1 /*
2 * Copyright (c) 1997, 2020, Oracle and/or its affiliates. All rights reserved.
3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
4 *
5 * This code is free software; you can redistribute it and/or modify it
6 * under the terms of the GNU General Public License version 2 only, as
7 * published by the Free Software Foundation.
8 *
9 * This code is distributed in the hope that it will be useful, but WITHOUT
10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
12 * version 2 for more details (a copy is included in the LICENSE file that
13 * accompanied this code).
14 *
15 * You should have received a copy of the GNU General Public License version
16 * 2 along with this work; if not, write to the Free Software Foundation,
17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
18 *
19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
20 * or visit www.oracle.com if you need additional information or have any
21 * questions.
22 *
23 */
24
25 #include "precompiled.hpp"
26 #include "classfile/classLoaderDataGraph.hpp"
27 #include "classfile/metadataOnStackMark.hpp"
28 #include "classfile/symbolTable.hpp"
29 #include "classfile/systemDictionary.hpp"
30 #include "code/codeCache.hpp"
31 #include "code/debugInfoRec.hpp"
32 #include "compiler/compilationPolicy.hpp"
33 #include "gc/shared/collectedHeap.inline.hpp"
34 #include "interpreter/bytecodeStream.hpp"
35 #include "interpreter/bytecodeTracer.hpp"
36 #include "interpreter/bytecodes.hpp"
37 #include "interpreter/interpreter.hpp"
38 #include "interpreter/oopMapCache.hpp"
39 #include "logging/log.hpp"
40 #include "logging/logTag.hpp"
41 #include "logging/logStream.hpp"
42 #include "memory/allocation.inline.hpp"
43 #include "memory/metadataFactory.hpp"
44 #include "memory/metaspaceClosure.hpp"
45 #include "memory/metaspaceShared.hpp"
46 #include "memory/oopFactory.hpp"
47 #include "memory/resourceArea.hpp"
48 #include "memory/universe.hpp"
49 #include "oops/constMethod.hpp"
50 #include "oops/constantPool.hpp"
51 #include "oops/method.inline.hpp"
52 #include "oops/methodData.hpp"
53 #include "oops/objArrayKlass.hpp"
54 #include "oops/objArrayOop.inline.hpp"
55 #include "oops/oop.inline.hpp"
56 #include "oops/symbol.hpp"
57 #include "prims/jvmtiExport.hpp"
58 #include "prims/methodHandles.hpp"
59 #include "prims/nativeLookup.hpp"
60 #include "runtime/arguments.hpp"
61 #include "runtime/atomic.hpp"
62 #include "runtime/frame.inline.hpp"
63 #include "runtime/handles.inline.hpp"
64 #include "runtime/init.hpp"
65 #include "runtime/orderAccess.hpp"
66 #include "runtime/relocator.hpp"
67 #include "runtime/safepointVerifiers.hpp"
68 #include "runtime/sharedRuntime.hpp"
69 #include "runtime/signature.hpp"
70 #include "utilities/align.hpp"
71 #include "utilities/quickSort.hpp"
72 #include "utilities/vmError.hpp"
73 #include "utilities/xmlstream.hpp"
74
75 // Implementation of Method
76
allocate(ClassLoaderData * loader_data,int byte_code_size,AccessFlags access_flags,InlineTableSizes * sizes,ConstMethod::MethodType method_type,TRAPS)77 Method* Method::allocate(ClassLoaderData* loader_data,
78 int byte_code_size,
79 AccessFlags access_flags,
80 InlineTableSizes* sizes,
81 ConstMethod::MethodType method_type,
82 TRAPS) {
83 assert(!access_flags.is_native() || byte_code_size == 0,
84 "native methods should not contain byte codes");
85 ConstMethod* cm = ConstMethod::allocate(loader_data,
86 byte_code_size,
87 sizes,
88 method_type,
89 CHECK_NULL);
90 int size = Method::size(access_flags.is_native());
91 return new (loader_data, size, MetaspaceObj::MethodType, THREAD) Method(cm, access_flags);
92 }
93
Method(ConstMethod * xconst,AccessFlags access_flags)94 Method::Method(ConstMethod* xconst, AccessFlags access_flags) {
95 NoSafepointVerifier no_safepoint;
96 set_constMethod(xconst);
97 set_access_flags(access_flags);
98 set_intrinsic_id(vmIntrinsics::_none);
99 set_force_inline(false);
100 set_hidden(false);
101 set_dont_inline(false);
102 set_has_injected_profile(false);
103 set_method_data(NULL);
104 clear_method_counters();
105 set_vtable_index(Method::garbage_vtable_index);
106
107 // Fix and bury in Method*
108 set_interpreter_entry(NULL); // sets i2i entry and from_int
109 set_adapter_entry(NULL);
110 Method::clear_code(); // from_c/from_i get set to c2i/i2i
111
112 if (access_flags.is_native()) {
113 clear_native_function();
114 set_signature_handler(NULL);
115 }
116
117 NOT_PRODUCT(set_compiled_invocation_count(0);)
118 }
119
120 // Release Method*. The nmethod will be gone when we get here because
121 // we've walked the code cache.
deallocate_contents(ClassLoaderData * loader_data)122 void Method::deallocate_contents(ClassLoaderData* loader_data) {
123 MetadataFactory::free_metadata(loader_data, constMethod());
124 set_constMethod(NULL);
125 MetadataFactory::free_metadata(loader_data, method_data());
126 set_method_data(NULL);
127 MetadataFactory::free_metadata(loader_data, method_counters());
128 clear_method_counters();
129 // The nmethod will be gone when we get here.
130 if (code() != NULL) _code = NULL;
131 }
132
release_C_heap_structures()133 void Method::release_C_heap_structures() {
134 if (method_data()) {
135 #if INCLUDE_JVMCI
136 FailedSpeculation::free_failed_speculations(method_data()->get_failed_speculations_address());
137 #endif
138 // Destroy MethodData
139 method_data()->~MethodData();
140 }
141 }
142
get_i2c_entry()143 address Method::get_i2c_entry() {
144 assert(adapter() != NULL, "must have");
145 return adapter()->get_i2c_entry();
146 }
147
get_c2i_entry()148 address Method::get_c2i_entry() {
149 assert(adapter() != NULL, "must have");
150 return adapter()->get_c2i_entry();
151 }
152
get_c2i_unverified_entry()153 address Method::get_c2i_unverified_entry() {
154 assert(adapter() != NULL, "must have");
155 return adapter()->get_c2i_unverified_entry();
156 }
157
get_c2i_no_clinit_check_entry()158 address Method::get_c2i_no_clinit_check_entry() {
159 assert(VM_Version::supports_fast_class_init_checks(), "");
160 assert(adapter() != NULL, "must have");
161 return adapter()->get_c2i_no_clinit_check_entry();
162 }
163
name_and_sig_as_C_string() const164 char* Method::name_and_sig_as_C_string() const {
165 return name_and_sig_as_C_string(constants()->pool_holder(), name(), signature());
166 }
167
name_and_sig_as_C_string(char * buf,int size) const168 char* Method::name_and_sig_as_C_string(char* buf, int size) const {
169 return name_and_sig_as_C_string(constants()->pool_holder(), name(), signature(), buf, size);
170 }
171
name_and_sig_as_C_string(Klass * klass,Symbol * method_name,Symbol * signature)172 char* Method::name_and_sig_as_C_string(Klass* klass, Symbol* method_name, Symbol* signature) {
173 const char* klass_name = klass->external_name();
174 int klass_name_len = (int)strlen(klass_name);
175 int method_name_len = method_name->utf8_length();
176 int len = klass_name_len + 1 + method_name_len + signature->utf8_length();
177 char* dest = NEW_RESOURCE_ARRAY(char, len + 1);
178 strcpy(dest, klass_name);
179 dest[klass_name_len] = '.';
180 strcpy(&dest[klass_name_len + 1], method_name->as_C_string());
181 strcpy(&dest[klass_name_len + 1 + method_name_len], signature->as_C_string());
182 dest[len] = 0;
183 return dest;
184 }
185
name_and_sig_as_C_string(Klass * klass,Symbol * method_name,Symbol * signature,char * buf,int size)186 char* Method::name_and_sig_as_C_string(Klass* klass, Symbol* method_name, Symbol* signature, char* buf, int size) {
187 Symbol* klass_name = klass->name();
188 klass_name->as_klass_external_name(buf, size);
189 int len = (int)strlen(buf);
190
191 if (len < size - 1) {
192 buf[len++] = '.';
193
194 method_name->as_C_string(&(buf[len]), size - len);
195 len = (int)strlen(buf);
196
197 signature->as_C_string(&(buf[len]), size - len);
198 }
199
200 return buf;
201 }
202
external_name() const203 const char* Method::external_name() const {
204 return external_name(constants()->pool_holder(), name(), signature());
205 }
206
print_external_name(outputStream * os) const207 void Method::print_external_name(outputStream *os) const {
208 print_external_name(os, constants()->pool_holder(), name(), signature());
209 }
210
external_name(Klass * klass,Symbol * method_name,Symbol * signature)211 const char* Method::external_name(Klass* klass, Symbol* method_name, Symbol* signature) {
212 stringStream ss;
213 print_external_name(&ss, klass, method_name, signature);
214 return ss.as_string();
215 }
216
print_external_name(outputStream * os,Klass * klass,Symbol * method_name,Symbol * signature)217 void Method::print_external_name(outputStream *os, Klass* klass, Symbol* method_name, Symbol* signature) {
218 signature->print_as_signature_external_return_type(os);
219 os->print(" %s.%s(", klass->external_name(), method_name->as_C_string());
220 signature->print_as_signature_external_parameters(os);
221 os->print(")");
222 }
223
fast_exception_handler_bci_for(const methodHandle & mh,Klass * ex_klass,int throw_bci,TRAPS)224 int Method::fast_exception_handler_bci_for(const methodHandle& mh, Klass* ex_klass, int throw_bci, TRAPS) {
225 // exception table holds quadruple entries of the form (beg_bci, end_bci, handler_bci, klass_index)
226 // access exception table
227 ExceptionTable table(mh());
228 int length = table.length();
229 // iterate through all entries sequentially
230 constantPoolHandle pool(THREAD, mh->constants());
231 for (int i = 0; i < length; i ++) {
232 //reacquire the table in case a GC happened
233 ExceptionTable table(mh());
234 int beg_bci = table.start_pc(i);
235 int end_bci = table.end_pc(i);
236 assert(beg_bci <= end_bci, "inconsistent exception table");
237 if (beg_bci <= throw_bci && throw_bci < end_bci) {
238 // exception handler bci range covers throw_bci => investigate further
239 int handler_bci = table.handler_pc(i);
240 int klass_index = table.catch_type_index(i);
241 if (klass_index == 0) {
242 return handler_bci;
243 } else if (ex_klass == NULL) {
244 return handler_bci;
245 } else {
246 // we know the exception class => get the constraint class
247 // this may require loading of the constraint class; if verification
248 // fails or some other exception occurs, return handler_bci
249 Klass* k = pool->klass_at(klass_index, CHECK_(handler_bci));
250 assert(k != NULL, "klass not loaded");
251 if (ex_klass->is_subtype_of(k)) {
252 return handler_bci;
253 }
254 }
255 }
256 }
257
258 return -1;
259 }
260
mask_for(int bci,InterpreterOopMap * mask)261 void Method::mask_for(int bci, InterpreterOopMap* mask) {
262 methodHandle h_this(Thread::current(), this);
263 // Only GC uses the OopMapCache during thread stack root scanning
264 // any other uses generate an oopmap but do not save it in the cache.
265 if (Universe::heap()->is_gc_active()) {
266 method_holder()->mask_for(h_this, bci, mask);
267 } else {
268 OopMapCache::compute_one_oop_map(h_this, bci, mask);
269 }
270 return;
271 }
272
273
bci_from(address bcp) const274 int Method::bci_from(address bcp) const {
275 if (is_native() && bcp == 0) {
276 return 0;
277 }
278 #ifdef ASSERT
279 {
280 ResourceMark rm;
281 assert(is_native() && bcp == code_base() || contains(bcp) || VMError::is_error_reported(),
282 "bcp doesn't belong to this method: bcp: " INTPTR_FORMAT ", method: %s",
283 p2i(bcp), name_and_sig_as_C_string());
284 }
285 #endif
286 return bcp - code_base();
287 }
288
289
validate_bci(int bci) const290 int Method::validate_bci(int bci) const {
291 return (bci == 0 || bci < code_size()) ? bci : -1;
292 }
293
294 // Return bci if it appears to be a valid bcp
295 // Return -1 otherwise.
296 // Used by profiling code, when invalid data is a possibility.
297 // The caller is responsible for validating the Method* itself.
validate_bci_from_bcp(address bcp) const298 int Method::validate_bci_from_bcp(address bcp) const {
299 // keep bci as -1 if not a valid bci
300 int bci = -1;
301 if (bcp == 0 || bcp == code_base()) {
302 // code_size() may return 0 and we allow 0 here
303 // the method may be native
304 bci = 0;
305 } else if (contains(bcp)) {
306 bci = bcp - code_base();
307 }
308 // Assert that if we have dodged any asserts, bci is negative.
309 assert(bci == -1 || bci == bci_from(bcp_from(bci)), "sane bci if >=0");
310 return bci;
311 }
312
bcp_from(int bci) const313 address Method::bcp_from(int bci) const {
314 assert((is_native() && bci == 0) || (!is_native() && 0 <= bci && bci < code_size()),
315 "illegal bci: %d for %s method", bci, is_native() ? "native" : "non-native");
316 address bcp = code_base() + bci;
317 assert(is_native() && bcp == code_base() || contains(bcp), "bcp doesn't belong to this method");
318 return bcp;
319 }
320
bcp_from(address bcp) const321 address Method::bcp_from(address bcp) const {
322 if (is_native() && bcp == NULL) {
323 return code_base();
324 } else {
325 return bcp;
326 }
327 }
328
size(bool is_native)329 int Method::size(bool is_native) {
330 // If native, then include pointers for native_function and signature_handler
331 int extra_bytes = (is_native) ? 2*sizeof(address*) : 0;
332 int extra_words = align_up(extra_bytes, BytesPerWord) / BytesPerWord;
333 return align_metadata_size(header_size() + extra_words);
334 }
335
klass_name() const336 Symbol* Method::klass_name() const {
337 return method_holder()->name();
338 }
339
metaspace_pointers_do(MetaspaceClosure * it)340 void Method::metaspace_pointers_do(MetaspaceClosure* it) {
341 log_trace(cds)("Iter(Method): %p", this);
342
343 it->push(&_constMethod);
344 it->push(&_method_data);
345 it->push(&_method_counters);
346
347 Method* this_ptr = this;
348 it->push_method_entry(&this_ptr, (intptr_t*)&_i2i_entry);
349 it->push_method_entry(&this_ptr, (intptr_t*)&_from_compiled_entry);
350 it->push_method_entry(&this_ptr, (intptr_t*)&_from_interpreted_entry);
351 }
352
353 // Attempt to return method oop to original state. Clear any pointers
354 // (to objects outside the shared spaces). We won't be able to predict
355 // where they should point in a new JVM. Further initialize some
356 // entries now in order allow them to be write protected later.
357
remove_unshareable_info()358 void Method::remove_unshareable_info() {
359 unlink_method();
360 JFR_ONLY(REMOVE_METHOD_ID(this);)
361 }
362
set_vtable_index(int index)363 void Method::set_vtable_index(int index) {
364 if (is_shared() && !MetaspaceShared::remapped_readwrite()) {
365 // At runtime initialize_vtable is rerun as part of link_class_impl()
366 // for a shared class loaded by the non-boot loader to obtain the loader
367 // constraints based on the runtime classloaders' context.
368 return; // don't write into the shared class
369 } else {
370 _vtable_index = index;
371 }
372 }
373
set_itable_index(int index)374 void Method::set_itable_index(int index) {
375 if (is_shared() && !MetaspaceShared::remapped_readwrite()) {
376 // At runtime initialize_itable is rerun as part of link_class_impl()
377 // for a shared class loaded by the non-boot loader to obtain the loader
378 // constraints based on the runtime classloaders' context. The dumptime
379 // itable index should be the same as the runtime index.
380 assert(_vtable_index == itable_index_max - index,
381 "archived itable index is different from runtime index");
382 return; // don’t write into the shared class
383 } else {
384 _vtable_index = itable_index_max - index;
385 }
386 assert(valid_itable_index(), "");
387 }
388
389 // The RegisterNatives call being attempted tried to register with a method that
390 // is not native. Ask JVM TI what prefixes have been specified. Then check
391 // to see if the native method is now wrapped with the prefixes. See the
392 // SetNativeMethodPrefix(es) functions in the JVM TI Spec for details.
find_prefixed_native(Klass * k,Symbol * name,Symbol * signature,TRAPS)393 static Method* find_prefixed_native(Klass* k, Symbol* name, Symbol* signature, TRAPS) {
394 #if INCLUDE_JVMTI
395 ResourceMark rm(THREAD);
396 Method* method;
397 int name_len = name->utf8_length();
398 char* name_str = name->as_utf8();
399 int prefix_count;
400 char** prefixes = JvmtiExport::get_all_native_method_prefixes(&prefix_count);
401 for (int i = 0; i < prefix_count; i++) {
402 char* prefix = prefixes[i];
403 int prefix_len = (int)strlen(prefix);
404
405 // try adding this prefix to the method name and see if it matches another method name
406 int trial_len = name_len + prefix_len;
407 char* trial_name_str = NEW_RESOURCE_ARRAY(char, trial_len + 1);
408 strcpy(trial_name_str, prefix);
409 strcat(trial_name_str, name_str);
410 TempNewSymbol trial_name = SymbolTable::probe(trial_name_str, trial_len);
411 if (trial_name == NULL) {
412 continue; // no such symbol, so this prefix wasn't used, try the next prefix
413 }
414 method = k->lookup_method(trial_name, signature);
415 if (method == NULL) {
416 continue; // signature doesn't match, try the next prefix
417 }
418 if (method->is_native()) {
419 method->set_is_prefixed_native();
420 return method; // wahoo, we found a prefixed version of the method, return it
421 }
422 // found as non-native, so prefix is good, add it, probably just need more prefixes
423 name_len = trial_len;
424 name_str = trial_name_str;
425 }
426 #endif // INCLUDE_JVMTI
427 return NULL; // not found
428 }
429
register_native(Klass * k,Symbol * name,Symbol * signature,address entry,TRAPS)430 bool Method::register_native(Klass* k, Symbol* name, Symbol* signature, address entry, TRAPS) {
431 Method* method = k->lookup_method(name, signature);
432 if (method == NULL) {
433 ResourceMark rm(THREAD);
434 stringStream st;
435 st.print("Method '");
436 print_external_name(&st, k, name, signature);
437 st.print("' name or signature does not match");
438 THROW_MSG_(vmSymbols::java_lang_NoSuchMethodError(), st.as_string(), false);
439 }
440 if (!method->is_native()) {
441 // trying to register to a non-native method, see if a JVM TI agent has added prefix(es)
442 method = find_prefixed_native(k, name, signature, THREAD);
443 if (method == NULL) {
444 ResourceMark rm(THREAD);
445 stringStream st;
446 st.print("Method '");
447 print_external_name(&st, k, name, signature);
448 st.print("' is not declared as native");
449 THROW_MSG_(vmSymbols::java_lang_NoSuchMethodError(), st.as_string(), false);
450 }
451 }
452
453 if (entry != NULL) {
454 method->set_native_function(entry, native_bind_event_is_interesting);
455 } else {
456 method->clear_native_function();
457 }
458 if (log_is_enabled(Debug, jni, resolve)) {
459 ResourceMark rm(THREAD);
460 log_debug(jni, resolve)("[Registering JNI native method %s.%s]",
461 method->method_holder()->external_name(),
462 method->name()->as_C_string());
463 }
464 return true;
465 }
466
was_executed_more_than(int n)467 bool Method::was_executed_more_than(int n) {
468 // Invocation counter is reset when the Method* is compiled.
469 // If the method has compiled code we therefore assume it has
470 // be excuted more than n times.
471 if (is_accessor() || is_empty_method() || (code() != NULL)) {
472 // interpreter doesn't bump invocation counter of trivial methods
473 // compiler does not bump invocation counter of compiled methods
474 return true;
475 }
476 else if ((method_counters() != NULL &&
477 method_counters()->invocation_counter()->carry()) ||
478 (method_data() != NULL &&
479 method_data()->invocation_counter()->carry())) {
480 // The carry bit is set when the counter overflows and causes
481 // a compilation to occur. We don't know how many times
482 // the counter has been reset, so we simply assume it has
483 // been executed more than n times.
484 return true;
485 } else {
486 return invocation_count() > n;
487 }
488 }
489
print_invocation_count()490 void Method::print_invocation_count() {
491 if (is_static()) tty->print("static ");
492 if (is_final()) tty->print("final ");
493 if (is_synchronized()) tty->print("synchronized ");
494 if (is_native()) tty->print("native ");
495 tty->print("%s::", method_holder()->external_name());
496 name()->print_symbol_on(tty);
497 signature()->print_symbol_on(tty);
498
499 if (WizardMode) {
500 // dump the size of the byte codes
501 tty->print(" {%d}", code_size());
502 }
503 tty->cr();
504
505 tty->print_cr (" interpreter_invocation_count: %8d ", interpreter_invocation_count());
506 tty->print_cr (" invocation_counter: %8d ", invocation_count());
507 tty->print_cr (" backedge_counter: %8d ", backedge_count());
508 #ifndef PRODUCT
509 if (CountCompiledCalls) {
510 tty->print_cr (" compiled_invocation_count: %8d ", compiled_invocation_count());
511 }
512 #endif
513 }
514
515 // Build a MethodData* object to hold information about this method
516 // collected in the interpreter.
build_interpreter_method_data(const methodHandle & method,TRAPS)517 void Method::build_interpreter_method_data(const methodHandle& method, TRAPS) {
518 // Do not profile the method if metaspace has hit an OOM previously
519 // allocating profiling data. Callers clear pending exception so don't
520 // add one here.
521 if (ClassLoaderDataGraph::has_metaspace_oom()) {
522 return;
523 }
524
525 // Grab a lock here to prevent multiple
526 // MethodData*s from being created.
527 MutexLocker ml(THREAD, MethodData_lock);
528 if (method->method_data() == NULL) {
529 ClassLoaderData* loader_data = method->method_holder()->class_loader_data();
530 MethodData* method_data = MethodData::allocate(loader_data, method, THREAD);
531 if (HAS_PENDING_EXCEPTION) {
532 CompileBroker::log_metaspace_failure();
533 ClassLoaderDataGraph::set_metaspace_oom(true);
534 return; // return the exception (which is cleared)
535 }
536
537 method->set_method_data(method_data);
538 if (PrintMethodData && (Verbose || WizardMode)) {
539 ResourceMark rm(THREAD);
540 tty->print("build_interpreter_method_data for ");
541 method->print_name(tty);
542 tty->cr();
543 // At the end of the run, the MDO, full of data, will be dumped.
544 }
545 }
546 }
547
build_method_counters(Method * m,TRAPS)548 MethodCounters* Method::build_method_counters(Method* m, TRAPS) {
549 // Do not profile the method if metaspace has hit an OOM previously
550 if (ClassLoaderDataGraph::has_metaspace_oom()) {
551 return NULL;
552 }
553
554 methodHandle mh(THREAD, m);
555 MethodCounters* counters = MethodCounters::allocate(mh, THREAD);
556 if (HAS_PENDING_EXCEPTION) {
557 CompileBroker::log_metaspace_failure();
558 ClassLoaderDataGraph::set_metaspace_oom(true);
559 return NULL; // return the exception (which is cleared)
560 }
561 if (!mh->init_method_counters(counters)) {
562 MetadataFactory::free_metadata(mh->method_holder()->class_loader_data(), counters);
563 }
564
565 if (LogTouchedMethods) {
566 mh->log_touched(CHECK_NULL);
567 }
568
569 return mh->method_counters();
570 }
571
init_method_counters(MethodCounters * counters)572 bool Method::init_method_counters(MethodCounters* counters) {
573 // Try to install a pointer to MethodCounters, return true on success.
574 return Atomic::replace_if_null(&_method_counters, counters);
575 }
576
extra_stack_words()577 int Method::extra_stack_words() {
578 // not an inline function, to avoid a header dependency on Interpreter
579 return extra_stack_entries() * Interpreter::stackElementSize;
580 }
581
582 // Derive size of parameters, return type, and fingerprint,
583 // all in one pass, which is run at load time.
584 // We need the first two, and might as well grab the third.
compute_from_signature(Symbol * sig)585 void Method::compute_from_signature(Symbol* sig) {
586 // At this point, since we are scanning the signature,
587 // we might as well compute the whole fingerprint.
588 Fingerprinter fp(sig, is_static());
589 set_size_of_parameters(fp.size_of_parameters());
590 constMethod()->set_result_type(fp.return_type());
591 constMethod()->set_fingerprint(fp.fingerprint());
592 }
593
is_empty_method() const594 bool Method::is_empty_method() const {
595 return code_size() == 1
596 && *code_base() == Bytecodes::_return;
597 }
598
is_vanilla_constructor() const599 bool Method::is_vanilla_constructor() const {
600 // Returns true if this method is a vanilla constructor, i.e. an "<init>" "()V" method
601 // which only calls the superclass vanilla constructor and possibly does stores of
602 // zero constants to local fields:
603 //
604 // aload_0
605 // invokespecial
606 // indexbyte1
607 // indexbyte2
608 //
609 // followed by an (optional) sequence of:
610 //
611 // aload_0
612 // aconst_null / iconst_0 / fconst_0 / dconst_0
613 // putfield
614 // indexbyte1
615 // indexbyte2
616 //
617 // followed by:
618 //
619 // return
620
621 assert(name() == vmSymbols::object_initializer_name(), "Should only be called for default constructors");
622 assert(signature() == vmSymbols::void_method_signature(), "Should only be called for default constructors");
623 int size = code_size();
624 // Check if size match
625 if (size == 0 || size % 5 != 0) return false;
626 address cb = code_base();
627 int last = size - 1;
628 if (cb[0] != Bytecodes::_aload_0 || cb[1] != Bytecodes::_invokespecial || cb[last] != Bytecodes::_return) {
629 // Does not call superclass default constructor
630 return false;
631 }
632 // Check optional sequence
633 for (int i = 4; i < last; i += 5) {
634 if (cb[i] != Bytecodes::_aload_0) return false;
635 if (!Bytecodes::is_zero_const(Bytecodes::cast(cb[i+1]))) return false;
636 if (cb[i+2] != Bytecodes::_putfield) return false;
637 }
638 return true;
639 }
640
641
compute_has_loops_flag()642 bool Method::compute_has_loops_flag() {
643 BytecodeStream bcs(methodHandle(Thread::current(), this));
644 Bytecodes::Code bc;
645
646 while ((bc = bcs.next()) >= 0) {
647 switch( bc ) {
648 case Bytecodes::_ifeq:
649 case Bytecodes::_ifnull:
650 case Bytecodes::_iflt:
651 case Bytecodes::_ifle:
652 case Bytecodes::_ifne:
653 case Bytecodes::_ifnonnull:
654 case Bytecodes::_ifgt:
655 case Bytecodes::_ifge:
656 case Bytecodes::_if_icmpeq:
657 case Bytecodes::_if_icmpne:
658 case Bytecodes::_if_icmplt:
659 case Bytecodes::_if_icmpgt:
660 case Bytecodes::_if_icmple:
661 case Bytecodes::_if_icmpge:
662 case Bytecodes::_if_acmpeq:
663 case Bytecodes::_if_acmpne:
664 case Bytecodes::_goto:
665 case Bytecodes::_jsr:
666 if( bcs.dest() < bcs.next_bci() ) _access_flags.set_has_loops();
667 break;
668
669 case Bytecodes::_goto_w:
670 case Bytecodes::_jsr_w:
671 if( bcs.dest_w() < bcs.next_bci() ) _access_flags.set_has_loops();
672 break;
673
674 default:
675 break;
676 }
677 }
678 _access_flags.set_loops_flag_init();
679 return _access_flags.has_loops();
680 }
681
is_final_method(AccessFlags class_access_flags) const682 bool Method::is_final_method(AccessFlags class_access_flags) const {
683 // or "does_not_require_vtable_entry"
684 // default method or overpass can occur, is not final (reuses vtable entry)
685 // private methods in classes get vtable entries for backward class compatibility.
686 if (is_overpass() || is_default_method()) return false;
687 return is_final() || class_access_flags.is_final();
688 }
689
is_final_method() const690 bool Method::is_final_method() const {
691 return is_final_method(method_holder()->access_flags());
692 }
693
is_default_method() const694 bool Method::is_default_method() const {
695 if (method_holder() != NULL &&
696 method_holder()->is_interface() &&
697 !is_abstract() && !is_private()) {
698 return true;
699 } else {
700 return false;
701 }
702 }
703
can_be_statically_bound(AccessFlags class_access_flags) const704 bool Method::can_be_statically_bound(AccessFlags class_access_flags) const {
705 if (is_final_method(class_access_flags)) return true;
706 #ifdef ASSERT
707 ResourceMark rm;
708 bool is_nonv = (vtable_index() == nonvirtual_vtable_index);
709 if (class_access_flags.is_interface()) {
710 assert(is_nonv == is_static() || is_nonv == is_private(),
711 "nonvirtual unexpected for non-static, non-private: %s",
712 name_and_sig_as_C_string());
713 }
714 #endif
715 assert(valid_vtable_index() || valid_itable_index(), "method must be linked before we ask this question");
716 return vtable_index() == nonvirtual_vtable_index;
717 }
718
can_be_statically_bound() const719 bool Method::can_be_statically_bound() const {
720 return can_be_statically_bound(method_holder()->access_flags());
721 }
722
can_be_statically_bound(InstanceKlass * context) const723 bool Method::can_be_statically_bound(InstanceKlass* context) const {
724 return (method_holder() == context) && can_be_statically_bound();
725 }
726
is_accessor() const727 bool Method::is_accessor() const {
728 return is_getter() || is_setter();
729 }
730
is_getter() const731 bool Method::is_getter() const {
732 if (code_size() != 5) return false;
733 if (size_of_parameters() != 1) return false;
734 if (java_code_at(0) != Bytecodes::_aload_0) return false;
735 if (java_code_at(1) != Bytecodes::_getfield) return false;
736 switch (java_code_at(4)) {
737 case Bytecodes::_ireturn:
738 case Bytecodes::_lreturn:
739 case Bytecodes::_freturn:
740 case Bytecodes::_dreturn:
741 case Bytecodes::_areturn:
742 break;
743 default:
744 return false;
745 }
746 return true;
747 }
748
is_setter() const749 bool Method::is_setter() const {
750 if (code_size() != 6) return false;
751 if (java_code_at(0) != Bytecodes::_aload_0) return false;
752 switch (java_code_at(1)) {
753 case Bytecodes::_iload_1:
754 case Bytecodes::_aload_1:
755 case Bytecodes::_fload_1:
756 if (size_of_parameters() != 2) return false;
757 break;
758 case Bytecodes::_dload_1:
759 case Bytecodes::_lload_1:
760 if (size_of_parameters() != 3) return false;
761 break;
762 default:
763 return false;
764 }
765 if (java_code_at(2) != Bytecodes::_putfield) return false;
766 if (java_code_at(5) != Bytecodes::_return) return false;
767 return true;
768 }
769
is_constant_getter() const770 bool Method::is_constant_getter() const {
771 int last_index = code_size() - 1;
772 // Check if the first 1-3 bytecodes are a constant push
773 // and the last bytecode is a return.
774 return (2 <= code_size() && code_size() <= 4 &&
775 Bytecodes::is_const(java_code_at(0)) &&
776 Bytecodes::length_for(java_code_at(0)) == last_index &&
777 Bytecodes::is_return(java_code_at(last_index)));
778 }
779
is_initializer() const780 bool Method::is_initializer() const {
781 return is_object_initializer() || is_static_initializer();
782 }
783
has_valid_initializer_flags() const784 bool Method::has_valid_initializer_flags() const {
785 return (is_static() ||
786 method_holder()->major_version() < 51);
787 }
788
is_static_initializer() const789 bool Method::is_static_initializer() const {
790 // For classfiles version 51 or greater, ensure that the clinit method is
791 // static. Non-static methods with the name "<clinit>" are not static
792 // initializers. (older classfiles exempted for backward compatibility)
793 return name() == vmSymbols::class_initializer_name() &&
794 has_valid_initializer_flags();
795 }
796
is_object_initializer() const797 bool Method::is_object_initializer() const {
798 return name() == vmSymbols::object_initializer_name();
799 }
800
needs_clinit_barrier() const801 bool Method::needs_clinit_barrier() const {
802 return is_static() && !method_holder()->is_initialized();
803 }
804
resolved_checked_exceptions_impl(Method * method,TRAPS)805 objArrayHandle Method::resolved_checked_exceptions_impl(Method* method, TRAPS) {
806 int length = method->checked_exceptions_length();
807 if (length == 0) { // common case
808 return objArrayHandle(THREAD, Universe::the_empty_class_klass_array());
809 } else {
810 methodHandle h_this(THREAD, method);
811 objArrayOop m_oop = oopFactory::new_objArray(SystemDictionary::Class_klass(), length, CHECK_(objArrayHandle()));
812 objArrayHandle mirrors (THREAD, m_oop);
813 for (int i = 0; i < length; i++) {
814 CheckedExceptionElement* table = h_this->checked_exceptions_start(); // recompute on each iteration, not gc safe
815 Klass* k = h_this->constants()->klass_at(table[i].class_cp_index, CHECK_(objArrayHandle()));
816 if (log_is_enabled(Warning, exceptions) &&
817 !k->is_subclass_of(SystemDictionary::Throwable_klass())) {
818 ResourceMark rm(THREAD);
819 log_warning(exceptions)(
820 "Class %s in throws clause of method %s is not a subtype of class java.lang.Throwable",
821 k->external_name(), method->external_name());
822 }
823 mirrors->obj_at_put(i, k->java_mirror());
824 }
825 return mirrors;
826 }
827 };
828
829
line_number_from_bci(int bci) const830 int Method::line_number_from_bci(int bci) const {
831 int best_bci = 0;
832 int best_line = -1;
833 if (bci == SynchronizationEntryBCI) bci = 0;
834 if (0 <= bci && bci < code_size() && has_linenumber_table()) {
835 // The line numbers are a short array of 2-tuples [start_pc, line_number].
836 // Not necessarily sorted and not necessarily one-to-one.
837 CompressedLineNumberReadStream stream(compressed_linenumber_table());
838 while (stream.read_pair()) {
839 if (stream.bci() == bci) {
840 // perfect match
841 return stream.line();
842 } else {
843 // update best_bci/line
844 if (stream.bci() < bci && stream.bci() >= best_bci) {
845 best_bci = stream.bci();
846 best_line = stream.line();
847 }
848 }
849 }
850 }
851 return best_line;
852 }
853
854
is_klass_loaded_by_klass_index(int klass_index) const855 bool Method::is_klass_loaded_by_klass_index(int klass_index) const {
856 if( constants()->tag_at(klass_index).is_unresolved_klass() ) {
857 Thread *thread = Thread::current();
858 Symbol* klass_name = constants()->klass_name_at(klass_index);
859 Handle loader(thread, method_holder()->class_loader());
860 Handle prot (thread, method_holder()->protection_domain());
861 return SystemDictionary::find(klass_name, loader, prot, thread) != NULL;
862 } else {
863 return true;
864 }
865 }
866
867
is_klass_loaded(int refinfo_index,bool must_be_resolved) const868 bool Method::is_klass_loaded(int refinfo_index, bool must_be_resolved) const {
869 int klass_index = constants()->klass_ref_index_at(refinfo_index);
870 if (must_be_resolved) {
871 // Make sure klass is resolved in constantpool.
872 if (constants()->tag_at(klass_index).is_unresolved_klass()) return false;
873 }
874 return is_klass_loaded_by_klass_index(klass_index);
875 }
876
877
set_native_function(address function,bool post_event_flag)878 void Method::set_native_function(address function, bool post_event_flag) {
879 assert(function != NULL, "use clear_native_function to unregister natives");
880 assert(!is_method_handle_intrinsic() || function == SharedRuntime::native_method_throw_unsatisfied_link_error_entry(), "");
881 address* native_function = native_function_addr();
882
883 // We can see racers trying to place the same native function into place. Once
884 // is plenty.
885 address current = *native_function;
886 if (current == function) return;
887 if (post_event_flag && JvmtiExport::should_post_native_method_bind() &&
888 function != NULL) {
889 // native_method_throw_unsatisfied_link_error_entry() should only
890 // be passed when post_event_flag is false.
891 assert(function !=
892 SharedRuntime::native_method_throw_unsatisfied_link_error_entry(),
893 "post_event_flag mis-match");
894
895 // post the bind event, and possible change the bind function
896 JvmtiExport::post_native_method_bind(this, &function);
897 }
898 *native_function = function;
899 // This function can be called more than once. We must make sure that we always
900 // use the latest registered method -> check if a stub already has been generated.
901 // If so, we have to make it not_entrant.
902 CompiledMethod* nm = code(); // Put it into local variable to guard against concurrent updates
903 if (nm != NULL) {
904 nm->make_not_entrant();
905 }
906 }
907
908
has_native_function() const909 bool Method::has_native_function() const {
910 if (is_method_handle_intrinsic())
911 return false; // special-cased in SharedRuntime::generate_native_wrapper
912 address func = native_function();
913 return (func != NULL && func != SharedRuntime::native_method_throw_unsatisfied_link_error_entry());
914 }
915
916
clear_native_function()917 void Method::clear_native_function() {
918 // Note: is_method_handle_intrinsic() is allowed here.
919 set_native_function(
920 SharedRuntime::native_method_throw_unsatisfied_link_error_entry(),
921 !native_bind_event_is_interesting);
922 this->unlink_code();
923 }
924
925
set_signature_handler(address handler)926 void Method::set_signature_handler(address handler) {
927 address* signature_handler = signature_handler_addr();
928 *signature_handler = handler;
929 }
930
931
print_made_not_compilable(int comp_level,bool is_osr,bool report,const char * reason)932 void Method::print_made_not_compilable(int comp_level, bool is_osr, bool report, const char* reason) {
933 assert(reason != NULL, "must provide a reason");
934 if (PrintCompilation && report) {
935 ttyLocker ttyl;
936 tty->print("made not %scompilable on ", is_osr ? "OSR " : "");
937 if (comp_level == CompLevel_all) {
938 tty->print("all levels ");
939 } else {
940 tty->print("level %d ", comp_level);
941 }
942 this->print_short_name(tty);
943 int size = this->code_size();
944 if (size > 0) {
945 tty->print(" (%d bytes)", size);
946 }
947 if (reason != NULL) {
948 tty->print(" %s", reason);
949 }
950 tty->cr();
951 }
952 if ((TraceDeoptimization || LogCompilation) && (xtty != NULL)) {
953 ttyLocker ttyl;
954 xtty->begin_elem("make_not_compilable thread='" UINTX_FORMAT "' osr='%d' level='%d'",
955 os::current_thread_id(), is_osr, comp_level);
956 if (reason != NULL) {
957 xtty->print(" reason=\'%s\'", reason);
958 }
959 xtty->method(this);
960 xtty->stamp();
961 xtty->end_elem();
962 }
963 }
964
is_always_compilable() const965 bool Method::is_always_compilable() const {
966 // Generated adapters must be compiled
967 if (is_method_handle_intrinsic() && is_synthetic()) {
968 assert(!is_not_c1_compilable(), "sanity check");
969 assert(!is_not_c2_compilable(), "sanity check");
970 return true;
971 }
972
973 return false;
974 }
975
is_not_compilable(int comp_level) const976 bool Method::is_not_compilable(int comp_level) const {
977 if (number_of_breakpoints() > 0)
978 return true;
979 if (is_always_compilable())
980 return false;
981 if (comp_level == CompLevel_any)
982 return is_not_c1_compilable() || is_not_c2_compilable();
983 if (is_c1_compile(comp_level))
984 return is_not_c1_compilable();
985 if (is_c2_compile(comp_level))
986 return is_not_c2_compilable();
987 return false;
988 }
989
990 // call this when compiler finds that this method is not compilable
set_not_compilable(const char * reason,int comp_level,bool report)991 void Method::set_not_compilable(const char* reason, int comp_level, bool report) {
992 if (is_always_compilable()) {
993 // Don't mark a method which should be always compilable
994 return;
995 }
996 print_made_not_compilable(comp_level, /*is_osr*/ false, report, reason);
997 if (comp_level == CompLevel_all) {
998 set_not_c1_compilable();
999 set_not_c2_compilable();
1000 } else {
1001 if (is_c1_compile(comp_level))
1002 set_not_c1_compilable();
1003 if (is_c2_compile(comp_level))
1004 set_not_c2_compilable();
1005 }
1006 assert(!CompilationPolicy::can_be_compiled(methodHandle(Thread::current(), this), comp_level), "sanity check");
1007 }
1008
is_not_osr_compilable(int comp_level) const1009 bool Method::is_not_osr_compilable(int comp_level) const {
1010 if (is_not_compilable(comp_level))
1011 return true;
1012 if (comp_level == CompLevel_any)
1013 return is_not_c1_osr_compilable() || is_not_c2_osr_compilable();
1014 if (is_c1_compile(comp_level))
1015 return is_not_c1_osr_compilable();
1016 if (is_c2_compile(comp_level))
1017 return is_not_c2_osr_compilable();
1018 return false;
1019 }
1020
set_not_osr_compilable(const char * reason,int comp_level,bool report)1021 void Method::set_not_osr_compilable(const char* reason, int comp_level, bool report) {
1022 print_made_not_compilable(comp_level, /*is_osr*/ true, report, reason);
1023 if (comp_level == CompLevel_all) {
1024 set_not_c1_osr_compilable();
1025 set_not_c2_osr_compilable();
1026 } else {
1027 if (is_c1_compile(comp_level))
1028 set_not_c1_osr_compilable();
1029 if (is_c2_compile(comp_level))
1030 set_not_c2_osr_compilable();
1031 }
1032 assert(!CompilationPolicy::can_be_osr_compiled(methodHandle(Thread::current(), this), comp_level), "sanity check");
1033 }
1034
1035 // Revert to using the interpreter and clear out the nmethod
clear_code()1036 void Method::clear_code() {
1037 // this may be NULL if c2i adapters have not been made yet
1038 // Only should happen at allocate time.
1039 if (adapter() == NULL) {
1040 _from_compiled_entry = NULL;
1041 } else {
1042 _from_compiled_entry = adapter()->get_c2i_entry();
1043 }
1044 OrderAccess::storestore();
1045 _from_interpreted_entry = _i2i_entry;
1046 OrderAccess::storestore();
1047 _code = NULL;
1048 }
1049
unlink_code(CompiledMethod * compare)1050 void Method::unlink_code(CompiledMethod *compare) {
1051 MutexLocker ml(CompiledMethod_lock->owned_by_self() ? NULL : CompiledMethod_lock, Mutex::_no_safepoint_check_flag);
1052 // We need to check if either the _code or _from_compiled_code_entry_point
1053 // refer to this nmethod because there is a race in setting these two fields
1054 // in Method* as seen in bugid 4947125.
1055 // If the vep() points to the zombie nmethod, the memory for the nmethod
1056 // could be flushed and the compiler and vtable stubs could still call
1057 // through it.
1058 if (code() == compare ||
1059 from_compiled_entry() == compare->verified_entry_point()) {
1060 clear_code();
1061 }
1062 }
1063
unlink_code()1064 void Method::unlink_code() {
1065 MutexLocker ml(CompiledMethod_lock->owned_by_self() ? NULL : CompiledMethod_lock, Mutex::_no_safepoint_check_flag);
1066 clear_code();
1067 }
1068
1069 #if INCLUDE_CDS
1070 // Called by class data sharing to remove any entry points (which are not shared)
unlink_method()1071 void Method::unlink_method() {
1072 _code = NULL;
1073
1074 Arguments::assert_is_dumping_archive();
1075 // Set the values to what they should be at run time. Note that
1076 // this Method can no longer be executed during dump time.
1077 _i2i_entry = Interpreter::entry_for_cds_method(methodHandle(Thread::current(), this));
1078 _from_interpreted_entry = _i2i_entry;
1079
1080 if (DynamicDumpSharedSpaces) {
1081 assert(_from_compiled_entry != NULL, "sanity");
1082 } else {
1083 // TODO: Simplify the adapter trampoline allocation for static archiving.
1084 // Remove the use of CDSAdapterHandlerEntry.
1085 CDSAdapterHandlerEntry* cds_adapter = (CDSAdapterHandlerEntry*)adapter();
1086 constMethod()->set_adapter_trampoline(cds_adapter->get_adapter_trampoline());
1087 _from_compiled_entry = cds_adapter->get_c2i_entry_trampoline();
1088 assert(*((int*)_from_compiled_entry) == 0,
1089 "must be NULL during dump time, to be initialized at run time");
1090 }
1091
1092 if (is_native()) {
1093 *native_function_addr() = NULL;
1094 set_signature_handler(NULL);
1095 }
1096 NOT_PRODUCT(set_compiled_invocation_count(0);)
1097
1098 set_method_data(NULL);
1099 clear_method_counters();
1100 }
1101 #endif
1102
1103 /****************************************************************************
1104 // The following illustrates how the entries work for CDS shared Methods:
1105 //
1106 // Our goal is to delay writing into a shared Method until it's compiled.
1107 // Hence, we want to determine the initial values for _i2i_entry,
1108 // _from_interpreted_entry and _from_compiled_entry during CDS dump time.
1109 //
1110 // In this example, both Methods A and B have the _i2i_entry of "zero_locals".
1111 // They also have similar signatures so that they will share the same
1112 // AdapterHandlerEntry.
1113 //
1114 // _adapter_trampoline points to a fixed location in the RW section of
1115 // the CDS archive. This location initially contains a NULL pointer. When the
1116 // first of method A or B is linked, an AdapterHandlerEntry is allocated
1117 // dynamically, and its c2i/i2c entries are generated.
1118 //
1119 // _i2i_entry and _from_interpreted_entry initially points to the same
1120 // (fixed) location in the CODE section of the CDS archive. This contains
1121 // an unconditional branch to the actual entry for "zero_locals", which is
1122 // generated at run time and may be on an arbitrary address. Thus, the
1123 // unconditional branch is also generated at run time to jump to the correct
1124 // address.
1125 //
1126 // Similarly, _from_compiled_entry points to a fixed address in the CODE
1127 // section. This address has enough space for an unconditional branch
1128 // instruction, and is initially zero-filled. After the AdapterHandlerEntry is
1129 // initialized, and the address for the actual c2i_entry is known, we emit a
1130 // branch instruction here to branch to the actual c2i_entry.
1131 //
1132 // The effect of the extra branch on the i2i and c2i entries is negligible.
1133 //
1134 // The reason for putting _adapter_trampoline in RO is many shared Methods
1135 // share the same AdapterHandlerEntry, so we can save space in the RW section
1136 // by having the extra indirection.
1137
1138
1139 [Method A: RW]
1140 _constMethod ----> [ConstMethod: RO]
1141 _adapter_trampoline -----------+
1142 |
1143 _i2i_entry (same value as method B) |
1144 _from_interpreted_entry (same value as method B) |
1145 _from_compiled_entry (same value as method B) |
1146 |
1147 |
1148 [Method B: RW] +--------+
1149 _constMethod ----> [ConstMethod: RO] |
1150 _adapter_trampoline --+--->(AdapterHandlerEntry* ptr: RW)-+
1151 |
1152 +-------------------------------+
1153 |
1154 +----> [AdapterHandlerEntry] (allocated at run time)
1155 _fingerprint
1156 _c2i_entry ---------------------------------+->[c2i entry..]
1157 _i2i_entry -------------+ _i2c_entry ---------------+-> [i2c entry..] |
1158 _from_interpreted_entry | _c2i_unverified_entry | |
1159 | | _c2i_no_clinit_check_entry| |
1160 | | (_cds_entry_table: CODE) | |
1161 | +->[0]: jmp _entry_table[0] --> (i2i_entry_for "zero_locals") | |
1162 | | (allocated at run time) | |
1163 | | ... [asm code ...] | |
1164 +-[not compiled]-+ [n]: jmp _entry_table[n] | |
1165 | | |
1166 | | |
1167 +-[compiled]-------------------------------------------------------------------+ |
1168 |
1169 _from_compiled_entry------------> (_c2i_entry_trampoline: CODE) |
1170 [jmp c2i_entry] ------------------------------------------------------+
1171
1172 ***/
1173
1174 // Called when the method_holder is getting linked. Setup entrypoints so the method
1175 // is ready to be called from interpreter, compiler, and vtables.
link_method(const methodHandle & h_method,TRAPS)1176 void Method::link_method(const methodHandle& h_method, TRAPS) {
1177 // If the code cache is full, we may reenter this function for the
1178 // leftover methods that weren't linked.
1179 if (is_shared()) {
1180 // Can't assert that the adapters are sane, because methods get linked before
1181 // the interpreter is generated, and hence before its adapters are generated.
1182 // If you messed them up you will notice soon enough though, don't you worry.
1183 if (adapter() != NULL) {
1184 return;
1185 }
1186 } else if (_i2i_entry != NULL) {
1187 return;
1188 }
1189 assert( _code == NULL, "nothing compiled yet" );
1190
1191 // Setup interpreter entrypoint
1192 assert(this == h_method(), "wrong h_method()" );
1193
1194 if (!is_shared()) {
1195 assert(adapter() == NULL, "init'd to NULL");
1196 address entry = Interpreter::entry_for_method(h_method);
1197 assert(entry != NULL, "interpreter entry must be non-null");
1198 // Sets both _i2i_entry and _from_interpreted_entry
1199 set_interpreter_entry(entry);
1200 }
1201
1202 // Don't overwrite already registered native entries.
1203 if (is_native() && !has_native_function()) {
1204 set_native_function(
1205 SharedRuntime::native_method_throw_unsatisfied_link_error_entry(),
1206 !native_bind_event_is_interesting);
1207 }
1208
1209 // Setup compiler entrypoint. This is made eagerly, so we do not need
1210 // special handling of vtables. An alternative is to make adapters more
1211 // lazily by calling make_adapter() from from_compiled_entry() for the
1212 // normal calls. For vtable calls life gets more complicated. When a
1213 // call-site goes mega-morphic we need adapters in all methods which can be
1214 // called from the vtable. We need adapters on such methods that get loaded
1215 // later. Ditto for mega-morphic itable calls. If this proves to be a
1216 // problem we'll make these lazily later.
1217 (void) make_adapters(h_method, CHECK);
1218
1219 // ONLY USE the h_method now as make_adapter may have blocked
1220
1221 }
1222
make_adapters(const methodHandle & mh,TRAPS)1223 address Method::make_adapters(const methodHandle& mh, TRAPS) {
1224 // Adapters for compiled code are made eagerly here. They are fairly
1225 // small (generally < 100 bytes) and quick to make (and cached and shared)
1226 // so making them eagerly shouldn't be too expensive.
1227 AdapterHandlerEntry* adapter = AdapterHandlerLibrary::get_adapter(mh);
1228 if (adapter == NULL ) {
1229 if (!is_init_completed()) {
1230 // Don't throw exceptions during VM initialization because java.lang.* classes
1231 // might not have been initialized, causing problems when constructing the
1232 // Java exception object.
1233 vm_exit_during_initialization("Out of space in CodeCache for adapters");
1234 } else {
1235 THROW_MSG_NULL(vmSymbols::java_lang_VirtualMachineError(), "Out of space in CodeCache for adapters");
1236 }
1237 }
1238
1239 if (mh->is_shared()) {
1240 assert(mh->adapter() == adapter, "must be");
1241 assert(mh->_from_compiled_entry != NULL, "must be");
1242 } else {
1243 mh->set_adapter_entry(adapter);
1244 mh->_from_compiled_entry = adapter->get_c2i_entry();
1245 }
1246 return adapter->get_c2i_entry();
1247 }
1248
restore_unshareable_info(TRAPS)1249 void Method::restore_unshareable_info(TRAPS) {
1250 assert(is_method() && is_valid_method(this), "ensure C++ vtable is restored");
1251
1252 // Since restore_unshareable_info can be called more than once for a method, don't
1253 // redo any work.
1254 if (adapter() == NULL) {
1255 methodHandle mh(THREAD, this);
1256 link_method(mh, CHECK);
1257 }
1258 }
1259
from_compiled_entry_no_trampoline() const1260 address Method::from_compiled_entry_no_trampoline() const {
1261 CompiledMethod *code = Atomic::load_acquire(&_code);
1262 if (code) {
1263 return code->verified_entry_point();
1264 } else {
1265 return adapter()->get_c2i_entry();
1266 }
1267 }
1268
1269 // The verified_code_entry() must be called when a invoke is resolved
1270 // on this method.
1271
1272 // It returns the compiled code entry point, after asserting not null.
1273 // This function is called after potential safepoints so that nmethod
1274 // or adapter that it points to is still live and valid.
1275 // This function must not hit a safepoint!
verified_code_entry()1276 address Method::verified_code_entry() {
1277 debug_only(NoSafepointVerifier nsv;)
1278 assert(_from_compiled_entry != NULL, "must be set");
1279 return _from_compiled_entry;
1280 }
1281
1282 // Check that if an nmethod ref exists, it has a backlink to this or no backlink at all
1283 // (could be racing a deopt).
1284 // Not inline to avoid circular ref.
check_code() const1285 bool Method::check_code() const {
1286 // cached in a register or local. There's a race on the value of the field.
1287 CompiledMethod *code = Atomic::load_acquire(&_code);
1288 return code == NULL || (code->method() == NULL) || (code->method() == (Method*)this && !code->is_osr_method());
1289 }
1290
1291 // Install compiled code. Instantly it can execute.
set_code(const methodHandle & mh,CompiledMethod * code)1292 void Method::set_code(const methodHandle& mh, CompiledMethod *code) {
1293 assert_lock_strong(CompiledMethod_lock);
1294 assert( code, "use clear_code to remove code" );
1295 assert( mh->check_code(), "" );
1296
1297 guarantee(mh->adapter() != NULL, "Adapter blob must already exist!");
1298
1299 // These writes must happen in this order, because the interpreter will
1300 // directly jump to from_interpreted_entry which jumps to an i2c adapter
1301 // which jumps to _from_compiled_entry.
1302 mh->_code = code; // Assign before allowing compiled code to exec
1303
1304 int comp_level = code->comp_level();
1305 // In theory there could be a race here. In practice it is unlikely
1306 // and not worth worrying about.
1307 if (comp_level > mh->highest_comp_level()) {
1308 mh->set_highest_comp_level(comp_level);
1309 }
1310
1311 OrderAccess::storestore();
1312 mh->_from_compiled_entry = code->verified_entry_point();
1313 OrderAccess::storestore();
1314 // Instantly compiled code can execute.
1315 if (!mh->is_method_handle_intrinsic())
1316 mh->_from_interpreted_entry = mh->get_i2c_entry();
1317 }
1318
1319
is_overridden_in(Klass * k) const1320 bool Method::is_overridden_in(Klass* k) const {
1321 InstanceKlass* ik = InstanceKlass::cast(k);
1322
1323 if (ik->is_interface()) return false;
1324
1325 // If method is an interface, we skip it - except if it
1326 // is a miranda method
1327 if (method_holder()->is_interface()) {
1328 // Check that method is not a miranda method
1329 if (ik->lookup_method(name(), signature()) == NULL) {
1330 // No implementation exist - so miranda method
1331 return false;
1332 }
1333 return true;
1334 }
1335
1336 assert(ik->is_subclass_of(method_holder()), "should be subklass");
1337 if (!has_vtable_index()) {
1338 return false;
1339 } else {
1340 Method* vt_m = ik->method_at_vtable(vtable_index());
1341 return vt_m != this;
1342 }
1343 }
1344
1345
1346 // give advice about whether this Method* should be cached or not
should_not_be_cached() const1347 bool Method::should_not_be_cached() const {
1348 if (is_old()) {
1349 // This method has been redefined. It is either EMCP or obsolete
1350 // and we don't want to cache it because that would pin the method
1351 // down and prevent it from being collectible if and when it
1352 // finishes executing.
1353 return true;
1354 }
1355
1356 // caching this method should be just fine
1357 return false;
1358 }
1359
1360
1361 /**
1362 * Returns true if this is one of the specially treated methods for
1363 * security related stack walks (like Reflection.getCallerClass).
1364 */
is_ignored_by_security_stack_walk() const1365 bool Method::is_ignored_by_security_stack_walk() const {
1366 if (intrinsic_id() == vmIntrinsics::_invoke) {
1367 // This is Method.invoke() -- ignore it
1368 return true;
1369 }
1370 if (method_holder()->is_subclass_of(SystemDictionary::reflect_MethodAccessorImpl_klass())) {
1371 // This is an auxilary frame -- ignore it
1372 return true;
1373 }
1374 if (is_method_handle_intrinsic() || is_compiled_lambda_form()) {
1375 // This is an internal adapter frame for method handles -- ignore it
1376 return true;
1377 }
1378 return false;
1379 }
1380
1381
1382 // Constant pool structure for invoke methods:
1383 enum {
1384 _imcp_invoke_name = 1, // utf8: 'invokeExact', etc.
1385 _imcp_invoke_signature, // utf8: (variable Symbol*)
1386 _imcp_limit
1387 };
1388
1389 // Test if this method is an MH adapter frame generated by Java code.
1390 // Cf. java/lang/invoke/InvokerBytecodeGenerator
is_compiled_lambda_form() const1391 bool Method::is_compiled_lambda_form() const {
1392 return intrinsic_id() == vmIntrinsics::_compiledLambdaForm;
1393 }
1394
1395 // Test if this method is an internal MH primitive method.
is_method_handle_intrinsic() const1396 bool Method::is_method_handle_intrinsic() const {
1397 vmIntrinsics::ID iid = intrinsic_id();
1398 return (MethodHandles::is_signature_polymorphic(iid) &&
1399 MethodHandles::is_signature_polymorphic_intrinsic(iid));
1400 }
1401
has_member_arg() const1402 bool Method::has_member_arg() const {
1403 vmIntrinsics::ID iid = intrinsic_id();
1404 return (MethodHandles::is_signature_polymorphic(iid) &&
1405 MethodHandles::has_member_arg(iid));
1406 }
1407
1408 // Make an instance of a signature-polymorphic internal MH primitive.
make_method_handle_intrinsic(vmIntrinsics::ID iid,Symbol * signature,TRAPS)1409 methodHandle Method::make_method_handle_intrinsic(vmIntrinsics::ID iid,
1410 Symbol* signature,
1411 TRAPS) {
1412 ResourceMark rm(THREAD);
1413 methodHandle empty;
1414
1415 InstanceKlass* holder = SystemDictionary::MethodHandle_klass();
1416 Symbol* name = MethodHandles::signature_polymorphic_intrinsic_name(iid);
1417 assert(iid == MethodHandles::signature_polymorphic_name_id(name), "");
1418
1419 log_info(methodhandles)("make_method_handle_intrinsic MH.%s%s", name->as_C_string(), signature->as_C_string());
1420
1421 // invariant: cp->symbol_at_put is preceded by a refcount increment (more usually a lookup)
1422 name->increment_refcount();
1423 signature->increment_refcount();
1424
1425 int cp_length = _imcp_limit;
1426 ClassLoaderData* loader_data = holder->class_loader_data();
1427 constantPoolHandle cp;
1428 {
1429 ConstantPool* cp_oop = ConstantPool::allocate(loader_data, cp_length, CHECK_(empty));
1430 cp = constantPoolHandle(THREAD, cp_oop);
1431 }
1432 cp->copy_fields(holder->constants());
1433 cp->set_pool_holder(holder);
1434 cp->symbol_at_put(_imcp_invoke_name, name);
1435 cp->symbol_at_put(_imcp_invoke_signature, signature);
1436 cp->set_has_preresolution();
1437
1438 // decide on access bits: public or not?
1439 int flags_bits = (JVM_ACC_NATIVE | JVM_ACC_SYNTHETIC | JVM_ACC_FINAL);
1440 bool must_be_static = MethodHandles::is_signature_polymorphic_static(iid);
1441 if (must_be_static) flags_bits |= JVM_ACC_STATIC;
1442 assert((flags_bits & JVM_ACC_PUBLIC) == 0, "do not expose these methods");
1443
1444 methodHandle m;
1445 {
1446 InlineTableSizes sizes;
1447 Method* m_oop = Method::allocate(loader_data, 0,
1448 accessFlags_from(flags_bits), &sizes,
1449 ConstMethod::NORMAL, CHECK_(empty));
1450 m = methodHandle(THREAD, m_oop);
1451 }
1452 m->set_constants(cp());
1453 m->set_name_index(_imcp_invoke_name);
1454 m->set_signature_index(_imcp_invoke_signature);
1455 assert(MethodHandles::is_signature_polymorphic_name(m->name()), "");
1456 assert(m->signature() == signature, "");
1457 m->compute_from_signature(signature);
1458 m->init_intrinsic_id();
1459 assert(m->is_method_handle_intrinsic(), "");
1460 #ifdef ASSERT
1461 if (!MethodHandles::is_signature_polymorphic(m->intrinsic_id())) m->print();
1462 assert(MethodHandles::is_signature_polymorphic(m->intrinsic_id()), "must be an invoker");
1463 assert(m->intrinsic_id() == iid, "correctly predicted iid");
1464 #endif //ASSERT
1465
1466 // Finally, set up its entry points.
1467 assert(m->can_be_statically_bound(), "");
1468 m->set_vtable_index(Method::nonvirtual_vtable_index);
1469 m->link_method(m, CHECK_(empty));
1470
1471 if (log_is_enabled(Info, methodhandles) && (Verbose || WizardMode)) {
1472 LogTarget(Info, methodhandles) lt;
1473 LogStream ls(lt);
1474 m->print_on(&ls);
1475 }
1476
1477 return m;
1478 }
1479
check_non_bcp_klass(Klass * klass)1480 Klass* Method::check_non_bcp_klass(Klass* klass) {
1481 if (klass != NULL && klass->class_loader() != NULL) {
1482 if (klass->is_objArray_klass())
1483 klass = ObjArrayKlass::cast(klass)->bottom_klass();
1484 return klass;
1485 }
1486 return NULL;
1487 }
1488
1489
clone_with_new_data(const methodHandle & m,u_char * new_code,int new_code_length,u_char * new_compressed_linenumber_table,int new_compressed_linenumber_size,TRAPS)1490 methodHandle Method::clone_with_new_data(const methodHandle& m, u_char* new_code, int new_code_length,
1491 u_char* new_compressed_linenumber_table, int new_compressed_linenumber_size, TRAPS) {
1492 // Code below does not work for native methods - they should never get rewritten anyway
1493 assert(!m->is_native(), "cannot rewrite native methods");
1494 // Allocate new Method*
1495 AccessFlags flags = m->access_flags();
1496
1497 ConstMethod* cm = m->constMethod();
1498 int checked_exceptions_len = cm->checked_exceptions_length();
1499 int localvariable_len = cm->localvariable_table_length();
1500 int exception_table_len = cm->exception_table_length();
1501 int method_parameters_len = cm->method_parameters_length();
1502 int method_annotations_len = cm->method_annotations_length();
1503 int parameter_annotations_len = cm->parameter_annotations_length();
1504 int type_annotations_len = cm->type_annotations_length();
1505 int default_annotations_len = cm->default_annotations_length();
1506
1507 InlineTableSizes sizes(
1508 localvariable_len,
1509 new_compressed_linenumber_size,
1510 exception_table_len,
1511 checked_exceptions_len,
1512 method_parameters_len,
1513 cm->generic_signature_index(),
1514 method_annotations_len,
1515 parameter_annotations_len,
1516 type_annotations_len,
1517 default_annotations_len,
1518 0);
1519
1520 ClassLoaderData* loader_data = m->method_holder()->class_loader_data();
1521 Method* newm_oop = Method::allocate(loader_data,
1522 new_code_length,
1523 flags,
1524 &sizes,
1525 m->method_type(),
1526 CHECK_(methodHandle()));
1527 methodHandle newm (THREAD, newm_oop);
1528
1529 // Create a shallow copy of Method part, but be careful to preserve the new ConstMethod*
1530 ConstMethod* newcm = newm->constMethod();
1531 int new_const_method_size = newm->constMethod()->size();
1532
1533 // This works because the source and target are both Methods. Some compilers
1534 // (e.g., clang) complain that the target vtable pointer will be stomped,
1535 // so cast away newm()'s and m()'s Methodness.
1536 memcpy((void*)newm(), (void*)m(), sizeof(Method));
1537
1538 // Create shallow copy of ConstMethod.
1539 memcpy(newcm, m->constMethod(), sizeof(ConstMethod));
1540
1541 // Reset correct method/const method, method size, and parameter info
1542 newm->set_constMethod(newcm);
1543 newm->constMethod()->set_code_size(new_code_length);
1544 newm->constMethod()->set_constMethod_size(new_const_method_size);
1545 assert(newm->code_size() == new_code_length, "check");
1546 assert(newm->method_parameters_length() == method_parameters_len, "check");
1547 assert(newm->checked_exceptions_length() == checked_exceptions_len, "check");
1548 assert(newm->exception_table_length() == exception_table_len, "check");
1549 assert(newm->localvariable_table_length() == localvariable_len, "check");
1550 // Copy new byte codes
1551 memcpy(newm->code_base(), new_code, new_code_length);
1552 // Copy line number table
1553 if (new_compressed_linenumber_size > 0) {
1554 memcpy(newm->compressed_linenumber_table(),
1555 new_compressed_linenumber_table,
1556 new_compressed_linenumber_size);
1557 }
1558 // Copy method_parameters
1559 if (method_parameters_len > 0) {
1560 memcpy(newm->method_parameters_start(),
1561 m->method_parameters_start(),
1562 method_parameters_len * sizeof(MethodParametersElement));
1563 }
1564 // Copy checked_exceptions
1565 if (checked_exceptions_len > 0) {
1566 memcpy(newm->checked_exceptions_start(),
1567 m->checked_exceptions_start(),
1568 checked_exceptions_len * sizeof(CheckedExceptionElement));
1569 }
1570 // Copy exception table
1571 if (exception_table_len > 0) {
1572 memcpy(newm->exception_table_start(),
1573 m->exception_table_start(),
1574 exception_table_len * sizeof(ExceptionTableElement));
1575 }
1576 // Copy local variable number table
1577 if (localvariable_len > 0) {
1578 memcpy(newm->localvariable_table_start(),
1579 m->localvariable_table_start(),
1580 localvariable_len * sizeof(LocalVariableTableElement));
1581 }
1582 // Copy stackmap table
1583 if (m->has_stackmap_table()) {
1584 int code_attribute_length = m->stackmap_data()->length();
1585 Array<u1>* stackmap_data =
1586 MetadataFactory::new_array<u1>(loader_data, code_attribute_length, 0, CHECK_(methodHandle()));
1587 memcpy((void*)stackmap_data->adr_at(0),
1588 (void*)m->stackmap_data()->adr_at(0), code_attribute_length);
1589 newm->set_stackmap_data(stackmap_data);
1590 }
1591
1592 // copy annotations over to new method
1593 newcm->copy_annotations_from(loader_data, cm, CHECK_(methodHandle()));
1594 return newm;
1595 }
1596
klass_id_for_intrinsics(const Klass * holder)1597 vmSymbols::SID Method::klass_id_for_intrinsics(const Klass* holder) {
1598 // if loader is not the default loader (i.e., != NULL), we can't know the intrinsics
1599 // because we are not loading from core libraries
1600 // exception: the AES intrinsics come from lib/ext/sunjce_provider.jar
1601 // which does not use the class default class loader so we check for its loader here
1602 const InstanceKlass* ik = InstanceKlass::cast(holder);
1603 if ((ik->class_loader() != NULL) && !SystemDictionary::is_platform_class_loader(ik->class_loader())) {
1604 return vmSymbols::NO_SID; // regardless of name, no intrinsics here
1605 }
1606
1607 // see if the klass name is well-known:
1608 Symbol* klass_name = ik->name();
1609 return vmSymbols::find_sid(klass_name);
1610 }
1611
init_intrinsic_id()1612 void Method::init_intrinsic_id() {
1613 assert(_intrinsic_id == vmIntrinsics::_none, "do this just once");
1614 const uintptr_t max_id_uint = right_n_bits((int)(sizeof(_intrinsic_id) * BitsPerByte));
1615 assert((uintptr_t)vmIntrinsics::ID_LIMIT <= max_id_uint, "else fix size");
1616 assert(intrinsic_id_size_in_bytes() == sizeof(_intrinsic_id), "");
1617
1618 // the klass name is well-known:
1619 vmSymbols::SID klass_id = klass_id_for_intrinsics(method_holder());
1620 assert(klass_id != vmSymbols::NO_SID, "caller responsibility");
1621
1622 // ditto for method and signature:
1623 vmSymbols::SID name_id = vmSymbols::find_sid(name());
1624 if (klass_id != vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_invoke_MethodHandle)
1625 && klass_id != vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_invoke_VarHandle)
1626 && name_id == vmSymbols::NO_SID) {
1627 return;
1628 }
1629 vmSymbols::SID sig_id = vmSymbols::find_sid(signature());
1630 if (klass_id != vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_invoke_MethodHandle)
1631 && klass_id != vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_invoke_VarHandle)
1632 && sig_id == vmSymbols::NO_SID) {
1633 return;
1634 }
1635 jshort flags = access_flags().as_short();
1636
1637 vmIntrinsics::ID id = vmIntrinsics::find_id(klass_id, name_id, sig_id, flags);
1638 if (id != vmIntrinsics::_none) {
1639 set_intrinsic_id(id);
1640 if (id == vmIntrinsics::_Class_cast) {
1641 // Even if the intrinsic is rejected, we want to inline this simple method.
1642 set_force_inline(true);
1643 }
1644 return;
1645 }
1646
1647 // A few slightly irregular cases:
1648 switch (klass_id) {
1649 case vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_StrictMath):
1650 // Second chance: check in regular Math.
1651 switch (name_id) {
1652 case vmSymbols::VM_SYMBOL_ENUM_NAME(min_name):
1653 case vmSymbols::VM_SYMBOL_ENUM_NAME(max_name):
1654 case vmSymbols::VM_SYMBOL_ENUM_NAME(sqrt_name):
1655 // pretend it is the corresponding method in the non-strict class:
1656 klass_id = vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_Math);
1657 id = vmIntrinsics::find_id(klass_id, name_id, sig_id, flags);
1658 break;
1659 default:
1660 break;
1661 }
1662 break;
1663
1664 // Signature-polymorphic methods: MethodHandle.invoke*, InvokeDynamic.*., VarHandle
1665 case vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_invoke_MethodHandle):
1666 case vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_invoke_VarHandle):
1667 if (!is_native()) break;
1668 id = MethodHandles::signature_polymorphic_name_id(method_holder(), name());
1669 if (is_static() != MethodHandles::is_signature_polymorphic_static(id))
1670 id = vmIntrinsics::_none;
1671 break;
1672
1673 default:
1674 break;
1675 }
1676
1677 if (id != vmIntrinsics::_none) {
1678 // Set up its iid. It is an alias method.
1679 set_intrinsic_id(id);
1680 return;
1681 }
1682 }
1683
load_signature_classes(const methodHandle & m,TRAPS)1684 bool Method::load_signature_classes(const methodHandle& m, TRAPS) {
1685 if (!THREAD->can_call_java()) {
1686 // There is nothing useful this routine can do from within the Compile thread.
1687 // Hopefully, the signature contains only well-known classes.
1688 // We could scan for this and return true/false, but the caller won't care.
1689 return false;
1690 }
1691 bool sig_is_loaded = true;
1692 ResourceMark rm(THREAD);
1693 for (ResolvingSignatureStream ss(m()); !ss.is_done(); ss.next()) {
1694 if (ss.is_reference()) {
1695 // load everything, including arrays "[Lfoo;"
1696 Klass* klass = ss.as_klass(SignatureStream::ReturnNull, THREAD);
1697 // We are loading classes eagerly. If a ClassNotFoundException or
1698 // a LinkageError was generated, be sure to ignore it.
1699 if (HAS_PENDING_EXCEPTION) {
1700 if (PENDING_EXCEPTION->is_a(SystemDictionary::ClassNotFoundException_klass()) ||
1701 PENDING_EXCEPTION->is_a(SystemDictionary::LinkageError_klass())) {
1702 CLEAR_PENDING_EXCEPTION;
1703 } else {
1704 return false;
1705 }
1706 }
1707 if( klass == NULL) { sig_is_loaded = false; }
1708 }
1709 }
1710 return sig_is_loaded;
1711 }
1712
has_unloaded_classes_in_signature(const methodHandle & m,TRAPS)1713 bool Method::has_unloaded_classes_in_signature(const methodHandle& m, TRAPS) {
1714 ResourceMark rm(THREAD);
1715 for(ResolvingSignatureStream ss(m()); !ss.is_done(); ss.next()) {
1716 if (ss.type() == T_OBJECT) {
1717 // Do not use ss.is_reference() here, since we don't care about
1718 // unloaded array component types.
1719 Klass* klass = ss.as_klass_if_loaded(THREAD);
1720 assert(!HAS_PENDING_EXCEPTION, "as_klass_if_loaded contract");
1721 if (klass == NULL) return true;
1722 }
1723 }
1724 return false;
1725 }
1726
1727 // Exposed so field engineers can debug VM
print_short_name(outputStream * st)1728 void Method::print_short_name(outputStream* st) {
1729 ResourceMark rm;
1730 #ifdef PRODUCT
1731 st->print(" %s::", method_holder()->external_name());
1732 #else
1733 st->print(" %s::", method_holder()->internal_name());
1734 #endif
1735 name()->print_symbol_on(st);
1736 if (WizardMode) signature()->print_symbol_on(st);
1737 else if (MethodHandles::is_signature_polymorphic(intrinsic_id()))
1738 MethodHandles::print_as_basic_type_signature_on(st, signature());
1739 }
1740
1741 // Comparer for sorting an object array containing
1742 // Method*s.
method_comparator(Method * a,Method * b)1743 static int method_comparator(Method* a, Method* b) {
1744 return a->name()->fast_compare(b->name());
1745 }
1746
1747 // This is only done during class loading, so it is OK to assume method_idnum matches the methods() array
1748 // default_methods also uses this without the ordering for fast find_method
sort_methods(Array<Method * > * methods,bool set_idnums,method_comparator_func func)1749 void Method::sort_methods(Array<Method*>* methods, bool set_idnums, method_comparator_func func) {
1750 int length = methods->length();
1751 if (length > 1) {
1752 if (func == NULL) {
1753 func = method_comparator;
1754 }
1755 {
1756 NoSafepointVerifier nsv;
1757 QuickSort::sort(methods->data(), length, func, /*idempotent=*/false);
1758 }
1759 // Reset method ordering
1760 if (set_idnums) {
1761 for (int i = 0; i < length; i++) {
1762 Method* m = methods->at(i);
1763 m->set_method_idnum(i);
1764 m->set_orig_method_idnum(i);
1765 }
1766 }
1767 }
1768 }
1769
1770 //-----------------------------------------------------------------------------------
1771 // Non-product code unless JVM/TI needs it
1772
1773 #if !defined(PRODUCT) || INCLUDE_JVMTI
1774 class SignatureTypePrinter : public SignatureTypeNames {
1775 private:
1776 outputStream* _st;
1777 bool _use_separator;
1778
type_name(const char * name)1779 void type_name(const char* name) {
1780 if (_use_separator) _st->print(", ");
1781 _st->print("%s", name);
1782 _use_separator = true;
1783 }
1784
1785 public:
SignatureTypePrinter(Symbol * signature,outputStream * st)1786 SignatureTypePrinter(Symbol* signature, outputStream* st) : SignatureTypeNames(signature) {
1787 _st = st;
1788 _use_separator = false;
1789 }
1790
print_parameters()1791 void print_parameters() { _use_separator = false; do_parameters_on(this); }
print_returntype()1792 void print_returntype() { _use_separator = false; do_type(return_type()); }
1793 };
1794
1795
print_name(outputStream * st)1796 void Method::print_name(outputStream* st) {
1797 Thread *thread = Thread::current();
1798 ResourceMark rm(thread);
1799 st->print("%s ", is_static() ? "static" : "virtual");
1800 if (WizardMode) {
1801 st->print("%s.", method_holder()->internal_name());
1802 name()->print_symbol_on(st);
1803 signature()->print_symbol_on(st);
1804 } else {
1805 SignatureTypePrinter sig(signature(), st);
1806 sig.print_returntype();
1807 st->print(" %s.", method_holder()->internal_name());
1808 name()->print_symbol_on(st);
1809 st->print("(");
1810 sig.print_parameters();
1811 st->print(")");
1812 }
1813 }
1814 #endif // !PRODUCT || INCLUDE_JVMTI
1815
1816
print_codes_on(outputStream * st) const1817 void Method::print_codes_on(outputStream* st) const {
1818 print_codes_on(0, code_size(), st);
1819 }
1820
print_codes_on(int from,int to,outputStream * st) const1821 void Method::print_codes_on(int from, int to, outputStream* st) const {
1822 Thread *thread = Thread::current();
1823 ResourceMark rm(thread);
1824 methodHandle mh (thread, (Method*)this);
1825 BytecodeStream s(mh);
1826 s.set_interval(from, to);
1827 BytecodeTracer::set_closure(BytecodeTracer::std_closure());
1828 while (s.next() >= 0) BytecodeTracer::trace(mh, s.bcp(), st);
1829 }
1830
CompressedLineNumberReadStream(u_char * buffer)1831 CompressedLineNumberReadStream::CompressedLineNumberReadStream(u_char* buffer) : CompressedReadStream(buffer) {
1832 _bci = 0;
1833 _line = 0;
1834 };
1835
read_pair()1836 bool CompressedLineNumberReadStream::read_pair() {
1837 jubyte next = read_byte();
1838 // Check for terminator
1839 if (next == 0) return false;
1840 if (next == 0xFF) {
1841 // Escape character, regular compression used
1842 _bci += read_signed_int();
1843 _line += read_signed_int();
1844 } else {
1845 // Single byte compression used
1846 _bci += next >> 3;
1847 _line += next & 0x7;
1848 }
1849 return true;
1850 }
1851
1852 #if INCLUDE_JVMTI
1853
orig_bytecode_at(int bci) const1854 Bytecodes::Code Method::orig_bytecode_at(int bci) const {
1855 BreakpointInfo* bp = method_holder()->breakpoints();
1856 for (; bp != NULL; bp = bp->next()) {
1857 if (bp->match(this, bci)) {
1858 return bp->orig_bytecode();
1859 }
1860 }
1861 {
1862 ResourceMark rm;
1863 fatal("no original bytecode found in %s at bci %d", name_and_sig_as_C_string(), bci);
1864 }
1865 return Bytecodes::_shouldnotreachhere;
1866 }
1867
set_orig_bytecode_at(int bci,Bytecodes::Code code)1868 void Method::set_orig_bytecode_at(int bci, Bytecodes::Code code) {
1869 assert(code != Bytecodes::_breakpoint, "cannot patch breakpoints this way");
1870 BreakpointInfo* bp = method_holder()->breakpoints();
1871 for (; bp != NULL; bp = bp->next()) {
1872 if (bp->match(this, bci)) {
1873 bp->set_orig_bytecode(code);
1874 // and continue, in case there is more than one
1875 }
1876 }
1877 }
1878
set_breakpoint(int bci)1879 void Method::set_breakpoint(int bci) {
1880 InstanceKlass* ik = method_holder();
1881 BreakpointInfo *bp = new BreakpointInfo(this, bci);
1882 bp->set_next(ik->breakpoints());
1883 ik->set_breakpoints(bp);
1884 // do this last:
1885 bp->set(this);
1886 }
1887
clear_matches(Method * m,int bci)1888 static void clear_matches(Method* m, int bci) {
1889 InstanceKlass* ik = m->method_holder();
1890 BreakpointInfo* prev_bp = NULL;
1891 BreakpointInfo* next_bp;
1892 for (BreakpointInfo* bp = ik->breakpoints(); bp != NULL; bp = next_bp) {
1893 next_bp = bp->next();
1894 // bci value of -1 is used to delete all breakpoints in method m (ex: clear_all_breakpoint).
1895 if (bci >= 0 ? bp->match(m, bci) : bp->match(m)) {
1896 // do this first:
1897 bp->clear(m);
1898 // unhook it
1899 if (prev_bp != NULL)
1900 prev_bp->set_next(next_bp);
1901 else
1902 ik->set_breakpoints(next_bp);
1903 delete bp;
1904 // When class is redefined JVMTI sets breakpoint in all versions of EMCP methods
1905 // at same location. So we have multiple matching (method_index and bci)
1906 // BreakpointInfo nodes in BreakpointInfo list. We should just delete one
1907 // breakpoint for clear_breakpoint request and keep all other method versions
1908 // BreakpointInfo for future clear_breakpoint request.
1909 // bcivalue of -1 is used to clear all breakpoints (see clear_all_breakpoints)
1910 // which is being called when class is unloaded. We delete all the Breakpoint
1911 // information for all versions of method. We may not correctly restore the original
1912 // bytecode in all method versions, but that is ok. Because the class is being unloaded
1913 // so these methods won't be used anymore.
1914 if (bci >= 0) {
1915 break;
1916 }
1917 } else {
1918 // This one is a keeper.
1919 prev_bp = bp;
1920 }
1921 }
1922 }
1923
clear_breakpoint(int bci)1924 void Method::clear_breakpoint(int bci) {
1925 assert(bci >= 0, "");
1926 clear_matches(this, bci);
1927 }
1928
clear_all_breakpoints()1929 void Method::clear_all_breakpoints() {
1930 clear_matches(this, -1);
1931 }
1932
1933 #endif // INCLUDE_JVMTI
1934
invocation_count()1935 int Method::invocation_count() {
1936 MethodCounters *mcs = method_counters();
1937 if (TieredCompilation) {
1938 MethodData* const mdo = method_data();
1939 if (((mcs != NULL) ? mcs->invocation_counter()->carry() : false) ||
1940 ((mdo != NULL) ? mdo->invocation_counter()->carry() : false)) {
1941 return InvocationCounter::count_limit;
1942 } else {
1943 return ((mcs != NULL) ? mcs->invocation_counter()->count() : 0) +
1944 ((mdo != NULL) ? mdo->invocation_counter()->count() : 0);
1945 }
1946 } else {
1947 return (mcs == NULL) ? 0 : mcs->invocation_counter()->count();
1948 }
1949 }
1950
backedge_count()1951 int Method::backedge_count() {
1952 MethodCounters *mcs = method_counters();
1953 if (TieredCompilation) {
1954 MethodData* const mdo = method_data();
1955 if (((mcs != NULL) ? mcs->backedge_counter()->carry() : false) ||
1956 ((mdo != NULL) ? mdo->backedge_counter()->carry() : false)) {
1957 return InvocationCounter::count_limit;
1958 } else {
1959 return ((mcs != NULL) ? mcs->backedge_counter()->count() : 0) +
1960 ((mdo != NULL) ? mdo->backedge_counter()->count() : 0);
1961 }
1962 } else {
1963 return (mcs == NULL) ? 0 : mcs->backedge_counter()->count();
1964 }
1965 }
1966
highest_comp_level() const1967 int Method::highest_comp_level() const {
1968 const MethodCounters* mcs = method_counters();
1969 if (mcs != NULL) {
1970 return mcs->highest_comp_level();
1971 } else {
1972 return CompLevel_none;
1973 }
1974 }
1975
highest_osr_comp_level() const1976 int Method::highest_osr_comp_level() const {
1977 const MethodCounters* mcs = method_counters();
1978 if (mcs != NULL) {
1979 return mcs->highest_osr_comp_level();
1980 } else {
1981 return CompLevel_none;
1982 }
1983 }
1984
set_highest_comp_level(int level)1985 void Method::set_highest_comp_level(int level) {
1986 MethodCounters* mcs = method_counters();
1987 if (mcs != NULL) {
1988 mcs->set_highest_comp_level(level);
1989 }
1990 }
1991
set_highest_osr_comp_level(int level)1992 void Method::set_highest_osr_comp_level(int level) {
1993 MethodCounters* mcs = method_counters();
1994 if (mcs != NULL) {
1995 mcs->set_highest_osr_comp_level(level);
1996 }
1997 }
1998
1999 #if INCLUDE_JVMTI
2000
BreakpointInfo(Method * m,int bci)2001 BreakpointInfo::BreakpointInfo(Method* m, int bci) {
2002 _bci = bci;
2003 _name_index = m->name_index();
2004 _signature_index = m->signature_index();
2005 _orig_bytecode = (Bytecodes::Code) *m->bcp_from(_bci);
2006 if (_orig_bytecode == Bytecodes::_breakpoint)
2007 _orig_bytecode = m->orig_bytecode_at(_bci);
2008 _next = NULL;
2009 }
2010
set(Method * method)2011 void BreakpointInfo::set(Method* method) {
2012 #ifdef ASSERT
2013 {
2014 Bytecodes::Code code = (Bytecodes::Code) *method->bcp_from(_bci);
2015 if (code == Bytecodes::_breakpoint)
2016 code = method->orig_bytecode_at(_bci);
2017 assert(orig_bytecode() == code, "original bytecode must be the same");
2018 }
2019 #endif
2020 Thread *thread = Thread::current();
2021 *method->bcp_from(_bci) = Bytecodes::_breakpoint;
2022 method->incr_number_of_breakpoints(thread);
2023 {
2024 // Deoptimize all dependents on this method
2025 HandleMark hm(thread);
2026 methodHandle mh(thread, method);
2027 CodeCache::flush_dependents_on_method(mh);
2028 }
2029 }
2030
clear(Method * method)2031 void BreakpointInfo::clear(Method* method) {
2032 *method->bcp_from(_bci) = orig_bytecode();
2033 assert(method->number_of_breakpoints() > 0, "must not go negative");
2034 method->decr_number_of_breakpoints(Thread::current());
2035 }
2036
2037 #endif // INCLUDE_JVMTI
2038
2039 // jmethodID handling
2040
2041 // This is a block allocating object, sort of like JNIHandleBlock, only a
2042 // lot simpler.
2043 // It's allocated on the CHeap because once we allocate a jmethodID, we can
2044 // never get rid of it.
2045
2046 static const int min_block_size = 8;
2047
2048 class JNIMethodBlockNode : public CHeapObj<mtClass> {
2049 friend class JNIMethodBlock;
2050 Method** _methods;
2051 int _number_of_methods;
2052 int _top;
2053 JNIMethodBlockNode* _next;
2054
2055 public:
2056
2057 JNIMethodBlockNode(int num_methods = min_block_size);
2058
~JNIMethodBlockNode()2059 ~JNIMethodBlockNode() { FREE_C_HEAP_ARRAY(Method*, _methods); }
2060
ensure_methods(int num_addl_methods)2061 void ensure_methods(int num_addl_methods) {
2062 if (_top < _number_of_methods) {
2063 num_addl_methods -= _number_of_methods - _top;
2064 if (num_addl_methods <= 0) {
2065 return;
2066 }
2067 }
2068 if (_next == NULL) {
2069 _next = new JNIMethodBlockNode(MAX2(num_addl_methods, min_block_size));
2070 } else {
2071 _next->ensure_methods(num_addl_methods);
2072 }
2073 }
2074 };
2075
2076 class JNIMethodBlock : public CHeapObj<mtClass> {
2077 JNIMethodBlockNode _head;
2078 JNIMethodBlockNode *_last_free;
2079 public:
2080 static Method* const _free_method;
2081
JNIMethodBlock(int initial_capacity=min_block_size)2082 JNIMethodBlock(int initial_capacity = min_block_size)
2083 : _head(initial_capacity), _last_free(&_head) {}
2084
ensure_methods(int num_addl_methods)2085 void ensure_methods(int num_addl_methods) {
2086 _last_free->ensure_methods(num_addl_methods);
2087 }
2088
add_method(Method * m)2089 Method** add_method(Method* m) {
2090 for (JNIMethodBlockNode* b = _last_free; b != NULL; b = b->_next) {
2091 if (b->_top < b->_number_of_methods) {
2092 // top points to the next free entry.
2093 int i = b->_top;
2094 b->_methods[i] = m;
2095 b->_top++;
2096 _last_free = b;
2097 return &(b->_methods[i]);
2098 } else if (b->_top == b->_number_of_methods) {
2099 // if the next free entry ran off the block see if there's a free entry
2100 for (int i = 0; i < b->_number_of_methods; i++) {
2101 if (b->_methods[i] == _free_method) {
2102 b->_methods[i] = m;
2103 _last_free = b;
2104 return &(b->_methods[i]);
2105 }
2106 }
2107 // Only check each block once for frees. They're very unlikely.
2108 // Increment top past the end of the block.
2109 b->_top++;
2110 }
2111 // need to allocate a next block.
2112 if (b->_next == NULL) {
2113 b->_next = _last_free = new JNIMethodBlockNode();
2114 }
2115 }
2116 guarantee(false, "Should always allocate a free block");
2117 return NULL;
2118 }
2119
contains(Method ** m)2120 bool contains(Method** m) {
2121 if (m == NULL) return false;
2122 for (JNIMethodBlockNode* b = &_head; b != NULL; b = b->_next) {
2123 if (b->_methods <= m && m < b->_methods + b->_number_of_methods) {
2124 // This is a bit of extra checking, for two reasons. One is
2125 // that contains() deals with pointers that are passed in by
2126 // JNI code, so making sure that the pointer is aligned
2127 // correctly is valuable. The other is that <= and > are
2128 // technically not defined on pointers, so the if guard can
2129 // pass spuriously; no modern compiler is likely to make that
2130 // a problem, though (and if one did, the guard could also
2131 // fail spuriously, which would be bad).
2132 ptrdiff_t idx = m - b->_methods;
2133 if (b->_methods + idx == m) {
2134 return true;
2135 }
2136 }
2137 }
2138 return false; // not found
2139 }
2140
2141 // Doesn't really destroy it, just marks it as free so it can be reused.
destroy_method(Method ** m)2142 void destroy_method(Method** m) {
2143 #ifdef ASSERT
2144 assert(contains(m), "should be a methodID");
2145 #endif // ASSERT
2146 *m = _free_method;
2147 }
2148
2149 // During class unloading the methods are cleared, which is different
2150 // than freed.
clear_all_methods()2151 void clear_all_methods() {
2152 for (JNIMethodBlockNode* b = &_head; b != NULL; b = b->_next) {
2153 for (int i = 0; i< b->_number_of_methods; i++) {
2154 b->_methods[i] = NULL;
2155 }
2156 }
2157 }
2158 #ifndef PRODUCT
count_methods()2159 int count_methods() {
2160 // count all allocated methods
2161 int count = 0;
2162 for (JNIMethodBlockNode* b = &_head; b != NULL; b = b->_next) {
2163 for (int i = 0; i< b->_number_of_methods; i++) {
2164 if (b->_methods[i] != _free_method) count++;
2165 }
2166 }
2167 return count;
2168 }
2169 #endif // PRODUCT
2170 };
2171
2172 // Something that can't be mistaken for an address or a markWord
2173 Method* const JNIMethodBlock::_free_method = (Method*)55;
2174
JNIMethodBlockNode(int num_methods)2175 JNIMethodBlockNode::JNIMethodBlockNode(int num_methods) : _top(0), _next(NULL) {
2176 _number_of_methods = MAX2(num_methods, min_block_size);
2177 _methods = NEW_C_HEAP_ARRAY(Method*, _number_of_methods, mtInternal);
2178 for (int i = 0; i < _number_of_methods; i++) {
2179 _methods[i] = JNIMethodBlock::_free_method;
2180 }
2181 }
2182
ensure_jmethod_ids(ClassLoaderData * loader_data,int capacity)2183 void Method::ensure_jmethod_ids(ClassLoaderData* loader_data, int capacity) {
2184 ClassLoaderData* cld = loader_data;
2185 if (!SafepointSynchronize::is_at_safepoint()) {
2186 // Have to add jmethod_ids() to class loader data thread-safely.
2187 // Also have to add the method to the list safely, which the cld lock
2188 // protects as well.
2189 MutexLocker ml(cld->metaspace_lock(), Mutex::_no_safepoint_check_flag);
2190 if (cld->jmethod_ids() == NULL) {
2191 cld->set_jmethod_ids(new JNIMethodBlock(capacity));
2192 } else {
2193 cld->jmethod_ids()->ensure_methods(capacity);
2194 }
2195 } else {
2196 // At safepoint, we are single threaded and can set this.
2197 if (cld->jmethod_ids() == NULL) {
2198 cld->set_jmethod_ids(new JNIMethodBlock(capacity));
2199 } else {
2200 cld->jmethod_ids()->ensure_methods(capacity);
2201 }
2202 }
2203 }
2204
2205 // Add a method id to the jmethod_ids
make_jmethod_id(ClassLoaderData * loader_data,Method * m)2206 jmethodID Method::make_jmethod_id(ClassLoaderData* loader_data, Method* m) {
2207 ClassLoaderData* cld = loader_data;
2208
2209 if (!SafepointSynchronize::is_at_safepoint()) {
2210 // Have to add jmethod_ids() to class loader data thread-safely.
2211 // Also have to add the method to the list safely, which the cld lock
2212 // protects as well.
2213 MutexLocker ml(cld->metaspace_lock(), Mutex::_no_safepoint_check_flag);
2214 if (cld->jmethod_ids() == NULL) {
2215 cld->set_jmethod_ids(new JNIMethodBlock());
2216 }
2217 // jmethodID is a pointer to Method*
2218 return (jmethodID)cld->jmethod_ids()->add_method(m);
2219 } else {
2220 // At safepoint, we are single threaded and can set this.
2221 if (cld->jmethod_ids() == NULL) {
2222 cld->set_jmethod_ids(new JNIMethodBlock());
2223 }
2224 // jmethodID is a pointer to Method*
2225 return (jmethodID)cld->jmethod_ids()->add_method(m);
2226 }
2227 }
2228
jmethod_id()2229 jmethodID Method::jmethod_id() {
2230 methodHandle mh(Thread::current(), this);
2231 return method_holder()->get_jmethod_id(mh);
2232 }
2233
2234 // Mark a jmethodID as free. This is called when there is a data race in
2235 // InstanceKlass while creating the jmethodID cache.
destroy_jmethod_id(ClassLoaderData * loader_data,jmethodID m)2236 void Method::destroy_jmethod_id(ClassLoaderData* loader_data, jmethodID m) {
2237 ClassLoaderData* cld = loader_data;
2238 Method** ptr = (Method**)m;
2239 assert(cld->jmethod_ids() != NULL, "should have method handles");
2240 cld->jmethod_ids()->destroy_method(ptr);
2241 }
2242
change_method_associated_with_jmethod_id(jmethodID jmid,Method * new_method)2243 void Method::change_method_associated_with_jmethod_id(jmethodID jmid, Method* new_method) {
2244 // Can't assert the method_holder is the same because the new method has the
2245 // scratch method holder.
2246 assert(resolve_jmethod_id(jmid)->method_holder()->class_loader()
2247 == new_method->method_holder()->class_loader() ||
2248 new_method->method_holder()->class_loader() == NULL, // allow Unsafe substitution
2249 "changing to a different class loader");
2250 // Just change the method in place, jmethodID pointer doesn't change.
2251 *((Method**)jmid) = new_method;
2252 }
2253
is_method_id(jmethodID mid)2254 bool Method::is_method_id(jmethodID mid) {
2255 Method* m = resolve_jmethod_id(mid);
2256 assert(m != NULL, "should be called with non-null method");
2257 InstanceKlass* ik = m->method_holder();
2258 ClassLoaderData* cld = ik->class_loader_data();
2259 if (cld->jmethod_ids() == NULL) return false;
2260 return (cld->jmethod_ids()->contains((Method**)mid));
2261 }
2262
checked_resolve_jmethod_id(jmethodID mid)2263 Method* Method::checked_resolve_jmethod_id(jmethodID mid) {
2264 if (mid == NULL) return NULL;
2265 Method* o = resolve_jmethod_id(mid);
2266 if (o == NULL || o == JNIMethodBlock::_free_method || !((Metadata*)o)->is_method()) {
2267 return NULL;
2268 }
2269 return o;
2270 };
2271
set_on_stack(const bool value)2272 void Method::set_on_stack(const bool value) {
2273 // Set both the method itself and its constant pool. The constant pool
2274 // on stack means some method referring to it is also on the stack.
2275 constants()->set_on_stack(value);
2276
2277 bool already_set = on_stack();
2278 _access_flags.set_on_stack(value);
2279 if (value && !already_set) {
2280 MetadataOnStackMark::record(this);
2281 }
2282 assert(!value || !is_old() || is_obsolete() || is_running_emcp(),
2283 "emcp methods cannot run after emcp bit is cleared");
2284 }
2285
2286 // Called when the class loader is unloaded to make all methods weak.
clear_jmethod_ids(ClassLoaderData * loader_data)2287 void Method::clear_jmethod_ids(ClassLoaderData* loader_data) {
2288 loader_data->jmethod_ids()->clear_all_methods();
2289 }
2290
has_method_vptr(const void * ptr)2291 bool Method::has_method_vptr(const void* ptr) {
2292 Method m;
2293 // This assumes that the vtbl pointer is the first word of a C++ object.
2294 return dereference_vptr(&m) == dereference_vptr(ptr);
2295 }
2296
2297 // Check that this pointer is valid by checking that the vtbl pointer matches
is_valid_method(const Method * m)2298 bool Method::is_valid_method(const Method* m) {
2299 if (m == NULL) {
2300 return false;
2301 } else if ((intptr_t(m) & (wordSize-1)) != 0) {
2302 // Quick sanity check on pointer.
2303 return false;
2304 } else if (m->is_shared()) {
2305 return MetaspaceShared::is_valid_shared_method(m);
2306 } else if (Metaspace::contains_non_shared(m)) {
2307 return has_method_vptr((const void*)m);
2308 } else {
2309 return false;
2310 }
2311 }
2312
2313 #ifndef PRODUCT
print_jmethod_ids(const ClassLoaderData * loader_data,outputStream * out)2314 void Method::print_jmethod_ids(const ClassLoaderData* loader_data, outputStream* out) {
2315 out->print(" jni_method_id count = %d", loader_data->jmethod_ids()->count_methods());
2316 }
2317 #endif // PRODUCT
2318
2319
2320 // Printing
2321
2322 #ifndef PRODUCT
2323
print_on(outputStream * st) const2324 void Method::print_on(outputStream* st) const {
2325 ResourceMark rm;
2326 assert(is_method(), "must be method");
2327 st->print_cr("%s", internal_name());
2328 st->print_cr(" - this oop: " INTPTR_FORMAT, p2i(this));
2329 st->print (" - method holder: "); method_holder()->print_value_on(st); st->cr();
2330 st->print (" - constants: " INTPTR_FORMAT " ", p2i(constants()));
2331 constants()->print_value_on(st); st->cr();
2332 st->print (" - access: 0x%x ", access_flags().as_int()); access_flags().print_on(st); st->cr();
2333 st->print (" - name: "); name()->print_value_on(st); st->cr();
2334 st->print (" - signature: "); signature()->print_value_on(st); st->cr();
2335 st->print_cr(" - max stack: %d", max_stack());
2336 st->print_cr(" - max locals: %d", max_locals());
2337 st->print_cr(" - size of params: %d", size_of_parameters());
2338 st->print_cr(" - method size: %d", method_size());
2339 if (intrinsic_id() != vmIntrinsics::_none)
2340 st->print_cr(" - intrinsic id: %d %s", intrinsic_id(), vmIntrinsics::name_at(intrinsic_id()));
2341 if (highest_comp_level() != CompLevel_none)
2342 st->print_cr(" - highest level: %d", highest_comp_level());
2343 st->print_cr(" - vtable index: %d", _vtable_index);
2344 st->print_cr(" - i2i entry: " INTPTR_FORMAT, p2i(interpreter_entry()));
2345 st->print( " - adapters: ");
2346 AdapterHandlerEntry* a = ((Method*)this)->adapter();
2347 if (a == NULL)
2348 st->print_cr(INTPTR_FORMAT, p2i(a));
2349 else
2350 a->print_adapter_on(st);
2351 st->print_cr(" - compiled entry " INTPTR_FORMAT, p2i(from_compiled_entry()));
2352 st->print_cr(" - code size: %d", code_size());
2353 if (code_size() != 0) {
2354 st->print_cr(" - code start: " INTPTR_FORMAT, p2i(code_base()));
2355 st->print_cr(" - code end (excl): " INTPTR_FORMAT, p2i(code_base() + code_size()));
2356 }
2357 if (method_data() != NULL) {
2358 st->print_cr(" - method data: " INTPTR_FORMAT, p2i(method_data()));
2359 }
2360 st->print_cr(" - checked ex length: %d", checked_exceptions_length());
2361 if (checked_exceptions_length() > 0) {
2362 CheckedExceptionElement* table = checked_exceptions_start();
2363 st->print_cr(" - checked ex start: " INTPTR_FORMAT, p2i(table));
2364 if (Verbose) {
2365 for (int i = 0; i < checked_exceptions_length(); i++) {
2366 st->print_cr(" - throws %s", constants()->printable_name_at(table[i].class_cp_index));
2367 }
2368 }
2369 }
2370 if (has_linenumber_table()) {
2371 u_char* table = compressed_linenumber_table();
2372 st->print_cr(" - linenumber start: " INTPTR_FORMAT, p2i(table));
2373 if (Verbose) {
2374 CompressedLineNumberReadStream stream(table);
2375 while (stream.read_pair()) {
2376 st->print_cr(" - line %d: %d", stream.line(), stream.bci());
2377 }
2378 }
2379 }
2380 st->print_cr(" - localvar length: %d", localvariable_table_length());
2381 if (localvariable_table_length() > 0) {
2382 LocalVariableTableElement* table = localvariable_table_start();
2383 st->print_cr(" - localvar start: " INTPTR_FORMAT, p2i(table));
2384 if (Verbose) {
2385 for (int i = 0; i < localvariable_table_length(); i++) {
2386 int bci = table[i].start_bci;
2387 int len = table[i].length;
2388 const char* name = constants()->printable_name_at(table[i].name_cp_index);
2389 const char* desc = constants()->printable_name_at(table[i].descriptor_cp_index);
2390 int slot = table[i].slot;
2391 st->print_cr(" - %s %s bci=%d len=%d slot=%d", desc, name, bci, len, slot);
2392 }
2393 }
2394 }
2395 if (code() != NULL) {
2396 st->print (" - compiled code: ");
2397 code()->print_value_on(st);
2398 }
2399 if (is_native()) {
2400 st->print_cr(" - native function: " INTPTR_FORMAT, p2i(native_function()));
2401 st->print_cr(" - signature handler: " INTPTR_FORMAT, p2i(signature_handler()));
2402 }
2403 }
2404
print_linkage_flags(outputStream * st)2405 void Method::print_linkage_flags(outputStream* st) {
2406 access_flags().print_on(st);
2407 if (is_default_method()) {
2408 st->print("default ");
2409 }
2410 if (is_overpass()) {
2411 st->print("overpass ");
2412 }
2413 }
2414 #endif //PRODUCT
2415
print_value_on(outputStream * st) const2416 void Method::print_value_on(outputStream* st) const {
2417 assert(is_method(), "must be method");
2418 st->print("%s", internal_name());
2419 print_address_on(st);
2420 st->print(" ");
2421 name()->print_value_on(st);
2422 st->print(" ");
2423 signature()->print_value_on(st);
2424 st->print(" in ");
2425 method_holder()->print_value_on(st);
2426 if (WizardMode) st->print("#%d", _vtable_index);
2427 if (WizardMode) st->print("[%d,%d]", size_of_parameters(), max_locals());
2428 if (WizardMode && code() != NULL) st->print(" ((nmethod*)%p)", code());
2429 }
2430
2431 // LogTouchedMethods and PrintTouchedMethods
2432
2433 // TouchedMethodRecord -- we can't use a HashtableEntry<Method*> because
2434 // the Method may be garbage collected. Let's roll our own hash table.
2435 class TouchedMethodRecord : CHeapObj<mtTracing> {
2436 public:
2437 // It's OK to store Symbols here because they will NOT be GC'ed if
2438 // LogTouchedMethods is enabled.
2439 TouchedMethodRecord* _next;
2440 Symbol* _class_name;
2441 Symbol* _method_name;
2442 Symbol* _method_signature;
2443 };
2444
2445 static const int TOUCHED_METHOD_TABLE_SIZE = 20011;
2446 static TouchedMethodRecord** _touched_method_table = NULL;
2447
log_touched(TRAPS)2448 void Method::log_touched(TRAPS) {
2449
2450 const int table_size = TOUCHED_METHOD_TABLE_SIZE;
2451 Symbol* my_class = klass_name();
2452 Symbol* my_name = name();
2453 Symbol* my_sig = signature();
2454
2455 unsigned int hash = my_class->identity_hash() +
2456 my_name->identity_hash() +
2457 my_sig->identity_hash();
2458 juint index = juint(hash) % table_size;
2459
2460 MutexLocker ml(THREAD, TouchedMethodLog_lock);
2461 if (_touched_method_table == NULL) {
2462 _touched_method_table = NEW_C_HEAP_ARRAY2(TouchedMethodRecord*, table_size,
2463 mtTracing, CURRENT_PC);
2464 memset(_touched_method_table, 0, sizeof(TouchedMethodRecord*)*table_size);
2465 }
2466
2467 TouchedMethodRecord* ptr = _touched_method_table[index];
2468 while (ptr) {
2469 if (ptr->_class_name == my_class &&
2470 ptr->_method_name == my_name &&
2471 ptr->_method_signature == my_sig) {
2472 return;
2473 }
2474 if (ptr->_next == NULL) break;
2475 ptr = ptr->_next;
2476 }
2477 TouchedMethodRecord* nptr = NEW_C_HEAP_OBJ(TouchedMethodRecord, mtTracing);
2478 my_class->increment_refcount();
2479 my_name->increment_refcount();
2480 my_sig->increment_refcount();
2481 nptr->_class_name = my_class;
2482 nptr->_method_name = my_name;
2483 nptr->_method_signature = my_sig;
2484 nptr->_next = NULL;
2485
2486 if (ptr == NULL) {
2487 // first
2488 _touched_method_table[index] = nptr;
2489 } else {
2490 ptr->_next = nptr;
2491 }
2492 }
2493
print_touched_methods(outputStream * out)2494 void Method::print_touched_methods(outputStream* out) {
2495 MutexLocker ml(Thread::current()->is_VM_thread() ? NULL : TouchedMethodLog_lock);
2496 out->print_cr("# Method::print_touched_methods version 1");
2497 if (_touched_method_table) {
2498 for (int i = 0; i < TOUCHED_METHOD_TABLE_SIZE; i++) {
2499 TouchedMethodRecord* ptr = _touched_method_table[i];
2500 while(ptr) {
2501 ptr->_class_name->print_symbol_on(out); out->print(".");
2502 ptr->_method_name->print_symbol_on(out); out->print(":");
2503 ptr->_method_signature->print_symbol_on(out); out->cr();
2504 ptr = ptr->_next;
2505 }
2506 }
2507 }
2508 }
2509
2510 // Verification
2511
verify_on(outputStream * st)2512 void Method::verify_on(outputStream* st) {
2513 guarantee(is_method(), "object must be method");
2514 guarantee(constants()->is_constantPool(), "should be constant pool");
2515 MethodData* md = method_data();
2516 guarantee(md == NULL ||
2517 md->is_methodData(), "should be method data");
2518 }
2519