src/share/vm/oops/method.cpp

Fri, 27 Sep 2013 10:50:55 +0200

author
anoll
date
Fri, 27 Sep 2013 10:50:55 +0200
changeset 5792
510fbd28919c
parent 5732
b2e698d2276c
child 5848
ac9cb1d5a202
permissions
-rw-r--r--

8020151: PSR:PERF Large performance regressions when code cache is filled
Summary: Code cache sweeping based on method hotness; removed speculatively disconnect
Reviewed-by: kvn, iveresov

     1 /*
     2  * Copyright (c) 1997, 2013, 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  */
    25 #include "precompiled.hpp"
    26 #include "classfile/metadataOnStackMark.hpp"
    27 #include "classfile/systemDictionary.hpp"
    28 #include "code/debugInfoRec.hpp"
    29 #include "gc_interface/collectedHeap.inline.hpp"
    30 #include "interpreter/bytecodeStream.hpp"
    31 #include "interpreter/bytecodeTracer.hpp"
    32 #include "interpreter/bytecodes.hpp"
    33 #include "interpreter/interpreter.hpp"
    34 #include "interpreter/oopMapCache.hpp"
    35 #include "memory/gcLocker.hpp"
    36 #include "memory/generation.hpp"
    37 #include "memory/heapInspection.hpp"
    38 #include "memory/metadataFactory.hpp"
    39 #include "memory/oopFactory.hpp"
    40 #include "oops/constMethod.hpp"
    41 #include "oops/methodData.hpp"
    42 #include "oops/method.hpp"
    43 #include "oops/oop.inline.hpp"
    44 #include "oops/symbol.hpp"
    45 #include "prims/jvmtiExport.hpp"
    46 #include "prims/methodHandles.hpp"
    47 #include "prims/nativeLookup.hpp"
    48 #include "runtime/arguments.hpp"
    49 #include "runtime/compilationPolicy.hpp"
    50 #include "runtime/frame.inline.hpp"
    51 #include "runtime/handles.inline.hpp"
    52 #include "runtime/relocator.hpp"
    53 #include "runtime/sharedRuntime.hpp"
    54 #include "runtime/signature.hpp"
    55 #include "utilities/quickSort.hpp"
    56 #include "utilities/xmlstream.hpp"
    59 // Implementation of Method
    61 Method* Method::allocate(ClassLoaderData* loader_data,
    62                          int byte_code_size,
    63                          AccessFlags access_flags,
    64                          InlineTableSizes* sizes,
    65                          ConstMethod::MethodType method_type,
    66                          TRAPS) {
    67   assert(!access_flags.is_native() || byte_code_size == 0,
    68          "native methods should not contain byte codes");
    69   ConstMethod* cm = ConstMethod::allocate(loader_data,
    70                                           byte_code_size,
    71                                           sizes,
    72                                           method_type,
    73                                           CHECK_NULL);
    75   int size = Method::size(access_flags.is_native());
    77   return new (loader_data, size, false, MetaspaceObj::MethodType, THREAD) Method(cm, access_flags, size);
    78 }
    80 Method::Method(ConstMethod* xconst, AccessFlags access_flags, int size) {
    81   No_Safepoint_Verifier no_safepoint;
    82   set_constMethod(xconst);
    83   set_access_flags(access_flags);
    84   set_method_size(size);
    85 #ifdef CC_INTERP
    86   set_result_index(T_VOID);
    87 #endif
    88   set_intrinsic_id(vmIntrinsics::_none);
    89   set_jfr_towrite(false);
    90   set_force_inline(false);
    91   set_hidden(false);
    92   set_dont_inline(false);
    93   set_method_data(NULL);
    94   set_method_counters(NULL);
    95   set_vtable_index(Method::garbage_vtable_index);
    97   // Fix and bury in Method*
    98   set_interpreter_entry(NULL); // sets i2i entry and from_int
    99   set_adapter_entry(NULL);
   100   clear_code(); // from_c/from_i get set to c2i/i2i
   102   if (access_flags.is_native()) {
   103     clear_native_function();
   104     set_signature_handler(NULL);
   105   }
   107   NOT_PRODUCT(set_compiled_invocation_count(0);)
   108 }
   110 // Release Method*.  The nmethod will be gone when we get here because
   111 // we've walked the code cache.
   112 void Method::deallocate_contents(ClassLoaderData* loader_data) {
   113   MetadataFactory::free_metadata(loader_data, constMethod());
   114   set_constMethod(NULL);
   115   MetadataFactory::free_metadata(loader_data, method_data());
   116   set_method_data(NULL);
   117   MetadataFactory::free_metadata(loader_data, method_counters());
   118   set_method_counters(NULL);
   119   // The nmethod will be gone when we get here.
   120   if (code() != NULL) _code = NULL;
   121 }
   123 address Method::get_i2c_entry() {
   124   assert(_adapter != NULL, "must have");
   125   return _adapter->get_i2c_entry();
   126 }
   128 address Method::get_c2i_entry() {
   129   assert(_adapter != NULL, "must have");
   130   return _adapter->get_c2i_entry();
   131 }
   133 address Method::get_c2i_unverified_entry() {
   134   assert(_adapter != NULL, "must have");
   135   return _adapter->get_c2i_unverified_entry();
   136 }
   138 char* Method::name_and_sig_as_C_string() const {
   139   return name_and_sig_as_C_string(constants()->pool_holder(), name(), signature());
   140 }
   142 char* Method::name_and_sig_as_C_string(char* buf, int size) const {
   143   return name_and_sig_as_C_string(constants()->pool_holder(), name(), signature(), buf, size);
   144 }
   146 char* Method::name_and_sig_as_C_string(Klass* klass, Symbol* method_name, Symbol* signature) {
   147   const char* klass_name = klass->external_name();
   148   int klass_name_len  = (int)strlen(klass_name);
   149   int method_name_len = method_name->utf8_length();
   150   int len             = klass_name_len + 1 + method_name_len + signature->utf8_length();
   151   char* dest          = NEW_RESOURCE_ARRAY(char, len + 1);
   152   strcpy(dest, klass_name);
   153   dest[klass_name_len] = '.';
   154   strcpy(&dest[klass_name_len + 1], method_name->as_C_string());
   155   strcpy(&dest[klass_name_len + 1 + method_name_len], signature->as_C_string());
   156   dest[len] = 0;
   157   return dest;
   158 }
   160 char* Method::name_and_sig_as_C_string(Klass* klass, Symbol* method_name, Symbol* signature, char* buf, int size) {
   161   Symbol* klass_name = klass->name();
   162   klass_name->as_klass_external_name(buf, size);
   163   int len = (int)strlen(buf);
   165   if (len < size - 1) {
   166     buf[len++] = '.';
   168     method_name->as_C_string(&(buf[len]), size - len);
   169     len = (int)strlen(buf);
   171     signature->as_C_string(&(buf[len]), size - len);
   172   }
   174   return buf;
   175 }
   177 int Method::fast_exception_handler_bci_for(methodHandle mh, KlassHandle ex_klass, int throw_bci, TRAPS) {
   178   // exception table holds quadruple entries of the form (beg_bci, end_bci, handler_bci, klass_index)
   179   // access exception table
   180   ExceptionTable table(mh());
   181   int length = table.length();
   182   // iterate through all entries sequentially
   183   constantPoolHandle pool(THREAD, mh->constants());
   184   for (int i = 0; i < length; i ++) {
   185     //reacquire the table in case a GC happened
   186     ExceptionTable table(mh());
   187     int beg_bci = table.start_pc(i);
   188     int end_bci = table.end_pc(i);
   189     assert(beg_bci <= end_bci, "inconsistent exception table");
   190     if (beg_bci <= throw_bci && throw_bci < end_bci) {
   191       // exception handler bci range covers throw_bci => investigate further
   192       int handler_bci = table.handler_pc(i);
   193       int klass_index = table.catch_type_index(i);
   194       if (klass_index == 0) {
   195         return handler_bci;
   196       } else if (ex_klass.is_null()) {
   197         return handler_bci;
   198       } else {
   199         // we know the exception class => get the constraint class
   200         // this may require loading of the constraint class; if verification
   201         // fails or some other exception occurs, return handler_bci
   202         Klass* k = pool->klass_at(klass_index, CHECK_(handler_bci));
   203         KlassHandle klass = KlassHandle(THREAD, k);
   204         assert(klass.not_null(), "klass not loaded");
   205         if (ex_klass->is_subtype_of(klass())) {
   206           return handler_bci;
   207         }
   208       }
   209     }
   210   }
   212   return -1;
   213 }
   215 void Method::mask_for(int bci, InterpreterOopMap* mask) {
   217   Thread* myThread    = Thread::current();
   218   methodHandle h_this(myThread, this);
   219 #ifdef ASSERT
   220   bool has_capability = myThread->is_VM_thread() ||
   221                         myThread->is_ConcurrentGC_thread() ||
   222                         myThread->is_GC_task_thread();
   224   if (!has_capability) {
   225     if (!VerifyStack && !VerifyLastFrame) {
   226       // verify stack calls this outside VM thread
   227       warning("oopmap should only be accessed by the "
   228               "VM, GC task or CMS threads (or during debugging)");
   229       InterpreterOopMap local_mask;
   230       method_holder()->mask_for(h_this, bci, &local_mask);
   231       local_mask.print();
   232     }
   233   }
   234 #endif
   235   method_holder()->mask_for(h_this, bci, mask);
   236   return;
   237 }
   240 int Method::bci_from(address bcp) const {
   241 #ifdef ASSERT
   242   { ResourceMark rm;
   243   assert(is_native() && bcp == code_base() || contains(bcp) || is_error_reported(),
   244          err_msg("bcp doesn't belong to this method: bcp: " INTPTR_FORMAT ", method: %s", bcp, name_and_sig_as_C_string()));
   245   }
   246 #endif
   247   return bcp - code_base();
   248 }
   251 // Return (int)bcx if it appears to be a valid BCI.
   252 // Return bci_from((address)bcx) if it appears to be a valid BCP.
   253 // Return -1 otherwise.
   254 // Used by profiling code, when invalid data is a possibility.
   255 // The caller is responsible for validating the Method* itself.
   256 int Method::validate_bci_from_bcx(intptr_t bcx) const {
   257   // keep bci as -1 if not a valid bci
   258   int bci = -1;
   259   if (bcx == 0 || (address)bcx == code_base()) {
   260     // code_size() may return 0 and we allow 0 here
   261     // the method may be native
   262     bci = 0;
   263   } else if (frame::is_bci(bcx)) {
   264     if (bcx < code_size()) {
   265       bci = (int)bcx;
   266     }
   267   } else if (contains((address)bcx)) {
   268     bci = (address)bcx - code_base();
   269   }
   270   // Assert that if we have dodged any asserts, bci is negative.
   271   assert(bci == -1 || bci == bci_from(bcp_from(bci)), "sane bci if >=0");
   272   return bci;
   273 }
   275 address Method::bcp_from(int bci) const {
   276   assert((is_native() && bci == 0)  || (!is_native() && 0 <= bci && bci < code_size()), "illegal bci");
   277   address bcp = code_base() + bci;
   278   assert(is_native() && bcp == code_base() || contains(bcp), "bcp doesn't belong to this method");
   279   return bcp;
   280 }
   283 int Method::size(bool is_native) {
   284   // If native, then include pointers for native_function and signature_handler
   285   int extra_bytes = (is_native) ? 2*sizeof(address*) : 0;
   286   int extra_words = align_size_up(extra_bytes, BytesPerWord) / BytesPerWord;
   287   return align_object_size(header_size() + extra_words);
   288 }
   291 Symbol* Method::klass_name() const {
   292   Klass* k = method_holder();
   293   assert(k->is_klass(), "must be klass");
   294   InstanceKlass* ik = (InstanceKlass*) k;
   295   return ik->name();
   296 }
   299 // Attempt to return method oop to original state.  Clear any pointers
   300 // (to objects outside the shared spaces).  We won't be able to predict
   301 // where they should point in a new JVM.  Further initialize some
   302 // entries now in order allow them to be write protected later.
   304 void Method::remove_unshareable_info() {
   305   unlink_method();
   306 }
   309 bool Method::was_executed_more_than(int n) {
   310   // Invocation counter is reset when the Method* is compiled.
   311   // If the method has compiled code we therefore assume it has
   312   // be excuted more than n times.
   313   if (is_accessor() || is_empty_method() || (code() != NULL)) {
   314     // interpreter doesn't bump invocation counter of trivial methods
   315     // compiler does not bump invocation counter of compiled methods
   316     return true;
   317   }
   318   else if ((method_counters() != NULL &&
   319             method_counters()->invocation_counter()->carry()) ||
   320            (method_data() != NULL &&
   321             method_data()->invocation_counter()->carry())) {
   322     // The carry bit is set when the counter overflows and causes
   323     // a compilation to occur.  We don't know how many times
   324     // the counter has been reset, so we simply assume it has
   325     // been executed more than n times.
   326     return true;
   327   } else {
   328     return invocation_count() > n;
   329   }
   330 }
   332 #ifndef PRODUCT
   333 void Method::print_invocation_count() {
   334   if (is_static()) tty->print("static ");
   335   if (is_final()) tty->print("final ");
   336   if (is_synchronized()) tty->print("synchronized ");
   337   if (is_native()) tty->print("native ");
   338   method_holder()->name()->print_symbol_on(tty);
   339   tty->print(".");
   340   name()->print_symbol_on(tty);
   341   signature()->print_symbol_on(tty);
   343   if (WizardMode) {
   344     // dump the size of the byte codes
   345     tty->print(" {%d}", code_size());
   346   }
   347   tty->cr();
   349   tty->print_cr ("  interpreter_invocation_count: %8d ", interpreter_invocation_count());
   350   tty->print_cr ("  invocation_counter:           %8d ", invocation_count());
   351   tty->print_cr ("  backedge_counter:             %8d ", backedge_count());
   352   if (CountCompiledCalls) {
   353     tty->print_cr ("  compiled_invocation_count: %8d ", compiled_invocation_count());
   354   }
   356 }
   357 #endif
   359 // Build a MethodData* object to hold information about this method
   360 // collected in the interpreter.
   361 void Method::build_interpreter_method_data(methodHandle method, TRAPS) {
   362   // Do not profile method if current thread holds the pending list lock,
   363   // which avoids deadlock for acquiring the MethodData_lock.
   364   if (InstanceRefKlass::owns_pending_list_lock((JavaThread*)THREAD)) {
   365     return;
   366   }
   368   // Grab a lock here to prevent multiple
   369   // MethodData*s from being created.
   370   MutexLocker ml(MethodData_lock, THREAD);
   371   if (method->method_data() == NULL) {
   372     ClassLoaderData* loader_data = method->method_holder()->class_loader_data();
   373     MethodData* method_data = MethodData::allocate(loader_data, method, CHECK);
   374     method->set_method_data(method_data);
   375     if (PrintMethodData && (Verbose || WizardMode)) {
   376       ResourceMark rm(THREAD);
   377       tty->print("build_interpreter_method_data for ");
   378       method->print_name(tty);
   379       tty->cr();
   380       // At the end of the run, the MDO, full of data, will be dumped.
   381     }
   382   }
   383 }
   385 MethodCounters* Method::build_method_counters(Method* m, TRAPS) {
   386   methodHandle mh(m);
   387   ClassLoaderData* loader_data = mh->method_holder()->class_loader_data();
   388   MethodCounters* counters = MethodCounters::allocate(loader_data, CHECK_NULL);
   389   if (mh->method_counters() == NULL) {
   390     mh->set_method_counters(counters);
   391   } else {
   392     MetadataFactory::free_metadata(loader_data, counters);
   393   }
   394   return mh->method_counters();
   395 }
   397 void Method::cleanup_inline_caches() {
   398   // The current system doesn't use inline caches in the interpreter
   399   // => nothing to do (keep this method around for future use)
   400 }
   403 int Method::extra_stack_words() {
   404   // not an inline function, to avoid a header dependency on Interpreter
   405   return extra_stack_entries() * Interpreter::stackElementSize;
   406 }
   409 void Method::compute_size_of_parameters(Thread *thread) {
   410   ArgumentSizeComputer asc(signature());
   411   set_size_of_parameters(asc.size() + (is_static() ? 0 : 1));
   412 }
   414 #ifdef CC_INTERP
   415 void Method::set_result_index(BasicType type)          {
   416   _result_index = Interpreter::BasicType_as_index(type);
   417 }
   418 #endif
   420 BasicType Method::result_type() const {
   421   ResultTypeFinder rtf(signature());
   422   return rtf.type();
   423 }
   426 bool Method::is_empty_method() const {
   427   return  code_size() == 1
   428       && *code_base() == Bytecodes::_return;
   429 }
   432 bool Method::is_vanilla_constructor() const {
   433   // Returns true if this method is a vanilla constructor, i.e. an "<init>" "()V" method
   434   // which only calls the superclass vanilla constructor and possibly does stores of
   435   // zero constants to local fields:
   436   //
   437   //   aload_0
   438   //   invokespecial
   439   //   indexbyte1
   440   //   indexbyte2
   441   //
   442   // followed by an (optional) sequence of:
   443   //
   444   //   aload_0
   445   //   aconst_null / iconst_0 / fconst_0 / dconst_0
   446   //   putfield
   447   //   indexbyte1
   448   //   indexbyte2
   449   //
   450   // followed by:
   451   //
   452   //   return
   454   assert(name() == vmSymbols::object_initializer_name(),    "Should only be called for default constructors");
   455   assert(signature() == vmSymbols::void_method_signature(), "Should only be called for default constructors");
   456   int size = code_size();
   457   // Check if size match
   458   if (size == 0 || size % 5 != 0) return false;
   459   address cb = code_base();
   460   int last = size - 1;
   461   if (cb[0] != Bytecodes::_aload_0 || cb[1] != Bytecodes::_invokespecial || cb[last] != Bytecodes::_return) {
   462     // Does not call superclass default constructor
   463     return false;
   464   }
   465   // Check optional sequence
   466   for (int i = 4; i < last; i += 5) {
   467     if (cb[i] != Bytecodes::_aload_0) return false;
   468     if (!Bytecodes::is_zero_const(Bytecodes::cast(cb[i+1]))) return false;
   469     if (cb[i+2] != Bytecodes::_putfield) return false;
   470   }
   471   return true;
   472 }
   475 bool Method::compute_has_loops_flag() {
   476   BytecodeStream bcs(this);
   477   Bytecodes::Code bc;
   479   while ((bc = bcs.next()) >= 0) {
   480     switch( bc ) {
   481       case Bytecodes::_ifeq:
   482       case Bytecodes::_ifnull:
   483       case Bytecodes::_iflt:
   484       case Bytecodes::_ifle:
   485       case Bytecodes::_ifne:
   486       case Bytecodes::_ifnonnull:
   487       case Bytecodes::_ifgt:
   488       case Bytecodes::_ifge:
   489       case Bytecodes::_if_icmpeq:
   490       case Bytecodes::_if_icmpne:
   491       case Bytecodes::_if_icmplt:
   492       case Bytecodes::_if_icmpgt:
   493       case Bytecodes::_if_icmple:
   494       case Bytecodes::_if_icmpge:
   495       case Bytecodes::_if_acmpeq:
   496       case Bytecodes::_if_acmpne:
   497       case Bytecodes::_goto:
   498       case Bytecodes::_jsr:
   499         if( bcs.dest() < bcs.next_bci() ) _access_flags.set_has_loops();
   500         break;
   502       case Bytecodes::_goto_w:
   503       case Bytecodes::_jsr_w:
   504         if( bcs.dest_w() < bcs.next_bci() ) _access_flags.set_has_loops();
   505         break;
   506     }
   507   }
   508   _access_flags.set_loops_flag_init();
   509   return _access_flags.has_loops();
   510 }
   512 bool Method::is_final_method(AccessFlags class_access_flags) const {
   513   // or "does_not_require_vtable_entry"
   514   // overpass can occur, is not final (reuses vtable entry)
   515   // private methods get vtable entries for backward class compatibility.
   516   if (is_overpass())  return false;
   517   return is_final() || class_access_flags.is_final();
   518 }
   520 bool Method::is_final_method() const {
   521   return is_final_method(method_holder()->access_flags());
   522 }
   524 bool Method::can_be_statically_bound(AccessFlags class_access_flags) const {
   525   if (is_final_method(class_access_flags))  return true;
   526 #ifdef ASSERT
   527   bool is_nonv = (vtable_index() == nonvirtual_vtable_index);
   528   if (class_access_flags.is_interface())  assert(is_nonv == is_static(), err_msg("is_nonv=%s", is_nonv));
   529 #endif
   530   assert(valid_vtable_index() || valid_itable_index(), "method must be linked before we ask this question");
   531   return vtable_index() == nonvirtual_vtable_index;
   532 }
   534 bool Method::can_be_statically_bound() const {
   535   return can_be_statically_bound(method_holder()->access_flags());
   536 }
   538 bool Method::is_accessor() const {
   539   if (code_size() != 5) return false;
   540   if (size_of_parameters() != 1) return false;
   541   if (java_code_at(0) != Bytecodes::_aload_0 ) return false;
   542   if (java_code_at(1) != Bytecodes::_getfield) return false;
   543   if (java_code_at(4) != Bytecodes::_areturn &&
   544       java_code_at(4) != Bytecodes::_ireturn ) return false;
   545   return true;
   546 }
   549 bool Method::is_initializer() const {
   550   return name() == vmSymbols::object_initializer_name() || is_static_initializer();
   551 }
   553 bool Method::has_valid_initializer_flags() const {
   554   return (is_static() ||
   555           method_holder()->major_version() < 51);
   556 }
   558 bool Method::is_static_initializer() const {
   559   // For classfiles version 51 or greater, ensure that the clinit method is
   560   // static.  Non-static methods with the name "<clinit>" are not static
   561   // initializers. (older classfiles exempted for backward compatibility)
   562   return name() == vmSymbols::class_initializer_name() &&
   563          has_valid_initializer_flags();
   564 }
   567 objArrayHandle Method::resolved_checked_exceptions_impl(Method* this_oop, TRAPS) {
   568   int length = this_oop->checked_exceptions_length();
   569   if (length == 0) {  // common case
   570     return objArrayHandle(THREAD, Universe::the_empty_class_klass_array());
   571   } else {
   572     methodHandle h_this(THREAD, this_oop);
   573     objArrayOop m_oop = oopFactory::new_objArray(SystemDictionary::Class_klass(), length, CHECK_(objArrayHandle()));
   574     objArrayHandle mirrors (THREAD, m_oop);
   575     for (int i = 0; i < length; i++) {
   576       CheckedExceptionElement* table = h_this->checked_exceptions_start(); // recompute on each iteration, not gc safe
   577       Klass* k = h_this->constants()->klass_at(table[i].class_cp_index, CHECK_(objArrayHandle()));
   578       assert(k->is_subclass_of(SystemDictionary::Throwable_klass()), "invalid exception class");
   579       mirrors->obj_at_put(i, k->java_mirror());
   580     }
   581     return mirrors;
   582   }
   583 };
   586 int Method::line_number_from_bci(int bci) const {
   587   if (bci == SynchronizationEntryBCI) bci = 0;
   588   assert(bci == 0 || 0 <= bci && bci < code_size(), "illegal bci");
   589   int best_bci  =  0;
   590   int best_line = -1;
   592   if (has_linenumber_table()) {
   593     // The line numbers are a short array of 2-tuples [start_pc, line_number].
   594     // Not necessarily sorted and not necessarily one-to-one.
   595     CompressedLineNumberReadStream stream(compressed_linenumber_table());
   596     while (stream.read_pair()) {
   597       if (stream.bci() == bci) {
   598         // perfect match
   599         return stream.line();
   600       } else {
   601         // update best_bci/line
   602         if (stream.bci() < bci && stream.bci() >= best_bci) {
   603           best_bci  = stream.bci();
   604           best_line = stream.line();
   605         }
   606       }
   607     }
   608   }
   609   return best_line;
   610 }
   613 bool Method::is_klass_loaded_by_klass_index(int klass_index) const {
   614   if( constants()->tag_at(klass_index).is_unresolved_klass() ) {
   615     Thread *thread = Thread::current();
   616     Symbol* klass_name = constants()->klass_name_at(klass_index);
   617     Handle loader(thread, method_holder()->class_loader());
   618     Handle prot  (thread, method_holder()->protection_domain());
   619     return SystemDictionary::find(klass_name, loader, prot, thread) != NULL;
   620   } else {
   621     return true;
   622   }
   623 }
   626 bool Method::is_klass_loaded(int refinfo_index, bool must_be_resolved) const {
   627   int klass_index = constants()->klass_ref_index_at(refinfo_index);
   628   if (must_be_resolved) {
   629     // Make sure klass is resolved in constantpool.
   630     if (constants()->tag_at(klass_index).is_unresolved_klass()) return false;
   631   }
   632   return is_klass_loaded_by_klass_index(klass_index);
   633 }
   636 void Method::set_native_function(address function, bool post_event_flag) {
   637   assert(function != NULL, "use clear_native_function to unregister natives");
   638   assert(!is_method_handle_intrinsic() || function == SharedRuntime::native_method_throw_unsatisfied_link_error_entry(), "");
   639   address* native_function = native_function_addr();
   641   // We can see racers trying to place the same native function into place. Once
   642   // is plenty.
   643   address current = *native_function;
   644   if (current == function) return;
   645   if (post_event_flag && JvmtiExport::should_post_native_method_bind() &&
   646       function != NULL) {
   647     // native_method_throw_unsatisfied_link_error_entry() should only
   648     // be passed when post_event_flag is false.
   649     assert(function !=
   650       SharedRuntime::native_method_throw_unsatisfied_link_error_entry(),
   651       "post_event_flag mis-match");
   653     // post the bind event, and possible change the bind function
   654     JvmtiExport::post_native_method_bind(this, &function);
   655   }
   656   *native_function = function;
   657   // This function can be called more than once. We must make sure that we always
   658   // use the latest registered method -> check if a stub already has been generated.
   659   // If so, we have to make it not_entrant.
   660   nmethod* nm = code(); // Put it into local variable to guard against concurrent updates
   661   if (nm != NULL) {
   662     nm->make_not_entrant();
   663   }
   664 }
   667 bool Method::has_native_function() const {
   668   if (is_method_handle_intrinsic())
   669     return false;  // special-cased in SharedRuntime::generate_native_wrapper
   670   address func = native_function();
   671   return (func != NULL && func != SharedRuntime::native_method_throw_unsatisfied_link_error_entry());
   672 }
   675 void Method::clear_native_function() {
   676   // Note: is_method_handle_intrinsic() is allowed here.
   677   set_native_function(
   678     SharedRuntime::native_method_throw_unsatisfied_link_error_entry(),
   679     !native_bind_event_is_interesting);
   680   clear_code();
   681 }
   683 address Method::critical_native_function() {
   684   methodHandle mh(this);
   685   return NativeLookup::lookup_critical_entry(mh);
   686 }
   689 void Method::set_signature_handler(address handler) {
   690   address* signature_handler =  signature_handler_addr();
   691   *signature_handler = handler;
   692 }
   695 void Method::print_made_not_compilable(int comp_level, bool is_osr, bool report, const char* reason) {
   696   if (PrintCompilation && report) {
   697     ttyLocker ttyl;
   698     tty->print("made not %scompilable on ", is_osr ? "OSR " : "");
   699     if (comp_level == CompLevel_all) {
   700       tty->print("all levels ");
   701     } else {
   702       tty->print("levels ");
   703       for (int i = (int)CompLevel_none; i <= comp_level; i++) {
   704         tty->print("%d ", i);
   705       }
   706     }
   707     this->print_short_name(tty);
   708     int size = this->code_size();
   709     if (size > 0) {
   710       tty->print(" (%d bytes)", size);
   711     }
   712     if (reason != NULL) {
   713       tty->print("   %s", reason);
   714     }
   715     tty->cr();
   716   }
   717   if ((TraceDeoptimization || LogCompilation) && (xtty != NULL)) {
   718     ttyLocker ttyl;
   719     xtty->begin_elem("make_not_%scompilable thread='" UINTX_FORMAT "'",
   720                      is_osr ? "osr_" : "", os::current_thread_id());
   721     if (reason != NULL) {
   722       xtty->print(" reason=\'%s\'", reason);
   723     }
   724     xtty->method(this);
   725     xtty->stamp();
   726     xtty->end_elem();
   727   }
   728 }
   730 bool Method::is_always_compilable() const {
   731   // Generated adapters must be compiled
   732   if (is_method_handle_intrinsic() && is_synthetic()) {
   733     assert(!is_not_c1_compilable(), "sanity check");
   734     assert(!is_not_c2_compilable(), "sanity check");
   735     return true;
   736   }
   738   return false;
   739 }
   741 bool Method::is_not_compilable(int comp_level) const {
   742   if (number_of_breakpoints() > 0)
   743     return true;
   744   if (is_always_compilable())
   745     return false;
   746   if (comp_level == CompLevel_any)
   747     return is_not_c1_compilable() || is_not_c2_compilable();
   748   if (is_c1_compile(comp_level))
   749     return is_not_c1_compilable();
   750   if (is_c2_compile(comp_level))
   751     return is_not_c2_compilable();
   752   return false;
   753 }
   755 // call this when compiler finds that this method is not compilable
   756 void Method::set_not_compilable(int comp_level, bool report, const char* reason) {
   757   if (is_always_compilable()) {
   758     // Don't mark a method which should be always compilable
   759     return;
   760   }
   761   print_made_not_compilable(comp_level, /*is_osr*/ false, report, reason);
   762   if (comp_level == CompLevel_all) {
   763     set_not_c1_compilable();
   764     set_not_c2_compilable();
   765   } else {
   766     if (is_c1_compile(comp_level))
   767       set_not_c1_compilable();
   768     if (is_c2_compile(comp_level))
   769       set_not_c2_compilable();
   770   }
   771   CompilationPolicy::policy()->disable_compilation(this);
   772   assert(!CompilationPolicy::can_be_compiled(this, comp_level), "sanity check");
   773 }
   775 bool Method::is_not_osr_compilable(int comp_level) const {
   776   if (is_not_compilable(comp_level))
   777     return true;
   778   if (comp_level == CompLevel_any)
   779     return is_not_c1_osr_compilable() || is_not_c2_osr_compilable();
   780   if (is_c1_compile(comp_level))
   781     return is_not_c1_osr_compilable();
   782   if (is_c2_compile(comp_level))
   783     return is_not_c2_osr_compilable();
   784   return false;
   785 }
   787 void Method::set_not_osr_compilable(int comp_level, bool report, const char* reason) {
   788   print_made_not_compilable(comp_level, /*is_osr*/ true, report, reason);
   789   if (comp_level == CompLevel_all) {
   790     set_not_c1_osr_compilable();
   791     set_not_c2_osr_compilable();
   792   } else {
   793     if (is_c1_compile(comp_level))
   794       set_not_c1_osr_compilable();
   795     if (is_c2_compile(comp_level))
   796       set_not_c2_osr_compilable();
   797   }
   798   CompilationPolicy::policy()->disable_compilation(this);
   799   assert(!CompilationPolicy::can_be_osr_compiled(this, comp_level), "sanity check");
   800 }
   802 // Revert to using the interpreter and clear out the nmethod
   803 void Method::clear_code() {
   805   // this may be NULL if c2i adapters have not been made yet
   806   // Only should happen at allocate time.
   807   if (_adapter == NULL) {
   808     _from_compiled_entry    = NULL;
   809   } else {
   810     _from_compiled_entry    = _adapter->get_c2i_entry();
   811   }
   812   OrderAccess::storestore();
   813   _from_interpreted_entry = _i2i_entry;
   814   OrderAccess::storestore();
   815   _code = NULL;
   816 }
   818 // Called by class data sharing to remove any entry points (which are not shared)
   819 void Method::unlink_method() {
   820   _code = NULL;
   821   _i2i_entry = NULL;
   822   _from_interpreted_entry = NULL;
   823   if (is_native()) {
   824     *native_function_addr() = NULL;
   825     set_signature_handler(NULL);
   826   }
   827   NOT_PRODUCT(set_compiled_invocation_count(0);)
   828   _adapter = NULL;
   829   _from_compiled_entry = NULL;
   831   // In case of DumpSharedSpaces, _method_data should always be NULL.
   832   //
   833   // During runtime (!DumpSharedSpaces), when we are cleaning a
   834   // shared class that failed to load, this->link_method() may
   835   // have already been called (before an exception happened), so
   836   // this->_method_data may not be NULL.
   837   assert(!DumpSharedSpaces || _method_data == NULL, "unexpected method data?");
   839   set_method_data(NULL);
   840   set_method_counters(NULL);
   841 }
   843 // Called when the method_holder is getting linked. Setup entrypoints so the method
   844 // is ready to be called from interpreter, compiler, and vtables.
   845 void Method::link_method(methodHandle h_method, TRAPS) {
   846   // If the code cache is full, we may reenter this function for the
   847   // leftover methods that weren't linked.
   848   if (_i2i_entry != NULL) return;
   850   assert(_adapter == NULL, "init'd to NULL" );
   851   assert( _code == NULL, "nothing compiled yet" );
   853   // Setup interpreter entrypoint
   854   assert(this == h_method(), "wrong h_method()" );
   855   address entry = Interpreter::entry_for_method(h_method);
   856   assert(entry != NULL, "interpreter entry must be non-null");
   857   // Sets both _i2i_entry and _from_interpreted_entry
   858   set_interpreter_entry(entry);
   860   // Don't overwrite already registered native entries.
   861   if (is_native() && !has_native_function()) {
   862     set_native_function(
   863       SharedRuntime::native_method_throw_unsatisfied_link_error_entry(),
   864       !native_bind_event_is_interesting);
   865   }
   867   // Setup compiler entrypoint.  This is made eagerly, so we do not need
   868   // special handling of vtables.  An alternative is to make adapters more
   869   // lazily by calling make_adapter() from from_compiled_entry() for the
   870   // normal calls.  For vtable calls life gets more complicated.  When a
   871   // call-site goes mega-morphic we need adapters in all methods which can be
   872   // called from the vtable.  We need adapters on such methods that get loaded
   873   // later.  Ditto for mega-morphic itable calls.  If this proves to be a
   874   // problem we'll make these lazily later.
   875   (void) make_adapters(h_method, CHECK);
   877   // ONLY USE the h_method now as make_adapter may have blocked
   879 }
   881 address Method::make_adapters(methodHandle mh, TRAPS) {
   882   // Adapters for compiled code are made eagerly here.  They are fairly
   883   // small (generally < 100 bytes) and quick to make (and cached and shared)
   884   // so making them eagerly shouldn't be too expensive.
   885   AdapterHandlerEntry* adapter = AdapterHandlerLibrary::get_adapter(mh);
   886   if (adapter == NULL ) {
   887     THROW_MSG_NULL(vmSymbols::java_lang_VirtualMachineError(), "out of space in CodeCache for adapters");
   888   }
   890   mh->set_adapter_entry(adapter);
   891   mh->_from_compiled_entry = adapter->get_c2i_entry();
   892   return adapter->get_c2i_entry();
   893 }
   895 // The verified_code_entry() must be called when a invoke is resolved
   896 // on this method.
   898 // It returns the compiled code entry point, after asserting not null.
   899 // This function is called after potential safepoints so that nmethod
   900 // or adapter that it points to is still live and valid.
   901 // This function must not hit a safepoint!
   902 address Method::verified_code_entry() {
   903   debug_only(No_Safepoint_Verifier nsv;)
   904   assert(_from_compiled_entry != NULL, "must be set");
   905   return _from_compiled_entry;
   906 }
   908 // Check that if an nmethod ref exists, it has a backlink to this or no backlink at all
   909 // (could be racing a deopt).
   910 // Not inline to avoid circular ref.
   911 bool Method::check_code() const {
   912   // cached in a register or local.  There's a race on the value of the field.
   913   nmethod *code = (nmethod *)OrderAccess::load_ptr_acquire(&_code);
   914   return code == NULL || (code->method() == NULL) || (code->method() == (Method*)this && !code->is_osr_method());
   915 }
   917 // Install compiled code.  Instantly it can execute.
   918 void Method::set_code(methodHandle mh, nmethod *code) {
   919   assert( code, "use clear_code to remove code" );
   920   assert( mh->check_code(), "" );
   922   guarantee(mh->adapter() != NULL, "Adapter blob must already exist!");
   924   // These writes must happen in this order, because the interpreter will
   925   // directly jump to from_interpreted_entry which jumps to an i2c adapter
   926   // which jumps to _from_compiled_entry.
   927   mh->_code = code;             // Assign before allowing compiled code to exec
   929   int comp_level = code->comp_level();
   930   // In theory there could be a race here. In practice it is unlikely
   931   // and not worth worrying about.
   932   if (comp_level > mh->highest_comp_level()) {
   933     mh->set_highest_comp_level(comp_level);
   934   }
   936   OrderAccess::storestore();
   937 #ifdef SHARK
   938   mh->_from_interpreted_entry = code->insts_begin();
   939 #else //!SHARK
   940   mh->_from_compiled_entry = code->verified_entry_point();
   941   OrderAccess::storestore();
   942   // Instantly compiled code can execute.
   943   if (!mh->is_method_handle_intrinsic())
   944     mh->_from_interpreted_entry = mh->get_i2c_entry();
   945 #endif //!SHARK
   946 }
   949 bool Method::is_overridden_in(Klass* k) const {
   950   InstanceKlass* ik = InstanceKlass::cast(k);
   952   if (ik->is_interface()) return false;
   954   // If method is an interface, we skip it - except if it
   955   // is a miranda method
   956   if (method_holder()->is_interface()) {
   957     // Check that method is not a miranda method
   958     if (ik->lookup_method(name(), signature()) == NULL) {
   959       // No implementation exist - so miranda method
   960       return false;
   961     }
   962     return true;
   963   }
   965   assert(ik->is_subclass_of(method_holder()), "should be subklass");
   966   assert(ik->vtable() != NULL, "vtable should exist");
   967   if (!has_vtable_index()) {
   968     return false;
   969   } else {
   970     Method* vt_m = ik->method_at_vtable(vtable_index());
   971     return vt_m != this;
   972   }
   973 }
   976 // give advice about whether this Method* should be cached or not
   977 bool Method::should_not_be_cached() const {
   978   if (is_old()) {
   979     // This method has been redefined. It is either EMCP or obsolete
   980     // and we don't want to cache it because that would pin the method
   981     // down and prevent it from being collectible if and when it
   982     // finishes executing.
   983     return true;
   984   }
   986   // caching this method should be just fine
   987   return false;
   988 }
   991 /**
   992  *  Returns true if this is one of the specially treated methods for
   993  *  security related stack walks (like Reflection.getCallerClass).
   994  */
   995 bool Method::is_ignored_by_security_stack_walk() const {
   996   const bool use_new_reflection = JDK_Version::is_gte_jdk14x_version() && UseNewReflection;
   998   if (intrinsic_id() == vmIntrinsics::_invoke) {
   999     // This is Method.invoke() -- ignore it
  1000     return true;
  1002   if (use_new_reflection &&
  1003       method_holder()->is_subclass_of(SystemDictionary::reflect_MethodAccessorImpl_klass())) {
  1004     // This is an auxilary frame -- ignore it
  1005     return true;
  1007   if (is_method_handle_intrinsic() || is_compiled_lambda_form()) {
  1008     // This is an internal adapter frame for method handles -- ignore it
  1009     return true;
  1011   return false;
  1015 // Constant pool structure for invoke methods:
  1016 enum {
  1017   _imcp_invoke_name = 1,        // utf8: 'invokeExact', etc.
  1018   _imcp_invoke_signature,       // utf8: (variable Symbol*)
  1019   _imcp_limit
  1020 };
  1022 // Test if this method is an MH adapter frame generated by Java code.
  1023 // Cf. java/lang/invoke/InvokerBytecodeGenerator
  1024 bool Method::is_compiled_lambda_form() const {
  1025   return intrinsic_id() == vmIntrinsics::_compiledLambdaForm;
  1028 // Test if this method is an internal MH primitive method.
  1029 bool Method::is_method_handle_intrinsic() const {
  1030   vmIntrinsics::ID iid = intrinsic_id();
  1031   return (MethodHandles::is_signature_polymorphic(iid) &&
  1032           MethodHandles::is_signature_polymorphic_intrinsic(iid));
  1035 bool Method::has_member_arg() const {
  1036   vmIntrinsics::ID iid = intrinsic_id();
  1037   return (MethodHandles::is_signature_polymorphic(iid) &&
  1038           MethodHandles::has_member_arg(iid));
  1041 // Make an instance of a signature-polymorphic internal MH primitive.
  1042 methodHandle Method::make_method_handle_intrinsic(vmIntrinsics::ID iid,
  1043                                                          Symbol* signature,
  1044                                                          TRAPS) {
  1045   ResourceMark rm;
  1046   methodHandle empty;
  1048   KlassHandle holder = SystemDictionary::MethodHandle_klass();
  1049   Symbol* name = MethodHandles::signature_polymorphic_intrinsic_name(iid);
  1050   assert(iid == MethodHandles::signature_polymorphic_name_id(name), "");
  1051   if (TraceMethodHandles) {
  1052     tty->print_cr("make_method_handle_intrinsic MH.%s%s", name->as_C_string(), signature->as_C_string());
  1055   // invariant:   cp->symbol_at_put is preceded by a refcount increment (more usually a lookup)
  1056   name->increment_refcount();
  1057   signature->increment_refcount();
  1059   int cp_length = _imcp_limit;
  1060   ClassLoaderData* loader_data = holder->class_loader_data();
  1061   constantPoolHandle cp;
  1063     ConstantPool* cp_oop = ConstantPool::allocate(loader_data, cp_length, CHECK_(empty));
  1064     cp = constantPoolHandle(THREAD, cp_oop);
  1066   cp->set_pool_holder(InstanceKlass::cast(holder()));
  1067   cp->symbol_at_put(_imcp_invoke_name,       name);
  1068   cp->symbol_at_put(_imcp_invoke_signature,  signature);
  1069   cp->set_has_preresolution();
  1071   // decide on access bits:  public or not?
  1072   int flags_bits = (JVM_ACC_NATIVE | JVM_ACC_SYNTHETIC | JVM_ACC_FINAL);
  1073   bool must_be_static = MethodHandles::is_signature_polymorphic_static(iid);
  1074   if (must_be_static)  flags_bits |= JVM_ACC_STATIC;
  1075   assert((flags_bits & JVM_ACC_PUBLIC) == 0, "do not expose these methods");
  1077   methodHandle m;
  1079     InlineTableSizes sizes;
  1080     Method* m_oop = Method::allocate(loader_data, 0,
  1081                                      accessFlags_from(flags_bits), &sizes,
  1082                                      ConstMethod::NORMAL, CHECK_(empty));
  1083     m = methodHandle(THREAD, m_oop);
  1085   m->set_constants(cp());
  1086   m->set_name_index(_imcp_invoke_name);
  1087   m->set_signature_index(_imcp_invoke_signature);
  1088   assert(MethodHandles::is_signature_polymorphic_name(m->name()), "");
  1089   assert(m->signature() == signature, "");
  1090 #ifdef CC_INTERP
  1091   ResultTypeFinder rtf(signature);
  1092   m->set_result_index(rtf.type());
  1093 #endif
  1094   m->compute_size_of_parameters(THREAD);
  1095   m->init_intrinsic_id();
  1096   assert(m->is_method_handle_intrinsic(), "");
  1097 #ifdef ASSERT
  1098   if (!MethodHandles::is_signature_polymorphic(m->intrinsic_id()))  m->print();
  1099   assert(MethodHandles::is_signature_polymorphic(m->intrinsic_id()), "must be an invoker");
  1100   assert(m->intrinsic_id() == iid, "correctly predicted iid");
  1101 #endif //ASSERT
  1103   // Finally, set up its entry points.
  1104   assert(m->can_be_statically_bound(), "");
  1105   m->set_vtable_index(Method::nonvirtual_vtable_index);
  1106   m->link_method(m, CHECK_(empty));
  1108   if (TraceMethodHandles && (Verbose || WizardMode))
  1109     m->print_on(tty);
  1111   return m;
  1114 Klass* Method::check_non_bcp_klass(Klass* klass) {
  1115   if (klass != NULL && klass->class_loader() != NULL) {
  1116     if (klass->oop_is_objArray())
  1117       klass = ObjArrayKlass::cast(klass)->bottom_klass();
  1118     return klass;
  1120   return NULL;
  1124 methodHandle Method::clone_with_new_data(methodHandle m, u_char* new_code, int new_code_length,
  1125                                                 u_char* new_compressed_linenumber_table, int new_compressed_linenumber_size, TRAPS) {
  1126   // Code below does not work for native methods - they should never get rewritten anyway
  1127   assert(!m->is_native(), "cannot rewrite native methods");
  1128   // Allocate new Method*
  1129   AccessFlags flags = m->access_flags();
  1131   ConstMethod* cm = m->constMethod();
  1132   int checked_exceptions_len = cm->checked_exceptions_length();
  1133   int localvariable_len = cm->localvariable_table_length();
  1134   int exception_table_len = cm->exception_table_length();
  1135   int method_parameters_len = cm->method_parameters_length();
  1136   int method_annotations_len = cm->method_annotations_length();
  1137   int parameter_annotations_len = cm->parameter_annotations_length();
  1138   int type_annotations_len = cm->type_annotations_length();
  1139   int default_annotations_len = cm->default_annotations_length();
  1141   InlineTableSizes sizes(
  1142       localvariable_len,
  1143       new_compressed_linenumber_size,
  1144       exception_table_len,
  1145       checked_exceptions_len,
  1146       method_parameters_len,
  1147       cm->generic_signature_index(),
  1148       method_annotations_len,
  1149       parameter_annotations_len,
  1150       type_annotations_len,
  1151       default_annotations_len,
  1152       0);
  1154   ClassLoaderData* loader_data = m->method_holder()->class_loader_data();
  1155   Method* newm_oop = Method::allocate(loader_data,
  1156                                       new_code_length,
  1157                                       flags,
  1158                                       &sizes,
  1159                                       m->method_type(),
  1160                                       CHECK_(methodHandle()));
  1161   methodHandle newm (THREAD, newm_oop);
  1162   int new_method_size = newm->method_size();
  1164   // Create a shallow copy of Method part, but be careful to preserve the new ConstMethod*
  1165   ConstMethod* newcm = newm->constMethod();
  1166   int new_const_method_size = newm->constMethod()->size();
  1168   memcpy(newm(), m(), sizeof(Method));
  1170   // Create shallow copy of ConstMethod.
  1171   memcpy(newcm, m->constMethod(), sizeof(ConstMethod));
  1173   // Reset correct method/const method, method size, and parameter info
  1174   newm->set_constMethod(newcm);
  1175   newm->constMethod()->set_code_size(new_code_length);
  1176   newm->constMethod()->set_constMethod_size(new_const_method_size);
  1177   newm->set_method_size(new_method_size);
  1178   assert(newm->code_size() == new_code_length, "check");
  1179   assert(newm->method_parameters_length() == method_parameters_len, "check");
  1180   assert(newm->checked_exceptions_length() == checked_exceptions_len, "check");
  1181   assert(newm->exception_table_length() == exception_table_len, "check");
  1182   assert(newm->localvariable_table_length() == localvariable_len, "check");
  1183   // Copy new byte codes
  1184   memcpy(newm->code_base(), new_code, new_code_length);
  1185   // Copy line number table
  1186   if (new_compressed_linenumber_size > 0) {
  1187     memcpy(newm->compressed_linenumber_table(),
  1188            new_compressed_linenumber_table,
  1189            new_compressed_linenumber_size);
  1191   // Copy method_parameters
  1192   if (method_parameters_len > 0) {
  1193     memcpy(newm->method_parameters_start(),
  1194            m->method_parameters_start(),
  1195            method_parameters_len * sizeof(MethodParametersElement));
  1197   // Copy checked_exceptions
  1198   if (checked_exceptions_len > 0) {
  1199     memcpy(newm->checked_exceptions_start(),
  1200            m->checked_exceptions_start(),
  1201            checked_exceptions_len * sizeof(CheckedExceptionElement));
  1203   // Copy exception table
  1204   if (exception_table_len > 0) {
  1205     memcpy(newm->exception_table_start(),
  1206            m->exception_table_start(),
  1207            exception_table_len * sizeof(ExceptionTableElement));
  1209   // Copy local variable number table
  1210   if (localvariable_len > 0) {
  1211     memcpy(newm->localvariable_table_start(),
  1212            m->localvariable_table_start(),
  1213            localvariable_len * sizeof(LocalVariableTableElement));
  1215   // Copy stackmap table
  1216   if (m->has_stackmap_table()) {
  1217     int code_attribute_length = m->stackmap_data()->length();
  1218     Array<u1>* stackmap_data =
  1219       MetadataFactory::new_array<u1>(loader_data, code_attribute_length, 0, CHECK_NULL);
  1220     memcpy((void*)stackmap_data->adr_at(0),
  1221            (void*)m->stackmap_data()->adr_at(0), code_attribute_length);
  1222     newm->set_stackmap_data(stackmap_data);
  1225   // copy annotations over to new method
  1226   newcm->copy_annotations_from(cm);
  1227   return newm;
  1230 vmSymbols::SID Method::klass_id_for_intrinsics(Klass* holder) {
  1231   // if loader is not the default loader (i.e., != NULL), we can't know the intrinsics
  1232   // because we are not loading from core libraries
  1233   // exception: the AES intrinsics come from lib/ext/sunjce_provider.jar
  1234   // which does not use the class default class loader so we check for its loader here
  1235   InstanceKlass* ik = InstanceKlass::cast(holder);
  1236   if ((ik->class_loader() != NULL) && !SystemDictionary::is_ext_class_loader(ik->class_loader())) {
  1237     return vmSymbols::NO_SID;   // regardless of name, no intrinsics here
  1240   // see if the klass name is well-known:
  1241   Symbol* klass_name = ik->name();
  1242   return vmSymbols::find_sid(klass_name);
  1245 void Method::init_intrinsic_id() {
  1246   assert(_intrinsic_id == vmIntrinsics::_none, "do this just once");
  1247   const uintptr_t max_id_uint = right_n_bits((int)(sizeof(_intrinsic_id) * BitsPerByte));
  1248   assert((uintptr_t)vmIntrinsics::ID_LIMIT <= max_id_uint, "else fix size");
  1249   assert(intrinsic_id_size_in_bytes() == sizeof(_intrinsic_id), "");
  1251   // the klass name is well-known:
  1252   vmSymbols::SID klass_id = klass_id_for_intrinsics(method_holder());
  1253   assert(klass_id != vmSymbols::NO_SID, "caller responsibility");
  1255   // ditto for method and signature:
  1256   vmSymbols::SID  name_id = vmSymbols::find_sid(name());
  1257   if (klass_id != vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_invoke_MethodHandle)
  1258       && name_id == vmSymbols::NO_SID)
  1259     return;
  1260   vmSymbols::SID   sig_id = vmSymbols::find_sid(signature());
  1261   if (klass_id != vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_invoke_MethodHandle)
  1262       && sig_id == vmSymbols::NO_SID)  return;
  1263   jshort flags = access_flags().as_short();
  1265   vmIntrinsics::ID id = vmIntrinsics::find_id(klass_id, name_id, sig_id, flags);
  1266   if (id != vmIntrinsics::_none) {
  1267     set_intrinsic_id(id);
  1268     return;
  1271   // A few slightly irregular cases:
  1272   switch (klass_id) {
  1273   case vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_StrictMath):
  1274     // Second chance: check in regular Math.
  1275     switch (name_id) {
  1276     case vmSymbols::VM_SYMBOL_ENUM_NAME(min_name):
  1277     case vmSymbols::VM_SYMBOL_ENUM_NAME(max_name):
  1278     case vmSymbols::VM_SYMBOL_ENUM_NAME(sqrt_name):
  1279       // pretend it is the corresponding method in the non-strict class:
  1280       klass_id = vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_Math);
  1281       id = vmIntrinsics::find_id(klass_id, name_id, sig_id, flags);
  1282       break;
  1284     break;
  1286   // Signature-polymorphic methods: MethodHandle.invoke*, InvokeDynamic.*.
  1287   case vmSymbols::VM_SYMBOL_ENUM_NAME(java_lang_invoke_MethodHandle):
  1288     if (!is_native())  break;
  1289     id = MethodHandles::signature_polymorphic_name_id(method_holder(), name());
  1290     if (is_static() != MethodHandles::is_signature_polymorphic_static(id))
  1291       id = vmIntrinsics::_none;
  1292     break;
  1295   if (id != vmIntrinsics::_none) {
  1296     // Set up its iid.  It is an alias method.
  1297     set_intrinsic_id(id);
  1298     return;
  1302 // These two methods are static since a GC may move the Method
  1303 bool Method::load_signature_classes(methodHandle m, TRAPS) {
  1304   if (THREAD->is_Compiler_thread()) {
  1305     // There is nothing useful this routine can do from within the Compile thread.
  1306     // Hopefully, the signature contains only well-known classes.
  1307     // We could scan for this and return true/false, but the caller won't care.
  1308     return false;
  1310   bool sig_is_loaded = true;
  1311   Handle class_loader(THREAD, m->method_holder()->class_loader());
  1312   Handle protection_domain(THREAD, m->method_holder()->protection_domain());
  1313   ResourceMark rm(THREAD);
  1314   Symbol*  signature = m->signature();
  1315   for(SignatureStream ss(signature); !ss.is_done(); ss.next()) {
  1316     if (ss.is_object()) {
  1317       Symbol* sym = ss.as_symbol(CHECK_(false));
  1318       Symbol*  name  = sym;
  1319       Klass* klass = SystemDictionary::resolve_or_null(name, class_loader,
  1320                                              protection_domain, THREAD);
  1321       // We are loading classes eagerly. If a ClassNotFoundException or
  1322       // a LinkageError was generated, be sure to ignore it.
  1323       if (HAS_PENDING_EXCEPTION) {
  1324         if (PENDING_EXCEPTION->is_a(SystemDictionary::ClassNotFoundException_klass()) ||
  1325             PENDING_EXCEPTION->is_a(SystemDictionary::LinkageError_klass())) {
  1326           CLEAR_PENDING_EXCEPTION;
  1327         } else {
  1328           return false;
  1331       if( klass == NULL) { sig_is_loaded = false; }
  1334   return sig_is_loaded;
  1337 bool Method::has_unloaded_classes_in_signature(methodHandle m, TRAPS) {
  1338   Handle class_loader(THREAD, m->method_holder()->class_loader());
  1339   Handle protection_domain(THREAD, m->method_holder()->protection_domain());
  1340   ResourceMark rm(THREAD);
  1341   Symbol*  signature = m->signature();
  1342   for(SignatureStream ss(signature); !ss.is_done(); ss.next()) {
  1343     if (ss.type() == T_OBJECT) {
  1344       Symbol* name = ss.as_symbol_or_null();
  1345       if (name == NULL) return true;
  1346       Klass* klass = SystemDictionary::find(name, class_loader, protection_domain, THREAD);
  1347       if (klass == NULL) return true;
  1350   return false;
  1353 // Exposed so field engineers can debug VM
  1354 void Method::print_short_name(outputStream* st) {
  1355   ResourceMark rm;
  1356 #ifdef PRODUCT
  1357   st->print(" %s::", method_holder()->external_name());
  1358 #else
  1359   st->print(" %s::", method_holder()->internal_name());
  1360 #endif
  1361   name()->print_symbol_on(st);
  1362   if (WizardMode) signature()->print_symbol_on(st);
  1363   else if (MethodHandles::is_signature_polymorphic(intrinsic_id()))
  1364     MethodHandles::print_as_basic_type_signature_on(st, signature(), true);
  1367 // Comparer for sorting an object array containing
  1368 // Method*s.
  1369 static int method_comparator(Method* a, Method* b) {
  1370   return a->name()->fast_compare(b->name());
  1373 // This is only done during class loading, so it is OK to assume method_idnum matches the methods() array
  1374 void Method::sort_methods(Array<Method*>* methods, bool idempotent) {
  1375   int length = methods->length();
  1376   if (length > 1) {
  1378       No_Safepoint_Verifier nsv;
  1379       QuickSort::sort<Method*>(methods->data(), length, method_comparator, idempotent);
  1381     // Reset method ordering
  1382     for (int i = 0; i < length; i++) {
  1383       Method* m = methods->at(i);
  1384       m->set_method_idnum(i);
  1390 //-----------------------------------------------------------------------------------
  1391 // Non-product code unless JVM/TI needs it
  1393 #if !defined(PRODUCT) || INCLUDE_JVMTI
  1394 class SignatureTypePrinter : public SignatureTypeNames {
  1395  private:
  1396   outputStream* _st;
  1397   bool _use_separator;
  1399   void type_name(const char* name) {
  1400     if (_use_separator) _st->print(", ");
  1401     _st->print(name);
  1402     _use_separator = true;
  1405  public:
  1406   SignatureTypePrinter(Symbol* signature, outputStream* st) : SignatureTypeNames(signature) {
  1407     _st = st;
  1408     _use_separator = false;
  1411   void print_parameters()              { _use_separator = false; iterate_parameters(); }
  1412   void print_returntype()              { _use_separator = false; iterate_returntype(); }
  1413 };
  1416 void Method::print_name(outputStream* st) {
  1417   Thread *thread = Thread::current();
  1418   ResourceMark rm(thread);
  1419   SignatureTypePrinter sig(signature(), st);
  1420   st->print("%s ", is_static() ? "static" : "virtual");
  1421   sig.print_returntype();
  1422   st->print(" %s.", method_holder()->internal_name());
  1423   name()->print_symbol_on(st);
  1424   st->print("(");
  1425   sig.print_parameters();
  1426   st->print(")");
  1428 #endif // !PRODUCT || INCLUDE_JVMTI
  1431 //-----------------------------------------------------------------------------------
  1432 // Non-product code
  1434 #ifndef PRODUCT
  1435 void Method::print_codes_on(outputStream* st) const {
  1436   print_codes_on(0, code_size(), st);
  1439 void Method::print_codes_on(int from, int to, outputStream* st) const {
  1440   Thread *thread = Thread::current();
  1441   ResourceMark rm(thread);
  1442   methodHandle mh (thread, (Method*)this);
  1443   BytecodeStream s(mh);
  1444   s.set_interval(from, to);
  1445   BytecodeTracer::set_closure(BytecodeTracer::std_closure());
  1446   while (s.next() >= 0) BytecodeTracer::trace(mh, s.bcp(), st);
  1448 #endif // not PRODUCT
  1451 // Simple compression of line number tables. We use a regular compressed stream, except that we compress deltas
  1452 // between (bci,line) pairs since they are smaller. If (bci delta, line delta) fits in (5-bit unsigned, 3-bit unsigned)
  1453 // we save it as one byte, otherwise we write a 0xFF escape character and use regular compression. 0x0 is used
  1454 // as end-of-stream terminator.
  1456 void CompressedLineNumberWriteStream::write_pair_regular(int bci_delta, int line_delta) {
  1457   // bci and line number does not compress into single byte.
  1458   // Write out escape character and use regular compression for bci and line number.
  1459   write_byte((jubyte)0xFF);
  1460   write_signed_int(bci_delta);
  1461   write_signed_int(line_delta);
  1464 // See comment in method.hpp which explains why this exists.
  1465 #if defined(_M_AMD64) && _MSC_VER >= 1400
  1466 #pragma optimize("", off)
  1467 void CompressedLineNumberWriteStream::write_pair(int bci, int line) {
  1468   write_pair_inline(bci, line);
  1470 #pragma optimize("", on)
  1471 #endif
  1473 CompressedLineNumberReadStream::CompressedLineNumberReadStream(u_char* buffer) : CompressedReadStream(buffer) {
  1474   _bci = 0;
  1475   _line = 0;
  1476 };
  1479 bool CompressedLineNumberReadStream::read_pair() {
  1480   jubyte next = read_byte();
  1481   // Check for terminator
  1482   if (next == 0) return false;
  1483   if (next == 0xFF) {
  1484     // Escape character, regular compression used
  1485     _bci  += read_signed_int();
  1486     _line += read_signed_int();
  1487   } else {
  1488     // Single byte compression used
  1489     _bci  += next >> 3;
  1490     _line += next & 0x7;
  1492   return true;
  1496 Bytecodes::Code Method::orig_bytecode_at(int bci) const {
  1497   BreakpointInfo* bp = method_holder()->breakpoints();
  1498   for (; bp != NULL; bp = bp->next()) {
  1499     if (bp->match(this, bci)) {
  1500       return bp->orig_bytecode();
  1503   ShouldNotReachHere();
  1504   return Bytecodes::_shouldnotreachhere;
  1507 void Method::set_orig_bytecode_at(int bci, Bytecodes::Code code) {
  1508   assert(code != Bytecodes::_breakpoint, "cannot patch breakpoints this way");
  1509   BreakpointInfo* bp = method_holder()->breakpoints();
  1510   for (; bp != NULL; bp = bp->next()) {
  1511     if (bp->match(this, bci)) {
  1512       bp->set_orig_bytecode(code);
  1513       // and continue, in case there is more than one
  1518 void Method::set_breakpoint(int bci) {
  1519   InstanceKlass* ik = method_holder();
  1520   BreakpointInfo *bp = new BreakpointInfo(this, bci);
  1521   bp->set_next(ik->breakpoints());
  1522   ik->set_breakpoints(bp);
  1523   // do this last:
  1524   bp->set(this);
  1527 static void clear_matches(Method* m, int bci) {
  1528   InstanceKlass* ik = m->method_holder();
  1529   BreakpointInfo* prev_bp = NULL;
  1530   BreakpointInfo* next_bp;
  1531   for (BreakpointInfo* bp = ik->breakpoints(); bp != NULL; bp = next_bp) {
  1532     next_bp = bp->next();
  1533     // bci value of -1 is used to delete all breakpoints in method m (ex: clear_all_breakpoint).
  1534     if (bci >= 0 ? bp->match(m, bci) : bp->match(m)) {
  1535       // do this first:
  1536       bp->clear(m);
  1537       // unhook it
  1538       if (prev_bp != NULL)
  1539         prev_bp->set_next(next_bp);
  1540       else
  1541         ik->set_breakpoints(next_bp);
  1542       delete bp;
  1543       // When class is redefined JVMTI sets breakpoint in all versions of EMCP methods
  1544       // at same location. So we have multiple matching (method_index and bci)
  1545       // BreakpointInfo nodes in BreakpointInfo list. We should just delete one
  1546       // breakpoint for clear_breakpoint request and keep all other method versions
  1547       // BreakpointInfo for future clear_breakpoint request.
  1548       // bcivalue of -1 is used to clear all breakpoints (see clear_all_breakpoints)
  1549       // which is being called when class is unloaded. We delete all the Breakpoint
  1550       // information for all versions of method. We may not correctly restore the original
  1551       // bytecode in all method versions, but that is ok. Because the class is being unloaded
  1552       // so these methods won't be used anymore.
  1553       if (bci >= 0) {
  1554         break;
  1556     } else {
  1557       // This one is a keeper.
  1558       prev_bp = bp;
  1563 void Method::clear_breakpoint(int bci) {
  1564   assert(bci >= 0, "");
  1565   clear_matches(this, bci);
  1568 void Method::clear_all_breakpoints() {
  1569   clear_matches(this, -1);
  1573 int Method::invocation_count() {
  1574   MethodCounters *mcs = method_counters();
  1575   if (TieredCompilation) {
  1576     MethodData* const mdo = method_data();
  1577     if (((mcs != NULL) ? mcs->invocation_counter()->carry() : false) ||
  1578         ((mdo != NULL) ? mdo->invocation_counter()->carry() : false)) {
  1579       return InvocationCounter::count_limit;
  1580     } else {
  1581       return ((mcs != NULL) ? mcs->invocation_counter()->count() : 0) +
  1582              ((mdo != NULL) ? mdo->invocation_counter()->count() : 0);
  1584   } else {
  1585     return (mcs == NULL) ? 0 : mcs->invocation_counter()->count();
  1589 int Method::backedge_count() {
  1590   MethodCounters *mcs = method_counters();
  1591   if (TieredCompilation) {
  1592     MethodData* const mdo = method_data();
  1593     if (((mcs != NULL) ? mcs->backedge_counter()->carry() : false) ||
  1594         ((mdo != NULL) ? mdo->backedge_counter()->carry() : false)) {
  1595       return InvocationCounter::count_limit;
  1596     } else {
  1597       return ((mcs != NULL) ? mcs->backedge_counter()->count() : 0) +
  1598              ((mdo != NULL) ? mdo->backedge_counter()->count() : 0);
  1600   } else {
  1601     return (mcs == NULL) ? 0 : mcs->backedge_counter()->count();
  1605 int Method::highest_comp_level() const {
  1606   const MethodData* mdo = method_data();
  1607   if (mdo != NULL) {
  1608     return mdo->highest_comp_level();
  1609   } else {
  1610     return CompLevel_none;
  1614 int Method::highest_osr_comp_level() const {
  1615   const MethodData* mdo = method_data();
  1616   if (mdo != NULL) {
  1617     return mdo->highest_osr_comp_level();
  1618   } else {
  1619     return CompLevel_none;
  1623 void Method::set_highest_comp_level(int level) {
  1624   MethodData* mdo = method_data();
  1625   if (mdo != NULL) {
  1626     mdo->set_highest_comp_level(level);
  1630 void Method::set_highest_osr_comp_level(int level) {
  1631   MethodData* mdo = method_data();
  1632   if (mdo != NULL) {
  1633     mdo->set_highest_osr_comp_level(level);
  1637 BreakpointInfo::BreakpointInfo(Method* m, int bci) {
  1638   _bci = bci;
  1639   _name_index = m->name_index();
  1640   _signature_index = m->signature_index();
  1641   _orig_bytecode = (Bytecodes::Code) *m->bcp_from(_bci);
  1642   if (_orig_bytecode == Bytecodes::_breakpoint)
  1643     _orig_bytecode = m->orig_bytecode_at(_bci);
  1644   _next = NULL;
  1647 void BreakpointInfo::set(Method* method) {
  1648 #ifdef ASSERT
  1650     Bytecodes::Code code = (Bytecodes::Code) *method->bcp_from(_bci);
  1651     if (code == Bytecodes::_breakpoint)
  1652       code = method->orig_bytecode_at(_bci);
  1653     assert(orig_bytecode() == code, "original bytecode must be the same");
  1655 #endif
  1656   Thread *thread = Thread::current();
  1657   *method->bcp_from(_bci) = Bytecodes::_breakpoint;
  1658   method->incr_number_of_breakpoints(thread);
  1659   SystemDictionary::notice_modification();
  1661     // Deoptimize all dependents on this method
  1662     HandleMark hm(thread);
  1663     methodHandle mh(thread, method);
  1664     Universe::flush_dependents_on_method(mh);
  1668 void BreakpointInfo::clear(Method* method) {
  1669   *method->bcp_from(_bci) = orig_bytecode();
  1670   assert(method->number_of_breakpoints() > 0, "must not go negative");
  1671   method->decr_number_of_breakpoints(Thread::current());
  1674 // jmethodID handling
  1676 // This is a block allocating object, sort of like JNIHandleBlock, only a
  1677 // lot simpler.  There aren't many of these, they aren't long, they are rarely
  1678 // deleted and so we can do some suboptimal things.
  1679 // It's allocated on the CHeap because once we allocate a jmethodID, we can
  1680 // never get rid of it.
  1681 // It would be nice to be able to parameterize the number of methods for
  1682 // the null_class_loader but then we'd have to turn this and ClassLoaderData
  1683 // into templates.
  1685 // I feel like this brain dead class should exist somewhere in the STL
  1687 class JNIMethodBlock : public CHeapObj<mtClass> {
  1688   enum { number_of_methods = 8 };
  1690   Method*         _methods[number_of_methods];
  1691   int             _top;
  1692   JNIMethodBlock* _next;
  1693  public:
  1694   static Method* const _free_method;
  1696   JNIMethodBlock() : _next(NULL), _top(0) {
  1697     for (int i = 0; i< number_of_methods; i++) _methods[i] = _free_method;
  1700   Method** add_method(Method* m) {
  1701     if (_top < number_of_methods) {
  1702       // top points to the next free entry.
  1703       int i = _top;
  1704       _methods[i] = m;
  1705       _top++;
  1706       return &_methods[i];
  1707     } else if (_top == number_of_methods) {
  1708       // if the next free entry ran off the block see if there's a free entry
  1709       for (int i = 0; i< number_of_methods; i++) {
  1710         if (_methods[i] == _free_method) {
  1711           _methods[i] = m;
  1712           return &_methods[i];
  1715       // Only check each block once for frees.  They're very unlikely.
  1716       // Increment top past the end of the block.
  1717       _top++;
  1719     // need to allocate a next block.
  1720     if (_next == NULL) {
  1721       _next = new JNIMethodBlock();
  1723     return _next->add_method(m);
  1726   bool contains(Method** m) {
  1727     for (JNIMethodBlock* b = this; b != NULL; b = b->_next) {
  1728       for (int i = 0; i< number_of_methods; i++) {
  1729         if (&(b->_methods[i]) == m) {
  1730           return true;
  1734     return false;  // not found
  1737   // Doesn't really destroy it, just marks it as free so it can be reused.
  1738   void destroy_method(Method** m) {
  1739 #ifdef ASSERT
  1740     assert(contains(m), "should be a methodID");
  1741 #endif // ASSERT
  1742     *m = _free_method;
  1745   // During class unloading the methods are cleared, which is different
  1746   // than freed.
  1747   void clear_all_methods() {
  1748     for (JNIMethodBlock* b = this; b != NULL; b = b->_next) {
  1749       for (int i = 0; i< number_of_methods; i++) {
  1750         _methods[i] = NULL;
  1754 #ifndef PRODUCT
  1755   int count_methods() {
  1756     // count all allocated methods
  1757     int count = 0;
  1758     for (JNIMethodBlock* b = this; b != NULL; b = b->_next) {
  1759       for (int i = 0; i< number_of_methods; i++) {
  1760         if (_methods[i] != _free_method) count++;
  1763     return count;
  1765 #endif // PRODUCT
  1766 };
  1768 // Something that can't be mistaken for an address or a markOop
  1769 Method* const JNIMethodBlock::_free_method = (Method*)55;
  1771 // Add a method id to the jmethod_ids
  1772 jmethodID Method::make_jmethod_id(ClassLoaderData* loader_data, Method* m) {
  1773   ClassLoaderData* cld = loader_data;
  1775   if (!SafepointSynchronize::is_at_safepoint()) {
  1776     // Have to add jmethod_ids() to class loader data thread-safely.
  1777     // Also have to add the method to the list safely, which the cld lock
  1778     // protects as well.
  1779     MutexLockerEx ml(cld->metaspace_lock(),  Mutex::_no_safepoint_check_flag);
  1780     if (cld->jmethod_ids() == NULL) {
  1781       cld->set_jmethod_ids(new JNIMethodBlock());
  1783     // jmethodID is a pointer to Method*
  1784     return (jmethodID)cld->jmethod_ids()->add_method(m);
  1785   } else {
  1786     // At safepoint, we are single threaded and can set this.
  1787     if (cld->jmethod_ids() == NULL) {
  1788       cld->set_jmethod_ids(new JNIMethodBlock());
  1790     // jmethodID is a pointer to Method*
  1791     return (jmethodID)cld->jmethod_ids()->add_method(m);
  1795 // Mark a jmethodID as free.  This is called when there is a data race in
  1796 // InstanceKlass while creating the jmethodID cache.
  1797 void Method::destroy_jmethod_id(ClassLoaderData* loader_data, jmethodID m) {
  1798   ClassLoaderData* cld = loader_data;
  1799   Method** ptr = (Method**)m;
  1800   assert(cld->jmethod_ids() != NULL, "should have method handles");
  1801   cld->jmethod_ids()->destroy_method(ptr);
  1804 void Method::change_method_associated_with_jmethod_id(jmethodID jmid, Method* new_method) {
  1805   // Can't assert the method_holder is the same because the new method has the
  1806   // scratch method holder.
  1807   assert(resolve_jmethod_id(jmid)->method_holder()->class_loader()
  1808            == new_method->method_holder()->class_loader(),
  1809          "changing to a different class loader");
  1810   // Just change the method in place, jmethodID pointer doesn't change.
  1811   *((Method**)jmid) = new_method;
  1814 bool Method::is_method_id(jmethodID mid) {
  1815   Method* m = resolve_jmethod_id(mid);
  1816   assert(m != NULL, "should be called with non-null method");
  1817   InstanceKlass* ik = m->method_holder();
  1818   ClassLoaderData* cld = ik->class_loader_data();
  1819   if (cld->jmethod_ids() == NULL) return false;
  1820   return (cld->jmethod_ids()->contains((Method**)mid));
  1823 Method* Method::checked_resolve_jmethod_id(jmethodID mid) {
  1824   if (mid == NULL) return NULL;
  1825   Method* o = resolve_jmethod_id(mid);
  1826   if (o == NULL || o == JNIMethodBlock::_free_method || !((Metadata*)o)->is_method()) {
  1827     return NULL;
  1829   return o;
  1830 };
  1832 void Method::set_on_stack(const bool value) {
  1833   // Set both the method itself and its constant pool.  The constant pool
  1834   // on stack means some method referring to it is also on the stack.
  1835   _access_flags.set_on_stack(value);
  1836   constants()->set_on_stack(value);
  1837   if (value) MetadataOnStackMark::record(this);
  1840 // Called when the class loader is unloaded to make all methods weak.
  1841 void Method::clear_jmethod_ids(ClassLoaderData* loader_data) {
  1842   loader_data->jmethod_ids()->clear_all_methods();
  1846 // Check that this pointer is valid by checking that the vtbl pointer matches
  1847 bool Method::is_valid_method() const {
  1848   if (this == NULL) {
  1849     return false;
  1850   } else if (!is_metaspace_object()) {
  1851     return false;
  1852   } else {
  1853     Method m;
  1854     // This assumes that the vtbl pointer is the first word of a C++ object.
  1855     // This assumption is also in universe.cpp patch_klass_vtble
  1856     void* vtbl2 = dereference_vptr((void*)&m);
  1857     void* this_vtbl = dereference_vptr((void*)this);
  1858     return vtbl2 == this_vtbl;
  1862 #ifndef PRODUCT
  1863 void Method::print_jmethod_ids(ClassLoaderData* loader_data, outputStream* out) {
  1864   out->print_cr("jni_method_id count = %d", loader_data->jmethod_ids()->count_methods());
  1866 #endif // PRODUCT
  1869 // Printing
  1871 #ifndef PRODUCT
  1873 void Method::print_on(outputStream* st) const {
  1874   ResourceMark rm;
  1875   assert(is_method(), "must be method");
  1876   st->print_cr(internal_name());
  1877   // get the effect of PrintOopAddress, always, for methods:
  1878   st->print_cr(" - this oop:          "INTPTR_FORMAT, (intptr_t)this);
  1879   st->print   (" - method holder:     "); method_holder()->print_value_on(st); st->cr();
  1880   st->print   (" - constants:         "INTPTR_FORMAT" ", (address)constants());
  1881   constants()->print_value_on(st); st->cr();
  1882   st->print   (" - access:            0x%x  ", access_flags().as_int()); access_flags().print_on(st); st->cr();
  1883   st->print   (" - name:              ");    name()->print_value_on(st); st->cr();
  1884   st->print   (" - signature:         ");    signature()->print_value_on(st); st->cr();
  1885   st->print_cr(" - max stack:         %d",   max_stack());
  1886   st->print_cr(" - max locals:        %d",   max_locals());
  1887   st->print_cr(" - size of params:    %d",   size_of_parameters());
  1888   st->print_cr(" - method size:       %d",   method_size());
  1889   if (intrinsic_id() != vmIntrinsics::_none)
  1890     st->print_cr(" - intrinsic id:      %d %s", intrinsic_id(), vmIntrinsics::name_at(intrinsic_id()));
  1891   if (highest_comp_level() != CompLevel_none)
  1892     st->print_cr(" - highest level:     %d", highest_comp_level());
  1893   st->print_cr(" - vtable index:      %d",   _vtable_index);
  1894   st->print_cr(" - i2i entry:         " INTPTR_FORMAT, interpreter_entry());
  1895   st->print(   " - adapters:          ");
  1896   AdapterHandlerEntry* a = ((Method*)this)->adapter();
  1897   if (a == NULL)
  1898     st->print_cr(INTPTR_FORMAT, a);
  1899   else
  1900     a->print_adapter_on(st);
  1901   st->print_cr(" - compiled entry     " INTPTR_FORMAT, from_compiled_entry());
  1902   st->print_cr(" - code size:         %d",   code_size());
  1903   if (code_size() != 0) {
  1904     st->print_cr(" - code start:        " INTPTR_FORMAT, code_base());
  1905     st->print_cr(" - code end (excl):   " INTPTR_FORMAT, code_base() + code_size());
  1907   if (method_data() != NULL) {
  1908     st->print_cr(" - method data:       " INTPTR_FORMAT, (address)method_data());
  1910   st->print_cr(" - checked ex length: %d",   checked_exceptions_length());
  1911   if (checked_exceptions_length() > 0) {
  1912     CheckedExceptionElement* table = checked_exceptions_start();
  1913     st->print_cr(" - checked ex start:  " INTPTR_FORMAT, table);
  1914     if (Verbose) {
  1915       for (int i = 0; i < checked_exceptions_length(); i++) {
  1916         st->print_cr("   - throws %s", constants()->printable_name_at(table[i].class_cp_index));
  1920   if (has_linenumber_table()) {
  1921     u_char* table = compressed_linenumber_table();
  1922     st->print_cr(" - linenumber start:  " INTPTR_FORMAT, table);
  1923     if (Verbose) {
  1924       CompressedLineNumberReadStream stream(table);
  1925       while (stream.read_pair()) {
  1926         st->print_cr("   - line %d: %d", stream.line(), stream.bci());
  1930   st->print_cr(" - localvar length:   %d",   localvariable_table_length());
  1931   if (localvariable_table_length() > 0) {
  1932     LocalVariableTableElement* table = localvariable_table_start();
  1933     st->print_cr(" - localvar start:    " INTPTR_FORMAT, table);
  1934     if (Verbose) {
  1935       for (int i = 0; i < localvariable_table_length(); i++) {
  1936         int bci = table[i].start_bci;
  1937         int len = table[i].length;
  1938         const char* name = constants()->printable_name_at(table[i].name_cp_index);
  1939         const char* desc = constants()->printable_name_at(table[i].descriptor_cp_index);
  1940         int slot = table[i].slot;
  1941         st->print_cr("   - %s %s bci=%d len=%d slot=%d", desc, name, bci, len, slot);
  1945   if (code() != NULL) {
  1946     st->print   (" - compiled code: ");
  1947     code()->print_value_on(st);
  1949   if (is_native()) {
  1950     st->print_cr(" - native function:   " INTPTR_FORMAT, native_function());
  1951     st->print_cr(" - signature handler: " INTPTR_FORMAT, signature_handler());
  1955 #endif //PRODUCT
  1957 void Method::print_value_on(outputStream* st) const {
  1958   assert(is_method(), "must be method");
  1959   st->print(internal_name());
  1960   print_address_on(st);
  1961   st->print(" ");
  1962   name()->print_value_on(st);
  1963   st->print(" ");
  1964   signature()->print_value_on(st);
  1965   st->print(" in ");
  1966   method_holder()->print_value_on(st);
  1967   if (WizardMode) st->print("#%d", _vtable_index);
  1968   if (WizardMode) st->print("[%d,%d]", size_of_parameters(), max_locals());
  1969   if (WizardMode && code() != NULL) st->print(" ((nmethod*)%p)", code());
  1972 #if INCLUDE_SERVICES
  1973 // Size Statistics
  1974 void Method::collect_statistics(KlassSizeStats *sz) const {
  1975   int mysize = sz->count(this);
  1976   sz->_method_bytes += mysize;
  1977   sz->_method_all_bytes += mysize;
  1978   sz->_rw_bytes += mysize;
  1980   if (constMethod()) {
  1981     constMethod()->collect_statistics(sz);
  1983   if (method_data()) {
  1984     method_data()->collect_statistics(sz);
  1987 #endif // INCLUDE_SERVICES
  1989 // Verification
  1991 void Method::verify_on(outputStream* st) {
  1992   guarantee(is_method(), "object must be method");
  1993   guarantee(constants()->is_constantPool(), "should be constant pool");
  1994   guarantee(constMethod()->is_constMethod(), "should be ConstMethod*");
  1995   MethodData* md = method_data();
  1996   guarantee(md == NULL ||
  1997       md->is_methodData(), "should be method data");

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