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With the new template functions these are unnecessary. Reviewed-by: kbarrett, dholmes, eosterlund
825 lines
25 KiB
C++
825 lines
25 KiB
C++
/*
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* Copyright (c) 2003, 2017, Oracle and/or its affiliates. All rights reserved.
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* Copyright 2007, 2008, 2009, 2010, 2011 Red Hat, Inc.
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* DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
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*
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* This code is free software; you can redistribute it and/or modify it
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* under the terms of the GNU General Public License version 2 only, as
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* published by the Free Software Foundation.
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*
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* This code is distributed in the hope that it will be useful, but WITHOUT
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* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
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* FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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* version 2 for more details (a copy is included in the LICENSE file that
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* accompanied this code).
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*
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* You should have received a copy of the GNU General Public License version
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* 2 along with this work; if not, write to the Free Software Foundation,
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* Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
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*
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* Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
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* or visit www.oracle.com if you need additional information or have any
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* questions.
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*
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*/
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#include "precompiled.hpp"
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#include "asm/assembler.hpp"
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#include "interpreter/bytecodeHistogram.hpp"
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#include "interpreter/cppInterpreter.hpp"
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#include "interpreter/cppInterpreterGenerator.hpp"
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#include "interpreter/interpreter.hpp"
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#include "interpreter/interpreterRuntime.hpp"
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#include "oops/arrayOop.hpp"
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#include "oops/methodData.hpp"
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#include "oops/method.hpp"
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#include "oops/oop.inline.hpp"
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#include "prims/jvmtiExport.hpp"
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#include "prims/jvmtiThreadState.hpp"
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#include "runtime/arguments.hpp"
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#include "runtime/atomic.hpp"
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#include "runtime/deoptimization.hpp"
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#include "runtime/frame.inline.hpp"
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#include "runtime/interfaceSupport.hpp"
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#include "runtime/orderAccess.inline.hpp"
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#include "runtime/sharedRuntime.hpp"
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#include "runtime/stubRoutines.hpp"
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#include "runtime/synchronizer.hpp"
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#include "runtime/timer.hpp"
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#include "runtime/vframeArray.hpp"
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#include "stack_zero.inline.hpp"
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#include "utilities/debug.hpp"
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#include "utilities/macros.hpp"
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#ifdef SHARK
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#include "shark/shark_globals.hpp"
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#endif
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#ifdef CC_INTERP
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#define fixup_after_potential_safepoint() \
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method = istate->method()
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#define CALL_VM_NOCHECK_NOFIX(func) \
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thread->set_last_Java_frame(); \
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func; \
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thread->reset_last_Java_frame();
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#define CALL_VM_NOCHECK(func) \
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CALL_VM_NOCHECK_NOFIX(func) \
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fixup_after_potential_safepoint()
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int CppInterpreter::normal_entry(Method* method, intptr_t UNUSED, TRAPS) {
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JavaThread *thread = (JavaThread *) THREAD;
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// Allocate and initialize our frame.
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InterpreterFrame *frame = InterpreterFrame::build(method, CHECK_0);
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thread->push_zero_frame(frame);
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// Execute those bytecodes!
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main_loop(0, THREAD);
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// No deoptimized frames on the stack
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return 0;
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}
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intptr_t narrow(BasicType type, intptr_t result) {
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// mask integer result to narrower return type.
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switch (type) {
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case T_BOOLEAN:
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return result&1;
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case T_BYTE:
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return (intptr_t)(jbyte)result;
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case T_CHAR:
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return (intptr_t)(uintptr_t)(jchar)result;
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case T_SHORT:
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return (intptr_t)(jshort)result;
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case T_OBJECT: // nothing to do fall through
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case T_ARRAY:
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case T_LONG:
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case T_INT:
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case T_FLOAT:
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case T_DOUBLE:
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case T_VOID:
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return result;
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default : ShouldNotReachHere();
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}
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}
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void CppInterpreter::main_loop(int recurse, TRAPS) {
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JavaThread *thread = (JavaThread *) THREAD;
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ZeroStack *stack = thread->zero_stack();
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// If we are entering from a deopt we may need to call
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// ourself a few times in order to get to our frame.
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if (recurse)
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main_loop(recurse - 1, THREAD);
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InterpreterFrame *frame = thread->top_zero_frame()->as_interpreter_frame();
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interpreterState istate = frame->interpreter_state();
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Method* method = istate->method();
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intptr_t *result = NULL;
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int result_slots = 0;
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while (true) {
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// We can set up the frame anchor with everything we want at
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// this point as we are thread_in_Java and no safepoints can
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// occur until we go to vm mode. We do have to clear flags
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// on return from vm but that is it.
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thread->set_last_Java_frame();
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// Call the interpreter
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if (JvmtiExport::can_post_interpreter_events())
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BytecodeInterpreter::runWithChecks(istate);
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else
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BytecodeInterpreter::run(istate);
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fixup_after_potential_safepoint();
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// Clear the frame anchor
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thread->reset_last_Java_frame();
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// Examine the message from the interpreter to decide what to do
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if (istate->msg() == BytecodeInterpreter::call_method) {
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Method* callee = istate->callee();
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// Trim back the stack to put the parameters at the top
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stack->set_sp(istate->stack() + 1);
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// Make the call
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Interpreter::invoke_method(callee, istate->callee_entry_point(), THREAD);
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fixup_after_potential_safepoint();
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// Convert the result
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istate->set_stack(stack->sp() - 1);
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// Restore the stack
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stack->set_sp(istate->stack_limit() + 1);
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// Resume the interpreter
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istate->set_msg(BytecodeInterpreter::method_resume);
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}
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else if (istate->msg() == BytecodeInterpreter::more_monitors) {
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int monitor_words = frame::interpreter_frame_monitor_size();
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// Allocate the space
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stack->overflow_check(monitor_words, THREAD);
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if (HAS_PENDING_EXCEPTION)
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break;
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stack->alloc(monitor_words * wordSize);
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// Move the expression stack contents
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for (intptr_t *p = istate->stack() + 1; p < istate->stack_base(); p++)
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*(p - monitor_words) = *p;
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// Move the expression stack pointers
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istate->set_stack_limit(istate->stack_limit() - monitor_words);
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istate->set_stack(istate->stack() - monitor_words);
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istate->set_stack_base(istate->stack_base() - monitor_words);
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// Zero the new monitor so the interpreter can find it.
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((BasicObjectLock *) istate->stack_base())->set_obj(NULL);
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// Resume the interpreter
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istate->set_msg(BytecodeInterpreter::got_monitors);
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}
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else if (istate->msg() == BytecodeInterpreter::return_from_method) {
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// Copy the result into the caller's frame
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result_slots = type2size[method->result_type()];
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assert(result_slots >= 0 && result_slots <= 2, "what?");
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result = istate->stack() + result_slots;
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break;
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}
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else if (istate->msg() == BytecodeInterpreter::throwing_exception) {
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assert(HAS_PENDING_EXCEPTION, "should do");
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break;
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}
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else if (istate->msg() == BytecodeInterpreter::do_osr) {
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// Unwind the current frame
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thread->pop_zero_frame();
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// Remove any extension of the previous frame
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int extra_locals = method->max_locals() - method->size_of_parameters();
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stack->set_sp(stack->sp() + extra_locals);
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// Jump into the OSR method
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Interpreter::invoke_osr(
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method, istate->osr_entry(), istate->osr_buf(), THREAD);
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return;
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}
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else {
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ShouldNotReachHere();
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}
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}
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// Unwind the current frame
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thread->pop_zero_frame();
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// Pop our local variables
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stack->set_sp(stack->sp() + method->max_locals());
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// Push our result
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for (int i = 0; i < result_slots; i++) {
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// Adjust result to smaller
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union {
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intptr_t res;
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jint res_jint;
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};
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res = result[-i];
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if (result_slots == 1) {
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BasicType t = method->result_type();
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if (is_subword_type(t)) {
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res_jint = (jint)narrow(t, res_jint);
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}
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}
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stack->push(res);
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}
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}
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int CppInterpreter::native_entry(Method* method, intptr_t UNUSED, TRAPS) {
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// Make sure method is native and not abstract
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assert(method->is_native() && !method->is_abstract(), "should be");
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JavaThread *thread = (JavaThread *) THREAD;
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ZeroStack *stack = thread->zero_stack();
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// Allocate and initialize our frame
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InterpreterFrame *frame = InterpreterFrame::build(method, CHECK_0);
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thread->push_zero_frame(frame);
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interpreterState istate = frame->interpreter_state();
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intptr_t *locals = istate->locals();
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// Update the invocation counter
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if ((UseCompiler || CountCompiledCalls) && !method->is_synchronized()) {
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MethodCounters* mcs = method->method_counters();
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if (mcs == NULL) {
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CALL_VM_NOCHECK(mcs = InterpreterRuntime::build_method_counters(thread, method));
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if (HAS_PENDING_EXCEPTION)
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goto unwind_and_return;
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}
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InvocationCounter *counter = mcs->invocation_counter();
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counter->increment();
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if (counter->reached_InvocationLimit(mcs->backedge_counter())) {
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CALL_VM_NOCHECK(
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InterpreterRuntime::frequency_counter_overflow(thread, NULL));
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if (HAS_PENDING_EXCEPTION)
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goto unwind_and_return;
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}
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}
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// Lock if necessary
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BasicObjectLock *monitor;
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monitor = NULL;
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if (method->is_synchronized()) {
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monitor = (BasicObjectLock*) istate->stack_base();
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oop lockee = monitor->obj();
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markOop disp = lockee->mark()->set_unlocked();
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monitor->lock()->set_displaced_header(disp);
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if (Atomic::cmpxchg((markOop)monitor, lockee->mark_addr(), disp) != disp) {
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if (thread->is_lock_owned((address) disp->clear_lock_bits())) {
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monitor->lock()->set_displaced_header(NULL);
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}
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else {
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CALL_VM_NOCHECK(InterpreterRuntime::monitorenter(thread, monitor));
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if (HAS_PENDING_EXCEPTION)
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goto unwind_and_return;
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}
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}
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}
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// Get the signature handler
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InterpreterRuntime::SignatureHandler *handler; {
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address handlerAddr = method->signature_handler();
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if (handlerAddr == NULL) {
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CALL_VM_NOCHECK(InterpreterRuntime::prepare_native_call(thread, method));
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if (HAS_PENDING_EXCEPTION)
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goto unlock_unwind_and_return;
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handlerAddr = method->signature_handler();
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assert(handlerAddr != NULL, "eh?");
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}
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if (handlerAddr == (address) InterpreterRuntime::slow_signature_handler) {
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CALL_VM_NOCHECK(handlerAddr =
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InterpreterRuntime::slow_signature_handler(thread, method, NULL,NULL));
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if (HAS_PENDING_EXCEPTION)
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goto unlock_unwind_and_return;
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}
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handler = \
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InterpreterRuntime::SignatureHandler::from_handlerAddr(handlerAddr);
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}
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// Get the native function entry point
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address function;
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function = method->native_function();
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assert(function != NULL, "should be set if signature handler is");
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// Build the argument list
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stack->overflow_check(handler->argument_count() * 2, THREAD);
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if (HAS_PENDING_EXCEPTION)
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goto unlock_unwind_and_return;
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void **arguments;
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void *mirror; {
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arguments =
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(void **) stack->alloc(handler->argument_count() * sizeof(void **));
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void **dst = arguments;
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void *env = thread->jni_environment();
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*(dst++) = &env;
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if (method->is_static()) {
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istate->set_oop_temp(
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method->constants()->pool_holder()->java_mirror());
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mirror = istate->oop_temp_addr();
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*(dst++) = &mirror;
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}
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intptr_t *src = locals;
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for (int i = dst - arguments; i < handler->argument_count(); i++) {
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ffi_type *type = handler->argument_type(i);
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if (type == &ffi_type_pointer) {
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if (*src) {
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stack->push((intptr_t) src);
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*(dst++) = stack->sp();
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}
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else {
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*(dst++) = src;
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}
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src--;
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}
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else if (type->size == 4) {
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*(dst++) = src--;
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}
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else if (type->size == 8) {
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src--;
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*(dst++) = src--;
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}
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else {
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ShouldNotReachHere();
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}
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}
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}
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// Set up the Java frame anchor
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thread->set_last_Java_frame();
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// Change the thread state to _thread_in_native
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ThreadStateTransition::transition_from_java(thread, _thread_in_native);
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// Make the call
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intptr_t result[4 - LogBytesPerWord];
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ffi_call(handler->cif(), (void (*)()) function, result, arguments);
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// Change the thread state back to _thread_in_Java.
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// ThreadStateTransition::transition_from_native() cannot be used
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// here because it does not check for asynchronous exceptions.
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// We have to manage the transition ourself.
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thread->set_thread_state(_thread_in_native_trans);
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// Make sure new state is visible in the GC thread
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InterfaceSupport::serialize_thread_state(thread);
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// Handle safepoint operations, pending suspend requests,
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// and pending asynchronous exceptions.
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if (SafepointSynchronize::do_call_back() ||
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thread->has_special_condition_for_native_trans()) {
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JavaThread::check_special_condition_for_native_trans(thread);
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CHECK_UNHANDLED_OOPS_ONLY(thread->clear_unhandled_oops());
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}
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// Finally we can change the thread state to _thread_in_Java.
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thread->set_thread_state(_thread_in_Java);
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fixup_after_potential_safepoint();
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// Clear the frame anchor
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thread->reset_last_Java_frame();
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// If the result was an oop then unbox it and store it in
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// oop_temp where the garbage collector can see it before
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// we release the handle it might be protected by.
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if (handler->result_type() == &ffi_type_pointer) {
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if (result[0] == 0) {
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istate->set_oop_temp(NULL);
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} else {
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jobject handle = reinterpret_cast<jobject>(result[0]);
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istate->set_oop_temp(JNIHandles::resolve(handle));
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}
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}
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// Reset handle block
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thread->active_handles()->clear();
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unlock_unwind_and_return:
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// Unlock if necessary
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if (monitor) {
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BasicLock *lock = monitor->lock();
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markOop header = lock->displaced_header();
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oop rcvr = monitor->obj();
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monitor->set_obj(NULL);
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if (header != NULL) {
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markOop old_header = markOopDesc::encode(lock);
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if (rcvr->cas_set_mark(header, old_header) != old_header) {
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monitor->set_obj(rcvr); {
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HandleMark hm(thread);
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CALL_VM_NOCHECK(InterpreterRuntime::monitorexit(thread, monitor));
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}
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}
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}
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}
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unwind_and_return:
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// Unwind the current activation
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thread->pop_zero_frame();
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// Pop our parameters
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stack->set_sp(stack->sp() + method->size_of_parameters());
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// Push our result
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if (!HAS_PENDING_EXCEPTION) {
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BasicType type = method->result_type();
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stack->set_sp(stack->sp() - type2size[type]);
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switch (type) {
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case T_VOID:
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break;
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case T_BOOLEAN:
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#ifndef VM_LITTLE_ENDIAN
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result[0] <<= (BitsPerWord - BitsPerByte);
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#endif
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SET_LOCALS_INT(*(jboolean *) result != 0, 0);
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break;
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case T_CHAR:
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#ifndef VM_LITTLE_ENDIAN
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result[0] <<= (BitsPerWord - BitsPerShort);
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#endif
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SET_LOCALS_INT(*(jchar *) result, 0);
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break;
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case T_BYTE:
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#ifndef VM_LITTLE_ENDIAN
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result[0] <<= (BitsPerWord - BitsPerByte);
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#endif
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SET_LOCALS_INT(*(jbyte *) result, 0);
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break;
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case T_SHORT:
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#ifndef VM_LITTLE_ENDIAN
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result[0] <<= (BitsPerWord - BitsPerShort);
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#endif
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SET_LOCALS_INT(*(jshort *) result, 0);
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break;
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case T_INT:
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#ifndef VM_LITTLE_ENDIAN
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result[0] <<= (BitsPerWord - BitsPerInt);
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#endif
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SET_LOCALS_INT(*(jint *) result, 0);
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break;
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case T_LONG:
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SET_LOCALS_LONG(*(jlong *) result, 0);
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break;
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case T_FLOAT:
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SET_LOCALS_FLOAT(*(jfloat *) result, 0);
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break;
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case T_DOUBLE:
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SET_LOCALS_DOUBLE(*(jdouble *) result, 0);
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break;
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case T_OBJECT:
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case T_ARRAY:
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SET_LOCALS_OBJECT(istate->oop_temp(), 0);
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break;
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default:
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ShouldNotReachHere();
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}
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}
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// No deoptimized frames on the stack
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return 0;
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}
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int CppInterpreter::accessor_entry(Method* method, intptr_t UNUSED, TRAPS) {
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JavaThread *thread = (JavaThread *) THREAD;
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ZeroStack *stack = thread->zero_stack();
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intptr_t *locals = stack->sp();
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// Drop into the slow path if we need a safepoint check
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if (SafepointSynchronize::do_call_back()) {
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return normal_entry(method, 0, THREAD);
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}
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// Load the object pointer and drop into the slow path
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// if we have a NullPointerException
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oop object = LOCALS_OBJECT(0);
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if (object == NULL) {
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return normal_entry(method, 0, THREAD);
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}
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// Read the field index from the bytecode, which looks like this:
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// 0: aload_0
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// 1: getfield
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// 2: index
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// 3: index
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// 4: ireturn/areturn/freturn/lreturn/dreturn
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// NB this is not raw bytecode: index is in machine order
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u1 *code = method->code_base();
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assert(code[0] == Bytecodes::_aload_0 &&
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code[1] == Bytecodes::_getfield &&
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(code[4] == Bytecodes::_ireturn ||
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code[4] == Bytecodes::_freturn ||
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code[4] == Bytecodes::_lreturn ||
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code[4] == Bytecodes::_dreturn ||
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code[4] == Bytecodes::_areturn), "should do");
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u2 index = Bytes::get_native_u2(&code[2]);
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// Get the entry from the constant pool cache, and drop into
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// the slow path if it has not been resolved
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ConstantPoolCache* cache = method->constants()->cache();
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ConstantPoolCacheEntry* entry = cache->entry_at(index);
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if (!entry->is_resolved(Bytecodes::_getfield)) {
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return normal_entry(method, 0, THREAD);
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}
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// Get the result and push it onto the stack
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switch (entry->flag_state()) {
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case ltos:
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case dtos:
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stack->overflow_check(1, CHECK_0);
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stack->alloc(wordSize);
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break;
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}
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if (entry->is_volatile()) {
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switch (entry->flag_state()) {
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case ctos:
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SET_LOCALS_INT(object->char_field_acquire(entry->f2_as_index()), 0);
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break;
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case btos:
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case ztos:
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SET_LOCALS_INT(object->byte_field_acquire(entry->f2_as_index()), 0);
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break;
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case stos:
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SET_LOCALS_INT(object->short_field_acquire(entry->f2_as_index()), 0);
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break;
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case itos:
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SET_LOCALS_INT(object->int_field_acquire(entry->f2_as_index()), 0);
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break;
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case ltos:
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SET_LOCALS_LONG(object->long_field_acquire(entry->f2_as_index()), 0);
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break;
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case ftos:
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SET_LOCALS_FLOAT(object->float_field_acquire(entry->f2_as_index()), 0);
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break;
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case dtos:
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SET_LOCALS_DOUBLE(object->double_field_acquire(entry->f2_as_index()), 0);
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break;
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case atos:
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SET_LOCALS_OBJECT(object->obj_field_acquire(entry->f2_as_index()), 0);
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break;
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default:
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ShouldNotReachHere();
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}
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}
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else {
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switch (entry->flag_state()) {
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case ctos:
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SET_LOCALS_INT(object->char_field(entry->f2_as_index()), 0);
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break;
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case btos:
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case ztos:
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SET_LOCALS_INT(object->byte_field(entry->f2_as_index()), 0);
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break;
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case stos:
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SET_LOCALS_INT(object->short_field(entry->f2_as_index()), 0);
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break;
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case itos:
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SET_LOCALS_INT(object->int_field(entry->f2_as_index()), 0);
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break;
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case ltos:
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SET_LOCALS_LONG(object->long_field(entry->f2_as_index()), 0);
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break;
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case ftos:
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SET_LOCALS_FLOAT(object->float_field(entry->f2_as_index()), 0);
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break;
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case dtos:
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SET_LOCALS_DOUBLE(object->double_field(entry->f2_as_index()), 0);
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break;
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case atos:
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SET_LOCALS_OBJECT(object->obj_field(entry->f2_as_index()), 0);
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break;
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default:
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ShouldNotReachHere();
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}
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}
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// No deoptimized frames on the stack
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return 0;
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}
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int CppInterpreter::empty_entry(Method* method, intptr_t UNUSED, TRAPS) {
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JavaThread *thread = (JavaThread *) THREAD;
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ZeroStack *stack = thread->zero_stack();
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// Drop into the slow path if we need a safepoint check
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if (SafepointSynchronize::do_call_back()) {
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return normal_entry(method, 0, THREAD);
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}
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// Pop our parameters
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stack->set_sp(stack->sp() + method->size_of_parameters());
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// No deoptimized frames on the stack
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return 0;
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}
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// The new slots will be inserted before slot insert_before.
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// Slots < insert_before will have the same slot number after the insert.
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// Slots >= insert_before will become old_slot + num_slots.
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void CppInterpreter::insert_vmslots(int insert_before, int num_slots, TRAPS) {
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JavaThread *thread = (JavaThread *) THREAD;
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ZeroStack *stack = thread->zero_stack();
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// Allocate the space
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stack->overflow_check(num_slots, CHECK);
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stack->alloc(num_slots * wordSize);
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intptr_t *vmslots = stack->sp();
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// Shuffle everything up
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for (int i = 0; i < insert_before; i++)
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SET_VMSLOTS_SLOT(VMSLOTS_SLOT(i + num_slots), i);
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}
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void CppInterpreter::remove_vmslots(int first_slot, int num_slots, TRAPS) {
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JavaThread *thread = (JavaThread *) THREAD;
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ZeroStack *stack = thread->zero_stack();
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intptr_t *vmslots = stack->sp();
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// Move everything down
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for (int i = first_slot - 1; i >= 0; i--)
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SET_VMSLOTS_SLOT(VMSLOTS_SLOT(i), i + num_slots);
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// Deallocate the space
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stack->set_sp(stack->sp() + num_slots);
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}
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BasicType CppInterpreter::result_type_of_handle(oop method_handle) {
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oop method_type = java_lang_invoke_MethodHandle::type(method_handle);
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oop return_type = java_lang_invoke_MethodType::rtype(method_type);
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return java_lang_Class::as_BasicType(return_type, (Klass* *) NULL);
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}
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intptr_t* CppInterpreter::calculate_unwind_sp(ZeroStack* stack,
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oop method_handle) {
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oop method_type = java_lang_invoke_MethodHandle::type(method_handle);
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int argument_slots = java_lang_invoke_MethodType::ptype_slot_count(method_type);
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return stack->sp() + argument_slots;
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}
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IRT_ENTRY(void, CppInterpreter::throw_exception(JavaThread* thread,
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Symbol* name,
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char* message))
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THROW_MSG(name, message);
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IRT_END
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InterpreterFrame *InterpreterFrame::build(Method* const method, TRAPS) {
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JavaThread *thread = (JavaThread *) THREAD;
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ZeroStack *stack = thread->zero_stack();
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// Calculate the size of the frame we'll build, including
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// any adjustments to the caller's frame that we'll make.
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int extra_locals = 0;
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int monitor_words = 0;
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int stack_words = 0;
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if (!method->is_native()) {
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extra_locals = method->max_locals() - method->size_of_parameters();
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stack_words = method->max_stack();
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}
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if (method->is_synchronized()) {
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monitor_words = frame::interpreter_frame_monitor_size();
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}
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stack->overflow_check(
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extra_locals + header_words + monitor_words + stack_words, CHECK_NULL);
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// Adjust the caller's stack frame to accomodate any additional
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// local variables we have contiguously with our parameters.
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for (int i = 0; i < extra_locals; i++)
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stack->push(0);
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intptr_t *locals;
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if (method->is_native())
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locals = stack->sp() + (method->size_of_parameters() - 1);
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else
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locals = stack->sp() + (method->max_locals() - 1);
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stack->push(0); // next_frame, filled in later
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intptr_t *fp = stack->sp();
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assert(fp - stack->sp() == next_frame_off, "should be");
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stack->push(INTERPRETER_FRAME);
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assert(fp - stack->sp() == frame_type_off, "should be");
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interpreterState istate =
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(interpreterState) stack->alloc(sizeof(BytecodeInterpreter));
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assert(fp - stack->sp() == istate_off, "should be");
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istate->set_locals(locals);
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istate->set_method(method);
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istate->set_mirror(method->method_holder()->java_mirror());
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istate->set_self_link(istate);
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istate->set_prev_link(NULL);
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istate->set_thread(thread);
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istate->set_bcp(method->is_native() ? NULL : method->code_base());
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istate->set_constants(method->constants()->cache());
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istate->set_msg(BytecodeInterpreter::method_entry);
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istate->set_oop_temp(NULL);
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istate->set_mdx(NULL);
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istate->set_callee(NULL);
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istate->set_monitor_base((BasicObjectLock *) stack->sp());
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if (method->is_synchronized()) {
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BasicObjectLock *monitor =
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(BasicObjectLock *) stack->alloc(monitor_words * wordSize);
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oop object;
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if (method->is_static())
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object = method->constants()->pool_holder()->java_mirror();
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else
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object = (oop) (void*)locals[0];
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monitor->set_obj(object);
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}
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istate->set_stack_base(stack->sp());
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istate->set_stack(stack->sp() - 1);
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if (stack_words)
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stack->alloc(stack_words * wordSize);
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istate->set_stack_limit(stack->sp() - 1);
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return (InterpreterFrame *) fp;
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}
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InterpreterFrame *InterpreterFrame::build(int size, TRAPS) {
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ZeroStack *stack = ((JavaThread *) THREAD)->zero_stack();
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int size_in_words = size >> LogBytesPerWord;
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assert(size_in_words * wordSize == size, "unaligned");
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assert(size_in_words >= header_words, "too small");
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stack->overflow_check(size_in_words, CHECK_NULL);
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stack->push(0); // next_frame, filled in later
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intptr_t *fp = stack->sp();
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assert(fp - stack->sp() == next_frame_off, "should be");
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stack->push(INTERPRETER_FRAME);
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assert(fp - stack->sp() == frame_type_off, "should be");
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interpreterState istate =
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(interpreterState) stack->alloc(sizeof(BytecodeInterpreter));
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assert(fp - stack->sp() == istate_off, "should be");
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istate->set_self_link(NULL); // mark invalid
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stack->alloc((size_in_words - header_words) * wordSize);
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return (InterpreterFrame *) fp;
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}
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address CppInterpreter::return_entry(TosState state, int length, Bytecodes::Code code) {
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ShouldNotCallThis();
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return NULL;
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}
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address CppInterpreter::deopt_entry(TosState state, int length) {
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return NULL;
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}
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// Helper for figuring out if frames are interpreter frames
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bool CppInterpreter::contains(address pc) {
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return false; // make frame::print_value_on work
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}
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#endif // CC_INTERP
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