1/*
2 * Copyright (c) 1998, 2016, 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.
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23 */
24
25#include "precompiled.hpp"
26#include "ci/ciCallSite.hpp"
27#include "ci/ciMethodHandle.hpp"
28#include "classfile/vmSymbols.hpp"
29#include "compiler/compileBroker.hpp"
30#include "compiler/compileLog.hpp"
31#include "interpreter/linkResolver.hpp"
32#include "opto/addnode.hpp"
33#include "opto/callGenerator.hpp"
34#include "opto/castnode.hpp"
35#include "opto/cfgnode.hpp"
36#include "opto/mulnode.hpp"
37#include "opto/parse.hpp"
38#include "opto/rootnode.hpp"
39#include "opto/runtime.hpp"
40#include "opto/subnode.hpp"
41#include "prims/nativeLookup.hpp"
42#include "runtime/sharedRuntime.hpp"
43
44void trace_type_profile(Compile* C, ciMethod *method, int depth, int bci, ciMethod *prof_method, ciKlass *prof_klass, int site_count, int receiver_count) {
45  if (TraceTypeProfile || C->print_inlining()) {
46    outputStream* out = tty;
47    if (!C->print_inlining()) {
48      if (!PrintOpto && !PrintCompilation) {
49        method->print_short_name();
50        tty->cr();
51      }
52      CompileTask::print_inlining_tty(prof_method, depth, bci);
53    } else {
54      out = C->print_inlining_stream();
55    }
56    CompileTask::print_inline_indent(depth, out);
57    out->print(" \\-> TypeProfile (%d/%d counts) = ", receiver_count, site_count);
58    stringStream ss;
59    prof_klass->name()->print_symbol_on(&ss);
60    out->print("%s", ss.as_string());
61    out->cr();
62  }
63}
64
65CallGenerator* Compile::call_generator(ciMethod* callee, int vtable_index, bool call_does_dispatch,
66                                       JVMState* jvms, bool allow_inline,
67                                       float prof_factor, ciKlass* speculative_receiver_type,
68                                       bool allow_intrinsics, bool delayed_forbidden) {
69  ciMethod*       caller   = jvms->method();
70  int             bci      = jvms->bci();
71  Bytecodes::Code bytecode = caller->java_code_at_bci(bci);
72  guarantee(callee != NULL, "failed method resolution");
73
74  // Dtrace currently doesn't work unless all calls are vanilla
75  if (env()->dtrace_method_probes()) {
76    allow_inline = false;
77  }
78
79  // Note: When we get profiling during stage-1 compiles, we want to pull
80  // from more specific profile data which pertains to this inlining.
81  // Right now, ignore the information in jvms->caller(), and do method[bci].
82  ciCallProfile profile = caller->call_profile_at_bci(bci);
83
84  // See how many times this site has been invoked.
85  int site_count = profile.count();
86  int receiver_count = -1;
87  if (call_does_dispatch && UseTypeProfile && profile.has_receiver(0)) {
88    // Receivers in the profile structure are ordered by call counts
89    // so that the most called (major) receiver is profile.receiver(0).
90    receiver_count = profile.receiver_count(0);
91  }
92
93  CompileLog* log = this->log();
94  if (log != NULL) {
95    int rid = (receiver_count >= 0)? log->identify(profile.receiver(0)): -1;
96    int r2id = (rid != -1 && profile.has_receiver(1))? log->identify(profile.receiver(1)):-1;
97    log->begin_elem("call method='%d' count='%d' prof_factor='%f'",
98                    log->identify(callee), site_count, prof_factor);
99    if (call_does_dispatch)  log->print(" virtual='1'");
100    if (allow_inline)     log->print(" inline='1'");
101    if (receiver_count >= 0) {
102      log->print(" receiver='%d' receiver_count='%d'", rid, receiver_count);
103      if (profile.has_receiver(1)) {
104        log->print(" receiver2='%d' receiver2_count='%d'", r2id, profile.receiver_count(1));
105      }
106    }
107    if (callee->is_method_handle_intrinsic()) {
108      log->print(" method_handle_intrinsic='1'");
109    }
110    log->end_elem();
111  }
112
113  // Special case the handling of certain common, profitable library
114  // methods.  If these methods are replaced with specialized code,
115  // then we return it as the inlined version of the call.
116  // We do this before the strict f.p. check below because the
117  // intrinsics handle strict f.p. correctly.
118  CallGenerator* cg_intrinsic = NULL;
119  if (allow_inline && allow_intrinsics) {
120    CallGenerator* cg = find_intrinsic(callee, call_does_dispatch);
121    if (cg != NULL) {
122      if (cg->is_predicated()) {
123        // Code without intrinsic but, hopefully, inlined.
124        CallGenerator* inline_cg = this->call_generator(callee,
125              vtable_index, call_does_dispatch, jvms, allow_inline, prof_factor, speculative_receiver_type, false);
126        if (inline_cg != NULL) {
127          cg = CallGenerator::for_predicated_intrinsic(cg, inline_cg);
128        }
129      }
130
131      // If intrinsic does the virtual dispatch, we try to use the type profile
132      // first, and hopefully inline it as the regular virtual call below.
133      // We will retry the intrinsic if nothing had claimed it afterwards.
134      if (cg->does_virtual_dispatch()) {
135        cg_intrinsic = cg;
136        cg = NULL;
137      } else {
138        return cg;
139      }
140    }
141  }
142
143  // Do method handle calls.
144  // NOTE: This must happen before normal inlining logic below since
145  // MethodHandle.invoke* are native methods which obviously don't
146  // have bytecodes and so normal inlining fails.
147  if (callee->is_method_handle_intrinsic()) {
148    CallGenerator* cg = CallGenerator::for_method_handle_call(jvms, caller, callee, delayed_forbidden);
149    assert(cg == NULL || !delayed_forbidden || !cg->is_late_inline() || cg->is_mh_late_inline(), "unexpected CallGenerator");
150    return cg;
151  }
152
153  // Do not inline strict fp into non-strict code, or the reverse
154  if (caller->is_strict() ^ callee->is_strict()) {
155    allow_inline = false;
156  }
157
158  // Attempt to inline...
159  if (allow_inline) {
160    // The profile data is only partly attributable to this caller,
161    // scale back the call site information.
162    float past_uses = jvms->method()->scale_count(site_count, prof_factor);
163    // This is the number of times we expect the call code to be used.
164    float expected_uses = past_uses;
165
166    // Try inlining a bytecoded method:
167    if (!call_does_dispatch) {
168      InlineTree* ilt = InlineTree::find_subtree_from_root(this->ilt(), jvms->caller(), jvms->method());
169      WarmCallInfo scratch_ci;
170      bool should_delay = false;
171      WarmCallInfo* ci = ilt->ok_to_inline(callee, jvms, profile, &scratch_ci, should_delay);
172      assert(ci != &scratch_ci, "do not let this pointer escape");
173      bool allow_inline   = (ci != NULL && !ci->is_cold());
174      bool require_inline = (allow_inline && ci->is_hot());
175
176      if (allow_inline) {
177        CallGenerator* cg = CallGenerator::for_inline(callee, expected_uses);
178
179        if (require_inline && cg != NULL) {
180          // Delay the inlining of this method to give us the
181          // opportunity to perform some high level optimizations
182          // first.
183          if (should_delay_string_inlining(callee, jvms)) {
184            assert(!delayed_forbidden, "strange");
185            return CallGenerator::for_string_late_inline(callee, cg);
186          } else if (should_delay_boxing_inlining(callee, jvms)) {
187            assert(!delayed_forbidden, "strange");
188            return CallGenerator::for_boxing_late_inline(callee, cg);
189          } else if ((should_delay || AlwaysIncrementalInline) && !delayed_forbidden) {
190            return CallGenerator::for_late_inline(callee, cg);
191          }
192        }
193        if (cg == NULL || should_delay) {
194          // Fall through.
195        } else if (require_inline || !InlineWarmCalls) {
196          return cg;
197        } else {
198          CallGenerator* cold_cg = call_generator(callee, vtable_index, call_does_dispatch, jvms, false, prof_factor);
199          return CallGenerator::for_warm_call(ci, cold_cg, cg);
200        }
201      }
202    }
203
204    // Try using the type profile.
205    if (call_does_dispatch && site_count > 0 && receiver_count > 0) {
206      // The major receiver's count >= TypeProfileMajorReceiverPercent of site_count.
207      bool have_major_receiver = (100.*profile.receiver_prob(0) >= (float)TypeProfileMajorReceiverPercent);
208      ciMethod* receiver_method = NULL;
209
210      int morphism = profile.morphism();
211      if (speculative_receiver_type != NULL) {
212        if (!too_many_traps(caller, bci, Deoptimization::Reason_speculate_class_check)) {
213          // We have a speculative type, we should be able to resolve
214          // the call. We do that before looking at the profiling at
215          // this invoke because it may lead to bimorphic inlining which
216          // a speculative type should help us avoid.
217          receiver_method = callee->resolve_invoke(jvms->method()->holder(),
218                                                   speculative_receiver_type);
219          if (receiver_method == NULL) {
220            speculative_receiver_type = NULL;
221          } else {
222            morphism = 1;
223          }
224        } else {
225          // speculation failed before. Use profiling at the call
226          // (could allow bimorphic inlining for instance).
227          speculative_receiver_type = NULL;
228        }
229      }
230      if (receiver_method == NULL &&
231          (have_major_receiver || morphism == 1 ||
232           (morphism == 2 && UseBimorphicInlining))) {
233        // receiver_method = profile.method();
234        // Profiles do not suggest methods now.  Look it up in the major receiver.
235        receiver_method = callee->resolve_invoke(jvms->method()->holder(),
236                                                      profile.receiver(0));
237      }
238      if (receiver_method != NULL) {
239        // The single majority receiver sufficiently outweighs the minority.
240        CallGenerator* hit_cg = this->call_generator(receiver_method,
241              vtable_index, !call_does_dispatch, jvms, allow_inline, prof_factor);
242        if (hit_cg != NULL) {
243          // Look up second receiver.
244          CallGenerator* next_hit_cg = NULL;
245          ciMethod* next_receiver_method = NULL;
246          if (morphism == 2 && UseBimorphicInlining) {
247            next_receiver_method = callee->resolve_invoke(jvms->method()->holder(),
248                                                               profile.receiver(1));
249            if (next_receiver_method != NULL) {
250              next_hit_cg = this->call_generator(next_receiver_method,
251                                  vtable_index, !call_does_dispatch, jvms,
252                                  allow_inline, prof_factor);
253              if (next_hit_cg != NULL && !next_hit_cg->is_inline() &&
254                  have_major_receiver && UseOnlyInlinedBimorphic) {
255                  // Skip if we can't inline second receiver's method
256                  next_hit_cg = NULL;
257              }
258            }
259          }
260          CallGenerator* miss_cg;
261          Deoptimization::DeoptReason reason = morphism == 2 ?
262            Deoptimization::Reason_bimorphic : Deoptimization::reason_class_check(speculative_receiver_type != NULL);
263          if ((morphism == 1 || (morphism == 2 && next_hit_cg != NULL)) &&
264              !too_many_traps(caller, bci, reason)
265             ) {
266            // Generate uncommon trap for class check failure path
267            // in case of monomorphic or bimorphic virtual call site.
268            miss_cg = CallGenerator::for_uncommon_trap(callee, reason,
269                        Deoptimization::Action_maybe_recompile);
270          } else {
271            // Generate virtual call for class check failure path
272            // in case of polymorphic virtual call site.
273            miss_cg = CallGenerator::for_virtual_call(callee, vtable_index);
274          }
275          if (miss_cg != NULL) {
276            if (next_hit_cg != NULL) {
277              assert(speculative_receiver_type == NULL, "shouldn't end up here if we used speculation");
278              trace_type_profile(C, jvms->method(), jvms->depth() - 1, jvms->bci(), next_receiver_method, profile.receiver(1), site_count, profile.receiver_count(1));
279              // We don't need to record dependency on a receiver here and below.
280              // Whenever we inline, the dependency is added by Parse::Parse().
281              miss_cg = CallGenerator::for_predicted_call(profile.receiver(1), miss_cg, next_hit_cg, PROB_MAX);
282            }
283            if (miss_cg != NULL) {
284              trace_type_profile(C, jvms->method(), jvms->depth() - 1, jvms->bci(), receiver_method, profile.receiver(0), site_count, receiver_count);
285              ciKlass* k = speculative_receiver_type != NULL ? speculative_receiver_type : profile.receiver(0);
286              float hit_prob = speculative_receiver_type != NULL ? 1.0 : profile.receiver_prob(0);
287              CallGenerator* cg = CallGenerator::for_predicted_call(k, miss_cg, hit_cg, hit_prob);
288              if (cg != NULL)  return cg;
289            }
290          }
291        }
292      }
293    }
294  }
295
296  // Nothing claimed the intrinsic, we go with straight-forward inlining
297  // for already discovered intrinsic.
298  if (allow_inline && allow_intrinsics && cg_intrinsic != NULL) {
299    assert(cg_intrinsic->does_virtual_dispatch(), "sanity");
300    return cg_intrinsic;
301  }
302
303  // There was no special inlining tactic, or it bailed out.
304  // Use a more generic tactic, like a simple call.
305  if (call_does_dispatch) {
306    const char* msg = "virtual call";
307    if (PrintInlining) print_inlining(callee, jvms->depth() - 1, jvms->bci(), msg);
308    C->log_inline_failure(msg);
309    return CallGenerator::for_virtual_call(callee, vtable_index);
310  } else {
311    // Class Hierarchy Analysis or Type Profile reveals a unique target,
312    // or it is a static or special call.
313    return CallGenerator::for_direct_call(callee, should_delay_inlining(callee, jvms));
314  }
315}
316
317// Return true for methods that shouldn't be inlined early so that
318// they are easier to analyze and optimize as intrinsics.
319bool Compile::should_delay_string_inlining(ciMethod* call_method, JVMState* jvms) {
320  if (has_stringbuilder()) {
321
322    if ((call_method->holder() == C->env()->StringBuilder_klass() ||
323         call_method->holder() == C->env()->StringBuffer_klass()) &&
324        (jvms->method()->holder() == C->env()->StringBuilder_klass() ||
325         jvms->method()->holder() == C->env()->StringBuffer_klass())) {
326      // Delay SB calls only when called from non-SB code
327      return false;
328    }
329
330    switch (call_method->intrinsic_id()) {
331      case vmIntrinsics::_StringBuilder_void:
332      case vmIntrinsics::_StringBuilder_int:
333      case vmIntrinsics::_StringBuilder_String:
334      case vmIntrinsics::_StringBuilder_append_char:
335      case vmIntrinsics::_StringBuilder_append_int:
336      case vmIntrinsics::_StringBuilder_append_String:
337      case vmIntrinsics::_StringBuilder_toString:
338      case vmIntrinsics::_StringBuffer_void:
339      case vmIntrinsics::_StringBuffer_int:
340      case vmIntrinsics::_StringBuffer_String:
341      case vmIntrinsics::_StringBuffer_append_char:
342      case vmIntrinsics::_StringBuffer_append_int:
343      case vmIntrinsics::_StringBuffer_append_String:
344      case vmIntrinsics::_StringBuffer_toString:
345      case vmIntrinsics::_Integer_toString:
346        return true;
347
348      case vmIntrinsics::_String_String:
349        {
350          Node* receiver = jvms->map()->in(jvms->argoff() + 1);
351          if (receiver->is_Proj() && receiver->in(0)->is_CallStaticJava()) {
352            CallStaticJavaNode* csj = receiver->in(0)->as_CallStaticJava();
353            ciMethod* m = csj->method();
354            if (m != NULL &&
355                (m->intrinsic_id() == vmIntrinsics::_StringBuffer_toString ||
356                 m->intrinsic_id() == vmIntrinsics::_StringBuilder_toString))
357              // Delay String.<init>(new SB())
358              return true;
359          }
360          return false;
361        }
362
363      default:
364        return false;
365    }
366  }
367  return false;
368}
369
370bool Compile::should_delay_boxing_inlining(ciMethod* call_method, JVMState* jvms) {
371  if (eliminate_boxing() && call_method->is_boxing_method()) {
372    set_has_boxed_value(true);
373    return aggressive_unboxing();
374  }
375  return false;
376}
377
378// uncommon-trap call-sites where callee is unloaded, uninitialized or will not link
379bool Parse::can_not_compile_call_site(ciMethod *dest_method, ciInstanceKlass* klass) {
380  // Additional inputs to consider...
381  // bc      = bc()
382  // caller  = method()
383  // iter().get_method_holder_index()
384  assert( dest_method->is_loaded(), "ciTypeFlow should not let us get here" );
385  // Interface classes can be loaded & linked and never get around to
386  // being initialized.  Uncommon-trap for not-initialized static or
387  // v-calls.  Let interface calls happen.
388  ciInstanceKlass* holder_klass = dest_method->holder();
389  if (!holder_klass->is_being_initialized() &&
390      !holder_klass->is_initialized() &&
391      !holder_klass->is_interface()) {
392    uncommon_trap(Deoptimization::Reason_uninitialized,
393                  Deoptimization::Action_reinterpret,
394                  holder_klass);
395    return true;
396  }
397
398  assert(dest_method->is_loaded(), "dest_method: typeflow responsibility");
399  return false;
400}
401
402#ifdef ASSERT
403static bool check_call_consistency(JVMState* jvms, CallGenerator* cg) {
404  ciMethod* symbolic_info = jvms->method()->get_method_at_bci(jvms->bci());
405  ciMethod* resolved_method = cg->method();
406  if (!ciMethod::is_consistent_info(symbolic_info, resolved_method)) {
407    tty->print_cr("JVMS:");
408    jvms->dump();
409    tty->print_cr("Bytecode info:");
410    jvms->method()->get_method_at_bci(jvms->bci())->print(); tty->cr();
411    tty->print_cr("Resolved method:");
412    cg->method()->print(); tty->cr();
413    return false;
414  }
415  return true;
416}
417#endif // ASSERT
418
419//------------------------------do_call----------------------------------------
420// Handle your basic call.  Inline if we can & want to, else just setup call.
421void Parse::do_call() {
422  // It's likely we are going to add debug info soon.
423  // Also, if we inline a guy who eventually needs debug info for this JVMS,
424  // our contribution to it is cleaned up right here.
425  kill_dead_locals();
426
427  C->print_inlining_assert_ready();
428
429  // Set frequently used booleans
430  const bool is_virtual = bc() == Bytecodes::_invokevirtual;
431  const bool is_virtual_or_interface = is_virtual || bc() == Bytecodes::_invokeinterface;
432  const bool has_receiver = Bytecodes::has_receiver(bc());
433
434  // Find target being called
435  bool             will_link;
436  ciSignature*     declared_signature = NULL;
437  ciMethod*        orig_callee  = iter().get_method(will_link, &declared_signature);  // callee in the bytecode
438  ciInstanceKlass* holder_klass = orig_callee->holder();
439  ciKlass*         holder       = iter().get_declared_method_holder();
440  ciInstanceKlass* klass = ciEnv::get_instance_klass_for_declared_method_holder(holder);
441  assert(declared_signature != NULL, "cannot be null");
442
443  // Bump max node limit for JSR292 users
444  if (bc() == Bytecodes::_invokedynamic || orig_callee->is_method_handle_intrinsic()) {
445    C->set_max_node_limit(3*MaxNodeLimit);
446  }
447
448  // uncommon-trap when callee is unloaded, uninitialized or will not link
449  // bailout when too many arguments for register representation
450  if (!will_link || can_not_compile_call_site(orig_callee, klass)) {
451    if (PrintOpto && (Verbose || WizardMode)) {
452      method()->print_name(); tty->print_cr(" can not compile call at bci %d to:", bci());
453      orig_callee->print_name(); tty->cr();
454    }
455    return;
456  }
457  assert(holder_klass->is_loaded(), "");
458  //assert((bc_callee->is_static() || is_invokedynamic) == !has_receiver , "must match bc");  // XXX invokehandle (cur_bc_raw)
459  // Note: this takes into account invokeinterface of methods declared in java/lang/Object,
460  // which should be invokevirtuals but according to the VM spec may be invokeinterfaces
461  assert(holder_klass->is_interface() || holder_klass->super() == NULL || (bc() != Bytecodes::_invokeinterface), "must match bc");
462  // Note:  In the absence of miranda methods, an abstract class K can perform
463  // an invokevirtual directly on an interface method I.m if K implements I.
464
465  // orig_callee is the resolved callee which's signature includes the
466  // appendix argument.
467  const int nargs = orig_callee->arg_size();
468  const bool is_signature_polymorphic = MethodHandles::is_signature_polymorphic(orig_callee->intrinsic_id());
469
470  // Push appendix argument (MethodType, CallSite, etc.), if one.
471  if (iter().has_appendix()) {
472    ciObject* appendix_arg = iter().get_appendix();
473    const TypeOopPtr* appendix_arg_type = TypeOopPtr::make_from_constant(appendix_arg);
474    Node* appendix_arg_node = _gvn.makecon(appendix_arg_type);
475    push(appendix_arg_node);
476  }
477
478  // ---------------------
479  // Does Class Hierarchy Analysis reveal only a single target of a v-call?
480  // Then we may inline or make a static call, but become dependent on there being only 1 target.
481  // Does the call-site type profile reveal only one receiver?
482  // Then we may introduce a run-time check and inline on the path where it succeeds.
483  // The other path may uncommon_trap, check for another receiver, or do a v-call.
484
485  // Try to get the most accurate receiver type
486  ciMethod* callee             = orig_callee;
487  int       vtable_index       = Method::invalid_vtable_index;
488  bool      call_does_dispatch = false;
489
490  // Speculative type of the receiver if any
491  ciKlass* speculative_receiver_type = NULL;
492  if (is_virtual_or_interface) {
493    Node* receiver_node             = stack(sp() - nargs);
494    const TypeOopPtr* receiver_type = _gvn.type(receiver_node)->isa_oopptr();
495    // call_does_dispatch and vtable_index are out-parameters.  They might be changed.
496    // For arrays, klass below is Object. When vtable calls are used,
497    // resolving the call with Object would allow an illegal call to
498    // finalize() on an array. We use holder instead: illegal calls to
499    // finalize() won't be compiled as vtable calls (IC call
500    // resolution will catch the illegal call) and the few legal calls
501    // on array types won't be either.
502    callee = C->optimize_virtual_call(method(), bci(), klass, holder, orig_callee,
503                                      receiver_type, is_virtual,
504                                      call_does_dispatch, vtable_index);  // out-parameters
505    speculative_receiver_type = receiver_type != NULL ? receiver_type->speculative_type() : NULL;
506  }
507
508  // invoke-super-special
509  if (iter().cur_bc_raw() == Bytecodes::_invokespecial && !orig_callee->is_object_initializer()) {
510    ciInstanceKlass* calling_klass = method()->holder();
511    ciInstanceKlass* sender_klass =
512        calling_klass->is_anonymous() ? calling_klass->host_klass() :
513                                        calling_klass;
514    if (sender_klass->is_interface()) {
515      Node* receiver_node = stack(sp() - nargs);
516      Node* cls_node = makecon(TypeKlassPtr::make(sender_klass));
517      Node* bad_type_ctrl = NULL;
518      Node* casted_receiver = gen_checkcast(receiver_node, cls_node, &bad_type_ctrl);
519      if (bad_type_ctrl != NULL) {
520        PreserveJVMState pjvms(this);
521        set_control(bad_type_ctrl);
522        uncommon_trap(Deoptimization::Reason_class_check,
523                      Deoptimization::Action_none);
524      }
525      if (stopped()) {
526        return; // MUST uncommon-trap?
527      }
528      set_stack(sp() - nargs, casted_receiver);
529    }
530  }
531
532  // Note:  It's OK to try to inline a virtual call.
533  // The call generator will not attempt to inline a polymorphic call
534  // unless it knows how to optimize the receiver dispatch.
535  bool try_inline = (C->do_inlining() || InlineAccessors);
536
537  // ---------------------
538  dec_sp(nargs);              // Temporarily pop args for JVM state of call
539  JVMState* jvms = sync_jvms();
540
541  // ---------------------
542  // Decide call tactic.
543  // This call checks with CHA, the interpreter profile, intrinsics table, etc.
544  // It decides whether inlining is desirable or not.
545  CallGenerator* cg = C->call_generator(callee, vtable_index, call_does_dispatch, jvms, try_inline, prof_factor(), speculative_receiver_type);
546
547  // NOTE:  Don't use orig_callee and callee after this point!  Use cg->method() instead.
548  orig_callee = callee = NULL;
549
550  // ---------------------
551  // Round double arguments before call
552  round_double_arguments(cg->method());
553
554  // Feed profiling data for arguments to the type system so it can
555  // propagate it as speculative types
556  record_profiled_arguments_for_speculation(cg->method(), bc());
557
558#ifndef PRODUCT
559  // bump global counters for calls
560  count_compiled_calls(/*at_method_entry*/ false, cg->is_inline());
561
562  // Record first part of parsing work for this call
563  parse_histogram()->record_change();
564#endif // not PRODUCT
565
566  assert(jvms == this->jvms(), "still operating on the right JVMS");
567  assert(jvms_in_sync(),       "jvms must carry full info into CG");
568
569  // save across call, for a subsequent cast_not_null.
570  Node* receiver = has_receiver ? argument(0) : NULL;
571
572  // The extra CheckCastPPs for speculative types mess with PhaseStringOpts
573  if (receiver != NULL && !call_does_dispatch && !cg->is_string_late_inline()) {
574    // Feed profiling data for a single receiver to the type system so
575    // it can propagate it as a speculative type
576    receiver = record_profiled_receiver_for_speculation(receiver);
577  }
578
579  // Bump method data counters (We profile *before* the call is made
580  // because exceptions don't return to the call site.)
581  profile_call(receiver);
582
583  JVMState* new_jvms = cg->generate(jvms);
584  if (new_jvms == NULL) {
585    // When inlining attempt fails (e.g., too many arguments),
586    // it may contaminate the current compile state, making it
587    // impossible to pull back and try again.  Once we call
588    // cg->generate(), we are committed.  If it fails, the whole
589    // compilation task is compromised.
590    if (failing())  return;
591
592    // This can happen if a library intrinsic is available, but refuses
593    // the call site, perhaps because it did not match a pattern the
594    // intrinsic was expecting to optimize. Should always be possible to
595    // get a normal java call that may inline in that case
596    cg = C->call_generator(cg->method(), vtable_index, call_does_dispatch, jvms, try_inline, prof_factor(), speculative_receiver_type, /* allow_intrinsics= */ false);
597    new_jvms = cg->generate(jvms);
598    if (new_jvms == NULL) {
599      guarantee(failing(), "call failed to generate:  calls should work");
600      return;
601    }
602  }
603
604  if (cg->is_inline()) {
605    // Accumulate has_loops estimate
606    C->set_has_loops(C->has_loops() || cg->method()->has_loops());
607    C->env()->notice_inlined_method(cg->method());
608  }
609
610  // Reset parser state from [new_]jvms, which now carries results of the call.
611  // Return value (if any) is already pushed on the stack by the cg.
612  add_exception_states_from(new_jvms);
613  if (new_jvms->map()->control() == top()) {
614    stop_and_kill_map();
615  } else {
616    assert(new_jvms->same_calls_as(jvms), "method/bci left unchanged");
617    set_jvms(new_jvms);
618  }
619
620  assert(check_call_consistency(jvms, cg), "inconsistent info");
621
622  if (!stopped()) {
623    // This was some sort of virtual call, which did a null check for us.
624    // Now we can assert receiver-not-null, on the normal return path.
625    if (receiver != NULL && cg->is_virtual()) {
626      Node* cast = cast_not_null(receiver);
627      // %%% assert(receiver == cast, "should already have cast the receiver");
628    }
629
630    // Round double result after a call from strict to non-strict code
631    round_double_result(cg->method());
632
633    ciType* rtype = cg->method()->return_type();
634    ciType* ctype = declared_signature->return_type();
635
636    if (Bytecodes::has_optional_appendix(iter().cur_bc_raw()) || is_signature_polymorphic) {
637      // Be careful here with return types.
638      if (ctype != rtype) {
639        BasicType rt = rtype->basic_type();
640        BasicType ct = ctype->basic_type();
641        if (ct == T_VOID) {
642          // It's OK for a method  to return a value that is discarded.
643          // The discarding does not require any special action from the caller.
644          // The Java code knows this, at VerifyType.isNullConversion.
645          pop_node(rt);  // whatever it was, pop it
646        } else if (rt == T_INT || is_subword_type(rt)) {
647          // Nothing.  These cases are handled in lambda form bytecode.
648          assert(ct == T_INT || is_subword_type(ct), "must match: rt=%s, ct=%s", type2name(rt), type2name(ct));
649        } else if (rt == T_OBJECT || rt == T_ARRAY) {
650          assert(ct == T_OBJECT || ct == T_ARRAY, "rt=%s, ct=%s", type2name(rt), type2name(ct));
651          if (ctype->is_loaded()) {
652            const TypeOopPtr* arg_type = TypeOopPtr::make_from_klass(rtype->as_klass());
653            const Type*       sig_type = TypeOopPtr::make_from_klass(ctype->as_klass());
654            if (arg_type != NULL && !arg_type->higher_equal(sig_type)) {
655              Node* retnode = pop();
656              Node* cast_obj = _gvn.transform(new CheckCastPPNode(control(), retnode, sig_type));
657              push(cast_obj);
658            }
659          }
660        } else {
661          assert(rt == ct, "unexpected mismatch: rt=%s, ct=%s", type2name(rt), type2name(ct));
662          // push a zero; it's better than getting an oop/int mismatch
663          pop_node(rt);
664          Node* retnode = zerocon(ct);
665          push_node(ct, retnode);
666        }
667        // Now that the value is well-behaved, continue with the call-site type.
668        rtype = ctype;
669      }
670    } else {
671      // Symbolic resolution enforces the types to be the same.
672      // NOTE: We must relax the assert for unloaded types because two
673      // different ciType instances of the same unloaded class type
674      // can appear to be "loaded" by different loaders (depending on
675      // the accessing class).
676      assert(!rtype->is_loaded() || !ctype->is_loaded() || rtype == ctype,
677             "mismatched return types: rtype=%s, ctype=%s", rtype->name(), ctype->name());
678    }
679
680    // If the return type of the method is not loaded, assert that the
681    // value we got is a null.  Otherwise, we need to recompile.
682    if (!rtype->is_loaded()) {
683      if (PrintOpto && (Verbose || WizardMode)) {
684        method()->print_name(); tty->print_cr(" asserting nullness of result at bci: %d", bci());
685        cg->method()->print_name(); tty->cr();
686      }
687      if (C->log() != NULL) {
688        C->log()->elem("assert_null reason='return' klass='%d'",
689                       C->log()->identify(rtype));
690      }
691      // If there is going to be a trap, put it at the next bytecode:
692      set_bci(iter().next_bci());
693      null_assert(peek());
694      set_bci(iter().cur_bci()); // put it back
695    }
696    BasicType ct = ctype->basic_type();
697    if (ct == T_OBJECT || ct == T_ARRAY) {
698      record_profiled_return_for_speculation();
699    }
700  }
701
702  // Restart record of parsing work after possible inlining of call
703#ifndef PRODUCT
704  parse_histogram()->set_initial_state(bc());
705#endif
706}
707
708//---------------------------catch_call_exceptions-----------------------------
709// Put a Catch and CatchProj nodes behind a just-created call.
710// Send their caught exceptions to the proper handler.
711// This may be used after a call to the rethrow VM stub,
712// when it is needed to process unloaded exception classes.
713void Parse::catch_call_exceptions(ciExceptionHandlerStream& handlers) {
714  // Exceptions are delivered through this channel:
715  Node* i_o = this->i_o();
716
717  // Add a CatchNode.
718  GrowableArray<int>* bcis = new (C->node_arena()) GrowableArray<int>(C->node_arena(), 8, 0, -1);
719  GrowableArray<const Type*>* extypes = new (C->node_arena()) GrowableArray<const Type*>(C->node_arena(), 8, 0, NULL);
720  GrowableArray<int>* saw_unloaded = new (C->node_arena()) GrowableArray<int>(C->node_arena(), 8, 0, 0);
721
722  bool default_handler = false;
723  for (; !handlers.is_done(); handlers.next()) {
724    ciExceptionHandler* h        = handlers.handler();
725    int                 h_bci    = h->handler_bci();
726    ciInstanceKlass*    h_klass  = h->is_catch_all() ? env()->Throwable_klass() : h->catch_klass();
727    // Do not introduce unloaded exception types into the graph:
728    if (!h_klass->is_loaded()) {
729      if (saw_unloaded->contains(h_bci)) {
730        /* We've already seen an unloaded exception with h_bci,
731           so don't duplicate. Duplication will cause the CatchNode to be
732           unnecessarily large. See 4713716. */
733        continue;
734      } else {
735        saw_unloaded->append(h_bci);
736      }
737    }
738    const Type*         h_extype = TypeOopPtr::make_from_klass(h_klass);
739    // (We use make_from_klass because it respects UseUniqueSubclasses.)
740    h_extype = h_extype->join(TypeInstPtr::NOTNULL);
741    assert(!h_extype->empty(), "sanity");
742    // Note:  It's OK if the BCIs repeat themselves.
743    bcis->append(h_bci);
744    extypes->append(h_extype);
745    if (h_bci == -1) {
746      default_handler = true;
747    }
748  }
749
750  if (!default_handler) {
751    bcis->append(-1);
752    extypes->append(TypeOopPtr::make_from_klass(env()->Throwable_klass())->is_instptr());
753  }
754
755  int len = bcis->length();
756  CatchNode *cn = new CatchNode(control(), i_o, len+1);
757  Node *catch_ = _gvn.transform(cn);
758
759  // now branch with the exception state to each of the (potential)
760  // handlers
761  for(int i=0; i < len; i++) {
762    // Setup JVM state to enter the handler.
763    PreserveJVMState pjvms(this);
764    // Locals are just copied from before the call.
765    // Get control from the CatchNode.
766    int handler_bci = bcis->at(i);
767    Node* ctrl = _gvn.transform( new CatchProjNode(catch_, i+1,handler_bci));
768    // This handler cannot happen?
769    if (ctrl == top())  continue;
770    set_control(ctrl);
771
772    // Create exception oop
773    const TypeInstPtr* extype = extypes->at(i)->is_instptr();
774    Node *ex_oop = _gvn.transform(new CreateExNode(extypes->at(i), ctrl, i_o));
775
776    // Handle unloaded exception classes.
777    if (saw_unloaded->contains(handler_bci)) {
778      // An unloaded exception type is coming here.  Do an uncommon trap.
779#ifndef PRODUCT
780      // We do not expect the same handler bci to take both cold unloaded
781      // and hot loaded exceptions.  But, watch for it.
782      if ((Verbose || WizardMode) && extype->is_loaded()) {
783        tty->print("Warning: Handler @%d takes mixed loaded/unloaded exceptions in ", bci());
784        method()->print_name(); tty->cr();
785      } else if (PrintOpto && (Verbose || WizardMode)) {
786        tty->print("Bailing out on unloaded exception type ");
787        extype->klass()->print_name();
788        tty->print(" at bci:%d in ", bci());
789        method()->print_name(); tty->cr();
790      }
791#endif
792      // Emit an uncommon trap instead of processing the block.
793      set_bci(handler_bci);
794      push_ex_oop(ex_oop);
795      uncommon_trap(Deoptimization::Reason_unloaded,
796                    Deoptimization::Action_reinterpret,
797                    extype->klass(), "!loaded exception");
798      set_bci(iter().cur_bci()); // put it back
799      continue;
800    }
801
802    // go to the exception handler
803    if (handler_bci < 0) {     // merge with corresponding rethrow node
804      throw_to_exit(make_exception_state(ex_oop));
805    } else {                      // Else jump to corresponding handle
806      push_ex_oop(ex_oop);        // Clear stack and push just the oop.
807      merge_exception(handler_bci);
808    }
809  }
810
811  // The first CatchProj is for the normal return.
812  // (Note:  If this is a call to rethrow_Java, this node goes dead.)
813  set_control(_gvn.transform( new CatchProjNode(catch_, CatchProjNode::fall_through_index, CatchProjNode::no_handler_bci)));
814}
815
816
817//----------------------------catch_inline_exceptions--------------------------
818// Handle all exceptions thrown by an inlined method or individual bytecode.
819// Common case 1: we have no handler, so all exceptions merge right into
820// the rethrow case.
821// Case 2: we have some handlers, with loaded exception klasses that have
822// no subklasses.  We do a Deutsch-Shiffman style type-check on the incoming
823// exception oop and branch to the handler directly.
824// Case 3: We have some handlers with subklasses or are not loaded at
825// compile-time.  We have to call the runtime to resolve the exception.
826// So we insert a RethrowCall and all the logic that goes with it.
827void Parse::catch_inline_exceptions(SafePointNode* ex_map) {
828  // Caller is responsible for saving away the map for normal control flow!
829  assert(stopped(), "call set_map(NULL) first");
830  assert(method()->has_exception_handlers(), "don't come here w/o work to do");
831
832  Node* ex_node = saved_ex_oop(ex_map);
833  if (ex_node == top()) {
834    // No action needed.
835    return;
836  }
837  const TypeInstPtr* ex_type = _gvn.type(ex_node)->isa_instptr();
838  NOT_PRODUCT(if (ex_type==NULL) tty->print_cr("*** Exception not InstPtr"));
839  if (ex_type == NULL)
840    ex_type = TypeOopPtr::make_from_klass(env()->Throwable_klass())->is_instptr();
841
842  // determine potential exception handlers
843  ciExceptionHandlerStream handlers(method(), bci(),
844                                    ex_type->klass()->as_instance_klass(),
845                                    ex_type->klass_is_exact());
846
847  // Start executing from the given throw state.  (Keep its stack, for now.)
848  // Get the exception oop as known at compile time.
849  ex_node = use_exception_state(ex_map);
850
851  // Get the exception oop klass from its header
852  Node* ex_klass_node = NULL;
853  if (has_ex_handler() && !ex_type->klass_is_exact()) {
854    Node* p = basic_plus_adr( ex_node, ex_node, oopDesc::klass_offset_in_bytes());
855    ex_klass_node = _gvn.transform(LoadKlassNode::make(_gvn, NULL, immutable_memory(), p, TypeInstPtr::KLASS, TypeKlassPtr::OBJECT));
856
857    // Compute the exception klass a little more cleverly.
858    // Obvious solution is to simple do a LoadKlass from the 'ex_node'.
859    // However, if the ex_node is a PhiNode, I'm going to do a LoadKlass for
860    // each arm of the Phi.  If I know something clever about the exceptions
861    // I'm loading the class from, I can replace the LoadKlass with the
862    // klass constant for the exception oop.
863    if (ex_node->is_Phi()) {
864      ex_klass_node = new PhiNode(ex_node->in(0), TypeKlassPtr::OBJECT);
865      for (uint i = 1; i < ex_node->req(); i++) {
866        Node* ex_in = ex_node->in(i);
867        if (ex_in == top() || ex_in == NULL) {
868          // This path was not taken.
869          ex_klass_node->init_req(i, top());
870          continue;
871        }
872        Node* p = basic_plus_adr(ex_in, ex_in, oopDesc::klass_offset_in_bytes());
873        Node* k = _gvn.transform( LoadKlassNode::make(_gvn, NULL, immutable_memory(), p, TypeInstPtr::KLASS, TypeKlassPtr::OBJECT));
874        ex_klass_node->init_req( i, k );
875      }
876      _gvn.set_type(ex_klass_node, TypeKlassPtr::OBJECT);
877
878    }
879  }
880
881  // Scan the exception table for applicable handlers.
882  // If none, we can call rethrow() and be done!
883  // If precise (loaded with no subklasses), insert a D.S. style
884  // pointer compare to the correct handler and loop back.
885  // If imprecise, switch to the Rethrow VM-call style handling.
886
887  int remaining = handlers.count_remaining();
888
889  // iterate through all entries sequentially
890  for (;!handlers.is_done(); handlers.next()) {
891    ciExceptionHandler* handler = handlers.handler();
892
893    if (handler->is_rethrow()) {
894      // If we fell off the end of the table without finding an imprecise
895      // exception klass (and without finding a generic handler) then we
896      // know this exception is not handled in this method.  We just rethrow
897      // the exception into the caller.
898      throw_to_exit(make_exception_state(ex_node));
899      return;
900    }
901
902    // exception handler bci range covers throw_bci => investigate further
903    int handler_bci = handler->handler_bci();
904
905    if (remaining == 1) {
906      push_ex_oop(ex_node);        // Push exception oop for handler
907      if (PrintOpto && WizardMode) {
908        tty->print_cr("  Catching every inline exception bci:%d -> handler_bci:%d", bci(), handler_bci);
909      }
910      merge_exception(handler_bci); // jump to handler
911      return;                   // No more handling to be done here!
912    }
913
914    // Get the handler's klass
915    ciInstanceKlass* klass = handler->catch_klass();
916
917    if (!klass->is_loaded()) {  // klass is not loaded?
918      // fall through into catch_call_exceptions which will emit a
919      // handler with an uncommon trap.
920      break;
921    }
922
923    if (klass->is_interface())  // should not happen, but...
924      break;                    // bail out
925
926    // Check the type of the exception against the catch type
927    const TypeKlassPtr *tk = TypeKlassPtr::make(klass);
928    Node* con = _gvn.makecon(tk);
929    Node* not_subtype_ctrl = gen_subtype_check(ex_klass_node, con);
930    if (!stopped()) {
931      PreserveJVMState pjvms(this);
932      const TypeInstPtr* tinst = TypeOopPtr::make_from_klass_unique(klass)->cast_to_ptr_type(TypePtr::NotNull)->is_instptr();
933      assert(klass->has_subklass() || tinst->klass_is_exact(), "lost exactness");
934      Node* ex_oop = _gvn.transform(new CheckCastPPNode(control(), ex_node, tinst));
935      push_ex_oop(ex_oop);      // Push exception oop for handler
936      if (PrintOpto && WizardMode) {
937        tty->print("  Catching inline exception bci:%d -> handler_bci:%d -- ", bci(), handler_bci);
938        klass->print_name();
939        tty->cr();
940      }
941      merge_exception(handler_bci);
942    }
943    set_control(not_subtype_ctrl);
944
945    // Come here if exception does not match handler.
946    // Carry on with more handler checks.
947    --remaining;
948  }
949
950  assert(!stopped(), "you should return if you finish the chain");
951
952  // Oops, need to call into the VM to resolve the klasses at runtime.
953  // Note:  This call must not deoptimize, since it is not a real at this bci!
954  kill_dead_locals();
955
956  make_runtime_call(RC_NO_LEAF | RC_MUST_THROW,
957                    OptoRuntime::rethrow_Type(),
958                    OptoRuntime::rethrow_stub(),
959                    NULL, NULL,
960                    ex_node);
961
962  // Rethrow is a pure call, no side effects, only a result.
963  // The result cannot be allocated, so we use I_O
964
965  // Catch exceptions from the rethrow
966  catch_call_exceptions(handlers);
967}
968
969
970// (Note:  Moved add_debug_info into GraphKit::add_safepoint_edges.)
971
972
973#ifndef PRODUCT
974void Parse::count_compiled_calls(bool at_method_entry, bool is_inline) {
975  if( CountCompiledCalls ) {
976    if( at_method_entry ) {
977      // bump invocation counter if top method (for statistics)
978      if (CountCompiledCalls && depth() == 1) {
979        const TypePtr* addr_type = TypeMetadataPtr::make(method());
980        Node* adr1 = makecon(addr_type);
981        Node* adr2 = basic_plus_adr(adr1, adr1, in_bytes(Method::compiled_invocation_counter_offset()));
982        increment_counter(adr2);
983      }
984    } else if (is_inline) {
985      switch (bc()) {
986      case Bytecodes::_invokevirtual:   increment_counter(SharedRuntime::nof_inlined_calls_addr()); break;
987      case Bytecodes::_invokeinterface: increment_counter(SharedRuntime::nof_inlined_interface_calls_addr()); break;
988      case Bytecodes::_invokestatic:
989      case Bytecodes::_invokedynamic:
990      case Bytecodes::_invokespecial:   increment_counter(SharedRuntime::nof_inlined_static_calls_addr()); break;
991      default: fatal("unexpected call bytecode");
992      }
993    } else {
994      switch (bc()) {
995      case Bytecodes::_invokevirtual:   increment_counter(SharedRuntime::nof_normal_calls_addr()); break;
996      case Bytecodes::_invokeinterface: increment_counter(SharedRuntime::nof_interface_calls_addr()); break;
997      case Bytecodes::_invokestatic:
998      case Bytecodes::_invokedynamic:
999      case Bytecodes::_invokespecial:   increment_counter(SharedRuntime::nof_static_calls_addr()); break;
1000      default: fatal("unexpected call bytecode");
1001      }
1002    }
1003  }
1004}
1005#endif //PRODUCT
1006
1007
1008ciMethod* Compile::optimize_virtual_call(ciMethod* caller, int bci, ciInstanceKlass* klass,
1009                                         ciKlass* holder, ciMethod* callee,
1010                                         const TypeOopPtr* receiver_type, bool is_virtual,
1011                                         bool& call_does_dispatch, int& vtable_index,
1012                                         bool check_access) {
1013  // Set default values for out-parameters.
1014  call_does_dispatch = true;
1015  vtable_index       = Method::invalid_vtable_index;
1016
1017  // Choose call strategy.
1018  ciMethod* optimized_virtual_method = optimize_inlining(caller, bci, klass, callee,
1019                                                         receiver_type, check_access);
1020
1021  // Have the call been sufficiently improved such that it is no longer a virtual?
1022  if (optimized_virtual_method != NULL) {
1023    callee             = optimized_virtual_method;
1024    call_does_dispatch = false;
1025  } else if (!UseInlineCaches && is_virtual && callee->is_loaded()) {
1026    // We can make a vtable call at this site
1027    vtable_index = callee->resolve_vtable_index(caller->holder(), holder);
1028  }
1029  return callee;
1030}
1031
1032// Identify possible target method and inlining style
1033ciMethod* Compile::optimize_inlining(ciMethod* caller, int bci, ciInstanceKlass* klass,
1034                                     ciMethod* callee, const TypeOopPtr* receiver_type,
1035                                     bool check_access) {
1036  // only use for virtual or interface calls
1037
1038  // If it is obviously final, do not bother to call find_monomorphic_target,
1039  // because the class hierarchy checks are not needed, and may fail due to
1040  // incompletely loaded classes.  Since we do our own class loading checks
1041  // in this module, we may confidently bind to any method.
1042  if (callee->can_be_statically_bound()) {
1043    return callee;
1044  }
1045
1046  // Attempt to improve the receiver
1047  bool actual_receiver_is_exact = false;
1048  ciInstanceKlass* actual_receiver = klass;
1049  if (receiver_type != NULL) {
1050    // Array methods are all inherited from Object, and are monomorphic.
1051    // finalize() call on array is not allowed.
1052    if (receiver_type->isa_aryptr() &&
1053        callee->holder() == env()->Object_klass() &&
1054        callee->name() != ciSymbol::finalize_method_name()) {
1055      return callee;
1056    }
1057
1058    // All other interesting cases are instance klasses.
1059    if (!receiver_type->isa_instptr()) {
1060      return NULL;
1061    }
1062
1063    ciInstanceKlass *ikl = receiver_type->klass()->as_instance_klass();
1064    if (ikl->is_loaded() && ikl->is_initialized() && !ikl->is_interface() &&
1065        (ikl == actual_receiver || ikl->is_subtype_of(actual_receiver))) {
1066      // ikl is a same or better type than the original actual_receiver,
1067      // e.g. static receiver from bytecodes.
1068      actual_receiver = ikl;
1069      // Is the actual_receiver exact?
1070      actual_receiver_is_exact = receiver_type->klass_is_exact();
1071    }
1072  }
1073
1074  ciInstanceKlass*   calling_klass = caller->holder();
1075  ciMethod* cha_monomorphic_target = callee->find_monomorphic_target(calling_klass, klass, actual_receiver, check_access);
1076  if (cha_monomorphic_target != NULL) {
1077    assert(!cha_monomorphic_target->is_abstract(), "");
1078    // Look at the method-receiver type.  Does it add "too much information"?
1079    ciKlass*    mr_klass = cha_monomorphic_target->holder();
1080    const Type* mr_type  = TypeInstPtr::make(TypePtr::BotPTR, mr_klass);
1081    if (receiver_type == NULL || !receiver_type->higher_equal(mr_type)) {
1082      // Calling this method would include an implicit cast to its holder.
1083      // %%% Not yet implemented.  Would throw minor asserts at present.
1084      // %%% The most common wins are already gained by +UseUniqueSubclasses.
1085      // To fix, put the higher_equal check at the call of this routine,
1086      // and add a CheckCastPP to the receiver.
1087      if (TraceDependencies) {
1088        tty->print_cr("found unique CHA method, but could not cast up");
1089        tty->print("  method  = ");
1090        cha_monomorphic_target->print();
1091        tty->cr();
1092      }
1093      if (log() != NULL) {
1094        log()->elem("missed_CHA_opportunity klass='%d' method='%d'",
1095                       log()->identify(klass),
1096                       log()->identify(cha_monomorphic_target));
1097      }
1098      cha_monomorphic_target = NULL;
1099    }
1100  }
1101  if (cha_monomorphic_target != NULL) {
1102    // Hardwiring a virtual.
1103    // If we inlined because CHA revealed only a single target method,
1104    // then we are dependent on that target method not getting overridden
1105    // by dynamic class loading.  Be sure to test the "static" receiver
1106    // dest_method here, as opposed to the actual receiver, which may
1107    // falsely lead us to believe that the receiver is final or private.
1108    dependencies()->assert_unique_concrete_method(actual_receiver, cha_monomorphic_target);
1109    return cha_monomorphic_target;
1110  }
1111
1112  // If the type is exact, we can still bind the method w/o a vcall.
1113  // (This case comes after CHA so we can see how much extra work it does.)
1114  if (actual_receiver_is_exact) {
1115    // In case of evolution, there is a dependence on every inlined method, since each
1116    // such method can be changed when its class is redefined.
1117    ciMethod* exact_method = callee->resolve_invoke(calling_klass, actual_receiver);
1118    if (exact_method != NULL) {
1119      if (PrintOpto) {
1120        tty->print("  Calling method via exact type @%d --- ", bci);
1121        exact_method->print_name();
1122        tty->cr();
1123      }
1124      return exact_method;
1125    }
1126  }
1127
1128  return NULL;
1129}
1130