src/cpu/x86/vm/interp_masm_x86_32.cpp

Tue, 24 Jul 2012 10:51:00 -0700

author
twisti
date
Tue, 24 Jul 2012 10:51:00 -0700
changeset 3969
1d7922586cf6
parent 3156
f08d439fab8c
child 4037
da91efe96a93
permissions
-rw-r--r--

7023639: JSR 292 method handle invocation needs a fast path for compiled code
6984705: JSR 292 method handle creation should not go through JNI
Summary: remove assembly code for JDK 7 chained method handles
Reviewed-by: jrose, twisti, kvn, mhaupt
Contributed-by: John Rose <john.r.rose@oracle.com>, Christian Thalinger <christian.thalinger@oracle.com>, Michael Haupt <michael.haupt@oracle.com>

     1 /*
     2  * Copyright (c) 1997, 2011, Oracle and/or its affiliates. All rights reserved.
     3  * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
     4  *
     5  * This code is free software; you can redistribute it and/or modify it
     6  * under the terms of the GNU General Public License version 2 only, as
     7  * published by the Free Software Foundation.
     8  *
     9  * This code is distributed in the hope that it will be useful, but WITHOUT
    10  * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
    11  * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
    12  * version 2 for more details (a copy is included in the LICENSE file that
    13  * accompanied this code).
    14  *
    15  * You should have received a copy of the GNU General Public License version
    16  * 2 along with this work; if not, write to the Free Software Foundation,
    17  * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
    18  *
    19  * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
    20  * or visit www.oracle.com if you need additional information or have any
    21  * questions.
    22  *
    23  */
    25 #include "precompiled.hpp"
    26 #include "interp_masm_x86_32.hpp"
    27 #include "interpreter/interpreter.hpp"
    28 #include "interpreter/interpreterRuntime.hpp"
    29 #include "oops/arrayOop.hpp"
    30 #include "oops/markOop.hpp"
    31 #include "oops/methodDataOop.hpp"
    32 #include "oops/methodOop.hpp"
    33 #include "prims/jvmtiExport.hpp"
    34 #include "prims/jvmtiRedefineClassesTrace.hpp"
    35 #include "prims/jvmtiThreadState.hpp"
    36 #include "runtime/basicLock.hpp"
    37 #include "runtime/biasedLocking.hpp"
    38 #include "runtime/sharedRuntime.hpp"
    39 #ifdef TARGET_OS_FAMILY_linux
    40 # include "thread_linux.inline.hpp"
    41 #endif
    42 #ifdef TARGET_OS_FAMILY_solaris
    43 # include "thread_solaris.inline.hpp"
    44 #endif
    45 #ifdef TARGET_OS_FAMILY_windows
    46 # include "thread_windows.inline.hpp"
    47 #endif
    48 #ifdef TARGET_OS_FAMILY_bsd
    49 # include "thread_bsd.inline.hpp"
    50 #endif
    53 // Implementation of InterpreterMacroAssembler
    54 #ifdef CC_INTERP
    55 void InterpreterMacroAssembler::get_method(Register reg) {
    56   movptr(reg, Address(rbp, -(sizeof(BytecodeInterpreter) + 2 * wordSize)));
    57   movptr(reg, Address(reg, byte_offset_of(BytecodeInterpreter, _method)));
    58 }
    59 #endif // CC_INTERP
    62 #ifndef CC_INTERP
    63 void InterpreterMacroAssembler::call_VM_leaf_base(
    64   address entry_point,
    65   int     number_of_arguments
    66 ) {
    67   // interpreter specific
    68   //
    69   // Note: No need to save/restore bcp & locals (rsi & rdi) pointer
    70   //       since these are callee saved registers and no blocking/
    71   //       GC can happen in leaf calls.
    72   // Further Note: DO NOT save/restore bcp/locals. If a caller has
    73   // already saved them so that it can use rsi/rdi as temporaries
    74   // then a save/restore here will DESTROY the copy the caller
    75   // saved! There used to be a save_bcp() that only happened in
    76   // the ASSERT path (no restore_bcp). Which caused bizarre failures
    77   // when jvm built with ASSERTs.
    78 #ifdef ASSERT
    79   { Label L;
    80     cmpptr(Address(rbp, frame::interpreter_frame_last_sp_offset * wordSize), (int32_t)NULL_WORD);
    81     jcc(Assembler::equal, L);
    82     stop("InterpreterMacroAssembler::call_VM_leaf_base: last_sp != NULL");
    83     bind(L);
    84   }
    85 #endif
    86   // super call
    87   MacroAssembler::call_VM_leaf_base(entry_point, number_of_arguments);
    88   // interpreter specific
    90   // Used to ASSERT that rsi/rdi were equal to frame's bcp/locals
    91   // but since they may not have been saved (and we don't want to
    92   // save them here (see note above) the assert is invalid.
    93 }
    96 void InterpreterMacroAssembler::call_VM_base(
    97   Register oop_result,
    98   Register java_thread,
    99   Register last_java_sp,
   100   address  entry_point,
   101   int      number_of_arguments,
   102   bool     check_exceptions
   103 ) {
   104 #ifdef ASSERT
   105   { Label L;
   106     cmpptr(Address(rbp, frame::interpreter_frame_last_sp_offset * wordSize), (int32_t)NULL_WORD);
   107     jcc(Assembler::equal, L);
   108     stop("InterpreterMacroAssembler::call_VM_base: last_sp != NULL");
   109     bind(L);
   110   }
   111 #endif /* ASSERT */
   112   // interpreter specific
   113   //
   114   // Note: Could avoid restoring locals ptr (callee saved) - however doesn't
   115   //       really make a difference for these runtime calls, since they are
   116   //       slow anyway. Btw., bcp must be saved/restored since it may change
   117   //       due to GC.
   118   assert(java_thread == noreg , "not expecting a precomputed java thread");
   119   save_bcp();
   120   // super call
   121   MacroAssembler::call_VM_base(oop_result, java_thread, last_java_sp, entry_point, number_of_arguments, check_exceptions);
   122   // interpreter specific
   123   restore_bcp();
   124   restore_locals();
   125 }
   128 void InterpreterMacroAssembler::check_and_handle_popframe(Register java_thread) {
   129   if (JvmtiExport::can_pop_frame()) {
   130     Label L;
   131     // Initiate popframe handling only if it is not already being processed.  If the flag
   132     // has the popframe_processing bit set, it means that this code is called *during* popframe
   133     // handling - we don't want to reenter.
   134     Register pop_cond = java_thread;  // Not clear if any other register is available...
   135     movl(pop_cond, Address(java_thread, JavaThread::popframe_condition_offset()));
   136     testl(pop_cond, JavaThread::popframe_pending_bit);
   137     jcc(Assembler::zero, L);
   138     testl(pop_cond, JavaThread::popframe_processing_bit);
   139     jcc(Assembler::notZero, L);
   140     // Call Interpreter::remove_activation_preserving_args_entry() to get the
   141     // address of the same-named entrypoint in the generated interpreter code.
   142     call_VM_leaf(CAST_FROM_FN_PTR(address, Interpreter::remove_activation_preserving_args_entry));
   143     jmp(rax);
   144     bind(L);
   145     get_thread(java_thread);
   146   }
   147 }
   150 void InterpreterMacroAssembler::load_earlyret_value(TosState state) {
   151   get_thread(rcx);
   152   movl(rcx, Address(rcx, JavaThread::jvmti_thread_state_offset()));
   153   const Address tos_addr (rcx, JvmtiThreadState::earlyret_tos_offset());
   154   const Address oop_addr (rcx, JvmtiThreadState::earlyret_oop_offset());
   155   const Address val_addr (rcx, JvmtiThreadState::earlyret_value_offset());
   156   const Address val_addr1(rcx, JvmtiThreadState::earlyret_value_offset()
   157                              + in_ByteSize(wordSize));
   158   switch (state) {
   159     case atos: movptr(rax, oop_addr);
   160                movptr(oop_addr, NULL_WORD);
   161                verify_oop(rax, state);                break;
   162     case ltos:
   163                movl(rdx, val_addr1);               // fall through
   164     case btos:                                     // fall through
   165     case ctos:                                     // fall through
   166     case stos:                                     // fall through
   167     case itos: movl(rax, val_addr);                   break;
   168     case ftos: fld_s(val_addr);                       break;
   169     case dtos: fld_d(val_addr);                       break;
   170     case vtos: /* nothing to do */                    break;
   171     default  : ShouldNotReachHere();
   172   }
   173   // Clean up tos value in the thread object
   174   movl(tos_addr,  (int32_t) ilgl);
   175   movptr(val_addr,  NULL_WORD);
   176   NOT_LP64(movptr(val_addr1, NULL_WORD));
   177 }
   180 void InterpreterMacroAssembler::check_and_handle_earlyret(Register java_thread) {
   181   if (JvmtiExport::can_force_early_return()) {
   182     Label L;
   183     Register tmp = java_thread;
   184     movptr(tmp, Address(tmp, JavaThread::jvmti_thread_state_offset()));
   185     testptr(tmp, tmp);
   186     jcc(Assembler::zero, L); // if (thread->jvmti_thread_state() == NULL) exit;
   188     // Initiate earlyret handling only if it is not already being processed.
   189     // If the flag has the earlyret_processing bit set, it means that this code
   190     // is called *during* earlyret handling - we don't want to reenter.
   191     movl(tmp, Address(tmp, JvmtiThreadState::earlyret_state_offset()));
   192     cmpl(tmp, JvmtiThreadState::earlyret_pending);
   193     jcc(Assembler::notEqual, L);
   195     // Call Interpreter::remove_activation_early_entry() to get the address of the
   196     // same-named entrypoint in the generated interpreter code.
   197     get_thread(java_thread);
   198     movptr(tmp, Address(java_thread, JavaThread::jvmti_thread_state_offset()));
   199     pushl(Address(tmp, JvmtiThreadState::earlyret_tos_offset()));
   200     call_VM_leaf(CAST_FROM_FN_PTR(address, Interpreter::remove_activation_early_entry), 1);
   201     jmp(rax);
   202     bind(L);
   203     get_thread(java_thread);
   204   }
   205 }
   208 void InterpreterMacroAssembler::get_unsigned_2_byte_index_at_bcp(Register reg, int bcp_offset) {
   209   assert(bcp_offset >= 0, "bcp is still pointing to start of bytecode");
   210   movl(reg, Address(rsi, bcp_offset));
   211   bswapl(reg);
   212   shrl(reg, 16);
   213 }
   216 void InterpreterMacroAssembler::get_cache_index_at_bcp(Register reg, int bcp_offset, size_t index_size) {
   217   assert(bcp_offset > 0, "bcp is still pointing to start of bytecode");
   218   if (index_size == sizeof(u2)) {
   219     load_unsigned_short(reg, Address(rsi, bcp_offset));
   220   } else if (index_size == sizeof(u4)) {
   221     assert(EnableInvokeDynamic, "giant index used only for JSR 292");
   222     movl(reg, Address(rsi, bcp_offset));
   223     // Check if the secondary index definition is still ~x, otherwise
   224     // we have to change the following assembler code to calculate the
   225     // plain index.
   226     assert(constantPoolCacheOopDesc::decode_secondary_index(~123) == 123, "else change next line");
   227     notl(reg);  // convert to plain index
   228   } else if (index_size == sizeof(u1)) {
   229     assert(EnableInvokeDynamic, "tiny index used only for JSR 292");
   230     load_unsigned_byte(reg, Address(rsi, bcp_offset));
   231   } else {
   232     ShouldNotReachHere();
   233   }
   234 }
   237 void InterpreterMacroAssembler::get_cache_and_index_at_bcp(Register cache, Register index,
   238                                                            int bcp_offset, size_t index_size) {
   239   assert_different_registers(cache, index);
   240   get_cache_index_at_bcp(index, bcp_offset, index_size);
   241   movptr(cache, Address(rbp, frame::interpreter_frame_cache_offset * wordSize));
   242   assert(sizeof(ConstantPoolCacheEntry) == 4*wordSize, "adjust code below");
   243   shlptr(index, 2); // convert from field index to ConstantPoolCacheEntry index
   244 }
   247 void InterpreterMacroAssembler::get_cache_and_index_and_bytecode_at_bcp(Register cache,
   248                                                                         Register index,
   249                                                                         Register bytecode,
   250                                                                         int byte_no,
   251                                                                         int bcp_offset,
   252                                                                         size_t index_size) {
   253   get_cache_and_index_at_bcp(cache, index, bcp_offset, index_size);
   254   movptr(bytecode, Address(cache, index, Address::times_ptr, constantPoolCacheOopDesc::base_offset() + ConstantPoolCacheEntry::indices_offset()));
   255   const int shift_count = (1 + byte_no) * BitsPerByte;
   256   assert((byte_no == TemplateTable::f1_byte && shift_count == ConstantPoolCacheEntry::bytecode_1_shift) ||
   257          (byte_no == TemplateTable::f2_byte && shift_count == ConstantPoolCacheEntry::bytecode_2_shift),
   258          "correct shift count");
   259   shrptr(bytecode, shift_count);
   260   assert(ConstantPoolCacheEntry::bytecode_1_mask == ConstantPoolCacheEntry::bytecode_2_mask, "common mask");
   261   andptr(bytecode, ConstantPoolCacheEntry::bytecode_1_mask);
   262 }
   265 void InterpreterMacroAssembler::get_cache_entry_pointer_at_bcp(Register cache, Register tmp,
   266                                                                int bcp_offset, size_t index_size) {
   267   assert(cache != tmp, "must use different register");
   268   get_cache_index_at_bcp(tmp, bcp_offset, index_size);
   269   assert(sizeof(ConstantPoolCacheEntry) == 4*wordSize, "adjust code below");
   270                                // convert from field index to ConstantPoolCacheEntry index
   271                                // and from word offset to byte offset
   272   shll(tmp, 2 + LogBytesPerWord);
   273   movptr(cache, Address(rbp, frame::interpreter_frame_cache_offset * wordSize));
   274                                // skip past the header
   275   addptr(cache, in_bytes(constantPoolCacheOopDesc::base_offset()));
   276   addptr(cache, tmp);            // construct pointer to cache entry
   277 }
   280   // Generate a subtype check: branch to ok_is_subtype if sub_klass is
   281   // a subtype of super_klass.  EAX holds the super_klass.  Blows ECX.
   282   // Resets EDI to locals.  Register sub_klass cannot be any of the above.
   283 void InterpreterMacroAssembler::gen_subtype_check( Register Rsub_klass, Label &ok_is_subtype ) {
   284   assert( Rsub_klass != rax, "rax, holds superklass" );
   285   assert( Rsub_klass != rcx, "used as a temp" );
   286   assert( Rsub_klass != rdi, "used as a temp, restored from locals" );
   288   // Profile the not-null value's klass.
   289   profile_typecheck(rcx, Rsub_klass, rdi); // blows rcx, reloads rdi
   291   // Do the check.
   292   check_klass_subtype(Rsub_klass, rax, rcx, ok_is_subtype); // blows rcx
   294   // Profile the failure of the check.
   295   profile_typecheck_failed(rcx); // blows rcx
   296 }
   298 void InterpreterMacroAssembler::f2ieee() {
   299   if (IEEEPrecision) {
   300     fstp_s(Address(rsp, 0));
   301     fld_s(Address(rsp, 0));
   302   }
   303 }
   306 void InterpreterMacroAssembler::d2ieee() {
   307   if (IEEEPrecision) {
   308     fstp_d(Address(rsp, 0));
   309     fld_d(Address(rsp, 0));
   310   }
   311 }
   313 // Java Expression Stack
   315 void InterpreterMacroAssembler::pop_ptr(Register r) {
   316   pop(r);
   317 }
   319 void InterpreterMacroAssembler::pop_i(Register r) {
   320   pop(r);
   321 }
   323 void InterpreterMacroAssembler::pop_l(Register lo, Register hi) {
   324   pop(lo);
   325   pop(hi);
   326 }
   328 void InterpreterMacroAssembler::pop_f() {
   329   fld_s(Address(rsp, 0));
   330   addptr(rsp, 1 * wordSize);
   331 }
   333 void InterpreterMacroAssembler::pop_d() {
   334   fld_d(Address(rsp, 0));
   335   addptr(rsp, 2 * wordSize);
   336 }
   339 void InterpreterMacroAssembler::pop(TosState state) {
   340   switch (state) {
   341     case atos: pop_ptr(rax);                                 break;
   342     case btos:                                               // fall through
   343     case ctos:                                               // fall through
   344     case stos:                                               // fall through
   345     case itos: pop_i(rax);                                   break;
   346     case ltos: pop_l(rax, rdx);                              break;
   347     case ftos: pop_f();                                      break;
   348     case dtos: pop_d();                                      break;
   349     case vtos: /* nothing to do */                           break;
   350     default  : ShouldNotReachHere();
   351   }
   352   verify_oop(rax, state);
   353 }
   355 void InterpreterMacroAssembler::push_ptr(Register r) {
   356   push(r);
   357 }
   359 void InterpreterMacroAssembler::push_i(Register r) {
   360   push(r);
   361 }
   363 void InterpreterMacroAssembler::push_l(Register lo, Register hi) {
   364   push(hi);
   365   push(lo);
   366 }
   368 void InterpreterMacroAssembler::push_f() {
   369   // Do not schedule for no AGI! Never write beyond rsp!
   370   subptr(rsp, 1 * wordSize);
   371   fstp_s(Address(rsp, 0));
   372 }
   374 void InterpreterMacroAssembler::push_d(Register r) {
   375   // Do not schedule for no AGI! Never write beyond rsp!
   376   subptr(rsp, 2 * wordSize);
   377   fstp_d(Address(rsp, 0));
   378 }
   381 void InterpreterMacroAssembler::push(TosState state) {
   382   verify_oop(rax, state);
   383   switch (state) {
   384     case atos: push_ptr(rax); break;
   385     case btos:                                               // fall through
   386     case ctos:                                               // fall through
   387     case stos:                                               // fall through
   388     case itos: push_i(rax);                                    break;
   389     case ltos: push_l(rax, rdx);                               break;
   390     case ftos: push_f();                                       break;
   391     case dtos: push_d(rax);                                    break;
   392     case vtos: /* nothing to do */                             break;
   393     default  : ShouldNotReachHere();
   394   }
   395 }
   398 // Helpers for swap and dup
   399 void InterpreterMacroAssembler::load_ptr(int n, Register val) {
   400   movptr(val, Address(rsp, Interpreter::expr_offset_in_bytes(n)));
   401 }
   403 void InterpreterMacroAssembler::store_ptr(int n, Register val) {
   404   movptr(Address(rsp, Interpreter::expr_offset_in_bytes(n)), val);
   405 }
   407 void InterpreterMacroAssembler::prepare_to_jump_from_interpreted() {
   408   // set sender sp
   409   lea(rsi, Address(rsp, wordSize));
   410   // record last_sp
   411   movptr(Address(rbp, frame::interpreter_frame_last_sp_offset * wordSize), rsi);
   412 }
   415 // Jump to from_interpreted entry of a call unless single stepping is possible
   416 // in this thread in which case we must call the i2i entry
   417 void InterpreterMacroAssembler::jump_from_interpreted(Register method, Register temp) {
   418   prepare_to_jump_from_interpreted();
   420   if (JvmtiExport::can_post_interpreter_events()) {
   421     Label run_compiled_code;
   422     // JVMTI events, such as single-stepping, are implemented partly by avoiding running
   423     // compiled code in threads for which the event is enabled.  Check here for
   424     // interp_only_mode if these events CAN be enabled.
   425     get_thread(temp);
   426     // interp_only is an int, on little endian it is sufficient to test the byte only
   427     // Is a cmpl faster?
   428     cmpb(Address(temp, JavaThread::interp_only_mode_offset()), 0);
   429     jccb(Assembler::zero, run_compiled_code);
   430     jmp(Address(method, methodOopDesc::interpreter_entry_offset()));
   431     bind(run_compiled_code);
   432   }
   434   jmp(Address(method, methodOopDesc::from_interpreted_offset()));
   436 }
   439 // The following two routines provide a hook so that an implementation
   440 // can schedule the dispatch in two parts.  Intel does not do this.
   441 void InterpreterMacroAssembler::dispatch_prolog(TosState state, int step) {
   442   // Nothing Intel-specific to be done here.
   443 }
   445 void InterpreterMacroAssembler::dispatch_epilog(TosState state, int step) {
   446   dispatch_next(state, step);
   447 }
   449 void InterpreterMacroAssembler::dispatch_base(TosState state, address* table,
   450                                               bool verifyoop) {
   451   verify_FPU(1, state);
   452   if (VerifyActivationFrameSize) {
   453     Label L;
   454     mov(rcx, rbp);
   455     subptr(rcx, rsp);
   456     int min_frame_size = (frame::link_offset - frame::interpreter_frame_initial_sp_offset) * wordSize;
   457     cmpptr(rcx, min_frame_size);
   458     jcc(Assembler::greaterEqual, L);
   459     stop("broken stack frame");
   460     bind(L);
   461   }
   462   if (verifyoop) verify_oop(rax, state);
   463   Address index(noreg, rbx, Address::times_ptr);
   464   ExternalAddress tbl((address)table);
   465   ArrayAddress dispatch(tbl, index);
   466   jump(dispatch);
   467 }
   470 void InterpreterMacroAssembler::dispatch_only(TosState state) {
   471   dispatch_base(state, Interpreter::dispatch_table(state));
   472 }
   475 void InterpreterMacroAssembler::dispatch_only_normal(TosState state) {
   476   dispatch_base(state, Interpreter::normal_table(state));
   477 }
   479 void InterpreterMacroAssembler::dispatch_only_noverify(TosState state) {
   480   dispatch_base(state, Interpreter::normal_table(state), false);
   481 }
   484 void InterpreterMacroAssembler::dispatch_next(TosState state, int step) {
   485   // load next bytecode (load before advancing rsi to prevent AGI)
   486   load_unsigned_byte(rbx, Address(rsi, step));
   487   // advance rsi
   488   increment(rsi, step);
   489   dispatch_base(state, Interpreter::dispatch_table(state));
   490 }
   493 void InterpreterMacroAssembler::dispatch_via(TosState state, address* table) {
   494   // load current bytecode
   495   load_unsigned_byte(rbx, Address(rsi, 0));
   496   dispatch_base(state, table);
   497 }
   499 // remove activation
   500 //
   501 // Unlock the receiver if this is a synchronized method.
   502 // Unlock any Java monitors from syncronized blocks.
   503 // Remove the activation from the stack.
   504 //
   505 // If there are locked Java monitors
   506 //    If throw_monitor_exception
   507 //       throws IllegalMonitorStateException
   508 //    Else if install_monitor_exception
   509 //       installs IllegalMonitorStateException
   510 //    Else
   511 //       no error processing
   512 void InterpreterMacroAssembler::remove_activation(TosState state, Register ret_addr,
   513                                                   bool throw_monitor_exception,
   514                                                   bool install_monitor_exception,
   515                                                   bool notify_jvmdi) {
   516   // Note: Registers rax, rdx and FPU ST(0) may be in use for the result
   517   // check if synchronized method
   518   Label unlocked, unlock, no_unlock;
   520   get_thread(rcx);
   521   const Address do_not_unlock_if_synchronized(rcx,
   522     in_bytes(JavaThread::do_not_unlock_if_synchronized_offset()));
   524   movbool(rbx, do_not_unlock_if_synchronized);
   525   mov(rdi,rbx);
   526   movbool(do_not_unlock_if_synchronized, false); // reset the flag
   528   movptr(rbx, Address(rbp, frame::interpreter_frame_method_offset * wordSize)); // get method access flags
   529   movl(rcx, Address(rbx, methodOopDesc::access_flags_offset()));
   531   testl(rcx, JVM_ACC_SYNCHRONIZED);
   532   jcc(Assembler::zero, unlocked);
   534   // Don't unlock anything if the _do_not_unlock_if_synchronized flag
   535   // is set.
   536   mov(rcx,rdi);
   537   testbool(rcx);
   538   jcc(Assembler::notZero, no_unlock);
   540   // unlock monitor
   541   push(state);                                   // save result
   543   // BasicObjectLock will be first in list, since this is a synchronized method. However, need
   544   // to check that the object has not been unlocked by an explicit monitorexit bytecode.
   545   const Address monitor(rbp, frame::interpreter_frame_initial_sp_offset * wordSize - (int)sizeof(BasicObjectLock));
   546   lea   (rdx, monitor);                          // address of first monitor
   548   movptr (rax, Address(rdx, BasicObjectLock::obj_offset_in_bytes()));
   549   testptr(rax, rax);
   550   jcc    (Assembler::notZero, unlock);
   552   pop(state);
   553   if (throw_monitor_exception) {
   554     empty_FPU_stack();  // remove possible return value from FPU-stack, otherwise stack could overflow
   556     // Entry already unlocked, need to throw exception
   557     call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::throw_illegal_monitor_state_exception));
   558     should_not_reach_here();
   559   } else {
   560     // Monitor already unlocked during a stack unroll.
   561     // If requested, install an illegal_monitor_state_exception.
   562     // Continue with stack unrolling.
   563     if (install_monitor_exception) {
   564       empty_FPU_stack();  // remove possible return value from FPU-stack, otherwise stack could overflow
   565       call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::new_illegal_monitor_state_exception));
   566     }
   567     jmp(unlocked);
   568   }
   570   bind(unlock);
   571   unlock_object(rdx);
   572   pop(state);
   574   // Check that for block-structured locking (i.e., that all locked objects has been unlocked)
   575   bind(unlocked);
   577   // rax, rdx: Might contain return value
   579   // Check that all monitors are unlocked
   580   {
   581     Label loop, exception, entry, restart;
   582     const int entry_size               = frame::interpreter_frame_monitor_size()           * wordSize;
   583     const Address monitor_block_top(rbp, frame::interpreter_frame_monitor_block_top_offset * wordSize);
   584     const Address monitor_block_bot(rbp, frame::interpreter_frame_initial_sp_offset        * wordSize);
   586     bind(restart);
   587     movptr(rcx, monitor_block_top);           // points to current entry, starting with top-most entry
   588     lea(rbx, monitor_block_bot);              // points to word before bottom of monitor block
   589     jmp(entry);
   591     // Entry already locked, need to throw exception
   592     bind(exception);
   594     if (throw_monitor_exception) {
   595       empty_FPU_stack();  // remove possible return value from FPU-stack, otherwise stack could overflow
   597       // Throw exception
   598       call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::throw_illegal_monitor_state_exception));
   599       should_not_reach_here();
   600     } else {
   601       // Stack unrolling. Unlock object and install illegal_monitor_exception
   602       // Unlock does not block, so don't have to worry about the frame
   604       push(state);
   605       mov(rdx, rcx);
   606       unlock_object(rdx);
   607       pop(state);
   609       if (install_monitor_exception) {
   610         empty_FPU_stack();  // remove possible return value from FPU-stack, otherwise stack could overflow
   611         call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::new_illegal_monitor_state_exception));
   612       }
   614       jmp(restart);
   615     }
   617     bind(loop);
   618     cmpptr(Address(rcx, BasicObjectLock::obj_offset_in_bytes()), (int32_t)NULL_WORD);  // check if current entry is used
   619     jcc(Assembler::notEqual, exception);
   621     addptr(rcx, entry_size);                     // otherwise advance to next entry
   622     bind(entry);
   623     cmpptr(rcx, rbx);                            // check if bottom reached
   624     jcc(Assembler::notEqual, loop);              // if not at bottom then check this entry
   625   }
   627   bind(no_unlock);
   629   // jvmti support
   630   if (notify_jvmdi) {
   631     notify_method_exit(state, NotifyJVMTI);     // preserve TOSCA
   632   } else {
   633     notify_method_exit(state, SkipNotifyJVMTI); // preserve TOSCA
   634   }
   636   // remove activation
   637   movptr(rbx, Address(rbp, frame::interpreter_frame_sender_sp_offset * wordSize)); // get sender sp
   638   leave();                                     // remove frame anchor
   639   pop(ret_addr);                               // get return address
   640   mov(rsp, rbx);                               // set sp to sender sp
   641   if (UseSSE) {
   642     // float and double are returned in xmm register in SSE-mode
   643     if (state == ftos && UseSSE >= 1) {
   644       subptr(rsp, wordSize);
   645       fstp_s(Address(rsp, 0));
   646       movflt(xmm0, Address(rsp, 0));
   647       addptr(rsp, wordSize);
   648     } else if (state == dtos && UseSSE >= 2) {
   649       subptr(rsp, 2*wordSize);
   650       fstp_d(Address(rsp, 0));
   651       movdbl(xmm0, Address(rsp, 0));
   652       addptr(rsp, 2*wordSize);
   653     }
   654   }
   655 }
   657 #endif /* !CC_INTERP */
   660 // Lock object
   661 //
   662 // Argument: rdx : Points to BasicObjectLock to be used for locking. Must
   663 // be initialized with object to lock
   664 void InterpreterMacroAssembler::lock_object(Register lock_reg) {
   665   assert(lock_reg == rdx, "The argument is only for looks. It must be rdx");
   667   if (UseHeavyMonitors) {
   668     call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::monitorenter), lock_reg);
   669   } else {
   671     Label done;
   673     const Register swap_reg = rax;  // Must use rax, for cmpxchg instruction
   674     const Register obj_reg  = rcx;  // Will contain the oop
   676     const int obj_offset = BasicObjectLock::obj_offset_in_bytes();
   677     const int lock_offset = BasicObjectLock::lock_offset_in_bytes ();
   678     const int mark_offset = lock_offset + BasicLock::displaced_header_offset_in_bytes();
   680     Label slow_case;
   682     // Load object pointer into obj_reg %rcx
   683     movptr(obj_reg, Address(lock_reg, obj_offset));
   685     if (UseBiasedLocking) {
   686       // Note: we use noreg for the temporary register since it's hard
   687       // to come up with a free register on all incoming code paths
   688       biased_locking_enter(lock_reg, obj_reg, swap_reg, noreg, false, done, &slow_case);
   689     }
   691     // Load immediate 1 into swap_reg %rax,
   692     movptr(swap_reg, (int32_t)1);
   694     // Load (object->mark() | 1) into swap_reg %rax,
   695     orptr(swap_reg, Address(obj_reg, 0));
   697     // Save (object->mark() | 1) into BasicLock's displaced header
   698     movptr(Address(lock_reg, mark_offset), swap_reg);
   700     assert(lock_offset == 0, "displached header must be first word in BasicObjectLock");
   701     if (os::is_MP()) {
   702       lock();
   703     }
   704     cmpxchgptr(lock_reg, Address(obj_reg, 0));
   705     if (PrintBiasedLockingStatistics) {
   706       cond_inc32(Assembler::zero,
   707                  ExternalAddress((address) BiasedLocking::fast_path_entry_count_addr()));
   708     }
   709     jcc(Assembler::zero, done);
   711     // Test if the oopMark is an obvious stack pointer, i.e.,
   712     //  1) (mark & 3) == 0, and
   713     //  2) rsp <= mark < mark + os::pagesize()
   714     //
   715     // These 3 tests can be done by evaluating the following
   716     // expression: ((mark - rsp) & (3 - os::vm_page_size())),
   717     // assuming both stack pointer and pagesize have their
   718     // least significant 2 bits clear.
   719     // NOTE: the oopMark is in swap_reg %rax, as the result of cmpxchg
   720     subptr(swap_reg, rsp);
   721     andptr(swap_reg, 3 - os::vm_page_size());
   723     // Save the test result, for recursive case, the result is zero
   724     movptr(Address(lock_reg, mark_offset), swap_reg);
   726     if (PrintBiasedLockingStatistics) {
   727       cond_inc32(Assembler::zero,
   728                  ExternalAddress((address) BiasedLocking::fast_path_entry_count_addr()));
   729     }
   730     jcc(Assembler::zero, done);
   732     bind(slow_case);
   734     // Call the runtime routine for slow case
   735     call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::monitorenter), lock_reg);
   737     bind(done);
   738   }
   739 }
   742 // Unlocks an object. Used in monitorexit bytecode and remove_activation.
   743 //
   744 // Argument: rdx : Points to BasicObjectLock structure for lock
   745 // Throw an IllegalMonitorException if object is not locked by current thread
   746 //
   747 // Uses: rax, rbx, rcx, rdx
   748 void InterpreterMacroAssembler::unlock_object(Register lock_reg) {
   749   assert(lock_reg == rdx, "The argument is only for looks. It must be rdx");
   751   if (UseHeavyMonitors) {
   752     call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::monitorexit), lock_reg);
   753   } else {
   754     Label done;
   756     const Register swap_reg   = rax;  // Must use rax, for cmpxchg instruction
   757     const Register header_reg = rbx;  // Will contain the old oopMark
   758     const Register obj_reg    = rcx;  // Will contain the oop
   760     save_bcp(); // Save in case of exception
   762     // Convert from BasicObjectLock structure to object and BasicLock structure
   763     // Store the BasicLock address into %rax,
   764     lea(swap_reg, Address(lock_reg, BasicObjectLock::lock_offset_in_bytes()));
   766     // Load oop into obj_reg(%rcx)
   767     movptr(obj_reg, Address(lock_reg, BasicObjectLock::obj_offset_in_bytes ()));
   769     // Free entry
   770     movptr(Address(lock_reg, BasicObjectLock::obj_offset_in_bytes()), NULL_WORD);
   772     if (UseBiasedLocking) {
   773       biased_locking_exit(obj_reg, header_reg, done);
   774     }
   776     // Load the old header from BasicLock structure
   777     movptr(header_reg, Address(swap_reg, BasicLock::displaced_header_offset_in_bytes()));
   779     // Test for recursion
   780     testptr(header_reg, header_reg);
   782     // zero for recursive case
   783     jcc(Assembler::zero, done);
   785     // Atomic swap back the old header
   786     if (os::is_MP()) lock();
   787     cmpxchgptr(header_reg, Address(obj_reg, 0));
   789     // zero for recursive case
   790     jcc(Assembler::zero, done);
   792     // Call the runtime routine for slow case.
   793     movptr(Address(lock_reg, BasicObjectLock::obj_offset_in_bytes()), obj_reg); // restore obj
   794     call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::monitorexit), lock_reg);
   796     bind(done);
   798     restore_bcp();
   799   }
   800 }
   803 #ifndef CC_INTERP
   805 // Test ImethodDataPtr.  If it is null, continue at the specified label
   806 void InterpreterMacroAssembler::test_method_data_pointer(Register mdp, Label& zero_continue) {
   807   assert(ProfileInterpreter, "must be profiling interpreter");
   808   movptr(mdp, Address(rbp, frame::interpreter_frame_mdx_offset * wordSize));
   809   testptr(mdp, mdp);
   810   jcc(Assembler::zero, zero_continue);
   811 }
   814 // Set the method data pointer for the current bcp.
   815 void InterpreterMacroAssembler::set_method_data_pointer_for_bcp() {
   816   assert(ProfileInterpreter, "must be profiling interpreter");
   817   Label set_mdp;
   818   push(rax);
   819   push(rbx);
   821   get_method(rbx);
   822   // Test MDO to avoid the call if it is NULL.
   823   movptr(rax, Address(rbx, in_bytes(methodOopDesc::method_data_offset())));
   824   testptr(rax, rax);
   825   jcc(Assembler::zero, set_mdp);
   826   // rbx,: method
   827   // rsi: bcp
   828   call_VM_leaf(CAST_FROM_FN_PTR(address, InterpreterRuntime::bcp_to_di), rbx, rsi);
   829   // rax,: mdi
   830   // mdo is guaranteed to be non-zero here, we checked for it before the call.
   831   movptr(rbx, Address(rbx, in_bytes(methodOopDesc::method_data_offset())));
   832   addptr(rbx, in_bytes(methodDataOopDesc::data_offset()));
   833   addptr(rax, rbx);
   834   bind(set_mdp);
   835   movptr(Address(rbp, frame::interpreter_frame_mdx_offset * wordSize), rax);
   836   pop(rbx);
   837   pop(rax);
   838 }
   840 void InterpreterMacroAssembler::verify_method_data_pointer() {
   841   assert(ProfileInterpreter, "must be profiling interpreter");
   842 #ifdef ASSERT
   843   Label verify_continue;
   844   push(rax);
   845   push(rbx);
   846   push(rcx);
   847   push(rdx);
   848   test_method_data_pointer(rcx, verify_continue); // If mdp is zero, continue
   849   get_method(rbx);
   851   // If the mdp is valid, it will point to a DataLayout header which is
   852   // consistent with the bcp.  The converse is highly probable also.
   853   load_unsigned_short(rdx, Address(rcx, in_bytes(DataLayout::bci_offset())));
   854   addptr(rdx, Address(rbx, methodOopDesc::const_offset()));
   855   lea(rdx, Address(rdx, constMethodOopDesc::codes_offset()));
   856   cmpptr(rdx, rsi);
   857   jcc(Assembler::equal, verify_continue);
   858   // rbx,: method
   859   // rsi: bcp
   860   // rcx: mdp
   861   call_VM_leaf(CAST_FROM_FN_PTR(address, InterpreterRuntime::verify_mdp), rbx, rsi, rcx);
   862   bind(verify_continue);
   863   pop(rdx);
   864   pop(rcx);
   865   pop(rbx);
   866   pop(rax);
   867 #endif // ASSERT
   868 }
   871 void InterpreterMacroAssembler::set_mdp_data_at(Register mdp_in, int constant, Register value) {
   872   // %%% this seems to be used to store counter data which is surely 32bits
   873   // however 64bit side stores 64 bits which seems wrong
   874   assert(ProfileInterpreter, "must be profiling interpreter");
   875   Address data(mdp_in, constant);
   876   movptr(data, value);
   877 }
   880 void InterpreterMacroAssembler::increment_mdp_data_at(Register mdp_in,
   881                                                       int constant,
   882                                                       bool decrement) {
   883   // Counter address
   884   Address data(mdp_in, constant);
   886   increment_mdp_data_at(data, decrement);
   887 }
   890 void InterpreterMacroAssembler::increment_mdp_data_at(Address data,
   891                                                       bool decrement) {
   893   assert( DataLayout::counter_increment==1, "flow-free idiom only works with 1" );
   894   assert(ProfileInterpreter, "must be profiling interpreter");
   896   // %%% 64bit treats this as 64 bit which seems unlikely
   897   if (decrement) {
   898     // Decrement the register.  Set condition codes.
   899     addl(data, -DataLayout::counter_increment);
   900     // If the decrement causes the counter to overflow, stay negative
   901     Label L;
   902     jcc(Assembler::negative, L);
   903     addl(data, DataLayout::counter_increment);
   904     bind(L);
   905   } else {
   906     assert(DataLayout::counter_increment == 1,
   907            "flow-free idiom only works with 1");
   908     // Increment the register.  Set carry flag.
   909     addl(data, DataLayout::counter_increment);
   910     // If the increment causes the counter to overflow, pull back by 1.
   911     sbbl(data, 0);
   912   }
   913 }
   916 void InterpreterMacroAssembler::increment_mdp_data_at(Register mdp_in,
   917                                                       Register reg,
   918                                                       int constant,
   919                                                       bool decrement) {
   920   Address data(mdp_in, reg, Address::times_1, constant);
   922   increment_mdp_data_at(data, decrement);
   923 }
   926 void InterpreterMacroAssembler::set_mdp_flag_at(Register mdp_in, int flag_byte_constant) {
   927   assert(ProfileInterpreter, "must be profiling interpreter");
   928   int header_offset = in_bytes(DataLayout::header_offset());
   929   int header_bits = DataLayout::flag_mask_to_header_mask(flag_byte_constant);
   930   // Set the flag
   931   orl(Address(mdp_in, header_offset), header_bits);
   932 }
   936 void InterpreterMacroAssembler::test_mdp_data_at(Register mdp_in,
   937                                                  int offset,
   938                                                  Register value,
   939                                                  Register test_value_out,
   940                                                  Label& not_equal_continue) {
   941   assert(ProfileInterpreter, "must be profiling interpreter");
   942   if (test_value_out == noreg) {
   943     cmpptr(value, Address(mdp_in, offset));
   944   } else {
   945     // Put the test value into a register, so caller can use it:
   946     movptr(test_value_out, Address(mdp_in, offset));
   947     cmpptr(test_value_out, value);
   948   }
   949   jcc(Assembler::notEqual, not_equal_continue);
   950 }
   953 void InterpreterMacroAssembler::update_mdp_by_offset(Register mdp_in, int offset_of_disp) {
   954   assert(ProfileInterpreter, "must be profiling interpreter");
   955   Address disp_address(mdp_in, offset_of_disp);
   956   addptr(mdp_in,disp_address);
   957   movptr(Address(rbp, frame::interpreter_frame_mdx_offset * wordSize), mdp_in);
   958 }
   961 void InterpreterMacroAssembler::update_mdp_by_offset(Register mdp_in, Register reg, int offset_of_disp) {
   962   assert(ProfileInterpreter, "must be profiling interpreter");
   963   Address disp_address(mdp_in, reg, Address::times_1, offset_of_disp);
   964   addptr(mdp_in, disp_address);
   965   movptr(Address(rbp, frame::interpreter_frame_mdx_offset * wordSize), mdp_in);
   966 }
   969 void InterpreterMacroAssembler::update_mdp_by_constant(Register mdp_in, int constant) {
   970   assert(ProfileInterpreter, "must be profiling interpreter");
   971   addptr(mdp_in, constant);
   972   movptr(Address(rbp, frame::interpreter_frame_mdx_offset * wordSize), mdp_in);
   973 }
   976 void InterpreterMacroAssembler::update_mdp_for_ret(Register return_bci) {
   977   assert(ProfileInterpreter, "must be profiling interpreter");
   978   push(return_bci);             // save/restore across call_VM
   979   call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::update_mdp_for_ret), return_bci);
   980   pop(return_bci);
   981 }
   984 void InterpreterMacroAssembler::profile_taken_branch(Register mdp, Register bumped_count) {
   985   if (ProfileInterpreter) {
   986     Label profile_continue;
   988     // If no method data exists, go to profile_continue.
   989     // Otherwise, assign to mdp
   990     test_method_data_pointer(mdp, profile_continue);
   992     // We are taking a branch.  Increment the taken count.
   993     // We inline increment_mdp_data_at to return bumped_count in a register
   994     //increment_mdp_data_at(mdp, in_bytes(JumpData::taken_offset()));
   995     Address data(mdp, in_bytes(JumpData::taken_offset()));
   997     // %%% 64bit treats these cells as 64 bit but they seem to be 32 bit
   998     movl(bumped_count,data);
   999     assert( DataLayout::counter_increment==1, "flow-free idiom only works with 1" );
  1000     addl(bumped_count, DataLayout::counter_increment);
  1001     sbbl(bumped_count, 0);
  1002     movl(data,bumped_count);    // Store back out
  1004     // The method data pointer needs to be updated to reflect the new target.
  1005     update_mdp_by_offset(mdp, in_bytes(JumpData::displacement_offset()));
  1006     bind (profile_continue);
  1011 void InterpreterMacroAssembler::profile_not_taken_branch(Register mdp) {
  1012   if (ProfileInterpreter) {
  1013     Label profile_continue;
  1015     // If no method data exists, go to profile_continue.
  1016     test_method_data_pointer(mdp, profile_continue);
  1018     // We are taking a branch.  Increment the not taken count.
  1019     increment_mdp_data_at(mdp, in_bytes(BranchData::not_taken_offset()));
  1021     // The method data pointer needs to be updated to correspond to the next bytecode
  1022     update_mdp_by_constant(mdp, in_bytes(BranchData::branch_data_size()));
  1023     bind (profile_continue);
  1028 void InterpreterMacroAssembler::profile_call(Register mdp) {
  1029   if (ProfileInterpreter) {
  1030     Label profile_continue;
  1032     // If no method data exists, go to profile_continue.
  1033     test_method_data_pointer(mdp, profile_continue);
  1035     // We are making a call.  Increment the count.
  1036     increment_mdp_data_at(mdp, in_bytes(CounterData::count_offset()));
  1038     // The method data pointer needs to be updated to reflect the new target.
  1039     update_mdp_by_constant(mdp, in_bytes(CounterData::counter_data_size()));
  1040     bind (profile_continue);
  1045 void InterpreterMacroAssembler::profile_final_call(Register mdp) {
  1046   if (ProfileInterpreter) {
  1047     Label profile_continue;
  1049     // If no method data exists, go to profile_continue.
  1050     test_method_data_pointer(mdp, profile_continue);
  1052     // We are making a call.  Increment the count.
  1053     increment_mdp_data_at(mdp, in_bytes(CounterData::count_offset()));
  1055     // The method data pointer needs to be updated to reflect the new target.
  1056     update_mdp_by_constant(mdp, in_bytes(VirtualCallData::virtual_call_data_size()));
  1057     bind (profile_continue);
  1062 void InterpreterMacroAssembler::profile_virtual_call(Register receiver, Register mdp,
  1063                                                      Register reg2,
  1064                                                      bool receiver_can_be_null) {
  1065   if (ProfileInterpreter) {
  1066     Label profile_continue;
  1068     // If no method data exists, go to profile_continue.
  1069     test_method_data_pointer(mdp, profile_continue);
  1071     Label skip_receiver_profile;
  1072     if (receiver_can_be_null) {
  1073       Label not_null;
  1074       testptr(receiver, receiver);
  1075       jccb(Assembler::notZero, not_null);
  1076       // We are making a call.  Increment the count for null receiver.
  1077       increment_mdp_data_at(mdp, in_bytes(CounterData::count_offset()));
  1078       jmp(skip_receiver_profile);
  1079       bind(not_null);
  1082     // Record the receiver type.
  1083     record_klass_in_profile(receiver, mdp, reg2, true);
  1084     bind(skip_receiver_profile);
  1086     // The method data pointer needs to be updated to reflect the new target.
  1087     update_mdp_by_constant(mdp,
  1088                            in_bytes(VirtualCallData::
  1089                                     virtual_call_data_size()));
  1090     bind(profile_continue);
  1095 void InterpreterMacroAssembler::record_klass_in_profile_helper(
  1096                                         Register receiver, Register mdp,
  1097                                         Register reg2, int start_row,
  1098                                         Label& done, bool is_virtual_call) {
  1099   if (TypeProfileWidth == 0) {
  1100     if (is_virtual_call) {
  1101       increment_mdp_data_at(mdp, in_bytes(CounterData::count_offset()));
  1103     return;
  1106   int last_row = VirtualCallData::row_limit() - 1;
  1107   assert(start_row <= last_row, "must be work left to do");
  1108   // Test this row for both the receiver and for null.
  1109   // Take any of three different outcomes:
  1110   //   1. found receiver => increment count and goto done
  1111   //   2. found null => keep looking for case 1, maybe allocate this cell
  1112   //   3. found something else => keep looking for cases 1 and 2
  1113   // Case 3 is handled by a recursive call.
  1114   for (int row = start_row; row <= last_row; row++) {
  1115     Label next_test;
  1116     bool test_for_null_also = (row == start_row);
  1118     // See if the receiver is receiver[n].
  1119     int recvr_offset = in_bytes(VirtualCallData::receiver_offset(row));
  1120     test_mdp_data_at(mdp, recvr_offset, receiver,
  1121                      (test_for_null_also ? reg2 : noreg),
  1122                      next_test);
  1123     // (Reg2 now contains the receiver from the CallData.)
  1125     // The receiver is receiver[n].  Increment count[n].
  1126     int count_offset = in_bytes(VirtualCallData::receiver_count_offset(row));
  1127     increment_mdp_data_at(mdp, count_offset);
  1128     jmp(done);
  1129     bind(next_test);
  1131     if (row == start_row) {
  1132       Label found_null;
  1133       // Failed the equality check on receiver[n]...  Test for null.
  1134       testptr(reg2, reg2);
  1135       if (start_row == last_row) {
  1136         // The only thing left to do is handle the null case.
  1137         if (is_virtual_call) {
  1138           jccb(Assembler::zero, found_null);
  1139           // Receiver did not match any saved receiver and there is no empty row for it.
  1140           // Increment total counter to indicate polymorphic case.
  1141           increment_mdp_data_at(mdp, in_bytes(CounterData::count_offset()));
  1142           jmp(done);
  1143           bind(found_null);
  1144         } else {
  1145           jcc(Assembler::notZero, done);
  1147         break;
  1149       // Since null is rare, make it be the branch-taken case.
  1150       jcc(Assembler::zero, found_null);
  1152       // Put all the "Case 3" tests here.
  1153       record_klass_in_profile_helper(receiver, mdp, reg2, start_row + 1, done, is_virtual_call);
  1155       // Found a null.  Keep searching for a matching receiver,
  1156       // but remember that this is an empty (unused) slot.
  1157       bind(found_null);
  1161   // In the fall-through case, we found no matching receiver, but we
  1162   // observed the receiver[start_row] is NULL.
  1164   // Fill in the receiver field and increment the count.
  1165   int recvr_offset = in_bytes(VirtualCallData::receiver_offset(start_row));
  1166   set_mdp_data_at(mdp, recvr_offset, receiver);
  1167   int count_offset = in_bytes(VirtualCallData::receiver_count_offset(start_row));
  1168   movptr(reg2, (intptr_t)DataLayout::counter_increment);
  1169   set_mdp_data_at(mdp, count_offset, reg2);
  1170   if (start_row > 0) {
  1171     jmp(done);
  1175 void InterpreterMacroAssembler::record_klass_in_profile(Register receiver,
  1176                                                         Register mdp, Register reg2,
  1177                                                         bool is_virtual_call) {
  1178   assert(ProfileInterpreter, "must be profiling");
  1179   Label done;
  1181   record_klass_in_profile_helper(receiver, mdp, reg2, 0, done, is_virtual_call);
  1183   bind (done);
  1186 void InterpreterMacroAssembler::profile_ret(Register return_bci, Register mdp) {
  1187   if (ProfileInterpreter) {
  1188     Label profile_continue;
  1189     uint row;
  1191     // If no method data exists, go to profile_continue.
  1192     test_method_data_pointer(mdp, profile_continue);
  1194     // Update the total ret count.
  1195     increment_mdp_data_at(mdp, in_bytes(CounterData::count_offset()));
  1197     for (row = 0; row < RetData::row_limit(); row++) {
  1198       Label next_test;
  1200       // See if return_bci is equal to bci[n]:
  1201       test_mdp_data_at(mdp, in_bytes(RetData::bci_offset(row)), return_bci,
  1202                        noreg, next_test);
  1204       // return_bci is equal to bci[n].  Increment the count.
  1205       increment_mdp_data_at(mdp, in_bytes(RetData::bci_count_offset(row)));
  1207       // The method data pointer needs to be updated to reflect the new target.
  1208       update_mdp_by_offset(mdp, in_bytes(RetData::bci_displacement_offset(row)));
  1209       jmp(profile_continue);
  1210       bind(next_test);
  1213     update_mdp_for_ret(return_bci);
  1215     bind (profile_continue);
  1220 void InterpreterMacroAssembler::profile_null_seen(Register mdp) {
  1221   if (ProfileInterpreter) {
  1222     Label profile_continue;
  1224     // If no method data exists, go to profile_continue.
  1225     test_method_data_pointer(mdp, profile_continue);
  1227     set_mdp_flag_at(mdp, BitData::null_seen_byte_constant());
  1229     // The method data pointer needs to be updated.
  1230     int mdp_delta = in_bytes(BitData::bit_data_size());
  1231     if (TypeProfileCasts) {
  1232       mdp_delta = in_bytes(VirtualCallData::virtual_call_data_size());
  1234     update_mdp_by_constant(mdp, mdp_delta);
  1236     bind (profile_continue);
  1241 void InterpreterMacroAssembler::profile_typecheck_failed(Register mdp) {
  1242   if (ProfileInterpreter && TypeProfileCasts) {
  1243     Label profile_continue;
  1245     // If no method data exists, go to profile_continue.
  1246     test_method_data_pointer(mdp, profile_continue);
  1248     int count_offset = in_bytes(CounterData::count_offset());
  1249     // Back up the address, since we have already bumped the mdp.
  1250     count_offset -= in_bytes(VirtualCallData::virtual_call_data_size());
  1252     // *Decrement* the counter.  We expect to see zero or small negatives.
  1253     increment_mdp_data_at(mdp, count_offset, true);
  1255     bind (profile_continue);
  1260 void InterpreterMacroAssembler::profile_typecheck(Register mdp, Register klass, Register reg2)
  1262   if (ProfileInterpreter) {
  1263     Label profile_continue;
  1265     // If no method data exists, go to profile_continue.
  1266     test_method_data_pointer(mdp, profile_continue);
  1268     // The method data pointer needs to be updated.
  1269     int mdp_delta = in_bytes(BitData::bit_data_size());
  1270     if (TypeProfileCasts) {
  1271       mdp_delta = in_bytes(VirtualCallData::virtual_call_data_size());
  1273       // Record the object type.
  1274       record_klass_in_profile(klass, mdp, reg2, false);
  1275       assert(reg2 == rdi, "we know how to fix this blown reg");
  1276       restore_locals();         // Restore EDI
  1278     update_mdp_by_constant(mdp, mdp_delta);
  1280     bind(profile_continue);
  1285 void InterpreterMacroAssembler::profile_switch_default(Register mdp) {
  1286   if (ProfileInterpreter) {
  1287     Label profile_continue;
  1289     // If no method data exists, go to profile_continue.
  1290     test_method_data_pointer(mdp, profile_continue);
  1292     // Update the default case count
  1293     increment_mdp_data_at(mdp, in_bytes(MultiBranchData::default_count_offset()));
  1295     // The method data pointer needs to be updated.
  1296     update_mdp_by_offset(mdp, in_bytes(MultiBranchData::default_displacement_offset()));
  1298     bind (profile_continue);
  1303 void InterpreterMacroAssembler::profile_switch_case(Register index, Register mdp, Register reg2) {
  1304   if (ProfileInterpreter) {
  1305     Label profile_continue;
  1307     // If no method data exists, go to profile_continue.
  1308     test_method_data_pointer(mdp, profile_continue);
  1310     // Build the base (index * per_case_size_in_bytes()) + case_array_offset_in_bytes()
  1311     movptr(reg2, (intptr_t)in_bytes(MultiBranchData::per_case_size()));
  1312     // index is positive and so should have correct value if this code were
  1313     // used on 64bits
  1314     imulptr(index, reg2);
  1315     addptr(index, in_bytes(MultiBranchData::case_array_offset()));
  1317     // Update the case count
  1318     increment_mdp_data_at(mdp, index, in_bytes(MultiBranchData::relative_count_offset()));
  1320     // The method data pointer needs to be updated.
  1321     update_mdp_by_offset(mdp, index, in_bytes(MultiBranchData::relative_displacement_offset()));
  1323     bind (profile_continue);
  1327 #endif // !CC_INTERP
  1331 void InterpreterMacroAssembler::verify_oop(Register reg, TosState state) {
  1332   if (state == atos) MacroAssembler::verify_oop(reg);
  1336 #ifndef CC_INTERP
  1337 void InterpreterMacroAssembler::verify_FPU(int stack_depth, TosState state) {
  1338   if (state == ftos || state == dtos) MacroAssembler::verify_FPU(stack_depth);
  1341 #endif /* CC_INTERP */
  1344 void InterpreterMacroAssembler::notify_method_entry() {
  1345   // Whenever JVMTI is interp_only_mode, method entry/exit events are sent to
  1346   // track stack depth.  If it is possible to enter interp_only_mode we add
  1347   // the code to check if the event should be sent.
  1348   if (JvmtiExport::can_post_interpreter_events()) {
  1349     Label L;
  1350     get_thread(rcx);
  1351     movl(rcx, Address(rcx, JavaThread::interp_only_mode_offset()));
  1352     testl(rcx,rcx);
  1353     jcc(Assembler::zero, L);
  1354     call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::post_method_entry));
  1355     bind(L);
  1359     SkipIfEqual skip_if(this, &DTraceMethodProbes, 0);
  1360     get_thread(rcx);
  1361     get_method(rbx);
  1362     call_VM_leaf(
  1363       CAST_FROM_FN_PTR(address, SharedRuntime::dtrace_method_entry), rcx, rbx);
  1366   // RedefineClasses() tracing support for obsolete method entry
  1367   if (RC_TRACE_IN_RANGE(0x00001000, 0x00002000)) {
  1368     get_thread(rcx);
  1369     get_method(rbx);
  1370     call_VM_leaf(
  1371       CAST_FROM_FN_PTR(address, SharedRuntime::rc_trace_method_entry),
  1372       rcx, rbx);
  1377 void InterpreterMacroAssembler::notify_method_exit(
  1378     TosState state, NotifyMethodExitMode mode) {
  1379   // Whenever JVMTI is interp_only_mode, method entry/exit events are sent to
  1380   // track stack depth.  If it is possible to enter interp_only_mode we add
  1381   // the code to check if the event should be sent.
  1382   if (mode == NotifyJVMTI && JvmtiExport::can_post_interpreter_events()) {
  1383     Label L;
  1384     // Note: frame::interpreter_frame_result has a dependency on how the
  1385     // method result is saved across the call to post_method_exit. If this
  1386     // is changed then the interpreter_frame_result implementation will
  1387     // need to be updated too.
  1389     // For c++ interpreter the result is always stored at a known location in the frame
  1390     // template interpreter will leave it on the top of the stack.
  1391     NOT_CC_INTERP(push(state);)
  1392     get_thread(rcx);
  1393     movl(rcx, Address(rcx, JavaThread::interp_only_mode_offset()));
  1394     testl(rcx,rcx);
  1395     jcc(Assembler::zero, L);
  1396     call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::post_method_exit));
  1397     bind(L);
  1398     NOT_CC_INTERP(pop(state);)
  1402     SkipIfEqual skip_if(this, &DTraceMethodProbes, 0);
  1403     NOT_CC_INTERP(push(state));
  1404     get_thread(rbx);
  1405     get_method(rcx);
  1406     call_VM_leaf(
  1407       CAST_FROM_FN_PTR(address, SharedRuntime::dtrace_method_exit),
  1408       rbx, rcx);
  1409     NOT_CC_INTERP(pop(state));
  1413 // Jump if ((*counter_addr += increment) & mask) satisfies the condition.
  1414 void InterpreterMacroAssembler::increment_mask_and_jump(Address counter_addr,
  1415                                                         int increment, int mask,
  1416                                                         Register scratch, bool preloaded,
  1417                                                         Condition cond, Label* where) {
  1418   if (!preloaded) {
  1419     movl(scratch, counter_addr);
  1421   incrementl(scratch, increment);
  1422   movl(counter_addr, scratch);
  1423   andl(scratch, mask);
  1424   jcc(cond, *where);

mercurial