src/share/vm/opto/doCall.cpp

Mon, 25 Feb 2008 15:05:44 -0800

author
kvn
date
Mon, 25 Feb 2008 15:05:44 -0800
changeset 464
d5fc211aea19
parent 435
a61af66fc99e
child 502
16e1cb7cde24
permissions
-rw-r--r--

6633953: type2aelembytes{T_ADDRESS} should be 8 bytes in 64 bit VM
Summary: T_ADDRESS size is defined as 'int' size (4 bytes) but C2 use it for raw pointers and as memory type for StoreP and LoadP nodes.
Reviewed-by: jrose

     1 /*
     2  * Copyright 1998-2007 Sun Microsystems, Inc.  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 Sun Microsystems, Inc., 4150 Network Circle, Santa Clara,
    20  * CA 95054 USA or visit www.sun.com if you need additional information or
    21  * have any questions.
    22  *
    23  */
    25 #include "incls/_precompiled.incl"
    26 #include "incls/_doCall.cpp.incl"
    28 #ifndef PRODUCT
    29 void trace_type_profile(ciMethod *method, int depth, int bci, ciMethod *prof_method, ciKlass *prof_klass, int site_count, int receiver_count) {
    30   if (TraceTypeProfile || PrintInlining || PrintOptoInlining) {
    31     tty->print("   ");
    32     for( int i = 0; i < depth; i++ ) tty->print("  ");
    33     if (!PrintOpto) {
    34       method->print_short_name();
    35       tty->print(" ->");
    36     }
    37     tty->print(" @ %d  ", bci);
    38     prof_method->print_short_name();
    39     tty->print("  >>TypeProfile (%d/%d counts) = ", receiver_count, site_count);
    40     prof_klass->name()->print_symbol();
    41     tty->print_cr(" (%d bytes)", prof_method->code_size());
    42   }
    43 }
    44 #endif
    46 CallGenerator* Compile::call_generator(ciMethod* call_method, int vtable_index, bool call_is_virtual, JVMState* jvms, bool allow_inline, float prof_factor) {
    47   CallGenerator* cg;
    49   // Dtrace currently doesn't work unless all calls are vanilla
    50   if (DTraceMethodProbes) {
    51     allow_inline = false;
    52   }
    54   // Note: When we get profiling during stage-1 compiles, we want to pull
    55   // from more specific profile data which pertains to this inlining.
    56   // Right now, ignore the information in jvms->caller(), and do method[bci].
    57   ciCallProfile profile = jvms->method()->call_profile_at_bci(jvms->bci());
    59   // See how many times this site has been invoked.
    60   int site_count = profile.count();
    61   int receiver_count = -1;
    62   if (call_is_virtual && UseTypeProfile && profile.has_receiver(0)) {
    63     // Receivers in the profile structure are ordered by call counts
    64     // so that the most called (major) receiver is profile.receiver(0).
    65     receiver_count = profile.receiver_count(0);
    66   }
    68   CompileLog* log = this->log();
    69   if (log != NULL) {
    70     int rid = (receiver_count >= 0)? log->identify(profile.receiver(0)): -1;
    71     int r2id = (profile.morphism() == 2)? log->identify(profile.receiver(1)):-1;
    72     log->begin_elem("call method='%d' count='%d' prof_factor='%g'",
    73                     log->identify(call_method), site_count, prof_factor);
    74     if (call_is_virtual)  log->print(" virtual='1'");
    75     if (allow_inline)     log->print(" inline='1'");
    76     if (receiver_count >= 0) {
    77       log->print(" receiver='%d' receiver_count='%d'", rid, receiver_count);
    78       if (profile.has_receiver(1)) {
    79         log->print(" receiver2='%d' receiver2_count='%d'", r2id, profile.receiver_count(1));
    80       }
    81     }
    82     log->end_elem();
    83   }
    85   // Special case the handling of certain common, profitable library
    86   // methods.  If these methods are replaced with specialized code,
    87   // then we return it as the inlined version of the call.
    88   // We do this before the strict f.p. check below because the
    89   // intrinsics handle strict f.p. correctly.
    90   if (allow_inline) {
    91     cg = find_intrinsic(call_method, call_is_virtual);
    92     if (cg != NULL)  return cg;
    93   }
    95   // Do not inline strict fp into non-strict code, or the reverse
    96   bool caller_method_is_strict = jvms->method()->is_strict();
    97   if( caller_method_is_strict ^ call_method->is_strict() ) {
    98     allow_inline = false;
    99   }
   101   // Attempt to inline...
   102   if (allow_inline) {
   103     // The profile data is only partly attributable to this caller,
   104     // scale back the call site information.
   105     float past_uses = jvms->method()->scale_count(site_count, prof_factor);
   106     // This is the number of times we expect the call code to be used.
   107     float expected_uses = past_uses;
   109     // Try inlining a bytecoded method:
   110     if (!call_is_virtual) {
   111       InlineTree* ilt;
   112       if (UseOldInlining) {
   113         ilt = InlineTree::find_subtree_from_root(this->ilt(), jvms->caller(), jvms->method());
   114       } else {
   115         // Make a disembodied, stateless ILT.
   116         // TO DO:  When UseOldInlining is removed, copy the ILT code elsewhere.
   117         float site_invoke_ratio = prof_factor;
   118         // Note:  ilt is for the root of this parse, not the present call site.
   119         ilt = new InlineTree(this, jvms->method(), jvms->caller(), site_invoke_ratio);
   120       }
   121       WarmCallInfo scratch_ci;
   122       if (!UseOldInlining)
   123         scratch_ci.init(jvms, call_method, profile, prof_factor);
   124       WarmCallInfo* ci = ilt->ok_to_inline(call_method, jvms, profile, &scratch_ci);
   125       assert(ci != &scratch_ci, "do not let this pointer escape");
   126       bool allow_inline   = (ci != NULL && !ci->is_cold());
   127       bool require_inline = (allow_inline && ci->is_hot());
   129       if (allow_inline) {
   130         CallGenerator* cg = CallGenerator::for_inline(call_method, expected_uses);
   131         if (cg == NULL) {
   132           // Fall through.
   133         } else if (require_inline || !InlineWarmCalls) {
   134           return cg;
   135         } else {
   136           CallGenerator* cold_cg = call_generator(call_method, vtable_index, call_is_virtual, jvms, false, prof_factor);
   137           return CallGenerator::for_warm_call(ci, cold_cg, cg);
   138         }
   139       }
   140     }
   142     // Try using the type profile.
   143     if (call_is_virtual && site_count > 0 && receiver_count > 0) {
   144       // The major receiver's count >= TypeProfileMajorReceiverPercent of site_count.
   145       bool have_major_receiver = (100.*profile.receiver_prob(0) >= (float)TypeProfileMajorReceiverPercent);
   146       ciMethod* receiver_method = NULL;
   147       if (have_major_receiver || profile.morphism() == 1 ||
   148           (profile.morphism() == 2 && UseBimorphicInlining)) {
   149         // receiver_method = profile.method();
   150         // Profiles do not suggest methods now.  Look it up in the major receiver.
   151         receiver_method = call_method->resolve_invoke(jvms->method()->holder(),
   152                                                       profile.receiver(0));
   153       }
   154       if (receiver_method != NULL) {
   155         // The single majority receiver sufficiently outweighs the minority.
   156         CallGenerator* hit_cg = this->call_generator(receiver_method,
   157               vtable_index, !call_is_virtual, jvms, allow_inline, prof_factor);
   158         if (hit_cg != NULL) {
   159           // Look up second receiver.
   160           CallGenerator* next_hit_cg = NULL;
   161           ciMethod* next_receiver_method = NULL;
   162           if (profile.morphism() == 2 && UseBimorphicInlining) {
   163             next_receiver_method = call_method->resolve_invoke(jvms->method()->holder(),
   164                                                                profile.receiver(1));
   165             if (next_receiver_method != NULL) {
   166               next_hit_cg = this->call_generator(next_receiver_method,
   167                                   vtable_index, !call_is_virtual, jvms,
   168                                   allow_inline, prof_factor);
   169               if (next_hit_cg != NULL && !next_hit_cg->is_inline() &&
   170                   have_major_receiver && UseOnlyInlinedBimorphic) {
   171                   // Skip if we can't inline second receiver's method
   172                   next_hit_cg = NULL;
   173               }
   174             }
   175           }
   176           CallGenerator* miss_cg;
   177           if (( profile.morphism() == 1 ||
   178                (profile.morphism() == 2 && next_hit_cg != NULL) ) &&
   180               !too_many_traps(Deoptimization::Reason_class_check)
   182               // Check only total number of traps per method to allow
   183               // the transition from monomorphic to bimorphic case between
   184               // compilations without falling into virtual call.
   185               // A monomorphic case may have the class_check trap flag is set
   186               // due to the time gap between the uncommon trap processing
   187               // when flags are set in MDO and the call site bytecode execution
   188               // in Interpreter when MDO counters are updated.
   189               // There was also class_check trap in monomorphic case due to
   190               // the bug 6225440.
   192              ) {
   193             // Generate uncommon trap for class check failure path
   194             // in case of monomorphic or bimorphic virtual call site.
   195             miss_cg = CallGenerator::for_uncommon_trap(call_method,
   196                         Deoptimization::Reason_class_check,
   197                         Deoptimization::Action_maybe_recompile);
   198           } else {
   199             // Generate virtual call for class check failure path
   200             // in case of polymorphic virtual call site.
   201             miss_cg = CallGenerator::for_virtual_call(call_method, vtable_index);
   202           }
   203           if (miss_cg != NULL) {
   204             if (next_hit_cg != NULL) {
   205               NOT_PRODUCT(trace_type_profile(jvms->method(), jvms->depth(), jvms->bci(), next_receiver_method, profile.receiver(1), site_count, profile.receiver_count(1)));
   206               // We don't need to record dependency on a receiver here and below.
   207               // Whenever we inline, the dependency is added by Parse::Parse().
   208               miss_cg = CallGenerator::for_predicted_call(profile.receiver(1), miss_cg, next_hit_cg, PROB_MAX);
   209             }
   210             if (miss_cg != NULL) {
   211               NOT_PRODUCT(trace_type_profile(jvms->method(), jvms->depth(), jvms->bci(), receiver_method, profile.receiver(0), site_count, receiver_count));
   212               cg = CallGenerator::for_predicted_call(profile.receiver(0), miss_cg, hit_cg, profile.receiver_prob(0));
   213               if (cg != NULL)  return cg;
   214             }
   215           }
   216         }
   217       }
   218     }
   219   }
   221   // There was no special inlining tactic, or it bailed out.
   222   // Use a more generic tactic, like a simple call.
   223   if (call_is_virtual) {
   224     return CallGenerator::for_virtual_call(call_method, vtable_index);
   225   } else {
   226     // Class Hierarchy Analysis or Type Profile reveals a unique target,
   227     // or it is a static or special call.
   228     return CallGenerator::for_direct_call(call_method);
   229   }
   230 }
   233 // uncommon-trap call-sites where callee is unloaded, uninitialized or will not link
   234 bool Parse::can_not_compile_call_site(ciMethod *dest_method, ciInstanceKlass* klass) {
   235   // Additional inputs to consider...
   236   // bc      = bc()
   237   // caller  = method()
   238   // iter().get_method_holder_index()
   239   assert( dest_method->is_loaded(), "ciTypeFlow should not let us get here" );
   240   // Interface classes can be loaded & linked and never get around to
   241   // being initialized.  Uncommon-trap for not-initialized static or
   242   // v-calls.  Let interface calls happen.
   243   ciInstanceKlass* holder_klass  = dest_method->holder();
   244   if (!holder_klass->is_initialized() &&
   245       !holder_klass->is_interface()) {
   246     uncommon_trap(Deoptimization::Reason_uninitialized,
   247                   Deoptimization::Action_reinterpret,
   248                   holder_klass);
   249     return true;
   250   }
   252   assert(dest_method->will_link(method()->holder(), klass, bc()), "dest_method: typeflow responsibility");
   253   return false;
   254 }
   257 //------------------------------do_call----------------------------------------
   258 // Handle your basic call.  Inline if we can & want to, else just setup call.
   259 void Parse::do_call() {
   260   // It's likely we are going to add debug info soon.
   261   // Also, if we inline a guy who eventually needs debug info for this JVMS,
   262   // our contribution to it is cleaned up right here.
   263   kill_dead_locals();
   265   // Set frequently used booleans
   266   bool is_virtual = bc() == Bytecodes::_invokevirtual;
   267   bool is_virtual_or_interface = is_virtual || bc() == Bytecodes::_invokeinterface;
   268   bool has_receiver = is_virtual_or_interface || bc() == Bytecodes::_invokespecial;
   270   // Find target being called
   271   bool             will_link;
   272   ciMethod*        dest_method   = iter().get_method(will_link);
   273   ciInstanceKlass* holder_klass  = dest_method->holder();
   274   ciKlass* holder = iter().get_declared_method_holder();
   275   ciInstanceKlass* klass = ciEnv::get_instance_klass_for_declared_method_holder(holder);
   277   int   nargs    = dest_method->arg_size();
   279   // uncommon-trap when callee is unloaded, uninitialized or will not link
   280   // bailout when too many arguments for register representation
   281   if (!will_link || can_not_compile_call_site(dest_method, klass)) {
   282 #ifndef PRODUCT
   283     if (PrintOpto && (Verbose || WizardMode)) {
   284       method()->print_name(); tty->print_cr(" can not compile call at bci %d to:", bci());
   285       dest_method->print_name(); tty->cr();
   286     }
   287 #endif
   288     return;
   289   }
   290   assert(holder_klass->is_loaded(), "");
   291   assert(dest_method->is_static() == !has_receiver, "must match bc");
   292   // Note: this takes into account invokeinterface of methods declared in java/lang/Object,
   293   // which should be invokevirtuals but according to the VM spec may be invokeinterfaces
   294   assert(holder_klass->is_interface() || holder_klass->super() == NULL || (bc() != Bytecodes::_invokeinterface), "must match bc");
   295   // Note:  In the absence of miranda methods, an abstract class K can perform
   296   // an invokevirtual directly on an interface method I.m if K implements I.
   298   // ---------------------
   299   // Does Class Hierarchy Analysis reveal only a single target of a v-call?
   300   // Then we may inline or make a static call, but become dependent on there being only 1 target.
   301   // Does the call-site type profile reveal only one receiver?
   302   // Then we may introduce a run-time check and inline on the path where it succeeds.
   303   // The other path may uncommon_trap, check for another receiver, or do a v-call.
   305   // Choose call strategy.
   306   bool call_is_virtual = is_virtual_or_interface;
   307   int vtable_index = methodOopDesc::invalid_vtable_index;
   308   ciMethod* call_method = dest_method;
   310   // Try to get the most accurate receiver type
   311   if (is_virtual_or_interface) {
   312     Node*             receiver_node = stack(sp() - nargs);
   313     const TypeOopPtr* receiver_type = _gvn.type(receiver_node)->isa_oopptr();
   314     ciMethod* optimized_virtual_method = optimize_inlining(method(), bci(), klass, dest_method, receiver_type);
   316     // Have the call been sufficiently improved such that it is no longer a virtual?
   317     if (optimized_virtual_method != NULL) {
   318       call_method     = optimized_virtual_method;
   319       call_is_virtual = false;
   320     } else if (!UseInlineCaches && is_virtual && call_method->is_loaded()) {
   321       // We can make a vtable call at this site
   322       vtable_index = call_method->resolve_vtable_index(method()->holder(), klass);
   323     }
   324   }
   326   // Note:  It's OK to try to inline a virtual call.
   327   // The call generator will not attempt to inline a polymorphic call
   328   // unless it knows how to optimize the receiver dispatch.
   329   bool try_inline = (C->do_inlining() || InlineAccessors);
   331   // ---------------------
   332   inc_sp(- nargs);              // Temporarily pop args for JVM state of call
   333   JVMState* jvms = sync_jvms();
   335   // ---------------------
   336   // Decide call tactic.
   337   // This call checks with CHA, the interpreter profile, intrinsics table, etc.
   338   // It decides whether inlining is desirable or not.
   339   CallGenerator* cg = C->call_generator(call_method, vtable_index, call_is_virtual, jvms, try_inline, prof_factor());
   341   // ---------------------
   342   // Round double arguments before call
   343   round_double_arguments(dest_method);
   345 #ifndef PRODUCT
   346   // bump global counters for calls
   347   count_compiled_calls(false/*at_method_entry*/, cg->is_inline());
   349   // Record first part of parsing work for this call
   350   parse_histogram()->record_change();
   351 #endif // not PRODUCT
   353   assert(jvms == this->jvms(), "still operating on the right JVMS");
   354   assert(jvms_in_sync(),       "jvms must carry full info into CG");
   356   // save across call, for a subsequent cast_not_null.
   357   Node* receiver = has_receiver ? argument(0) : NULL;
   359   // Bump method data counters (We profile *before* the call is made
   360   // because exceptions don't return to the call site.)
   361   profile_call(receiver);
   363   JVMState* new_jvms;
   364   if ((new_jvms = cg->generate(jvms)) == NULL) {
   365     // When inlining attempt fails (e.g., too many arguments),
   366     // it may contaminate the current compile state, making it
   367     // impossible to pull back and try again.  Once we call
   368     // cg->generate(), we are committed.  If it fails, the whole
   369     // compilation task is compromised.
   370     if (failing())  return;
   371 #ifndef PRODUCT
   372     if (PrintOpto || PrintOptoInlining || PrintInlining) {
   373       // Only one fall-back, so if an intrinsic fails, ignore any bytecodes.
   374       if (cg->is_intrinsic() && call_method->code_size() > 0) {
   375         tty->print("Bailed out of intrinsic, will not inline: ");
   376         call_method->print_name(); tty->cr();
   377       }
   378     }
   379 #endif
   380     // This can happen if a library intrinsic is available, but refuses
   381     // the call site, perhaps because it did not match a pattern the
   382     // intrinsic was expecting to optimize.  The fallback position is
   383     // to call out-of-line.
   384     try_inline = false;  // Inline tactic bailed out.
   385     cg = C->call_generator(call_method, vtable_index, call_is_virtual, jvms, try_inline, prof_factor());
   386     if ((new_jvms = cg->generate(jvms)) == NULL) {
   387       guarantee(failing(), "call failed to generate:  calls should work");
   388       return;
   389     }
   390   }
   392   if (cg->is_inline()) {
   393     C->env()->notice_inlined_method(call_method);
   394   }
   396   // Reset parser state from [new_]jvms, which now carries results of the call.
   397   // Return value (if any) is already pushed on the stack by the cg.
   398   add_exception_states_from(new_jvms);
   399   if (new_jvms->map()->control() == top()) {
   400     stop_and_kill_map();
   401   } else {
   402     assert(new_jvms->same_calls_as(jvms), "method/bci left unchanged");
   403     set_jvms(new_jvms);
   404   }
   406   if (!stopped()) {
   407     // This was some sort of virtual call, which did a null check for us.
   408     // Now we can assert receiver-not-null, on the normal return path.
   409     if (receiver != NULL && cg->is_virtual()) {
   410       Node* cast = cast_not_null(receiver);
   411       // %%% assert(receiver == cast, "should already have cast the receiver");
   412     }
   414     // Round double result after a call from strict to non-strict code
   415     round_double_result(dest_method);
   417     // If the return type of the method is not loaded, assert that the
   418     // value we got is a null.  Otherwise, we need to recompile.
   419     if (!dest_method->return_type()->is_loaded()) {
   420 #ifndef PRODUCT
   421       if (PrintOpto && (Verbose || WizardMode)) {
   422         method()->print_name(); tty->print_cr(" asserting nullness of result at bci: %d", bci());
   423         dest_method->print_name(); tty->cr();
   424       }
   425 #endif
   426       if (C->log() != NULL) {
   427         C->log()->elem("assert_null reason='return' klass='%d'",
   428                        C->log()->identify(dest_method->return_type()));
   429       }
   430       // If there is going to be a trap, put it at the next bytecode:
   431       set_bci(iter().next_bci());
   432       do_null_assert(peek(), T_OBJECT);
   433       set_bci(iter().cur_bci()); // put it back
   434     }
   435   }
   437   // Restart record of parsing work after possible inlining of call
   438 #ifndef PRODUCT
   439   parse_histogram()->set_initial_state(bc());
   440 #endif
   441 }
   443 //---------------------------catch_call_exceptions-----------------------------
   444 // Put a Catch and CatchProj nodes behind a just-created call.
   445 // Send their caught exceptions to the proper handler.
   446 // This may be used after a call to the rethrow VM stub,
   447 // when it is needed to process unloaded exception classes.
   448 void Parse::catch_call_exceptions(ciExceptionHandlerStream& handlers) {
   449   // Exceptions are delivered through this channel:
   450   Node* i_o = this->i_o();
   452   // Add a CatchNode.
   453   GrowableArray<int>* bcis = new (C->node_arena()) GrowableArray<int>(C->node_arena(), 8, 0, -1);
   454   GrowableArray<const Type*>* extypes = new (C->node_arena()) GrowableArray<const Type*>(C->node_arena(), 8, 0, NULL);
   455   GrowableArray<int>* saw_unloaded = new (C->node_arena()) GrowableArray<int>(C->node_arena(), 8, 0, 0);
   457   for (; !handlers.is_done(); handlers.next()) {
   458     ciExceptionHandler* h        = handlers.handler();
   459     int                 h_bci    = h->handler_bci();
   460     ciInstanceKlass*    h_klass  = h->is_catch_all() ? env()->Throwable_klass() : h->catch_klass();
   461     // Do not introduce unloaded exception types into the graph:
   462     if (!h_klass->is_loaded()) {
   463       if (saw_unloaded->contains(h_bci)) {
   464         /* We've already seen an unloaded exception with h_bci,
   465            so don't duplicate. Duplication will cause the CatchNode to be
   466            unnecessarily large. See 4713716. */
   467         continue;
   468       } else {
   469         saw_unloaded->append(h_bci);
   470       }
   471     }
   472     const Type*         h_extype = TypeOopPtr::make_from_klass(h_klass);
   473     // (We use make_from_klass because it respects UseUniqueSubclasses.)
   474     h_extype = h_extype->join(TypeInstPtr::NOTNULL);
   475     assert(!h_extype->empty(), "sanity");
   476     // Note:  It's OK if the BCIs repeat themselves.
   477     bcis->append(h_bci);
   478     extypes->append(h_extype);
   479   }
   481   int len = bcis->length();
   482   CatchNode *cn = new (C, 2) CatchNode(control(), i_o, len+1);
   483   Node *catch_ = _gvn.transform(cn);
   485   // now branch with the exception state to each of the (potential)
   486   // handlers
   487   for(int i=0; i < len; i++) {
   488     // Setup JVM state to enter the handler.
   489     PreserveJVMState pjvms(this);
   490     // Locals are just copied from before the call.
   491     // Get control from the CatchNode.
   492     int handler_bci = bcis->at(i);
   493     Node* ctrl = _gvn.transform( new (C, 1) CatchProjNode(catch_, i+1,handler_bci));
   494     // This handler cannot happen?
   495     if (ctrl == top())  continue;
   496     set_control(ctrl);
   498     // Create exception oop
   499     const TypeInstPtr* extype = extypes->at(i)->is_instptr();
   500     Node *ex_oop = _gvn.transform(new (C, 2) CreateExNode(extypes->at(i), ctrl, i_o));
   502     // Handle unloaded exception classes.
   503     if (saw_unloaded->contains(handler_bci)) {
   504       // An unloaded exception type is coming here.  Do an uncommon trap.
   505 #ifndef PRODUCT
   506       // We do not expect the same handler bci to take both cold unloaded
   507       // and hot loaded exceptions.  But, watch for it.
   508       if (extype->is_loaded()) {
   509         tty->print_cr("Warning: Handler @%d takes mixed loaded/unloaded exceptions in ");
   510         method()->print_name(); tty->cr();
   511       } else if (PrintOpto && (Verbose || WizardMode)) {
   512         tty->print("Bailing out on unloaded exception type ");
   513         extype->klass()->print_name();
   514         tty->print(" at bci:%d in ", bci());
   515         method()->print_name(); tty->cr();
   516       }
   517 #endif
   518       // Emit an uncommon trap instead of processing the block.
   519       set_bci(handler_bci);
   520       push_ex_oop(ex_oop);
   521       uncommon_trap(Deoptimization::Reason_unloaded,
   522                     Deoptimization::Action_reinterpret,
   523                     extype->klass(), "!loaded exception");
   524       set_bci(iter().cur_bci()); // put it back
   525       continue;
   526     }
   528     // go to the exception handler
   529     if (handler_bci < 0) {     // merge with corresponding rethrow node
   530       throw_to_exit(make_exception_state(ex_oop));
   531     } else {                      // Else jump to corresponding handle
   532       push_ex_oop(ex_oop);        // Clear stack and push just the oop.
   533       merge_exception(handler_bci);
   534     }
   535   }
   537   // The first CatchProj is for the normal return.
   538   // (Note:  If this is a call to rethrow_Java, this node goes dead.)
   539   set_control(_gvn.transform( new (C, 1) CatchProjNode(catch_, CatchProjNode::fall_through_index, CatchProjNode::no_handler_bci)));
   540 }
   543 //----------------------------catch_inline_exceptions--------------------------
   544 // Handle all exceptions thrown by an inlined method or individual bytecode.
   545 // Common case 1: we have no handler, so all exceptions merge right into
   546 // the rethrow case.
   547 // Case 2: we have some handlers, with loaded exception klasses that have
   548 // no subklasses.  We do a Deutsch-Shiffman style type-check on the incoming
   549 // exception oop and branch to the handler directly.
   550 // Case 3: We have some handlers with subklasses or are not loaded at
   551 // compile-time.  We have to call the runtime to resolve the exception.
   552 // So we insert a RethrowCall and all the logic that goes with it.
   553 void Parse::catch_inline_exceptions(SafePointNode* ex_map) {
   554   // Caller is responsible for saving away the map for normal control flow!
   555   assert(stopped(), "call set_map(NULL) first");
   556   assert(method()->has_exception_handlers(), "don't come here w/o work to do");
   558   Node* ex_node = saved_ex_oop(ex_map);
   559   if (ex_node == top()) {
   560     // No action needed.
   561     return;
   562   }
   563   const TypeInstPtr* ex_type = _gvn.type(ex_node)->isa_instptr();
   564   NOT_PRODUCT(if (ex_type==NULL) tty->print_cr("*** Exception not InstPtr"));
   565   if (ex_type == NULL)
   566     ex_type = TypeOopPtr::make_from_klass(env()->Throwable_klass())->is_instptr();
   568   // determine potential exception handlers
   569   ciExceptionHandlerStream handlers(method(), bci(),
   570                                     ex_type->klass()->as_instance_klass(),
   571                                     ex_type->klass_is_exact());
   573   // Start executing from the given throw state.  (Keep its stack, for now.)
   574   // Get the exception oop as known at compile time.
   575   ex_node = use_exception_state(ex_map);
   577   // Get the exception oop klass from its header
   578   Node* ex_klass_node = NULL;
   579   if (has_ex_handler() && !ex_type->klass_is_exact()) {
   580     Node* p = basic_plus_adr( ex_node, ex_node, oopDesc::klass_offset_in_bytes());
   581     ex_klass_node = _gvn.transform(new (C, 3) LoadKlassNode(NULL, immutable_memory(), p, TypeInstPtr::KLASS, TypeKlassPtr::OBJECT));
   583     // Compute the exception klass a little more cleverly.
   584     // Obvious solution is to simple do a LoadKlass from the 'ex_node'.
   585     // However, if the ex_node is a PhiNode, I'm going to do a LoadKlass for
   586     // each arm of the Phi.  If I know something clever about the exceptions
   587     // I'm loading the class from, I can replace the LoadKlass with the
   588     // klass constant for the exception oop.
   589     if( ex_node->is_Phi() ) {
   590       ex_klass_node = new (C, ex_node->req()) PhiNode( ex_node->in(0), TypeKlassPtr::OBJECT );
   591       for( uint i = 1; i < ex_node->req(); i++ ) {
   592         Node* p = basic_plus_adr( ex_node->in(i), ex_node->in(i), oopDesc::klass_offset_in_bytes() );
   593         Node* k = _gvn.transform(new (C, 3) LoadKlassNode(0, immutable_memory(), p, TypeInstPtr::KLASS, TypeKlassPtr::OBJECT));
   594         ex_klass_node->init_req( i, k );
   595       }
   596       _gvn.set_type(ex_klass_node, TypeKlassPtr::OBJECT);
   598     }
   599   }
   601   // Scan the exception table for applicable handlers.
   602   // If none, we can call rethrow() and be done!
   603   // If precise (loaded with no subklasses), insert a D.S. style
   604   // pointer compare to the correct handler and loop back.
   605   // If imprecise, switch to the Rethrow VM-call style handling.
   607   int remaining = handlers.count_remaining();
   609   // iterate through all entries sequentially
   610   for (;!handlers.is_done(); handlers.next()) {
   611     // Do nothing if turned off
   612     if( !DeutschShiffmanExceptions ) break;
   613     ciExceptionHandler* handler = handlers.handler();
   615     if (handler->is_rethrow()) {
   616       // If we fell off the end of the table without finding an imprecise
   617       // exception klass (and without finding a generic handler) then we
   618       // know this exception is not handled in this method.  We just rethrow
   619       // the exception into the caller.
   620       throw_to_exit(make_exception_state(ex_node));
   621       return;
   622     }
   624     // exception handler bci range covers throw_bci => investigate further
   625     int handler_bci = handler->handler_bci();
   627     if (remaining == 1) {
   628       push_ex_oop(ex_node);        // Push exception oop for handler
   629 #ifndef PRODUCT
   630       if (PrintOpto && WizardMode) {
   631         tty->print_cr("  Catching every inline exception bci:%d -> handler_bci:%d", bci(), handler_bci);
   632       }
   633 #endif
   634       merge_exception(handler_bci); // jump to handler
   635       return;                   // No more handling to be done here!
   636     }
   638     // %%% The following logic replicates make_from_klass_unique.
   639     // TO DO:  Replace by a subroutine call.  Then generalize
   640     // the type check, as noted in the next "%%%" comment.
   642     ciInstanceKlass* klass = handler->catch_klass();
   643     if (UseUniqueSubclasses) {
   644       // (We use make_from_klass because it respects UseUniqueSubclasses.)
   645       const TypeOopPtr* tp = TypeOopPtr::make_from_klass(klass);
   646       klass = tp->klass()->as_instance_klass();
   647     }
   649     // Get the handler's klass
   650     if (!klass->is_loaded())    // klass is not loaded?
   651       break;                    // Must call Rethrow!
   652     if (klass->is_interface())  // should not happen, but...
   653       break;                    // bail out
   654     // See if the loaded exception klass has no subtypes
   655     if (klass->has_subklass())
   656       break;                    // Cannot easily do precise test ==> Rethrow
   658     // %%% Now that subclass checking is very fast, we need to rewrite
   659     // this section and remove the option "DeutschShiffmanExceptions".
   660     // The exception processing chain should be a normal typecase pattern,
   661     // with a bailout to the interpreter only in the case of unloaded
   662     // classes.  (The bailout should mark the method non-entrant.)
   663     // This rewrite should be placed in GraphKit::, not Parse::.
   665     // Add a dependence; if any subclass added we need to recompile
   666     // %%% should use stronger assert_unique_concrete_subtype instead
   667     if (!klass->is_final()) {
   668       C->dependencies()->assert_leaf_type(klass);
   669     }
   671     // Implement precise test
   672     const TypeKlassPtr *tk = TypeKlassPtr::make(klass);
   673     Node* con = _gvn.makecon(tk);
   674     Node* cmp = _gvn.transform( new (C, 3) CmpPNode(ex_klass_node, con) );
   675     Node* bol = _gvn.transform( new (C, 2) BoolNode(cmp, BoolTest::ne) );
   676     { BuildCutout unless(this, bol, PROB_LIKELY(0.7f));
   677       const TypeInstPtr* tinst = TypeInstPtr::make_exact(TypePtr::NotNull, klass);
   678       Node* ex_oop = _gvn.transform(new (C, 2) CheckCastPPNode(control(), ex_node, tinst));
   679       push_ex_oop(ex_oop);      // Push exception oop for handler
   680 #ifndef PRODUCT
   681       if (PrintOpto && WizardMode) {
   682         tty->print("  Catching inline exception bci:%d -> handler_bci:%d -- ", bci(), handler_bci);
   683         klass->print_name();
   684         tty->cr();
   685       }
   686 #endif
   687       merge_exception(handler_bci);
   688     }
   690     // Come here if exception does not match handler.
   691     // Carry on with more handler checks.
   692     --remaining;
   693   }
   695   assert(!stopped(), "you should return if you finish the chain");
   697   if (remaining == 1) {
   698     // Further checks do not matter.
   699   }
   701   if (can_rerun_bytecode()) {
   702     // Do not push_ex_oop here!
   703     // Re-executing the bytecode will reproduce the throwing condition.
   704     bool must_throw = true;
   705     uncommon_trap(Deoptimization::Reason_unhandled,
   706                   Deoptimization::Action_none,
   707                   (ciKlass*)NULL, (const char*)NULL, // default args
   708                   must_throw);
   709     return;
   710   }
   712   // Oops, need to call into the VM to resolve the klasses at runtime.
   713   // Note:  This call must not deoptimize, since it is not a real at this bci!
   714   kill_dead_locals();
   716   make_runtime_call(RC_NO_LEAF | RC_MUST_THROW,
   717                     OptoRuntime::rethrow_Type(),
   718                     OptoRuntime::rethrow_stub(),
   719                     NULL, NULL,
   720                     ex_node);
   722   // Rethrow is a pure call, no side effects, only a result.
   723   // The result cannot be allocated, so we use I_O
   725   // Catch exceptions from the rethrow
   726   catch_call_exceptions(handlers);
   727 }
   730 // (Note:  Moved add_debug_info into GraphKit::add_safepoint_edges.)
   733 #ifndef PRODUCT
   734 void Parse::count_compiled_calls(bool at_method_entry, bool is_inline) {
   735   if( CountCompiledCalls ) {
   736     if( at_method_entry ) {
   737       // bump invocation counter if top method (for statistics)
   738       if (CountCompiledCalls && depth() == 1) {
   739         const TypeInstPtr* addr_type = TypeInstPtr::make(method());
   740         Node* adr1 = makecon(addr_type);
   741         Node* adr2 = basic_plus_adr(adr1, adr1, in_bytes(methodOopDesc::compiled_invocation_counter_offset()));
   742         increment_counter(adr2);
   743       }
   744     } else if (is_inline) {
   745       switch (bc()) {
   746       case Bytecodes::_invokevirtual:   increment_counter(SharedRuntime::nof_inlined_calls_addr()); break;
   747       case Bytecodes::_invokeinterface: increment_counter(SharedRuntime::nof_inlined_interface_calls_addr()); break;
   748       case Bytecodes::_invokestatic:
   749       case Bytecodes::_invokespecial:   increment_counter(SharedRuntime::nof_inlined_static_calls_addr()); break;
   750       default: fatal("unexpected call bytecode");
   751       }
   752     } else {
   753       switch (bc()) {
   754       case Bytecodes::_invokevirtual:   increment_counter(SharedRuntime::nof_normal_calls_addr()); break;
   755       case Bytecodes::_invokeinterface: increment_counter(SharedRuntime::nof_interface_calls_addr()); break;
   756       case Bytecodes::_invokestatic:
   757       case Bytecodes::_invokespecial:   increment_counter(SharedRuntime::nof_static_calls_addr()); break;
   758       default: fatal("unexpected call bytecode");
   759       }
   760     }
   761   }
   762 }
   763 #endif //PRODUCT
   766 // Identify possible target method and inlining style
   767 ciMethod* Parse::optimize_inlining(ciMethod* caller, int bci, ciInstanceKlass* klass,
   768                                    ciMethod *dest_method, const TypeOopPtr* receiver_type) {
   769   // only use for virtual or interface calls
   771   // If it is obviously final, do not bother to call find_monomorphic_target,
   772   // because the class hierarchy checks are not needed, and may fail due to
   773   // incompletely loaded classes.  Since we do our own class loading checks
   774   // in this module, we may confidently bind to any method.
   775   if (dest_method->can_be_statically_bound()) {
   776     return dest_method;
   777   }
   779   // Attempt to improve the receiver
   780   bool actual_receiver_is_exact = false;
   781   ciInstanceKlass* actual_receiver = klass;
   782   if (receiver_type != NULL) {
   783     // Array methods are all inherited from Object, and are monomorphic.
   784     if (receiver_type->isa_aryptr() &&
   785         dest_method->holder() == env()->Object_klass()) {
   786       return dest_method;
   787     }
   789     // All other interesting cases are instance klasses.
   790     if (!receiver_type->isa_instptr()) {
   791       return NULL;
   792     }
   794     ciInstanceKlass *ikl = receiver_type->klass()->as_instance_klass();
   795     if (ikl->is_loaded() && ikl->is_initialized() && !ikl->is_interface() &&
   796         (ikl == actual_receiver || ikl->is_subclass_of(actual_receiver))) {
   797       // ikl is a same or better type than the original actual_receiver,
   798       // e.g. static receiver from bytecodes.
   799       actual_receiver = ikl;
   800       // Is the actual_receiver exact?
   801       actual_receiver_is_exact = receiver_type->klass_is_exact();
   802     }
   803   }
   805   ciInstanceKlass*   calling_klass = caller->holder();
   806   ciMethod* cha_monomorphic_target = dest_method->find_monomorphic_target(calling_klass, klass, actual_receiver);
   807   if (cha_monomorphic_target != NULL) {
   808     assert(!cha_monomorphic_target->is_abstract(), "");
   809     // Look at the method-receiver type.  Does it add "too much information"?
   810     ciKlass*    mr_klass = cha_monomorphic_target->holder();
   811     const Type* mr_type  = TypeInstPtr::make(TypePtr::BotPTR, mr_klass);
   812     if (receiver_type == NULL || !receiver_type->higher_equal(mr_type)) {
   813       // Calling this method would include an implicit cast to its holder.
   814       // %%% Not yet implemented.  Would throw minor asserts at present.
   815       // %%% The most common wins are already gained by +UseUniqueSubclasses.
   816       // To fix, put the higher_equal check at the call of this routine,
   817       // and add a CheckCastPP to the receiver.
   818       if (TraceDependencies) {
   819         tty->print_cr("found unique CHA method, but could not cast up");
   820         tty->print("  method  = ");
   821         cha_monomorphic_target->print();
   822         tty->cr();
   823       }
   824       if (C->log() != NULL) {
   825         C->log()->elem("missed_CHA_opportunity klass='%d' method='%d'",
   826                        C->log()->identify(klass),
   827                        C->log()->identify(cha_monomorphic_target));
   828       }
   829       cha_monomorphic_target = NULL;
   830     }
   831   }
   832   if (cha_monomorphic_target != NULL) {
   833     // Hardwiring a virtual.
   834     // If we inlined because CHA revealed only a single target method,
   835     // then we are dependent on that target method not getting overridden
   836     // by dynamic class loading.  Be sure to test the "static" receiver
   837     // dest_method here, as opposed to the actual receiver, which may
   838     // falsely lead us to believe that the receiver is final or private.
   839     C->dependencies()->assert_unique_concrete_method(actual_receiver, cha_monomorphic_target);
   840     return cha_monomorphic_target;
   841   }
   843   // If the type is exact, we can still bind the method w/o a vcall.
   844   // (This case comes after CHA so we can see how much extra work it does.)
   845   if (actual_receiver_is_exact) {
   846     // In case of evolution, there is a dependence on every inlined method, since each
   847     // such method can be changed when its class is redefined.
   848     ciMethod* exact_method = dest_method->resolve_invoke(calling_klass, actual_receiver);
   849     if (exact_method != NULL) {
   850 #ifndef PRODUCT
   851       if (PrintOpto) {
   852         tty->print("  Calling method via exact type @%d --- ", bci);
   853         exact_method->print_name();
   854         tty->cr();
   855       }
   856 #endif
   857       return exact_method;
   858     }
   859   }
   861   return NULL;
   862 }

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