LOG("th:%u", th->serial);
4011#endif
4012}
4013
4014VALUE
4015rb_thread_alloc(VALUE klass)
4016{
4017 VALUE self = thread_alloc(klass);
4018 rb_thread_t *target_th = rb_thread_ptr(self);
4019 target_th->ractor = GET_RACTOR();
4020 th_init(target_th, self, target_th->vm = GET_VM());
4021 rb_root_fiber_obj_setup(target_th);
4022 return self;
4023}
4024
4025#define REWIND_CFP(expr) do { \
4026 rb_execution_context_t *ec__ = GET_EC(); \
4027 VALUE *const curr_sp = (ec__->cfp++)->sp; \
4028 VALUE *const saved_sp = ec__->cfp->sp; \
4029 ec__->cfp->sp = curr_sp; \
4030 expr; \
4031 (ec__->cfp--)->sp = saved_sp; \
4032} while (0)
4033
4034static VALUE
4035m_core_set_method_alias(VALUE self, VALUE cbase, VALUE sym1, VALUE sym2)
4036{
4037 REWIND_CFP({
4038 rb_alias(cbase, SYM2ID(sym1), SYM2ID(sym2));
4039 });
4040 return Qnil;
4041}
4042
4043static VALUE
4044m_core_set_variable_alias(VALUE self, VALUE sym1, VALUE sym2)
4045{
4046 REWIND_CFP({
4047 rb_alias_variable(SYM2ID(sym1), SYM2ID(sym2));
4048 });
4049 return Qnil;
4050}
4051
4052static VALUE
4053m_core_undef_method(VALUE self, VALUE cbase, VALUE sym)
4054{
4055 REWIND_CFP({
4056 ID mid = SYM2ID(sym);
4057 rb_undef(cbase, mid);
4058 rb_clear_method_cache(self, mid);
4059 });
4060 return Qnil;
4061}
4062
4063static VALUE
4064m_core_set_postexe(VALUE self)
4065{
4066 rb_set_end_proc(rb_call_end_proc, rb_block_proc());
4067 return Qnil;
4068}
4069
4070static VALUE core_hash_merge_kwd(VALUE hash, VALUE kw);
4071
4072static VALUE
4073core_hash_merge(VALUE hash, long argc, const VALUE *argv)
4074{
4075 Check_Type(hash, T_HASH);
4076 VM_ASSERT(argc % 2 == 0);
4077 rb_hash_bulk_insert(argc, argv, hash);
4078 return hash;
4079}
4080
4081static VALUE
4082m_core_hash_merge_ptr(int argc, VALUE *argv, VALUE recv)
4083{
4084 VALUE hash = argv[0];
4085
4086 REWIND_CFP(hash = core_hash_merge(hash, argc-1, argv+1));
4087
4088 return hash;
4089}
4090
4091static int
4092kwmerge_i(VALUE key, VALUE value, VALUE hash)
4093{
4094 rb_hash_aset(hash, key, value);
4095 return ST_CONTINUE;
4096}
4097
4098static VALUE
4099m_core_hash_merge_kwd(VALUE recv, VALUE hash, VALUE kw)
4100{
4101 if (!NIL_P(kw)) {
4102 REWIND_CFP(hash = core_hash_merge_kwd(hash, kw));
4103 }
4104 return hash;
4105}
4106
4107static VALUE
4108m_core_make_shareable(VALUE recv, VALUE obj)
4109{
4110 return rb_ractor_make_shareable(obj);
4111}
4112
4113static VALUE
4114m_core_make_shareable_copy(VALUE recv, VALUE obj)
4115{
4117}
4118
4119static VALUE
4120m_core_ensure_shareable(VALUE recv, VALUE obj, VALUE name)
4121{
4122 return rb_ractor_ensure_shareable(obj, name);
4123}
4124
4125static VALUE
4126core_hash_merge_kwd(VALUE hash, VALUE kw)
4127{
4128 rb_hash_foreach(rb_to_hash_type(kw), kwmerge_i, hash);
4129 return hash;
4130}
4131
4132extern VALUE *rb_gc_stack_start;
4133extern size_t rb_gc_stack_maxsize;
4134
4135/* debug functions */
4136
4137/* :nodoc: */
4138static VALUE
4139sdr(VALUE self)
4140{
4141 rb_vm_bugreport(NULL, stderr);
4142 return Qnil;
4143}
4144
4145/* :nodoc: */
4146static VALUE
4147nsdr(VALUE self)
4148{
4149 VALUE ary = rb_ary_new();
4150#ifdef HAVE_BACKTRACE
4151#include <execinfo.h>
4152#define MAX_NATIVE_TRACE 1024
4153 static void *trace[MAX_NATIVE_TRACE];
4154 int n = (int)backtrace(trace, MAX_NATIVE_TRACE);
4155 char **syms = backtrace_symbols(trace, n);
4156 int i;
4157
4158 if (syms == 0) {
4159 rb_memerror();
4160 }
4161
4162 for (i=0; i<n; i++) {
4163 rb_ary_push(ary, rb_str_new2(syms[i]));
4164 }
4165 free(syms); /* OK */
4166#endif
4167 return ary;
4168}
4169
4170#if VM_COLLECT_USAGE_DETAILS
4171static VALUE usage_analysis_insn_start(VALUE self);
4172static VALUE usage_analysis_operand_start(VALUE self);
4173static VALUE usage_analysis_register_start(VALUE self);
4174static VALUE usage_analysis_insn_stop(VALUE self);
4175static VALUE usage_analysis_operand_stop(VALUE self);
4176static VALUE usage_analysis_register_stop(VALUE self);
4177static VALUE usage_analysis_insn_running(VALUE self);
4178static VALUE usage_analysis_operand_running(VALUE self);
4179static VALUE usage_analysis_register_running(VALUE self);
4180static VALUE usage_analysis_insn_clear(VALUE self);
4181static VALUE usage_analysis_operand_clear(VALUE self);
4182static VALUE usage_analysis_register_clear(VALUE self);
4183#endif
4184
4185static VALUE
4186f_raise(int c, VALUE *v, VALUE _)
4187{
4188 return rb_f_raise(c, v);
4189}
4190
4191static VALUE
4192f_proc(VALUE _)
4193{
4194 return rb_block_proc();
4195}
4196
4197static VALUE
4198f_lambda(VALUE _)
4199{
4200 return rb_block_lambda();
4201}
4202
4203static VALUE
4204f_sprintf(int c, const VALUE *v, VALUE _)
4205{
4206 return rb_f_sprintf(c, v);
4207}
4208
4209/* :nodoc: */
4210static VALUE
4211vm_mtbl(VALUE self, VALUE obj, VALUE sym)
4212{
4213 vm_mtbl_dump(CLASS_OF(obj), RTEST(sym) ? SYM2ID(sym) : 0);
4214 return Qnil;
4215}
4216
4217/* :nodoc: */
4218static VALUE
4219vm_mtbl2(VALUE self, VALUE obj, VALUE sym)
4220{
4221 vm_mtbl_dump(obj, RTEST(sym) ? SYM2ID(sym) : 0);
4222 return Qnil;
4223}
4224
4225/*
4226 * call-seq:
4227 * RubyVM.keep_script_lines -> true or false
4228 *
4229 * Return current +keep_script_lines+ status. Now it only returns
4230 * +true+ of +false+, but it can return other objects in future.
4231 *
4232 * Note that this is an API for ruby internal use, debugging,
4233 * and research. Do not use this for any other purpose.
4234 * The compatibility is not guaranteed.
4235 */
4236static VALUE
4237vm_keep_script_lines(VALUE self)
4238{
4239 return RBOOL(ruby_vm_keep_script_lines);
4240}
4241
4242/*
4243 * call-seq:
4244 * RubyVM.keep_script_lines = true / false
4245 *
4246 * It set +keep_script_lines+ flag. If the flag is set, all
4247 * loaded scripts are recorded in a interpreter process.
4248 *
4249 * Note that this is an API for ruby internal use, debugging,
4250 * and research. Do not use this for any other purpose.
4251 * The compatibility is not guaranteed.
4252 */
4253static VALUE
4254vm_keep_script_lines_set(VALUE self, VALUE flags)
4255{
4256 ruby_vm_keep_script_lines = RTEST(flags);
4257 return flags;
4258}
4259
4260void
4261Init_VM(void)
4262{
4263 VALUE opts;
4264 VALUE klass;
4265 VALUE fcore;
4266
4267 /*
4268 * Document-class: RubyVM
4269 *
4270 * The RubyVM module only exists on MRI. +RubyVM+ is not defined in
4271 * other Ruby implementations such as JRuby and TruffleRuby.
4272 *
4273 * The RubyVM module provides some access to MRI internals.
4274 * This module is for very limited purposes, such as debugging,
4275 * prototyping, and research. Normal users must not use it.
4276 * This module is not portable between Ruby implementations.
4277 */
4278 rb_cRubyVM = rb_define_class("RubyVM", rb_cObject);
4279 rb_undef_alloc_func(rb_cRubyVM);
4280 rb_undef_method(CLASS_OF(rb_cRubyVM), "new");
4281 rb_define_singleton_method(rb_cRubyVM, "stat", vm_stat, -1);
4282 rb_define_singleton_method(rb_cRubyVM, "keep_script_lines", vm_keep_script_lines, 0);
4283 rb_define_singleton_method(rb_cRubyVM, "keep_script_lines=", vm_keep_script_lines_set, 1);
4284
4285#if USE_DEBUG_COUNTER
4286 rb_define_singleton_method(rb_cRubyVM, "reset_debug_counters", rb_debug_counter_reset, 0);
4287 rb_define_singleton_method(rb_cRubyVM, "show_debug_counters", rb_debug_counter_show, 0);
4288#endif
4289
4290 /* FrozenCore (hidden) */
4292 rb_set_class_path(fcore, rb_cRubyVM, "FrozenCore");
4293 rb_vm_register_global_object(rb_class_path_cached(fcore));
4294 klass = rb_singleton_class(fcore);
4295 rb_define_method_id(klass, id_core_set_method_alias, m_core_set_method_alias, 3);
4296 rb_define_method_id(klass, id_core_set_variable_alias, m_core_set_variable_alias, 2);
4297 rb_define_method_id(klass, id_core_undef_method, m_core_undef_method, 2);
4298 rb_define_method_id(klass, id_core_set_postexe, m_core_set_postexe, 0);
4299 rb_define_method_id(klass, id_core_hash_merge_ptr, m_core_hash_merge_ptr, -1);
4300 rb_define_method_id(klass, id_core_hash_merge_kwd, m_core_hash_merge_kwd, 2);
4301 rb_define_method_id(klass, id_core_raise, f_raise, -1);
4302 rb_define_method_id(klass, id_core_sprintf, f_sprintf, -1);
4303 rb_define_method_id(klass, idProc, f_proc, 0);
4304 rb_define_method_id(klass, idLambda, f_lambda, 0);
4305 rb_define_method(klass, "make_shareable", m_core_make_shareable, 1);
4306 rb_define_method(klass, "make_shareable_copy", m_core_make_shareable_copy, 1);
4307 rb_define_method(klass, "ensure_shareable", m_core_ensure_shareable, 2);
4308 rb_obj_freeze(fcore);
4309 RBASIC_CLEAR_CLASS(klass);
4310 rb_obj_freeze(klass);
4311 rb_vm_register_global_object(fcore);
4312 rb_mRubyVMFrozenCore = fcore;
4313
4314 /*
4315 * Document-class: Thread
4316 *
4317 * Threads are the Ruby implementation for a concurrent programming model.
4318 *
4319 * Programs that require multiple threads of execution are a perfect
4320 * candidate for Ruby's Thread class.
4321 *
4322 * For example, we can create a new thread separate from the main thread's
4323 * execution using ::new.
4324 *
4325 * thr = Thread.new { puts "What's the big deal" }
4326 *
4327 * Then we are able to pause the execution of the main thread and allow
4328 * our new thread to finish, using #join:
4329 *
4330 * thr.join #=> "What's the big deal"
4331 *
4332 * If we don't call +thr.join+ before the main thread terminates, then all
4333 * other threads including +thr+ will be killed.
4334 *
4335 * Alternatively, you can use an array for handling multiple threads at
4336 * once, like in the following example:
4337 *
4338 * threads = []
4339 * threads << Thread.new { puts "What's the big deal" }
4340 * threads << Thread.new { 3.times { puts "Threads are fun!" } }
4341 *
4342 * After creating a few threads we wait for them all to finish
4343 * consecutively.
4344 *
4345 * threads.each { |thr| thr.join }
4346 *
4347 * To retrieve the last value of a thread, use #value
4348 *
4349 * thr = Thread.new { sleep 1; "Useful value" }
4350 * thr.value #=> "Useful value"
4351 *
4352 * === Thread initialization
4353 *
4354 * In order to create new threads, Ruby provides ::new, ::start, and
4355 * ::fork. A block must be provided with each of these methods, otherwise
4356 * a ThreadError will be raised.
4357 *
4358 * When subclassing the Thread class, the +initialize+ method of your
4359 * subclass will be ignored by ::start and ::fork. Otherwise, be sure to
4360 * call super in your +initialize+ method.
4361 *
4362 * === Thread termination
4363 *
4364 * For terminating threads, Ruby provides a variety of ways to do this.
4365 *
4366 * The class method ::kill, is meant to exit a given thread:
4367 *
4368 * thr = Thread.new { sleep }
4369 * Thread.kill(thr) # sends exit() to thr
4370 *
4371 * Alternatively, you can use the instance method #exit, or any of its
4372 * aliases #kill or #terminate.
4373 *
4374 * thr.exit
4375 *
4376 * === Thread status
4377 *
4378 * Ruby provides a few instance methods for querying the state of a given
4379 * thread. To get a string with the current thread's state use #status
4380 *
4381 * thr = Thread.new { sleep }
4382 * thr.status # => "sleep"
4383 * thr.exit
4384 * thr.status # => false
4385 *
4386 * You can also use #alive? to tell if the thread is running or sleeping,
4387 * and #stop? if the thread is dead or sleeping.
4388 *
4389 * === Thread variables and scope
4390 *
4391 * Since threads are created with blocks, the same rules apply to other
4392 * Ruby blocks for variable scope. Any local variables created within this
4393 * block are accessible to only this thread.
4394 *
4395 * ==== Fiber-local vs. Thread-local
4396 *
4397 * Each fiber has its own bucket for Thread#[] storage. When you set a
4398 * new fiber-local it is only accessible within this Fiber. To illustrate:
4399 *
4400 * Thread.new {
4401 * Thread.current[:foo] = "bar"
4402 * Fiber.new {
4403 * p Thread.current[:foo] # => nil
4404 * }.resume
4405 * }.join
4406 *
4407 * This example uses #[] for getting and #[]= for setting fiber-locals,
4408 * you can also use #keys to list the fiber-locals for a given
4409 * thread and #key? to check if a fiber-local exists.
4410 *
4411 * When it comes to thread-locals, they are accessible within the entire
4412 * scope of the thread. Given the following example:
4413 *
4414 * Thread.new{
4415 * Thread.current.thread_variable_set(:foo, 1)
4416 * p Thread.current.thread_variable_get(:foo) # => 1
4417 * Fiber.new{
4418 * Thread.current.thread_variable_set(:foo, 2)
4419 * p Thread.current.thread_variable_get(:foo) # => 2
4420 * }.resume
4421 * p Thread.current.thread_variable_get(:foo) # => 2
4422 * }.join
4423 *
4424 * You can see that the thread-local +:foo+ carried over into the fiber
4425 * and was changed to +2+ by the end of the thread.
4426 *
4427 * This example makes use of #thread_variable_set to create new
4428 * thread-locals, and #thread_variable_get to reference them.
4429 *
4430 * There is also #thread_variables to list all thread-locals, and
4431 * #thread_variable? to check if a given thread-local exists.
4432 *
4433 * === Exception handling
4434 *
4435 * When an unhandled exception is raised inside a thread, it will
4436 * terminate. By default, this exception will not propagate to other
4437 * threads. The exception is stored and when another thread calls #value
4438 * or #join, the exception will be re-raised in that thread.
4439 *
4440 * t = Thread.new{ raise 'something went wrong' }
4441 * t.value #=> RuntimeError: something went wrong
4442 *
4443 * An exception can be raised from outside the thread using the
4444 * Thread#raise instance method, which takes the same parameters as
4445 * Kernel#raise.
4446 *
4447 * Setting Thread.abort_on_exception = true, Thread#abort_on_exception =
4448 * true, or $DEBUG = true will cause a subsequent unhandled exception
4449 * raised in a thread to be automatically re-raised in the main thread.
4450 *
4451 * With the addition of the class method ::handle_interrupt, you can now
4452 * handle exceptions asynchronously with threads.
4453 *
4454 * === Scheduling
4455 *
4456 * Ruby provides a few ways to support scheduling threads in your program.
4457 *
4458 * The first way is by using the class method ::stop, to put the current
4459 * running thread to sleep and schedule the execution of another thread.
4460 *
4461 * Once a thread is asleep, you can use the instance method #wakeup to
4462 * mark your thread as eligible for scheduling.
4463 *
4464 * You can also try ::pass, which attempts to pass execution to another
4465 * thread but is dependent on the OS whether a running thread will switch
4466 * or not. The same goes for #priority, which lets you hint to the thread
4467 * scheduler which threads you want to take precedence when passing
4468 * execution. This method is also dependent on the OS and may be ignored
4469 * on some platforms.
4470 *
4471 */
4474
4475#if VM_COLLECT_USAGE_DETAILS
4476 /* ::RubyVM::USAGE_ANALYSIS_* */
4477#define define_usage_analysis_hash(name) /* shut up rdoc -C */ \
4478 rb_define_const(rb_cRubyVM, "USAGE_ANALYSIS_" #name, rb_hash_new())
4479 define_usage_analysis_hash(INSN);
4480 define_usage_analysis_hash(REGS);
4481 define_usage_analysis_hash(INSN_BIGRAM);
4482
4483 rb_define_singleton_method(rb_cRubyVM, "USAGE_ANALYSIS_INSN_START", usage_analysis_insn_start, 0);
4484 rb_define_singleton_method(rb_cRubyVM, "USAGE_ANALYSIS_OPERAND_START", usage_analysis_operand_start, 0);
4485 rb_define_singleton_method(rb_cRubyVM, "USAGE_ANALYSIS_REGISTER_START", usage_analysis_register_start, 0);
4486 rb_define_singleton_method(rb_cRubyVM, "USAGE_ANALYSIS_INSN_STOP", usage_analysis_insn_stop, 0);
4487 rb_define_singleton_method(rb_cRubyVM, "USAGE_ANALYSIS_OPERAND_STOP", usage_analysis_operand_stop, 0);
4488 rb_define_singleton_method(rb_cRubyVM, "USAGE_ANALYSIS_REGISTER_STOP", usage_analysis_register_stop, 0);
4489 rb_define_singleton_method(rb_cRubyVM, "USAGE_ANALYSIS_INSN_RUNNING", usage_analysis_insn_running, 0);
4490 rb_define_singleton_method(rb_cRubyVM, "USAGE_ANALYSIS_OPERAND_RUNNING", usage_analysis_operand_running, 0);
4491 rb_define_singleton_method(rb_cRubyVM, "USAGE_ANALYSIS_REGISTER_RUNNING", usage_analysis_register_running, 0);
4492 rb_define_singleton_method(rb_cRubyVM, "USAGE_ANALYSIS_INSN_CLEAR", usage_analysis_insn_clear, 0);
4493 rb_define_singleton_method(rb_cRubyVM, "USAGE_ANALYSIS_OPERAND_CLEAR", usage_analysis_operand_clear, 0);
4494 rb_define_singleton_method(rb_cRubyVM, "USAGE_ANALYSIS_REGISTER_CLEAR", usage_analysis_register_clear, 0);
4495#endif
4496
4497 /* ::RubyVM::OPTS
4498 * An Array of VM build options.
4499 * This constant is MRI specific.
4500 */
4501 rb_define_const(rb_cRubyVM, "OPTS", opts = rb_ary_new());
4502
4503#if OPT_DIRECT_THREADED_CODE
4504 rb_ary_push(opts, rb_str_new2("direct threaded code"));
4505#elif OPT_TOKEN_THREADED_CODE
4506 rb_ary_push(opts, rb_str_new2("token threaded code"));
4507#elif OPT_CALL_THREADED_CODE
4508 rb_ary_push(opts, rb_str_new2("call threaded code"));
4509#endif
4510
4511#if OPT_OPERANDS_UNIFICATION
4512 rb_ary_push(opts, rb_str_new2("operands unification"));
4513#endif
4514#if OPT_INSTRUCTIONS_UNIFICATION
4515 rb_ary_push(opts, rb_str_new2("instructions unification"));
4516#endif
4517#if OPT_INLINE_METHOD_CACHE
4518 rb_ary_push(opts, rb_str_new2("inline method cache"));
4519#endif
4520
4521 /* ::RubyVM::INSTRUCTION_NAMES
4522 * A list of bytecode instruction names in MRI.
4523 * This constant is MRI specific.
4524 */
4525 rb_define_const(rb_cRubyVM, "INSTRUCTION_NAMES", rb_insns_name_array());
4526
4527 /* ::RubyVM::DEFAULT_PARAMS
4528 * This constant exposes the VM's default parameters.
4529 * Note that changing these values does not affect VM execution.
4530 * Specification is not stable and you should not depend on this value.
4531 * Of course, this constant is MRI specific.
4532 */
4533 rb_define_const(rb_cRubyVM, "DEFAULT_PARAMS", vm_default_params());
4534
4535 /* debug functions ::RubyVM::SDR(), ::RubyVM::NSDR() */
4536#if VMDEBUG
4537 rb_define_singleton_method(rb_cRubyVM, "SDR", sdr, 0);
4538 rb_define_singleton_method(rb_cRubyVM, "NSDR", nsdr, 0);
4539 rb_define_singleton_method(rb_cRubyVM, "mtbl", vm_mtbl, 2);
4540 rb_define_singleton_method(rb_cRubyVM, "mtbl2", vm_mtbl2, 2);
4541#else
4542 (void)sdr;
4543 (void)nsdr;
4544 (void)vm_mtbl;
4545 (void)vm_mtbl2;
4546#endif
4547
4548 /* VM bootstrap: phase 2 */
4549 {
4550 rb_vm_t *vm = ruby_current_vm_ptr;
4551 rb_thread_t *th = GET_THREAD();
4552 VALUE filename = rb_fstring_lit("<main>");
4553 const rb_iseq_t *iseq = rb_iseq_new(Qnil, filename, filename, Qnil, 0, ISEQ_TYPE_TOP);
4554
4555 // Ractor setup
4556 rb_ractor_main_setup(vm, th->ractor, th);
4557
4558 /* create vm object */
4559 vm->self = TypedData_Wrap_Struct(rb_cRubyVM, &vm_data_type, vm);
4560
4561 /* create main thread */
4562 th->self = TypedData_Wrap_Struct(rb_cThread, &thread_data_type, th);
4563 vm->ractor.main_thread = th;
4564 vm->ractor.main_ractor = th->ractor;
4565 th->vm = vm;
4566 th->top_wrapper = 0;
4567 th->top_self = rb_vm_top_self();
4568
4569 rb_root_fiber_obj_setup(th);
4570
4571 rb_vm_register_global_object((VALUE)iseq);
4572 th->ec->cfp->_iseq = iseq;
4573 th->ec->cfp->pc = ISEQ_BODY(iseq)->iseq_encoded;
4574 th->ec->cfp->self = th->top_self;
4575
4576 VM_ENV_FLAGS_UNSET(th->ec->cfp->ep, VM_FRAME_FLAG_CFRAME);
4577 VM_STACK_ENV_WRITE(th->ec->cfp->ep, VM_ENV_DATA_INDEX_ME_CREF, (VALUE)vm_cref_new(rb_cObject, METHOD_VISI_PRIVATE, FALSE, NULL, FALSE, FALSE));
4578
4579 /*
4580 * The Binding of the top level scope
4581 */
4582 rb_define_global_const("TOPLEVEL_BINDING", rb_binding_new());
4583
4584#ifdef _WIN32
4585 rb_objspace_gc_enable(vm->gc.objspace);
4586#endif
4587 }
4588 vm_init_redefined_flag();
4589
4590 rb_block_param_proxy = rb_obj_alloc(rb_cObject);
4591 rb_add_method_optimized(rb_singleton_class(rb_block_param_proxy), idCall,
4592 OPTIMIZED_METHOD_TYPE_BLOCK_CALL, 0, METHOD_VISI_PUBLIC);
4593 rb_obj_freeze(rb_block_param_proxy);
4594 rb_vm_register_global_object(rb_block_param_proxy);
4595
4596 /* vm_backtrace.c */
4597 Init_vm_backtrace();
4598}
4599
4600void
4601rb_vm_set_progname(VALUE filename)
4602{
4603 rb_thread_t *th = GET_VM()->ractor.main_thread;
4604 rb_control_frame_t *cfp = (void *)(th->ec->vm_stack + th->ec->vm_stack_size);
4605 --cfp;
4606
4607 filename = rb_str_new_frozen(filename);
4608 rb_iseq_pathobj_set(CFP_ISEQ(cfp), filename, rb_iseq_realpath(CFP_ISEQ(cfp)));
4609}
4610
4611extern const struct st_hash_type rb_fstring_hash_type;
4612
4613static rb_vm_t _vm;
4614static rb_thread_t _main_thread = {
4615 .vm = &_vm,
4616 .main_thread = 1,
4617};
4618
4619void
4620Init_BareVM(void)
4621{
4622 /* VM bootstrap: phase 1 */
4623 rb_vm_t *vm = &_vm;
4624 rb_thread_t *th = &_main_thread;
4625
4626 // setup the VM
4627 vm_init2(vm);
4628
4629 ruby_current_vm_ptr = vm;
4630 rb_objspace_alloc();
4631 rb_id_table_init(&vm->negative_cme_table, 16);
4632 st_init_existing_numtable_with_size(&vm->overloaded_cme_table, 0);
4633 st_init_existing_strtable_with_size(&vm->static_ext_inits, 0);
4634 set_init_embedded_numtable_with_size(&vm->unused_block_warning_table, 0);
4635 vm->global_hooks.type = hook_list_type_global;
4636
4637 // setup main thread
4638 th->nt = ZALLOC(struct rb_native_thread);
4639 th->ractor = vm->ractor.main_ractor = rb_ractor_main_alloc();
4640 Init_native_thread(th);
4641 rb_jit_cont_init();
4642 th_init(th, 0, vm);
4643
4644 rb_ractor_set_current_ec(th->ractor, th->ec);
4645
4646 /* n.b. native_main_thread_stack_top is set by the INIT_STACK macro */
4647 ruby_thread_init_stack(th, native_main_thread_stack_top);
4648
4649 // setup ractor system
4650 rb_native_mutex_initialize(&vm->ractor.sync.lock);
4651 rb_native_cond_initialize(&vm->ractor.sync.terminate_cond);
4652
4653 vm_opt_method_def_table = st_init_numtable();
4654 vm_opt_mid_table = st_init_numtable();
4655
4656#ifdef RUBY_THREAD_WIN32_H
4657 rb_native_cond_initialize(&vm->ractor.sync.barrier_complete_cond);
4658 rb_native_cond_initialize(&vm->ractor.sync.barrier_release_cond);
4659#endif
4660}
4661
4662void
4664{
4665 native_main_thread_stack_top = addr;
4666}
4667
4668#ifndef _WIN32
4669#include <unistd.h>
4670#include <sys/mman.h>
4671#endif
4672
4673
4674#ifndef MARK_OBJECT_ARY_BUCKET_SIZE
4675#define MARK_OBJECT_ARY_BUCKET_SIZE 1024
4676#endif
4677
4679 VALUE next;
4680 long len;
4681 VALUE *array;
4682};
4683
4684static void
4685pin_array_list_mark(void *data)
4686{
4687 struct pin_array_list *array = (struct pin_array_list *)data;
4688 rb_gc_mark_movable(array->next);
4689
4690 rb_gc_mark_vm_stack_values(array->len, array->array);
4691}
4692
4693static void
4694pin_array_list_free(void *data)
4695{
4696 struct pin_array_list *array = (struct pin_array_list *)data;
4697 xfree(array->array);
4698}
4699
4700static size_t
4701pin_array_list_memsize(const void *data)
4702{
4703 return sizeof(struct pin_array_list) + (MARK_OBJECT_ARY_BUCKET_SIZE * sizeof(VALUE));
4704}
4705
4706static void
4707pin_array_list_update_references(void *data)
4708{
4709 struct pin_array_list *array = (struct pin_array_list *)data;
4710 array->next = rb_gc_location(array->next);
4711}
4712
4713static const rb_data_type_t pin_array_list_type = {
4714 .wrap_struct_name = "VM/pin_array_list",
4715 .function = {
4716 .dmark = pin_array_list_mark,
4717 .dfree = pin_array_list_free,
4718 .dsize = pin_array_list_memsize,
4719 .dcompact = pin_array_list_update_references,
4720 },
4721 .flags = RUBY_TYPED_FREE_IMMEDIATELY | RUBY_TYPED_WB_PROTECTED | RUBY_TYPED_EMBEDDABLE,
4722};
4723
4724static VALUE
4725pin_array_list_new(VALUE next)
4726{
4727 struct pin_array_list *array_list;
4728 VALUE obj = TypedData_Make_Struct(0, struct pin_array_list, &pin_array_list_type, array_list);
4729 RB_OBJ_WRITE(obj, &array_list->next, next);
4730 array_list->array = ALLOC_N(VALUE, MARK_OBJECT_ARY_BUCKET_SIZE);
4731 return obj;
4732}
4733
4734static VALUE
4735pin_array_list_append(VALUE obj, VALUE item)
4736{
4737 struct pin_array_list *array_list;
4738 TypedData_Get_Struct(obj, struct pin_array_list, &pin_array_list_type, array_list);
4739
4740 if (array_list->len >= MARK_OBJECT_ARY_BUCKET_SIZE) {
4741 obj = pin_array_list_new(obj);
4742 TypedData_Get_Struct(obj, struct pin_array_list, &pin_array_list_type, array_list);
4743 }
4744
4745 RB_OBJ_WRITE(obj, &array_list->array[array_list->len], item);
4746 array_list->len++;
4747 return obj;
4748}
4749
4750void
4751rb_vm_register_global_object(VALUE obj)
4752{
4754 if (RB_SPECIAL_CONST_P(obj)) {
4755 return;
4756 }
4757
4758 switch (RB_BUILTIN_TYPE(obj)) {
4759 case T_CLASS:
4760 case T_MODULE:
4761 if (FL_TEST(obj, RCLASS_IS_ROOT)) {
4762 return;
4763 }
4764 FL_SET(obj, RCLASS_IS_ROOT);
4765 break;
4766 default:
4767 break;
4768 }
4769 RB_VM_LOCKING() {
4770 VALUE list = GET_VM()->mark_object_ary;
4771 VALUE head = pin_array_list_append(list, obj);
4772 if (head != list) {
4773 GET_VM()->mark_object_ary = head;
4774 }
4775 RB_GC_GUARD(obj);
4776 }
4777}
4778
4779VALUE rb_cc_refinement_set_create(void);
4780
4781void
4782Init_vm_objects(void)
4783{
4784 rb_vm_t *vm = GET_VM();
4785
4786 /* initialize mark object array, hash */
4787 vm->mark_object_ary = pin_array_list_new(Qnil);
4788 st_init_existing_table_with_size(&vm->ci_table, &vm_ci_hashtype, 0);
4789 vm->cc_refinement_set = rb_cc_refinement_set_create();
4790}
4791
4792// Whether JIT is enabled or not, we need to load/undef `#with_jit` for other builtins.
4793#include "jit_hook.rbinc"
4794#include "jit_undef.rbinc"
4795
4796// Stub for builtin function when not building YJIT units
4797#if !USE_YJIT
4798void Init_builtin_yjit(void) {}
4799#endif
4800
4801// Stub for builtin function when not building ZJIT units
4802#if !USE_ZJIT
4803void Init_builtin_zjit(void) {}
4804#endif
4805
4806/* top self */
4807
4808static VALUE
4809main_to_s(VALUE obj)
4810{
4811 return rb_str_new2("main");
4812}
4813
4814VALUE
4815rb_vm_top_self(void)
4816{
4817 const rb_box_t *box = rb_current_box();
4818 VM_ASSERT(box);
4819 VM_ASSERT(box->top_self);
4820 return box->top_self;
4821}
4822
4823void
4824Init_top_self(void)
4825{
4826 rb_vm_t *vm = GET_VM();
4827 vm->root_box = (rb_box_t *)rb_root_box();
4828 vm->root_box->top_self = rb_obj_alloc(rb_cObject);
4829 rb_define_singleton_method(vm->root_box->top_self, "to_s", main_to_s, 0);
4830 rb_define_alias(rb_singleton_class(vm->root_box->top_self), "inspect", "to_s");
4831}
4832
4833VALUE *
4835{
4836 rb_ractor_t *cr = GET_RACTOR();
4837 return &cr->verbose;
4838}
4839
4840VALUE *
4842{
4843 rb_ractor_t *cr = GET_RACTOR();
4844 return &cr->debug;
4845}
4846
4847bool rb_free_at_exit = false;
4848
4849bool
4850ruby_free_at_exit_p(void)
4851{
4852 return rb_free_at_exit;
4853}
4854
4855/* iseq.c */
4856VALUE rb_insn_operand_intern(const rb_iseq_t *iseq,
4857 VALUE insn, int op_no, VALUE op,
4858 int len, size_t pos, VALUE *pnop, VALUE child);
4859
4860#if VM_COLLECT_USAGE_DETAILS
4861
4862#define HASH_ASET(h, k, v) rb_hash_aset((h), (st_data_t)(k), (st_data_t)(v))
4863
4864/* uh = {
4865 * insn(Fixnum) => ihash(Hash)
4866 * }
4867 * ihash = {
4868 * -1(Fixnum) => count, # insn usage
4869 * 0(Fixnum) => ophash, # operand usage
4870 * }
4871 * ophash = {
4872 * val(interned string) => count(Fixnum)
4873 * }
4874 */
4875static void
4876vm_analysis_insn(int insn)
4877{
4878 ID usage_hash;
4879 ID bigram_hash;
4880 static int prev_insn = -1;
4881
4882 VALUE uh;
4883 VALUE ihash;
4884 VALUE cv;
4885
4886 CONST_ID(usage_hash, "USAGE_ANALYSIS_INSN");
4887 CONST_ID(bigram_hash, "USAGE_ANALYSIS_INSN_BIGRAM");
4888 uh = rb_const_get(rb_cRubyVM, usage_hash);
4889 if (NIL_P(ihash = rb_hash_aref(uh, INT2FIX(insn)))) {
4890 ihash = rb_hash_new();
4891 HASH_ASET(uh, INT2FIX(insn), ihash);
4892 }
4893 if (NIL_P(cv = rb_hash_aref(ihash, INT2FIX(-1)))) {
4894 cv = INT2FIX(0);
4895 }
4896 HASH_ASET(ihash, INT2FIX(-1), INT2FIX(FIX2INT(cv) + 1));
4897
4898 /* calc bigram */
4899 if (prev_insn != -1) {
4900 VALUE bi;
4901 VALUE ary[2];
4902 VALUE cv;
4903
4904 ary[0] = INT2FIX(prev_insn);
4905 ary[1] = INT2FIX(insn);
4906 bi = rb_ary_new4(2, &ary[0]);
4907
4908 uh = rb_const_get(rb_cRubyVM, bigram_hash);
4909 if (NIL_P(cv = rb_hash_aref(uh, bi))) {
4910 cv = INT2FIX(0);
4911 }
4912 HASH_ASET(uh, bi, INT2FIX(FIX2INT(cv) + 1));
4913 }
4914 prev_insn = insn;
4915}
4916
4917static void
4918vm_analysis_operand(int insn, int n, VALUE op)
4919{
4920 ID usage_hash;
4921
4922 VALUE uh;
4923 VALUE ihash;
4924 VALUE ophash;
4925 VALUE valstr;
4926 VALUE cv;
4927
4928 CONST_ID(usage_hash, "USAGE_ANALYSIS_INSN");
4929
4930 uh = rb_const_get(rb_cRubyVM, usage_hash);
4931 if (NIL_P(ihash = rb_hash_aref(uh, INT2FIX(insn)))) {
4932 ihash = rb_hash_new();
4933 HASH_ASET(uh, INT2FIX(insn), ihash);
4934 }
4935 if (NIL_P(ophash = rb_hash_aref(ihash, INT2FIX(n)))) {
4936 ophash = rb_hash_new();
4937 HASH_ASET(ihash, INT2FIX(n), ophash);
4938 }
4939 /* intern */
4940 valstr = rb_insn_operand_intern(CFP_ISEQ(GET_EC()->cfp), insn, n, op, 0, 0, 0, 0);
4941
4942 /* set count */
4943 if (NIL_P(cv = rb_hash_aref(ophash, valstr))) {
4944 cv = INT2FIX(0);
4945 }
4946 HASH_ASET(ophash, valstr, INT2FIX(FIX2INT(cv) + 1));
4947}
4948
4949static void
4950vm_analysis_register(int reg, int isset)
4951{
4952 ID usage_hash;
4953 VALUE uh;
4954 VALUE valstr;
4955 static const char regstrs[][5] = {
4956 "pc", /* 0 */
4957 "sp", /* 1 */
4958 "ep", /* 2 */
4959 "cfp", /* 3 */
4960 "self", /* 4 */
4961 "iseq", /* 5 */
4962 };
4963 static const char getsetstr[][4] = {
4964 "get",
4965 "set",
4966 };
4967 static VALUE syms[sizeof(regstrs) / sizeof(regstrs[0])][2];
4968
4969 VALUE cv;
4970
4971 CONST_ID(usage_hash, "USAGE_ANALYSIS_REGS");
4972 if (syms[0] == 0) {
4973 char buff[0x10];
4974 int i;
4975
4976 for (i = 0; i < (int)(sizeof(regstrs) / sizeof(regstrs[0])); i++) {
4977 int j;
4978 for (j = 0; j < 2; j++) {
4979 snprintf(buff, 0x10, "%d %s %-4s", i, getsetstr[j], regstrs[i]);
4980 syms[i][j] = ID2SYM(rb_intern(buff));
4981 }
4982 }
4983 }
4984 valstr = syms[reg][isset];
4985
4986 uh = rb_const_get(rb_cRubyVM, usage_hash);
4987 if (NIL_P(cv = rb_hash_aref(uh, valstr))) {
4988 cv = INT2FIX(0);
4989 }
4990 HASH_ASET(uh, valstr, INT2FIX(FIX2INT(cv) + 1));
4991}
4992
4993#undef HASH_ASET
4994
4995static void (*ruby_vm_collect_usage_func_insn)(int insn) = NULL;
4996static void (*ruby_vm_collect_usage_func_operand)(int insn, int n, VALUE op) = NULL;
4997static void (*ruby_vm_collect_usage_func_register)(int reg, int isset) = NULL;
4998
4999/* :nodoc: */
5000static VALUE
5001usage_analysis_insn_start(VALUE self)
5002{
5003 ruby_vm_collect_usage_func_insn = vm_analysis_insn;
5004 return Qnil;
5005}
5006
5007/* :nodoc: */
5008static VALUE
5009usage_analysis_operand_start(VALUE self)
5010{
5011 ruby_vm_collect_usage_func_operand = vm_analysis_operand;
5012 return Qnil;
5013}
5014
5015/* :nodoc: */
5016static VALUE
5017usage_analysis_register_start(VALUE self)
5018{
5019 ruby_vm_collect_usage_func_register = vm_analysis_register;
5020 return Qnil;
5021}
5022
5023/* :nodoc: */
5024static VALUE
5025usage_analysis_insn_stop(VALUE self)
5026{
5027 ruby_vm_collect_usage_func_insn = 0;
5028 return Qnil;
5029}
5030
5031/* :nodoc: */
5032static VALUE
5033usage_analysis_operand_stop(VALUE self)
5034{
5035 ruby_vm_collect_usage_func_operand = 0;
5036 return Qnil;
5037}
5038
5039/* :nodoc: */
5040static VALUE
5041usage_analysis_register_stop(VALUE self)
5042{
5043 ruby_vm_collect_usage_func_register = 0;
5044 return Qnil;
5045}
5046
5047/* :nodoc: */
5048static VALUE
5049usage_analysis_insn_running(VALUE self)
5050{
5051 return RBOOL(ruby_vm_collect_usage_func_insn != 0);
5052}
5053
5054/* :nodoc: */
5055static VALUE
5056usage_analysis_operand_running(VALUE self)
5057{
5058 return RBOOL(ruby_vm_collect_usage_func_operand != 0);
5059}
5060
5061/* :nodoc: */
5062static VALUE
5063usage_analysis_register_running(VALUE self)
5064{
5065 return RBOOL(ruby_vm_collect_usage_func_register != 0);
5066}
5067
5068static VALUE
5069usage_analysis_clear(VALUE self, ID usage_hash)
5070{
5071 VALUE uh;
5072 uh = rb_const_get(self, usage_hash);
5073 rb_hash_clear(uh);
5074
5075 return Qtrue;
5076}
5077
5078
5079/* :nodoc: */
5080static VALUE
5081usage_analysis_insn_clear(VALUE self)
5082{
5083 ID usage_hash;
5084 ID bigram_hash;
5085
5086 CONST_ID(usage_hash, "USAGE_ANALYSIS_INSN");
5087 CONST_ID(bigram_hash, "USAGE_ANALYSIS_INSN_BIGRAM");
5088 usage_analysis_clear(rb_cRubyVM, usage_hash);
5089 return usage_analysis_clear(rb_cRubyVM, bigram_hash);
5090}
5091
5092/* :nodoc: */
5093static VALUE
5094usage_analysis_operand_clear(VALUE self)
5095{
5096 ID usage_hash;
5097
5098 CONST_ID(usage_hash, "USAGE_ANALYSIS_INSN");
5099 return usage_analysis_clear(self, usage_hash);
5100}
5101
5102/* :nodoc: */
5103static VALUE
5104usage_analysis_register_clear(VALUE self)
5105{
5106 ID usage_hash;
5107
5108 CONST_ID(usage_hash, "USAGE_ANALYSIS_REGS");
5109 return usage_analysis_clear(self, usage_hash);
5110}
5111
5112#else
5113
5114MAYBE_UNUSED(static void (*ruby_vm_collect_usage_func_insn)(int insn)) = 0;
5115MAYBE_UNUSED(static void (*ruby_vm_collect_usage_func_operand)(int insn, int n, VALUE op)) = 0;
5116MAYBE_UNUSED(static void (*ruby_vm_collect_usage_func_register)(int reg, int isset)) = 0;
5117
5118#endif
5119
5120#if VM_COLLECT_USAGE_DETAILS
5121/* @param insn instruction number */
5122static void
5123vm_collect_usage_insn(int insn)
5124{
5125 if (RUBY_DTRACE_INSN_ENABLED()) {
5126 RUBY_DTRACE_INSN(rb_insns_name(insn));
5127 }
5128 if (ruby_vm_collect_usage_func_insn)
5129 (*ruby_vm_collect_usage_func_insn)(insn);
5130}
5131
5132/* @param insn instruction number
5133 * @param n n-th operand
5134 * @param op operand value
5135 */
5136static void
5137vm_collect_usage_operand(int insn, int n, VALUE op)
5138{
5139 if (RUBY_DTRACE_INSN_OPERAND_ENABLED()) {
5140 VALUE valstr;
5141
5142 valstr = rb_insn_operand_intern(CFP_ISEQ(GET_EC()->cfp), insn, n, op, 0, 0, 0, 0);
5143
5144 RUBY_DTRACE_INSN_OPERAND(RSTRING_PTR(valstr), rb_insns_name(insn));
5145 RB_GC_GUARD(valstr);
5146 }
5147 if (ruby_vm_collect_usage_func_operand)
5148 (*ruby_vm_collect_usage_func_operand)(insn, n, op);
5149}
5150
5151/* @param reg register id. see code of vm_analysis_register() */
5152/* @param isset 0: read, 1: write */
5153static void
5154vm_collect_usage_register(int reg, int isset)
5155{
5156 if (ruby_vm_collect_usage_func_register)
5157 (*ruby_vm_collect_usage_func_register)(reg, isset);
5158}
5159#endif
5160
5161const struct rb_callcache *
5162rb_vm_empty_cc(void)
5163{
5164 return &vm_empty_cc;
5165}
5166
5167const struct rb_callcache *
5168rb_vm_empty_cc_for_super(void)
5169{
5170 return &vm_empty_cc_for_super;
5171}
5172
5173#include "vm_call_iseq_optimized.inc" /* required from vm_insnhelper.c */
#define RUBY_ASSERT_MESG(expr,...)
Asserts that the expression is truthy.
Definition assert.h:186
#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_ATOMIC_FETCH_ADD(var, val)
Atomically replaces the value pointed by var with the result of addition of val to the old value of v...
Definition atomic.h:118
#define rb_define_method(klass, mid, func, arity)
Defines klass#mid.
#define rb_define_method_id(klass, mid, func, arity)
Defines klass#mid.
#define rb_define_singleton_method(klass, mid, func, arity)
Defines klass.mid.
#define RUBY_EVENT_END
Encountered an end of a class clause.
Definition event.h:40
#define RUBY_EVENT_B_RETURN
Encountered a next statement.
Definition event.h:56
#define RUBY_EVENT_RETURN
Encountered a return statement.
Definition event.h:42
#define RUBY_EVENT_C_RETURN
Return from a method, written in C.
Definition event.h:44
uint32_t rb_event_flag_t
Represents event(s).
Definition event.h:108
VALUE rb_define_class(const char *name, VALUE super)
Defines a top-level class.
Definition class.c:1396
VALUE rb_class_new(VALUE super)
Creates a new, anonymous class.
Definition class.c:781
VALUE rb_singleton_class(VALUE obj)
Finds or creates the singleton class of the passed object.
Definition class.c:2728
void rb_define_alias(VALUE klass, const char *name1, const char *name2)
Defines an alias of a method.
Definition class.c:2771
void rb_undef_method(VALUE klass, const char *name)
Defines an undef of a method.
Definition class.c:2581
#define rb_str_new2
Old name of rb_str_new_cstr.
Definition string.h:1676
#define NUM2ULONG
Old name of RB_NUM2ULONG.
Definition long.h:52
#define ALLOCV
Old name of RB_ALLOCV.
Definition memory.h:404
#define ALLOC
Old name of RB_ALLOC.
Definition memory.h:400
#define xfree
Old name of ruby_xfree.
Definition xmalloc.h:58
#define Qundef
Old name of RUBY_Qundef.
#define INT2FIX
Old name of RB_INT2FIX.
Definition long.h:48
#define T_IMEMO
Old name of RUBY_T_IMEMO.
Definition value_type.h:67
#define ID2SYM
Old name of RB_ID2SYM.
Definition symbol.h:44
#define OBJ_FREEZE
Old name of RB_OBJ_FREEZE.
Definition fl_type.h:131
#define ULONG2NUM
Old name of RB_ULONG2NUM.
Definition long.h:60
#define UNREACHABLE_RETURN
Old name of RBIMPL_UNREACHABLE_RETURN.
Definition assume.h:29
#define SYM2ID
Old name of RB_SYM2ID.
Definition symbol.h:45
#define ZALLOC
Old name of RB_ZALLOC.
Definition memory.h:402
#define CLASS_OF
Old name of rb_class_of.
Definition globals.h:205
#define rb_ary_new4
Old name of rb_ary_new_from_values.
Definition array.h:659
#define SIZET2NUM
Old name of RB_SIZE2NUM.
Definition size_t.h:62
#define rb_exc_new2
Old name of rb_exc_new_cstr.
Definition error.h:37
#define FIX2INT
Old name of RB_FIX2INT.
Definition int.h:41
#define T_MODULE
Old name of RUBY_T_MODULE.
Definition value_type.h:70
#define ZALLOC_N
Old name of RB_ZALLOC_N.
Definition memory.h:401
#define ASSUME
Old name of RBIMPL_ASSUME.
Definition assume.h:27
#define T_ICLASS
Old name of RUBY_T_ICLASS.
Definition value_type.h:66
#define T_HASH
Old name of RUBY_T_HASH.
Definition value_type.h:65
#define ALLOC_N
Old name of RB_ALLOC_N.
Definition memory.h:399
#define FL_SET
Old name of RB_FL_SET.
Definition fl_type.h:125
#define rb_exc_new3
Old name of rb_exc_new_str.
Definition error.h:38
#define ULL2NUM
Old name of RB_ULL2NUM.
Definition long_long.h:31
#define Qtrue
Old name of RUBY_Qtrue.
#define Qnil
Old name of RUBY_Qnil.
#define Qfalse
Old name of RUBY_Qfalse.
#define NIL_P
Old name of RB_NIL_P.
#define NUM2ULL
Old name of RB_NUM2ULL.
Definition long_long.h:35
#define T_CLASS
Old name of RUBY_T_CLASS.
Definition value_type.h:58
#define BUILTIN_TYPE
Old name of RB_BUILTIN_TYPE.
Definition value_type.h:85
#define FL_TEST
Old name of RB_FL_TEST.
Definition fl_type.h:127
#define FIXNUM_P
Old name of RB_FIXNUM_P.
#define FL_USHIFT
Old name of RUBY_FL_USHIFT.
Definition fl_type.h:67
#define CONST_ID
Old name of RUBY_CONST_ID.
Definition symbol.h:47
#define ALLOCV_END
Old name of RB_ALLOCV_END.
Definition memory.h:406
#define SYMBOL_P
Old name of RB_SYMBOL_P.
Definition value_type.h:88
void ruby_init_stack(void *addr)
Set stack bottom of Ruby implementation.
Definition vm.c:4663
VALUE rb_eLocalJumpError
LocalJumpError exception.
Definition eval.c:49
void rb_category_warn(rb_warning_category_t category, const char *fmt,...)
Identical to rb_category_warning(), except it reports unless $VERBOSE is nil.
Definition error.c:477
void rb_exc_raise(VALUE mesg)
Raises an exception in the current thread.
Definition eval.c:661
void rb_iter_break(void)
Breaks from a block.
Definition vm.c:2287
VALUE rb_eTypeError
TypeError exception.
Definition error.c:1427
void rb_iter_break_value(VALUE val)
Identical to rb_iter_break(), except it additionally takes the "value" of this breakage.
Definition vm.c:2293
VALUE rb_eRuntimeError
RuntimeError exception.
Definition error.c:1425
VALUE * rb_ruby_verbose_ptr(void)
This is an implementation detail of ruby_verbose.
Definition vm.c:4834
VALUE rb_exc_new_str(VALUE etype, VALUE str)
Identical to rb_exc_new_cstr(), except it takes a Ruby's string instead of C's.
Definition error.c:1478
VALUE * rb_ruby_debug_ptr(void)
This is an implementation detail of ruby_debug.
Definition vm.c:4841
VALUE rb_eSysStackError
SystemStackError exception.
Definition eval.c:50
@ RB_WARN_CATEGORY_PERFORMANCE
Warning is for performance issues (not enabled by -w).
Definition error.h:54
VALUE rb_cTime
Time class.
Definition time.c:679
VALUE rb_cArray
Array class.
VALUE rb_cObject
Object class.
Definition object.c:61
VALUE rb_obj_alloc(VALUE klass)
Allocates an instance of the given class.
Definition object.c:2255
VALUE rb_cInteger
Module class.
Definition numeric.c:199
VALUE rb_cNilClass
NilClass class.
Definition object.c:66
VALUE rb_cBinding
Binding class.
Definition proc.c:44
VALUE rb_cRegexp
Regexp class.
Definition re.c:2724
VALUE rb_cHash
Hash class.
Definition hash.c:109
VALUE rb_cFalseClass
FalseClass class.
Definition object.c:68
VALUE rb_obj_class(VALUE obj)
Queries the class of an object.
Definition object.c:235
VALUE rb_cSymbol
Symbol class.
Definition string.c:82
VALUE rb_cBasicObject
BasicObject class.
Definition object.c:59
VALUE rb_cThread
Thread class.
Definition vm.c:677
VALUE rb_obj_freeze(VALUE obj)
Just calls rb_obj_freeze_inline() inside.
Definition object.c:1313
VALUE rb_cFloat
Float class.
Definition numeric.c:198
VALUE rb_cProc
Proc class.
Definition proc.c:45
VALUE rb_cTrueClass
TrueClass class.
Definition object.c:67
VALUE rb_cString
String class.
Definition string.c:81
#define RB_OBJ_WRITTEN(old, oldv, young)
Identical to RB_OBJ_WRITE(), except it doesn't write any values, but only a WB declaration.
Definition gc.h:468
#define RB_OBJ_WRITE(old, slot, young)
Declaration of a "back" pointer.
Definition gc.h:456
Defines RBIMPL_HAS_BUILTIN.
VALUE rb_ary_delete_at(VALUE ary, long pos)
Destructively removes an element which resides at the specific index of the passed array.
VALUE rb_ary_new(void)
Allocates a new, empty array.
VALUE rb_ary_push(VALUE ary, VALUE elem)
Special case of rb_ary_cat() that it adds only one element.
void rb_undef(VALUE mod, ID mid)
Inserts a method entry that hides previous method definition of the given name.
Definition vm_method.c:2397
static int rb_check_arity(int argc, int min, int max)
Ensures that the passed integer is in the passed range.
Definition error.h:284
VALUE rb_backref_get(void)
Queries the last match, or Regexp.last_match, or the $~.
Definition vm.c:2037
void rb_lastline_set(VALUE str)
Updates $_.
Definition vm.c:2055
VALUE rb_lastline_get(void)
Queries the last line, or the $_.
Definition vm.c:2049
void rb_backref_set(VALUE md)
Updates $~.
Definition vm.c:2043
VALUE rb_block_proc(void)
Constructs a Proc object from implicitly passed components.
Definition proc.c:988
VALUE rb_block_lambda(void)
Identical to rb_proc_new(), except it returns a lambda.
Definition proc.c:1007
VALUE rb_binding_new(void)
Snapshots the current execution context and turn it into an instance of rb_cBinding.
Definition proc.c:331
VALUE rb_str_append(VALUE dst, VALUE src)
Identical to rb_str_buf_append(), except it converts the right hand side before concatenating.
Definition string.c:3836
VALUE rb_str_new_frozen(VALUE str)
Creates a frozen copy of the string, if necessary.
Definition string.c:1520
#define rb_str_cat_cstr(buf, str)
Identical to rb_str_cat(), except it assumes the passed pointer is a pointer to a C string.
Definition string.h:1657
VALUE rb_const_get(VALUE space, ID name)
Identical to rb_const_defined(), except it returns the actual defined value.
Definition variable.c:3536
void rb_set_class_path(VALUE klass, VALUE space, const char *name)
Names a class.
Definition variable.c:441
VALUE rb_class_path_cached(VALUE mod)
Just another name of rb_mod_name.
Definition variable.c:389
void rb_alias_variable(ID dst, ID src)
Aliases a global variable.
Definition variable.c:1166
VALUE rb_class_path(VALUE mod)
Identical to rb_mod_name(), except it returns #<Class: ...> style inspection for anonymous modules.
Definition variable.c:380
void rb_undef_alloc_func(VALUE klass)
Deletes the allocator function of a class.
Definition vm_method.c:1742
const char * rb_sourcefile(void)
Resembles __FILE__.
Definition vm.c:2074
void rb_alias(VALUE klass, ID dst, ID src)
Resembles alias.
Definition vm_method.c:2780
int rb_frame_method_id_and_class(ID *idp, VALUE *klassp)
Resembles __method__.
Definition vm.c:3128
int rb_sourceline(void)
Resembles __LINE__.
Definition vm.c:2088
VALUE rb_sym2str(VALUE symbol)
Obtain a frozen string representation of a symbol (not including the leading colon).
Definition symbol.c:1024
void rb_define_global_const(const char *name, VALUE val)
Identical to rb_define_const(), except it defines that of "global", i.e.
Definition variable.c:4125
VALUE rb_iv_set(VALUE obj, const char *name, VALUE val)
Assigns to an instance variable.
Definition variable.c:4599
int len
Length of the buffer.
Definition io.h:8
VALUE rb_ractor_make_shareable_copy(VALUE obj)
Identical to rb_ractor_make_shareable(), except it returns a (deep) copy of the passed one instead of...
Definition ractor.c:1561
static bool rb_ractor_shareable_p(VALUE obj)
Queries if multiple Ractors can share the passed object or not.
Definition ractor.h:249
#define RB_OBJ_SHAREABLE_P(obj)
Queries if the passed object has previously classified as shareable or not.
Definition ractor.h:235
VALUE rb_ractor_make_shareable(VALUE obj)
Destructively transforms the passed object so that multiple Ractors can share it.
Definition ractor.c:1552
void ruby_vm_at_exit(void(*func)(ruby_vm_t *))
ruby_vm_at_exit registers a function func to be invoked when a VM passed away.
Definition vm.c:1013
int ruby_vm_destruct(ruby_vm_t *vm)
Destructs the passed VM.
Definition vm.c:3406
VALUE rb_f_sprintf(int argc, const VALUE *argv)
Identical to rb_str_format(), except how the arguments are arranged.
Definition sprintf.c:209
#define MEMCPY(p1, p2, type, n)
Handy macro to call memcpy.
Definition memory.h:372
#define MEMZERO(p, type, n)
Handy macro to erase a region of memory.
Definition memory.h:360
#define RB_GC_GUARD(v)
Prevents premature destruction of local objects.
Definition memory.h:167
VALUE type(ANYARGS)
ANYARGS-ed function type.
void rb_hash_foreach(VALUE q, int_type *w, VALUE e)
Iteration over the given hash.
#define RARRAY_LEN
Just another name of rb_array_len.
Definition rarray.h:51
static int RARRAY_LENINT(VALUE ary)
Identical to rb_array_len(), except it differs for the return type.
Definition rarray.h:281
#define RARRAY_AREF(a, i)
Definition rarray.h:403
static VALUE RBASIC_CLASS(VALUE obj)
Queries the class of an object.
Definition rbasic.h:166
#define RBASIC(obj)
Convenient casting macro.
Definition rbasic.h:40
#define RHASH_EMPTY_P(h)
Checks if the hash is empty.
Definition rhash.h:79
#define StringValuePtr(v)
Identical to StringValue, except it returns a char*.
Definition rstring.h:76
#define RTYPEDDATA_DATA(v)
Convenient getter macro.
Definition rtypeddata.h:106
#define RUBY_TYPED_FREE_IMMEDIATELY
Macros to see if each corresponding flag is defined.
Definition rtypeddata.h:122
#define TypedData_Get_Struct(obj, type, data_type, sval)
Obtains a C struct from inside of a wrapper Ruby object.
Definition rtypeddata.h:769
#define TypedData_Wrap_Struct(klass, data_type, sval)
Converts sval, a pointer to your struct, into a Ruby object.
Definition rtypeddata.h:531
#define TypedData_Make_Struct(klass, type, data_type, sval)
Identical to TypedData_Wrap_Struct, except it allocates a new data region internally instead of takin...
Definition rtypeddata.h:578
const char * rb_class2name(VALUE klass)
Queries the name of the passed class.
Definition variable.c:506
#define RB_NO_KEYWORDS
Do not pass keywords.
Definition scan_args.h:69
static bool RB_SPECIAL_CONST_P(VALUE obj)
Checks if the given object is of enum ruby_special_consts.
#define RTEST
This is an old name of RB_TEST.
#define _(args)
This was a transition path from K&R to ANSI.
Definition stdarg.h:35
Definition proc.c:30
Definition iseq.h:289
Internal header for Ruby Box.
Definition box.h:14
Definition method.h:63
CREF (Class REFerence)
Definition method.h:45
This is the struct that holds necessary info for a struct.
Definition rtypeddata.h:229
const char * wrap_struct_name
Name of structs of this kind.
Definition rtypeddata.h:236
Definition method.h:55
Definition st.h:79
IFUNC (Internal FUNCtion)
Definition imemo.h:86
SVAR (Special VARiable)
Definition imemo.h:51
const VALUE cref_or_me
class reference or rb_method_entry_t
Definition imemo.h:53
THROW_DATA.
Definition imemo.h:60
void rb_native_cond_initialize(rb_nativethread_cond_t *cond)
Fills the passed condition variable with an initial value.
void rb_native_mutex_initialize(rb_nativethread_lock_t *lock)
Just another name of rb_nativethread_lock_initialize.
void rb_native_mutex_destroy(rb_nativethread_lock_t *lock)
Just another name of rb_nativethread_lock_destroy.
uintptr_t ID
Type that represents a Ruby identifier such as a variable name.
Definition value.h:52
uintptr_t VALUE
Type that represents a Ruby object.
Definition value.h:40
static enum ruby_value_type RB_BUILTIN_TYPE(VALUE obj)
Queries the type of the object.
Definition value_type.h:182
static void Check_Type(VALUE v, enum ruby_value_type t)
Identical to RB_TYPE_P(), except it raises exceptions on predication failure.
Definition value_type.h:433
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
ruby_value_type
C-level type of an object.
Definition value_type.h:113