1 /*
   2  * Copyright (c) 1997, 2012, Oracle and/or its affiliates. All rights reserved.
   3  * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
   4  *
   5  * This code is free software; you can redistribute it and/or modify it
   6  * under the terms of the GNU General Public License version 2 only, as
   7  * published by the Free Software Foundation.
   8  *
   9  * This code is distributed in the hope that it will be useful, but WITHOUT
  10  * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  11  * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
  12  * version 2 for more details (a copy is included in the LICENSE file that
  13  * accompanied this code).
  14  *
  15  * You should have received a copy of the GNU General Public License version
  16  * 2 along with this work; if not, write to the Free Software Foundation,
  17  * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
  18  *
  19  * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
  20  * or visit www.oracle.com if you need additional information or have any
  21  * questions.
  22  *
  23  */
  24 
  25 #include "precompiled.hpp"
  26 #include "classfile/systemDictionary.hpp"
  27 #include "classfile/vmSymbols.hpp"
  28 #include "compiler/compileBroker.hpp"
  29 #include "gc_interface/collectedHeap.hpp"
  30 #include "interpreter/interpreter.hpp"
  31 #include "interpreter/interpreterRuntime.hpp"
  32 #include "interpreter/linkResolver.hpp"
  33 #include "interpreter/templateTable.hpp"
  34 #include "memory/oopFactory.hpp"
  35 #include "memory/universe.inline.hpp"
  36 #include "oops/constantPool.hpp"
  37 #include "oops/instanceKlass.hpp"
  38 #include "oops/methodData.hpp"
  39 #include "oops/objArrayKlass.hpp"
  40 #include "oops/oop.inline.hpp"
  41 #include "oops/symbol.hpp"
  42 #include "prims/jvmtiExport.hpp"
  43 #include "prims/nativeLookup.hpp"
  44 #include "runtime/biasedLocking.hpp"
  45 #include "runtime/compilationPolicy.hpp"
  46 #include "runtime/deoptimization.hpp"
  47 #include "runtime/fieldDescriptor.hpp"
  48 #include "runtime/handles.inline.hpp"
  49 #include "runtime/interfaceSupport.hpp"
  50 #include "runtime/java.hpp"
  51 #include "runtime/jfieldIDWorkaround.hpp"
  52 #include "runtime/osThread.hpp"
  53 #include "runtime/sharedRuntime.hpp"
  54 #include "runtime/stubRoutines.hpp"
  55 #include "runtime/synchronizer.hpp"
  56 #include "runtime/threadCritical.hpp"
  57 #include "utilities/events.hpp"
  58 #ifdef TARGET_ARCH_x86
  59 # include "vm_version_x86.hpp"
  60 #endif
  61 #ifdef TARGET_ARCH_sparc
  62 # include "vm_version_sparc.hpp"
  63 #endif
  64 #ifdef TARGET_ARCH_zero
  65 # include "vm_version_zero.hpp"
  66 #endif
  67 #ifdef TARGET_ARCH_arm
  68 # include "vm_version_arm.hpp"
  69 #endif
  70 #ifdef TARGET_ARCH_ppc
  71 # include "vm_version_ppc.hpp"
  72 #endif
  73 #ifdef COMPILER2
  74 #include "opto/runtime.hpp"
  75 #endif
  76 
  77 class UnlockFlagSaver {
  78   private:
  79     JavaThread* _thread;
  80     bool _do_not_unlock;
  81   public:
  82     UnlockFlagSaver(JavaThread* t) {
  83       _thread = t;
  84       _do_not_unlock = t->do_not_unlock_if_synchronized();
  85       t->set_do_not_unlock_if_synchronized(false);
  86     }
  87     ~UnlockFlagSaver() {
  88       _thread->set_do_not_unlock_if_synchronized(_do_not_unlock);
  89     }
  90 };
  91 
  92 //------------------------------------------------------------------------------------------------------------------------
  93 // State accessors
  94 
  95 void InterpreterRuntime::set_bcp_and_mdp(address bcp, JavaThread *thread) {
  96   last_frame(thread).interpreter_frame_set_bcp(bcp);
  97   if (ProfileInterpreter) {
  98     // ProfileTraps uses MDOs independently of ProfileInterpreter.
  99     // That is why we must check both ProfileInterpreter and mdo != NULL.
 100     MethodData* mdo = last_frame(thread).interpreter_frame_method()->method_data();
 101     if (mdo != NULL) {
 102       NEEDS_CLEANUP;
 103       last_frame(thread).interpreter_frame_set_mdp(mdo->bci_to_dp(last_frame(thread).interpreter_frame_bci()));
 104     }
 105   }
 106 }
 107 
 108 //------------------------------------------------------------------------------------------------------------------------
 109 // Constants
 110 
 111 
 112 IRT_ENTRY(void, InterpreterRuntime::ldc(JavaThread* thread, bool wide))
 113   // access constant pool
 114   ConstantPool* pool = method(thread)->constants();
 115   int index = wide ? get_index_u2(thread, Bytecodes::_ldc_w) : get_index_u1(thread, Bytecodes::_ldc);
 116   constantTag tag = pool->tag_at(index);
 117 
 118   assert (tag.is_unresolved_klass() || tag.is_klass(), "wrong ldc call");
 119   Klass* klass = pool->klass_at(index, CHECK);
 120     oop java_class = klass->java_mirror();
 121     thread->set_vm_result(java_class);
 122 IRT_END
 123 
 124 IRT_ENTRY(void, InterpreterRuntime::resolve_ldc(JavaThread* thread, Bytecodes::Code bytecode)) {
 125   assert(bytecode == Bytecodes::_fast_aldc ||
 126          bytecode == Bytecodes::_fast_aldc_w, "wrong bc");
 127   ResourceMark rm(thread);
 128   methodHandle m (thread, method(thread));
 129   Bytecode_loadconstant ldc(m, bci(thread));
 130   oop result = ldc.resolve_constant(CHECK);
 131 #ifdef ASSERT
 132   {
 133     // The bytecode wrappers aren't GC-safe so construct a new one
 134     Bytecode_loadconstant ldc2(m, bci(thread));
 135     oop coop = m->constants()->resolved_references()->obj_at(ldc2.cache_index());
 136     assert(result == coop, "expected result for assembly code");
 137   }
 138 #endif
 139   thread->set_vm_result(result);
 140 }
 141 IRT_END
 142 
 143 
 144 //------------------------------------------------------------------------------------------------------------------------
 145 // Allocation
 146 
 147 IRT_ENTRY(void, InterpreterRuntime::_new(JavaThread* thread, ConstantPool* pool, int index))
 148   Klass* k_oop = pool->klass_at(index, CHECK);
 149   instanceKlassHandle klass (THREAD, k_oop);
 150 
 151   // Make sure we are not instantiating an abstract klass
 152   klass->check_valid_for_instantiation(true, CHECK);
 153 
 154   // Make sure klass is initialized
 155   klass->initialize(CHECK);
 156 
 157   // At this point the class may not be fully initialized
 158   // because of recursive initialization. If it is fully
 159   // initialized & has_finalized is not set, we rewrite
 160   // it into its fast version (Note: no locking is needed
 161   // here since this is an atomic byte write and can be
 162   // done more than once).
 163   //
 164   // Note: In case of classes with has_finalized we don't
 165   //       rewrite since that saves us an extra check in
 166   //       the fast version which then would call the
 167   //       slow version anyway (and do a call back into
 168   //       Java).
 169   //       If we have a breakpoint, then we don't rewrite
 170   //       because the _breakpoint bytecode would be lost.
 171   oop obj = klass->allocate_instance(CHECK);
 172   thread->set_vm_result(obj);
 173 IRT_END
 174 
 175 
 176 IRT_ENTRY(void, InterpreterRuntime::newarray(JavaThread* thread, BasicType type, jint size))
 177   oop obj = oopFactory::new_typeArray(type, size, CHECK);
 178   thread->set_vm_result(obj);
 179 IRT_END
 180 
 181 
 182 IRT_ENTRY(void, InterpreterRuntime::anewarray(JavaThread* thread, ConstantPool* pool, int index, jint size))
 183   // Note: no oopHandle for pool & klass needed since they are not used
 184   //       anymore after new_objArray() and no GC can happen before.
 185   //       (This may have to change if this code changes!)
 186   Klass*    klass = pool->klass_at(index, CHECK);
 187   objArrayOop obj = oopFactory::new_objArray(klass, size, CHECK);
 188   thread->set_vm_result(obj);
 189 IRT_END
 190 
 191 
 192 IRT_ENTRY(void, InterpreterRuntime::multianewarray(JavaThread* thread, jint* first_size_address))
 193   // We may want to pass in more arguments - could make this slightly faster
 194   ConstantPool* constants = method(thread)->constants();
 195   int          i = get_index_u2(thread, Bytecodes::_multianewarray);
 196   Klass* klass = constants->klass_at(i, CHECK);
 197   int   nof_dims = number_of_dimensions(thread);
 198   assert(klass->is_klass(), "not a class");
 199   assert(nof_dims >= 1, "multianewarray rank must be nonzero");
 200 
 201   // We must create an array of jints to pass to multi_allocate.
 202   ResourceMark rm(thread);
 203   const int small_dims = 10;
 204   jint dim_array[small_dims];
 205   jint *dims = &dim_array[0];
 206   if (nof_dims > small_dims) {
 207     dims = (jint*) NEW_RESOURCE_ARRAY(jint, nof_dims);
 208   }
 209   for (int index = 0; index < nof_dims; index++) {
 210     // offset from first_size_address is addressed as local[index]
 211     int n = Interpreter::local_offset_in_bytes(index)/jintSize;
 212     dims[index] = first_size_address[n];
 213   }
 214   oop obj = ArrayKlass::cast(klass)->multi_allocate(nof_dims, dims, CHECK);
 215   thread->set_vm_result(obj);
 216 IRT_END
 217 
 218 
 219 IRT_ENTRY(void, InterpreterRuntime::register_finalizer(JavaThread* thread, oopDesc* obj))
 220   assert(obj->is_oop(), "must be a valid oop");
 221   assert(obj->klass()->has_finalizer(), "shouldn't be here otherwise");
 222   InstanceKlass::register_finalizer(instanceOop(obj), CHECK);
 223 IRT_END
 224 
 225 
 226 // Quicken instance-of and check-cast bytecodes
 227 IRT_ENTRY(void, InterpreterRuntime::quicken_io_cc(JavaThread* thread))
 228   // Force resolving; quicken the bytecode
 229   int which = get_index_u2(thread, Bytecodes::_checkcast);
 230   ConstantPool* cpool = method(thread)->constants();
 231   // We'd expect to assert that we're only here to quicken bytecodes, but in a multithreaded
 232   // program we might have seen an unquick'd bytecode in the interpreter but have another
 233   // thread quicken the bytecode before we get here.
 234   // assert( cpool->tag_at(which).is_unresolved_klass(), "should only come here to quicken bytecodes" );
 235   Klass* klass = cpool->klass_at(which, CHECK);
 236   thread->set_vm_result_2(klass);
 237 IRT_END
 238 
 239 
 240 //------------------------------------------------------------------------------------------------------------------------
 241 // Exceptions
 242 
 243 // Assume the compiler is (or will be) interested in this event.
 244 // If necessary, create an MDO to hold the information, and record it.
 245 void InterpreterRuntime::note_trap(JavaThread* thread, int reason, TRAPS) {
 246   assert(ProfileTraps, "call me only if profiling");
 247   methodHandle trap_method(thread, method(thread));
 248 
 249   if (trap_method.not_null()) {
 250     MethodData* trap_mdo = trap_method->method_data();
 251     if (trap_mdo == NULL) {
 252       Method::build_interpreter_method_data(trap_method, THREAD);
 253       if (HAS_PENDING_EXCEPTION) {
 254         assert((PENDING_EXCEPTION->is_a(SystemDictionary::OutOfMemoryError_klass())), "we expect only an OOM error here");
 255         CLEAR_PENDING_EXCEPTION;
 256       }
 257       trap_mdo = trap_method->method_data();
 258       // and fall through...
 259     }
 260     if (trap_mdo != NULL) {
 261       // Update per-method count of trap events.  The interpreter
 262       // is updating the MDO to simulate the effect of compiler traps.
 263       int trap_bci = trap_method->bci_from(bcp(thread));
 264       Deoptimization::update_method_data_from_interpreter(trap_mdo, trap_bci, reason);
 265     }
 266   }
 267 }
 268 
 269 static Handle get_preinitialized_exception(Klass* k, TRAPS) {
 270   // get klass
 271   InstanceKlass* klass = InstanceKlass::cast(k);
 272   assert(klass->is_initialized(),
 273          "this klass should have been initialized during VM initialization");
 274   // create instance - do not call constructor since we may have no
 275   // (java) stack space left (should assert constructor is empty)
 276   Handle exception;
 277   oop exception_oop = klass->allocate_instance(CHECK_(exception));
 278   exception = Handle(THREAD, exception_oop);
 279   if (StackTraceInThrowable) {
 280     java_lang_Throwable::fill_in_stack_trace(exception);
 281   }
 282   return exception;
 283 }
 284 
 285 // Special handling for stack overflow: since we don't have any (java) stack
 286 // space left we use the pre-allocated & pre-initialized StackOverflowError
 287 // klass to create an stack overflow error instance.  We do not call its
 288 // constructor for the same reason (it is empty, anyway).
 289 IRT_ENTRY(void, InterpreterRuntime::throw_StackOverflowError(JavaThread* thread))
 290   Handle exception = get_preinitialized_exception(
 291                                  SystemDictionary::StackOverflowError_klass(),
 292                                  CHECK);
 293   THROW_HANDLE(exception);
 294 IRT_END
 295 
 296 
 297 IRT_ENTRY(void, InterpreterRuntime::create_exception(JavaThread* thread, char* name, char* message))
 298   // lookup exception klass
 299   TempNewSymbol s = SymbolTable::new_symbol(name, CHECK);
 300   if (ProfileTraps) {
 301     if (s == vmSymbols::java_lang_ArithmeticException()) {
 302       note_trap(thread, Deoptimization::Reason_div0_check, CHECK);
 303     } else if (s == vmSymbols::java_lang_NullPointerException()) {
 304       note_trap(thread, Deoptimization::Reason_null_check, CHECK);
 305     }
 306   }
 307   // create exception
 308   Handle exception = Exceptions::new_exception(thread, s, message);
 309   thread->set_vm_result(exception());
 310 IRT_END
 311 
 312 
 313 IRT_ENTRY(void, InterpreterRuntime::create_klass_exception(JavaThread* thread, char* name, oopDesc* obj))
 314   ResourceMark rm(thread);
 315   const char* klass_name = Klass::cast(obj->klass())->external_name();
 316   // lookup exception klass
 317   TempNewSymbol s = SymbolTable::new_symbol(name, CHECK);
 318   if (ProfileTraps) {
 319     note_trap(thread, Deoptimization::Reason_class_check, CHECK);
 320   }
 321   // create exception, with klass name as detail message
 322   Handle exception = Exceptions::new_exception(thread, s, klass_name);
 323   thread->set_vm_result(exception());
 324 IRT_END
 325 
 326 
 327 IRT_ENTRY(void, InterpreterRuntime::throw_ArrayIndexOutOfBoundsException(JavaThread* thread, char* name, jint index))
 328   char message[jintAsStringSize];
 329   // lookup exception klass
 330   TempNewSymbol s = SymbolTable::new_symbol(name, CHECK);
 331   if (ProfileTraps) {
 332     note_trap(thread, Deoptimization::Reason_range_check, CHECK);
 333   }
 334   // create exception
 335   sprintf(message, "%d", index);
 336   THROW_MSG(s, message);
 337 IRT_END
 338 
 339 IRT_ENTRY(void, InterpreterRuntime::throw_ClassCastException(
 340   JavaThread* thread, oopDesc* obj))
 341 
 342   ResourceMark rm(thread);
 343   char* message = SharedRuntime::generate_class_cast_message(
 344     thread, Klass::cast(obj->klass())->external_name());
 345 
 346   if (ProfileTraps) {
 347     note_trap(thread, Deoptimization::Reason_class_check, CHECK);
 348   }
 349 
 350   // create exception
 351   THROW_MSG(vmSymbols::java_lang_ClassCastException(), message);
 352 IRT_END
 353 
 354 // exception_handler_for_exception(...) returns the continuation address,
 355 // the exception oop (via TLS) and sets the bci/bcp for the continuation.
 356 // The exception oop is returned to make sure it is preserved over GC (it
 357 // is only on the stack if the exception was thrown explicitly via athrow).
 358 // During this operation, the expression stack contains the values for the
 359 // bci where the exception happened. If the exception was propagated back
 360 // from a call, the expression stack contains the values for the bci at the
 361 // invoke w/o arguments (i.e., as if one were inside the call).
 362 IRT_ENTRY(address, InterpreterRuntime::exception_handler_for_exception(JavaThread* thread, oopDesc* exception))
 363 
 364   Handle             h_exception(thread, exception);
 365   methodHandle       h_method   (thread, method(thread));
 366   constantPoolHandle h_constants(thread, h_method->constants());
 367   bool               should_repeat;
 368   int                handler_bci;
 369   int                current_bci = bci(thread);
 370 
 371   // Need to do this check first since when _do_not_unlock_if_synchronized
 372   // is set, we don't want to trigger any classloading which may make calls
 373   // into java, or surprisingly find a matching exception handler for bci 0
 374   // since at this moment the method hasn't been "officially" entered yet.
 375   if (thread->do_not_unlock_if_synchronized()) {
 376     ResourceMark rm;
 377     assert(current_bci == 0,  "bci isn't zero for do_not_unlock_if_synchronized");
 378     thread->set_vm_result(exception);
 379 #ifdef CC_INTERP
 380     return (address) -1;
 381 #else
 382     return Interpreter::remove_activation_entry();
 383 #endif
 384   }
 385 
 386   do {
 387     should_repeat = false;
 388 
 389     // assertions
 390 #ifdef ASSERT
 391     assert(h_exception.not_null(), "NULL exceptions should be handled by athrow");
 392     assert(h_exception->is_oop(), "just checking");
 393     // Check that exception is a subclass of Throwable, otherwise we have a VerifyError
 394     if (!(h_exception->is_a(SystemDictionary::Throwable_klass()))) {
 395       if (ExitVMOnVerifyError) vm_exit(-1);
 396       ShouldNotReachHere();
 397     }
 398 #endif
 399 
 400     // tracing
 401     if (TraceExceptions) {
 402       ttyLocker ttyl;
 403       ResourceMark rm(thread);
 404       tty->print_cr("Exception <%s> (" INTPTR_FORMAT ")", h_exception->print_value_string(), (address)h_exception());
 405       tty->print_cr(" thrown in interpreter method <%s>", h_method->print_value_string());
 406       tty->print_cr(" at bci %d for thread " INTPTR_FORMAT, current_bci, thread);
 407     }
 408 // Don't go paging in something which won't be used.
 409 //     else if (extable->length() == 0) {
 410 //       // disabled for now - interpreter is not using shortcut yet
 411 //       // (shortcut is not to call runtime if we have no exception handlers)
 412 //       // warning("performance bug: should not call runtime if method has no exception handlers");
 413 //     }
 414     // for AbortVMOnException flag
 415     NOT_PRODUCT(Exceptions::debug_check_abort(h_exception));
 416 
 417     // exception handler lookup
 418     KlassHandle h_klass(THREAD, h_exception->klass());
 419     handler_bci = h_method->fast_exception_handler_bci_for(h_klass, current_bci, THREAD);
 420     if (HAS_PENDING_EXCEPTION) {
 421       // We threw an exception while trying to find the exception handler.
 422       // Transfer the new exception to the exception handle which will
 423       // be set into thread local storage, and do another lookup for an
 424       // exception handler for this exception, this time starting at the
 425       // BCI of the exception handler which caused the exception to be
 426       // thrown (bug 4307310).
 427       h_exception = Handle(THREAD, PENDING_EXCEPTION);
 428       CLEAR_PENDING_EXCEPTION;
 429       if (handler_bci >= 0) {
 430         current_bci = handler_bci;
 431         should_repeat = true;
 432       }
 433     }
 434   } while (should_repeat == true);
 435 
 436   // notify JVMTI of an exception throw; JVMTI will detect if this is a first
 437   // time throw or a stack unwinding throw and accordingly notify the debugger
 438   if (JvmtiExport::can_post_on_exceptions()) {
 439     JvmtiExport::post_exception_throw(thread, h_method(), bcp(thread), h_exception());
 440   }
 441 
 442 #ifdef CC_INTERP
 443   address continuation = (address)(intptr_t) handler_bci;
 444 #else
 445   address continuation = NULL;
 446 #endif
 447   address handler_pc = NULL;
 448   if (handler_bci < 0 || !thread->reguard_stack((address) &continuation)) {
 449     // Forward exception to callee (leaving bci/bcp untouched) because (a) no
 450     // handler in this method, or (b) after a stack overflow there is not yet
 451     // enough stack space available to reprotect the stack.
 452 #ifndef CC_INTERP
 453     continuation = Interpreter::remove_activation_entry();
 454 #endif
 455     // Count this for compilation purposes
 456     h_method->interpreter_throwout_increment();
 457   } else {
 458     // handler in this method => change bci/bcp to handler bci/bcp and continue there
 459     handler_pc = h_method->code_base() + handler_bci;
 460 #ifndef CC_INTERP
 461     set_bcp_and_mdp(handler_pc, thread);
 462     continuation = Interpreter::dispatch_table(vtos)[*handler_pc];
 463 #endif
 464   }
 465   // notify debugger of an exception catch
 466   // (this is good for exceptions caught in native methods as well)
 467   if (JvmtiExport::can_post_on_exceptions()) {
 468     JvmtiExport::notice_unwind_due_to_exception(thread, h_method(), handler_pc, h_exception(), (handler_pc != NULL));
 469   }
 470 
 471   thread->set_vm_result(h_exception());
 472   return continuation;
 473 IRT_END
 474 
 475 
 476 IRT_ENTRY(void, InterpreterRuntime::throw_pending_exception(JavaThread* thread))
 477   assert(thread->has_pending_exception(), "must only ne called if there's an exception pending");
 478   // nothing to do - eventually we should remove this code entirely (see comments @ call sites)
 479 IRT_END
 480 
 481 
 482 IRT_ENTRY(void, InterpreterRuntime::throw_AbstractMethodError(JavaThread* thread))
 483   THROW(vmSymbols::java_lang_AbstractMethodError());
 484 IRT_END
 485 
 486 
 487 IRT_ENTRY(void, InterpreterRuntime::throw_IncompatibleClassChangeError(JavaThread* thread))
 488   THROW(vmSymbols::java_lang_IncompatibleClassChangeError());
 489 IRT_END
 490 
 491 
 492 //------------------------------------------------------------------------------------------------------------------------
 493 // Fields
 494 //
 495 
 496 IRT_ENTRY(void, InterpreterRuntime::resolve_get_put(JavaThread* thread, Bytecodes::Code bytecode))
 497   // resolve field
 498   FieldAccessInfo info;
 499   constantPoolHandle pool(thread, method(thread)->constants());
 500   bool is_put    = (bytecode == Bytecodes::_putfield  || bytecode == Bytecodes::_putstatic);
 501   bool is_static = (bytecode == Bytecodes::_getstatic || bytecode == Bytecodes::_putstatic);
 502 
 503   {
 504     JvmtiHideSingleStepping jhss(thread);
 505     LinkResolver::resolve_field(info, pool, get_index_u2_cpcache(thread, bytecode),
 506                                 bytecode, false, CHECK);
 507   } // end JvmtiHideSingleStepping
 508 
 509   // check if link resolution caused cpCache to be updated
 510   if (already_resolved(thread)) return;
 511 
 512   // compute auxiliary field attributes
 513   TosState state  = as_TosState(info.field_type());
 514 
 515   // We need to delay resolving put instructions on final fields
 516   // until we actually invoke one. This is required so we throw
 517   // exceptions at the correct place. If we do not resolve completely
 518   // in the current pass, leaving the put_code set to zero will
 519   // cause the next put instruction to reresolve.
 520   Bytecodes::Code put_code = (Bytecodes::Code)0;
 521 
 522   // We also need to delay resolving getstatic instructions until the
 523   // class is intitialized.  This is required so that access to the static
 524   // field will call the initialization function every time until the class
 525   // is completely initialized ala. in 2.17.5 in JVM Specification.
 526   InstanceKlass *klass = InstanceKlass::cast(info.klass()());
 527   bool uninitialized_static = ((bytecode == Bytecodes::_getstatic || bytecode == Bytecodes::_putstatic) &&
 528                                !klass->is_initialized());
 529   Bytecodes::Code get_code = (Bytecodes::Code)0;
 530 
 531   if (!uninitialized_static) {
 532     get_code = ((is_static) ? Bytecodes::_getstatic : Bytecodes::_getfield);
 533     if (is_put || !info.access_flags().is_final()) {
 534       put_code = ((is_static) ? Bytecodes::_putstatic : Bytecodes::_putfield);
 535     }
 536   }
 537 
 538   cache_entry(thread)->set_field(
 539     get_code,
 540     put_code,
 541     info.klass(),
 542     info.field_index(),
 543     info.field_offset(),
 544     state,
 545     info.access_flags().is_final(),
 546     info.access_flags().is_volatile(),
 547     pool->pool_holder()
 548   );
 549 IRT_END
 550 
 551 
 552 //------------------------------------------------------------------------------------------------------------------------
 553 // Synchronization
 554 //
 555 // The interpreter's synchronization code is factored out so that it can
 556 // be shared by method invocation and synchronized blocks.
 557 //%note synchronization_3
 558 
 559 
 560 //%note monitor_1
 561 IRT_ENTRY_NO_ASYNC(void, InterpreterRuntime::monitorenter(JavaThread* thread, BasicObjectLock* elem))
 562 #ifdef ASSERT
 563   thread->last_frame().interpreter_frame_verify_monitor(elem);
 564 #endif
 565   if (PrintBiasedLockingStatistics) {
 566     Atomic::inc(BiasedLocking::slow_path_entry_count_addr());
 567   }
 568   Handle h_obj(thread, elem->obj());
 569   assert(Universe::heap()->is_in_reserved_or_null(h_obj()),
 570          "must be NULL or an object");
 571   if (UseBiasedLocking) {
 572     // Retry fast entry if bias is revoked to avoid unnecessary inflation
 573     ObjectSynchronizer::fast_enter(h_obj, elem->lock(), true, CHECK);
 574   } else {
 575     ObjectSynchronizer::slow_enter(h_obj, elem->lock(), CHECK);
 576   }
 577   assert(Universe::heap()->is_in_reserved_or_null(elem->obj()),
 578          "must be NULL or an object");
 579 #ifdef ASSERT
 580   thread->last_frame().interpreter_frame_verify_monitor(elem);
 581 #endif
 582 IRT_END
 583 
 584 
 585 //%note monitor_1
 586 IRT_ENTRY_NO_ASYNC(void, InterpreterRuntime::monitorexit(JavaThread* thread, BasicObjectLock* elem))
 587 #ifdef ASSERT
 588   thread->last_frame().interpreter_frame_verify_monitor(elem);
 589 #endif
 590   Handle h_obj(thread, elem->obj());
 591   assert(Universe::heap()->is_in_reserved_or_null(h_obj()),
 592          "must be NULL or an object");
 593   if (elem == NULL || h_obj()->is_unlocked()) {
 594     THROW(vmSymbols::java_lang_IllegalMonitorStateException());
 595   }
 596   ObjectSynchronizer::slow_exit(h_obj(), elem->lock(), thread);
 597   // Free entry. This must be done here, since a pending exception might be installed on
 598   // exit. If it is not cleared, the exception handling code will try to unlock the monitor again.
 599   elem->set_obj(NULL);
 600 #ifdef ASSERT
 601   thread->last_frame().interpreter_frame_verify_monitor(elem);
 602 #endif
 603 IRT_END
 604 
 605 
 606 IRT_ENTRY(void, InterpreterRuntime::throw_illegal_monitor_state_exception(JavaThread* thread))
 607   THROW(vmSymbols::java_lang_IllegalMonitorStateException());
 608 IRT_END
 609 
 610 
 611 IRT_ENTRY(void, InterpreterRuntime::new_illegal_monitor_state_exception(JavaThread* thread))
 612   // Returns an illegal exception to install into the current thread. The
 613   // pending_exception flag is cleared so normal exception handling does not
 614   // trigger. Any current installed exception will be overwritten. This
 615   // method will be called during an exception unwind.
 616 
 617   assert(!HAS_PENDING_EXCEPTION, "no pending exception");
 618   Handle exception(thread, thread->vm_result());
 619   assert(exception() != NULL, "vm result should be set");
 620   thread->set_vm_result(NULL); // clear vm result before continuing (may cause memory leaks and assert failures)
 621   if (!exception->is_a(SystemDictionary::ThreadDeath_klass())) {
 622     exception = get_preinitialized_exception(
 623                        SystemDictionary::IllegalMonitorStateException_klass(),
 624                        CATCH);
 625   }
 626   thread->set_vm_result(exception());
 627 IRT_END
 628 
 629 
 630 //------------------------------------------------------------------------------------------------------------------------
 631 // Invokes
 632 
 633 IRT_ENTRY(Bytecodes::Code, InterpreterRuntime::get_original_bytecode_at(JavaThread* thread, Method* method, address bcp))
 634   return method->orig_bytecode_at(method->bci_from(bcp));
 635 IRT_END
 636 
 637 IRT_ENTRY(void, InterpreterRuntime::set_original_bytecode_at(JavaThread* thread, Method* method, address bcp, Bytecodes::Code new_code))
 638   method->set_orig_bytecode_at(method->bci_from(bcp), new_code);
 639 IRT_END
 640 
 641 IRT_ENTRY(void, InterpreterRuntime::_breakpoint(JavaThread* thread, Method* method, address bcp))
 642   JvmtiExport::post_raw_breakpoint(thread, method, bcp);
 643 IRT_END
 644 
 645 IRT_ENTRY(void, InterpreterRuntime::resolve_invoke(JavaThread* thread, Bytecodes::Code bytecode)) {
 646   // extract receiver from the outgoing argument list if necessary
 647   Handle receiver(thread, NULL);
 648   if (bytecode == Bytecodes::_invokevirtual || bytecode == Bytecodes::_invokeinterface) {
 649     ResourceMark rm(thread);
 650     methodHandle m (thread, method(thread));
 651     Bytecode_invoke call(m, bci(thread));
 652     Symbol* signature = call.signature();
 653     receiver = Handle(thread,
 654                   thread->last_frame().interpreter_callee_receiver(signature));
 655     assert(Universe::heap()->is_in_reserved_or_null(receiver()),
 656            "sanity check");
 657     assert(receiver.is_null() ||
 658            !Universe::heap()->is_in_reserved(receiver->klass()),
 659            "sanity check");
 660   }
 661 
 662   // resolve method
 663   CallInfo info;
 664   constantPoolHandle pool(thread, method(thread)->constants());
 665 
 666   {
 667     JvmtiHideSingleStepping jhss(thread);
 668     LinkResolver::resolve_invoke(info, receiver, pool,
 669                                  get_index_u2_cpcache(thread, bytecode), bytecode, CHECK);
 670     if (JvmtiExport::can_hotswap_or_post_breakpoint()) {
 671       int retry_count = 0;
 672       while (info.resolved_method()->is_old()) {
 673         // It is very unlikely that method is redefined more than 100 times
 674         // in the middle of resolve. If it is looping here more than 100 times
 675         // means then there could be a bug here.
 676         guarantee((retry_count++ < 100),
 677                   "Could not resolve to latest version of redefined method");
 678         // method is redefined in the middle of resolve so re-try.
 679         LinkResolver::resolve_invoke(info, receiver, pool,
 680                                      get_index_u2_cpcache(thread, bytecode), bytecode, CHECK);
 681       }
 682     }
 683   } // end JvmtiHideSingleStepping
 684 
 685   // check if link resolution caused cpCache to be updated
 686   if (already_resolved(thread)) return;
 687 
 688   if (bytecode == Bytecodes::_invokeinterface) {
 689 
 690     if (TraceItables && Verbose) {
 691       ResourceMark rm(thread);
 692       tty->print_cr("Resolving: klass: %s to method: %s", info.resolved_klass()->name()->as_C_string(), info.resolved_method()->name()->as_C_string());
 693     }
 694     if (info.resolved_method()->method_holder() ==
 695                                             SystemDictionary::Object_klass()) {
 696       // NOTE: THIS IS A FIX FOR A CORNER CASE in the JVM spec
 697       // (see also cpCacheOop.cpp for details)
 698       methodHandle rm = info.resolved_method();
 699       assert(rm->is_final() || info.has_vtable_index(),
 700              "should have been set already");
 701       cache_entry(thread)->set_method(bytecode, rm, info.vtable_index());
 702     } else {
 703       // Setup itable entry
 704       int index = klassItable::compute_itable_index(info.resolved_method()());
 705       cache_entry(thread)->set_interface_call(info.resolved_method(), index);
 706     }
 707   } else {
 708     cache_entry(thread)->set_method(
 709       bytecode,
 710       info.resolved_method(),
 711       info.vtable_index());
 712   }
 713 }
 714 IRT_END
 715 
 716 
 717 // First time execution:  Resolve symbols, create a permanent MethodType object.
 718 IRT_ENTRY(void, InterpreterRuntime::resolve_invokehandle(JavaThread* thread)) {
 719   assert(EnableInvokeDynamic, "");
 720   const Bytecodes::Code bytecode = Bytecodes::_invokehandle;
 721 
 722   // resolve method
 723   CallInfo info;
 724   constantPoolHandle pool(thread, method(thread)->constants());
 725 
 726   {
 727     JvmtiHideSingleStepping jhss(thread);
 728     LinkResolver::resolve_invoke(info, Handle(), pool,
 729                                  get_index_u2_cpcache(thread, bytecode), bytecode, CHECK);
 730   } // end JvmtiHideSingleStepping
 731 
 732   cache_entry(thread)->set_method_handle(pool, info);
 733 }
 734 IRT_END
 735 
 736 
 737 // First time execution:  Resolve symbols, create a permanent CallSite object.
 738 IRT_ENTRY(void, InterpreterRuntime::resolve_invokedynamic(JavaThread* thread)) {
 739   assert(EnableInvokeDynamic, "");
 740   const Bytecodes::Code bytecode = Bytecodes::_invokedynamic;
 741 
 742   //TO DO: consider passing BCI to Java.
 743   //  int caller_bci = method(thread)->bci_from(bcp(thread));
 744 
 745   // resolve method
 746   CallInfo info;
 747   constantPoolHandle pool(thread, method(thread)->constants());
 748   int index = get_index_u4(thread, bytecode);
 749   {
 750     JvmtiHideSingleStepping jhss(thread);
 751     LinkResolver::resolve_invoke(info, Handle(), pool,
 752                                  index, bytecode, CHECK);
 753   } // end JvmtiHideSingleStepping
 754 
 755   ConstantPoolCacheEntry* cp_cache_entry = pool->invokedynamic_cp_cache_entry_at(index);
 756   cp_cache_entry->set_dynamic_call(pool, info);
 757 }
 758 IRT_END
 759 
 760 
 761 //------------------------------------------------------------------------------------------------------------------------
 762 // Miscellaneous
 763 
 764 
 765 nmethod* InterpreterRuntime::frequency_counter_overflow(JavaThread* thread, address branch_bcp) {
 766   nmethod* nm = frequency_counter_overflow_inner(thread, branch_bcp);
 767   assert(branch_bcp != NULL || nm == NULL, "always returns null for non OSR requests");
 768   if (branch_bcp != NULL && nm != NULL) {
 769     // This was a successful request for an OSR nmethod.  Because
 770     // frequency_counter_overflow_inner ends with a safepoint check,
 771     // nm could have been unloaded so look it up again.  It's unsafe
 772     // to examine nm directly since it might have been freed and used
 773     // for something else.
 774     frame fr = thread->last_frame();
 775     Method* method =  fr.interpreter_frame_method();
 776     int bci = method->bci_from(fr.interpreter_frame_bcp());
 777     nm = method->lookup_osr_nmethod_for(bci, CompLevel_none, false);
 778   }
 779 #ifndef PRODUCT
 780   if (TraceOnStackReplacement) {
 781     if (nm != NULL) {
 782       tty->print("OSR entry @ pc: " INTPTR_FORMAT ": ", nm->osr_entry());
 783       nm->print();
 784     }
 785   }
 786 #endif
 787   return nm;
 788 }
 789 
 790 IRT_ENTRY(nmethod*,
 791           InterpreterRuntime::frequency_counter_overflow_inner(JavaThread* thread, address branch_bcp))
 792   // use UnlockFlagSaver to clear and restore the _do_not_unlock_if_synchronized
 793   // flag, in case this method triggers classloading which will call into Java.
 794   UnlockFlagSaver fs(thread);
 795 
 796   frame fr = thread->last_frame();
 797   assert(fr.is_interpreted_frame(), "must come from interpreter");
 798   methodHandle method(thread, fr.interpreter_frame_method());
 799   const int branch_bci = branch_bcp != NULL ? method->bci_from(branch_bcp) : InvocationEntryBci;
 800   const int bci = branch_bcp != NULL ? method->bci_from(fr.interpreter_frame_bcp()) : InvocationEntryBci;
 801 
 802   assert(!HAS_PENDING_EXCEPTION, "Should not have any exceptions pending");
 803   nmethod* osr_nm = CompilationPolicy::policy()->event(method, method, branch_bci, bci, CompLevel_none, NULL, thread);
 804   assert(!HAS_PENDING_EXCEPTION, "Event handler should not throw any exceptions");
 805 
 806   if (osr_nm != NULL) {
 807     // We may need to do on-stack replacement which requires that no
 808     // monitors in the activation are biased because their
 809     // BasicObjectLocks will need to migrate during OSR. Force
 810     // unbiasing of all monitors in the activation now (even though
 811     // the OSR nmethod might be invalidated) because we don't have a
 812     // safepoint opportunity later once the migration begins.
 813     if (UseBiasedLocking) {
 814       ResourceMark rm;
 815       GrowableArray<Handle>* objects_to_revoke = new GrowableArray<Handle>();
 816       for( BasicObjectLock *kptr = fr.interpreter_frame_monitor_end();
 817            kptr < fr.interpreter_frame_monitor_begin();
 818            kptr = fr.next_monitor_in_interpreter_frame(kptr) ) {
 819         if( kptr->obj() != NULL ) {
 820           objects_to_revoke->append(Handle(THREAD, kptr->obj()));
 821         }
 822       }
 823       BiasedLocking::revoke(objects_to_revoke);
 824     }
 825   }
 826   return osr_nm;
 827 IRT_END
 828 
 829 IRT_LEAF(jint, InterpreterRuntime::bcp_to_di(Method* method, address cur_bcp))
 830   assert(ProfileInterpreter, "must be profiling interpreter");
 831   int bci = method->bci_from(cur_bcp);
 832   MethodData* mdo = method->method_data();
 833   if (mdo == NULL)  return 0;
 834   return mdo->bci_to_di(bci);
 835 IRT_END
 836 
 837 IRT_ENTRY(void, InterpreterRuntime::profile_method(JavaThread* thread))
 838   // use UnlockFlagSaver to clear and restore the _do_not_unlock_if_synchronized
 839   // flag, in case this method triggers classloading which will call into Java.
 840   UnlockFlagSaver fs(thread);
 841 
 842   assert(ProfileInterpreter, "must be profiling interpreter");
 843   frame fr = thread->last_frame();
 844   assert(fr.is_interpreted_frame(), "must come from interpreter");
 845   methodHandle method(thread, fr.interpreter_frame_method());
 846   Method::build_interpreter_method_data(method, THREAD);
 847   if (HAS_PENDING_EXCEPTION) {
 848     assert((PENDING_EXCEPTION->is_a(SystemDictionary::OutOfMemoryError_klass())), "we expect only an OOM error here");
 849     CLEAR_PENDING_EXCEPTION;
 850     // and fall through...
 851   }
 852 IRT_END
 853 
 854 
 855 #ifdef ASSERT
 856 IRT_LEAF(void, InterpreterRuntime::verify_mdp(Method* method, address bcp, address mdp))
 857   assert(ProfileInterpreter, "must be profiling interpreter");
 858 
 859   MethodData* mdo = method->method_data();
 860   assert(mdo != NULL, "must not be null");
 861 
 862   int bci = method->bci_from(bcp);
 863 
 864   address mdp2 = mdo->bci_to_dp(bci);
 865   if (mdp != mdp2) {
 866     ResourceMark rm;
 867     ResetNoHandleMark rnm; // In a LEAF entry.
 868     HandleMark hm;
 869     tty->print_cr("FAILED verify : actual mdp %p   expected mdp %p @ bci %d", mdp, mdp2, bci);
 870     int current_di = mdo->dp_to_di(mdp);
 871     int expected_di  = mdo->dp_to_di(mdp2);
 872     tty->print_cr("  actual di %d   expected di %d", current_di, expected_di);
 873     int expected_approx_bci = mdo->data_at(expected_di)->bci();
 874     int approx_bci = -1;
 875     if (current_di >= 0) {
 876       approx_bci = mdo->data_at(current_di)->bci();
 877     }
 878     tty->print_cr("  actual bci is %d  expected bci %d", approx_bci, expected_approx_bci);
 879     mdo->print_on(tty);
 880     method->print_codes();
 881   }
 882   assert(mdp == mdp2, "wrong mdp");
 883 IRT_END
 884 #endif // ASSERT
 885 
 886 IRT_ENTRY(void, InterpreterRuntime::update_mdp_for_ret(JavaThread* thread, int return_bci))
 887   assert(ProfileInterpreter, "must be profiling interpreter");
 888   ResourceMark rm(thread);
 889   HandleMark hm(thread);
 890   frame fr = thread->last_frame();
 891   assert(fr.is_interpreted_frame(), "must come from interpreter");
 892   MethodData* h_mdo = fr.interpreter_frame_method()->method_data();
 893 
 894   // Grab a lock to ensure atomic access to setting the return bci and
 895   // the displacement.  This can block and GC, invalidating all naked oops.
 896   MutexLocker ml(RetData_lock);
 897 
 898   // ProfileData is essentially a wrapper around a derived oop, so we
 899   // need to take the lock before making any ProfileData structures.
 900   ProfileData* data = h_mdo->data_at(h_mdo->dp_to_di(fr.interpreter_frame_mdp()));
 901   RetData* rdata = data->as_RetData();
 902   address new_mdp = rdata->fixup_ret(return_bci, h_mdo);
 903   fr.interpreter_frame_set_mdp(new_mdp);
 904 IRT_END
 905 
 906 
 907 IRT_ENTRY(void, InterpreterRuntime::at_safepoint(JavaThread* thread))
 908   // We used to need an explict preserve_arguments here for invoke bytecodes. However,
 909   // stack traversal automatically takes care of preserving arguments for invoke, so
 910   // this is no longer needed.
 911 
 912   // IRT_END does an implicit safepoint check, hence we are guaranteed to block
 913   // if this is called during a safepoint
 914 
 915   if (JvmtiExport::should_post_single_step()) {
 916     // We are called during regular safepoints and when the VM is
 917     // single stepping. If any thread is marked for single stepping,
 918     // then we may have JVMTI work to do.
 919     JvmtiExport::at_single_stepping_point(thread, method(thread), bcp(thread));
 920   }
 921 IRT_END
 922 
 923 IRT_ENTRY(void, InterpreterRuntime::post_field_access(JavaThread *thread, oopDesc* obj,
 924 ConstantPoolCacheEntry *cp_entry))
 925 
 926   // check the access_flags for the field in the klass
 927 
 928   InstanceKlass* ik = InstanceKlass::cast(cp_entry->f1_as_klass());
 929   int index = cp_entry->field_index();
 930   if ((ik->field_access_flags(index) & JVM_ACC_FIELD_ACCESS_WATCHED) == 0) return;
 931 
 932   switch(cp_entry->flag_state()) {
 933     case btos:    // fall through
 934     case ctos:    // fall through
 935     case stos:    // fall through
 936     case itos:    // fall through
 937     case ftos:    // fall through
 938     case ltos:    // fall through
 939     case dtos:    // fall through
 940     case atos: break;
 941     default: ShouldNotReachHere(); return;
 942   }
 943   bool is_static = (obj == NULL);
 944   HandleMark hm(thread);
 945 
 946   Handle h_obj;
 947   if (!is_static) {
 948     // non-static field accessors have an object, but we need a handle
 949     h_obj = Handle(thread, obj);
 950   }
 951   instanceKlassHandle h_cp_entry_f1(thread, (Klass*)cp_entry->f1_as_klass());
 952   jfieldID fid = jfieldIDWorkaround::to_jfieldID(h_cp_entry_f1, cp_entry->f2_as_index(), is_static);
 953   JvmtiExport::post_field_access(thread, method(thread), bcp(thread), h_cp_entry_f1, h_obj, fid);
 954 IRT_END
 955 
 956 IRT_ENTRY(void, InterpreterRuntime::post_field_modification(JavaThread *thread,
 957   oopDesc* obj, ConstantPoolCacheEntry *cp_entry, jvalue *value))
 958 
 959   Klass* k = (Klass*)cp_entry->f1_as_klass();
 960 
 961   // check the access_flags for the field in the klass
 962   InstanceKlass* ik = InstanceKlass::cast(k);
 963   int index = cp_entry->field_index();
 964   // bail out if field modifications are not watched
 965   if ((ik->field_access_flags(index) & JVM_ACC_FIELD_MODIFICATION_WATCHED) == 0) return;
 966 
 967   char sig_type = '\0';
 968 
 969   switch(cp_entry->flag_state()) {
 970     case btos: sig_type = 'Z'; break;
 971     case ctos: sig_type = 'C'; break;
 972     case stos: sig_type = 'S'; break;
 973     case itos: sig_type = 'I'; break;
 974     case ftos: sig_type = 'F'; break;
 975     case atos: sig_type = 'L'; break;
 976     case ltos: sig_type = 'J'; break;
 977     case dtos: sig_type = 'D'; break;
 978     default:  ShouldNotReachHere(); return;
 979   }
 980   bool is_static = (obj == NULL);
 981 
 982   HandleMark hm(thread);
 983   instanceKlassHandle h_klass(thread, k);
 984   jfieldID fid = jfieldIDWorkaround::to_jfieldID(h_klass, cp_entry->f2_as_index(), is_static);
 985   jvalue fvalue;
 986 #ifdef _LP64
 987   fvalue = *value;
 988 #else
 989   // Long/double values are stored unaligned and also noncontiguously with
 990   // tagged stacks.  We can't just do a simple assignment even in the non-
 991   // J/D cases because a C++ compiler is allowed to assume that a jvalue is
 992   // 8-byte aligned, and interpreter stack slots are only 4-byte aligned.
 993   // We assume that the two halves of longs/doubles are stored in interpreter
 994   // stack slots in platform-endian order.
 995   jlong_accessor u;
 996   jint* newval = (jint*)value;
 997   u.words[0] = newval[0];
 998   u.words[1] = newval[Interpreter::stackElementWords]; // skip if tag
 999   fvalue.j = u.long_value;
1000 #endif // _LP64
1001 
1002   Handle h_obj;
1003   if (!is_static) {
1004     // non-static field accessors have an object, but we need a handle
1005     h_obj = Handle(thread, obj);
1006   }
1007 
1008   JvmtiExport::post_raw_field_modification(thread, method(thread), bcp(thread), h_klass, h_obj,
1009                                            fid, sig_type, &fvalue);
1010 IRT_END
1011 
1012 IRT_ENTRY(void, InterpreterRuntime::post_method_entry(JavaThread *thread))
1013   JvmtiExport::post_method_entry(thread, InterpreterRuntime::method(thread), InterpreterRuntime::last_frame(thread));
1014 IRT_END
1015 
1016 
1017 IRT_ENTRY(void, InterpreterRuntime::post_method_exit(JavaThread *thread))
1018   JvmtiExport::post_method_exit(thread, InterpreterRuntime::method(thread), InterpreterRuntime::last_frame(thread));
1019 IRT_END
1020 
1021 IRT_LEAF(int, InterpreterRuntime::interpreter_contains(address pc))
1022 {
1023   return (Interpreter::contains(pc) ? 1 : 0);
1024 }
1025 IRT_END
1026 
1027 
1028 // Implementation of SignatureHandlerLibrary
1029 
1030 address SignatureHandlerLibrary::set_handler_blob() {
1031   BufferBlob* handler_blob = BufferBlob::create("native signature handlers", blob_size);
1032   if (handler_blob == NULL) {
1033     return NULL;
1034   }
1035   address handler = handler_blob->code_begin();
1036   _handler_blob = handler_blob;
1037   _handler = handler;
1038   return handler;
1039 }
1040 
1041 void SignatureHandlerLibrary::initialize() {
1042   if (_fingerprints != NULL) {
1043     return;
1044   }
1045   if (set_handler_blob() == NULL) {
1046     vm_exit_out_of_memory(blob_size, "native signature handlers");
1047   }
1048 
1049   BufferBlob* bb = BufferBlob::create("Signature Handler Temp Buffer",
1050                                       SignatureHandlerLibrary::buffer_size);
1051   _buffer = bb->code_begin();
1052 
1053   _fingerprints = new(ResourceObj::C_HEAP, mtCode)GrowableArray<uint64_t>(32, true);
1054   _handlers     = new(ResourceObj::C_HEAP, mtCode)GrowableArray<address>(32, true);
1055 }
1056 
1057 address SignatureHandlerLibrary::set_handler(CodeBuffer* buffer) {
1058   address handler   = _handler;
1059   int     insts_size = buffer->pure_insts_size();
1060   if (handler + insts_size > _handler_blob->code_end()) {
1061     // get a new handler blob
1062     handler = set_handler_blob();
1063   }
1064   if (handler != NULL) {
1065     memcpy(handler, buffer->insts_begin(), insts_size);
1066     pd_set_handler(handler);
1067     ICache::invalidate_range(handler, insts_size);
1068     _handler = handler + insts_size;
1069   }
1070   return handler;
1071 }
1072 
1073 void SignatureHandlerLibrary::add(methodHandle method) {
1074   if (method->signature_handler() == NULL) {
1075     // use slow signature handler if we can't do better
1076     int handler_index = -1;
1077     // check if we can use customized (fast) signature handler
1078     if (UseFastSignatureHandlers && method->size_of_parameters() <= Fingerprinter::max_size_of_parameters) {
1079       // use customized signature handler
1080       MutexLocker mu(SignatureHandlerLibrary_lock);
1081       // make sure data structure is initialized
1082       initialize();
1083       // lookup method signature's fingerprint
1084       uint64_t fingerprint = Fingerprinter(method).fingerprint();
1085       handler_index = _fingerprints->find(fingerprint);
1086       // create handler if necessary
1087       if (handler_index < 0) {
1088         ResourceMark rm;
1089         ptrdiff_t align_offset = (address)
1090           round_to((intptr_t)_buffer, CodeEntryAlignment) - (address)_buffer;
1091         CodeBuffer buffer((address)(_buffer + align_offset),
1092                           SignatureHandlerLibrary::buffer_size - align_offset);
1093         InterpreterRuntime::SignatureHandlerGenerator(method, &buffer).generate(fingerprint);
1094         // copy into code heap
1095         address handler = set_handler(&buffer);
1096         if (handler == NULL) {
1097           // use slow signature handler
1098         } else {
1099           // debugging suppport
1100           if (PrintSignatureHandlers) {
1101             tty->cr();
1102             tty->print_cr("argument handler #%d for: %s %s (fingerprint = " UINT64_FORMAT ", %d bytes generated)",
1103                           _handlers->length(),
1104                           (method->is_static() ? "static" : "receiver"),
1105                           method->name_and_sig_as_C_string(),
1106                           fingerprint,
1107                           buffer.insts_size());
1108             Disassembler::decode(handler, handler + buffer.insts_size());
1109 #ifndef PRODUCT
1110             tty->print_cr(" --- associated result handler ---");
1111             address rh_begin = Interpreter::result_handler(method()->result_type());
1112             address rh_end = rh_begin;
1113             while (*(int*)rh_end != 0) {
1114               rh_end += sizeof(int);
1115             }
1116             Disassembler::decode(rh_begin, rh_end);
1117 #endif
1118           }
1119           // add handler to library
1120           _fingerprints->append(fingerprint);
1121           _handlers->append(handler);
1122           // set handler index
1123           assert(_fingerprints->length() == _handlers->length(), "sanity check");
1124           handler_index = _fingerprints->length() - 1;
1125         }
1126       }
1127       // Set handler under SignatureHandlerLibrary_lock
1128     if (handler_index < 0) {
1129       // use generic signature handler
1130       method->set_signature_handler(Interpreter::slow_signature_handler());
1131     } else {
1132       // set handler
1133       method->set_signature_handler(_handlers->at(handler_index));
1134     }
1135     } else {
1136       CHECK_UNHANDLED_OOPS_ONLY(Thread::current()->clear_unhandled_oops());
1137       // use generic signature handler
1138       method->set_signature_handler(Interpreter::slow_signature_handler());
1139     }
1140   }
1141 #ifdef ASSERT
1142   int handler_index = -1;
1143   int fingerprint_index = -2;
1144   {
1145     // '_handlers' and '_fingerprints' are 'GrowableArray's and are NOT synchronized
1146     // in any way if accessed from multiple threads. To avoid races with another
1147     // thread which may change the arrays in the above, mutex protected block, we
1148     // have to protect this read access here with the same mutex as well!
1149     MutexLocker mu(SignatureHandlerLibrary_lock);
1150     if (_handlers != NULL) {
1151     handler_index = _handlers->find(method->signature_handler());
1152     fingerprint_index = _fingerprints->find(Fingerprinter(method).fingerprint());
1153   }
1154   }
1155   assert(method->signature_handler() == Interpreter::slow_signature_handler() ||
1156          handler_index == fingerprint_index, "sanity check");
1157 #endif // ASSERT
1158 }
1159 
1160 
1161 BufferBlob*              SignatureHandlerLibrary::_handler_blob = NULL;
1162 address                  SignatureHandlerLibrary::_handler      = NULL;
1163 GrowableArray<uint64_t>* SignatureHandlerLibrary::_fingerprints = NULL;
1164 GrowableArray<address>*  SignatureHandlerLibrary::_handlers     = NULL;
1165 address                  SignatureHandlerLibrary::_buffer       = NULL;
1166 
1167 
1168 IRT_ENTRY(void, InterpreterRuntime::prepare_native_call(JavaThread* thread, Method* method))
1169   methodHandle m(thread, method);
1170   assert(m->is_native(), "sanity check");
1171   // lookup native function entry point if it doesn't exist
1172   bool in_base_library;
1173   if (!m->has_native_function()) {
1174     NativeLookup::lookup(m, in_base_library, CHECK);
1175   }
1176   // make sure signature handler is installed
1177   SignatureHandlerLibrary::add(m);
1178   // The interpreter entry point checks the signature handler first,
1179   // before trying to fetch the native entry point and klass mirror.
1180   // We must set the signature handler last, so that multiple processors
1181   // preparing the same method will be sure to see non-null entry & mirror.
1182 IRT_END
1183 
1184 #if defined(IA32) || defined(AMD64) || defined(ARM)
1185 IRT_LEAF(void, InterpreterRuntime::popframe_move_outgoing_args(JavaThread* thread, void* src_address, void* dest_address))
1186   if (src_address == dest_address) {
1187     return;
1188   }
1189   ResetNoHandleMark rnm; // In a LEAF entry.
1190   HandleMark hm;
1191   ResourceMark rm;
1192   frame fr = thread->last_frame();
1193   assert(fr.is_interpreted_frame(), "");
1194   jint bci = fr.interpreter_frame_bci();
1195   methodHandle mh(thread, fr.interpreter_frame_method());
1196   Bytecode_invoke invoke(mh, bci);
1197   ArgumentSizeComputer asc(invoke.signature());
1198   int size_of_arguments = (asc.size() + (invoke.has_receiver() ? 1 : 0)); // receiver
1199   Copy::conjoint_jbytes(src_address, dest_address,
1200                        size_of_arguments * Interpreter::stackElementSize);
1201 IRT_END
1202 #endif