5a41427b37
Reviewed-by: kvn, jrose, kevinw, brutisso, twisti, jmasa
677 lines
26 KiB
C++
677 lines
26 KiB
C++
/*
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* Copyright (c) 1997, 2012, Oracle and/or its affiliates. All rights reserved.
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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 "classfile/systemDictionary.hpp"
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#include "code/codeCache.hpp"
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#include "code/compiledIC.hpp"
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#include "code/icBuffer.hpp"
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#include "code/nmethod.hpp"
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#include "code/vtableStubs.hpp"
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#include "interpreter/interpreter.hpp"
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#include "interpreter/linkResolver.hpp"
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#include "memory/oopFactory.hpp"
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#include "oops/methodOop.hpp"
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#include "oops/oop.inline.hpp"
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#include "oops/symbol.hpp"
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#include "runtime/icache.hpp"
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#include "runtime/sharedRuntime.hpp"
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#include "runtime/stubRoutines.hpp"
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#include "utilities/events.hpp"
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// Every time a compiled IC is changed or its type is being accessed,
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// either the CompiledIC_lock must be set or we must be at a safe point.
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//-----------------------------------------------------------------------------
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// Low-level access to an inline cache. Private, since they might not be
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// MT-safe to use.
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void CompiledIC::set_cached_oop(oop cache) {
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assert (CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "");
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assert (!is_optimized(), "an optimized virtual call does not have a cached oop");
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assert (cache == NULL || cache != badOop, "invalid oop");
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if (TraceCompiledIC) {
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tty->print(" ");
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print_compiled_ic();
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tty->print_cr(" changing oop to " INTPTR_FORMAT, (address)cache);
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}
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if (cache == NULL) cache = (oop)Universe::non_oop_word();
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*_oop_addr = cache;
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// fix up the relocations
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RelocIterator iter = _oops;
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while (iter.next()) {
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if (iter.type() == relocInfo::oop_type) {
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oop_Relocation* r = iter.oop_reloc();
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if (r->oop_addr() == _oop_addr)
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r->fix_oop_relocation();
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}
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}
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return;
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}
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oop CompiledIC::cached_oop() const {
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assert (CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "");
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assert (!is_optimized(), "an optimized virtual call does not have a cached oop");
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if (!is_in_transition_state()) {
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oop data = *_oop_addr;
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// If we let the oop value here be initialized to zero...
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assert(data != NULL || Universe::non_oop_word() == NULL,
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"no raw nulls in CompiledIC oops, because of patching races");
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return (data == (oop)Universe::non_oop_word()) ? (oop)NULL : data;
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} else {
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return InlineCacheBuffer::cached_oop_for((CompiledIC *)this);
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}
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}
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void CompiledIC::set_ic_destination(address entry_point) {
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assert(entry_point != NULL, "must set legal entry point");
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assert(CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "");
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if (TraceCompiledIC) {
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tty->print(" ");
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print_compiled_ic();
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tty->print_cr(" changing destination to " INTPTR_FORMAT, entry_point);
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}
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MutexLockerEx pl(Patching_lock, Mutex::_no_safepoint_check_flag);
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#ifdef ASSERT
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CodeBlob* cb = CodeCache::find_blob_unsafe(_ic_call);
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assert(cb != NULL && cb->is_nmethod(), "must be nmethod");
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#endif
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_ic_call->set_destination_mt_safe(entry_point);
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}
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address CompiledIC::ic_destination() const {
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assert (CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "");
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if (!is_in_transition_state()) {
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return _ic_call->destination();
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} else {
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return InlineCacheBuffer::ic_destination_for((CompiledIC *)this);
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}
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}
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bool CompiledIC::is_in_transition_state() const {
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assert (CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "");
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return InlineCacheBuffer::contains(_ic_call->destination());
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}
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// Returns native address of 'call' instruction in inline-cache. Used by
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// the InlineCacheBuffer when it needs to find the stub.
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address CompiledIC::stub_address() const {
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assert(is_in_transition_state(), "should only be called when we are in a transition state");
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return _ic_call->destination();
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}
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//-----------------------------------------------------------------------------
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// High-level access to an inline cache. Guaranteed to be MT-safe.
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void CompiledIC::set_to_megamorphic(CallInfo* call_info, Bytecodes::Code bytecode, TRAPS) {
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methodHandle method = call_info->selected_method();
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bool is_invoke_interface = (bytecode == Bytecodes::_invokeinterface && !call_info->has_vtable_index());
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assert(CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "");
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assert(method->is_oop(), "cannot be NULL and must be oop");
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assert(!is_optimized(), "cannot set an optimized virtual call to megamorphic");
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assert(is_call_to_compiled() || is_call_to_interpreted(), "going directly to megamorphic?");
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address entry;
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if (is_invoke_interface) {
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int index = klassItable::compute_itable_index(call_info->resolved_method()());
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entry = VtableStubs::create_stub(false, index, method());
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assert(entry != NULL, "entry not computed");
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klassOop k = call_info->resolved_method()->method_holder();
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assert(Klass::cast(k)->is_interface(), "sanity check");
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InlineCacheBuffer::create_transition_stub(this, k, entry);
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} else {
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// Can be different than method->vtable_index(), due to package-private etc.
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int vtable_index = call_info->vtable_index();
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entry = VtableStubs::create_stub(true, vtable_index, method());
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InlineCacheBuffer::create_transition_stub(this, method(), entry);
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}
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if (TraceICs) {
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ResourceMark rm;
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tty->print_cr ("IC@" INTPTR_FORMAT ": to megamorphic %s entry: " INTPTR_FORMAT,
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instruction_address(), method->print_value_string(), entry);
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}
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// We can't check this anymore. With lazy deopt we could have already
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// cleaned this IC entry before we even return. This is possible if
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// we ran out of space in the inline cache buffer trying to do the
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// set_next and we safepointed to free up space. This is a benign
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// race because the IC entry was complete when we safepointed so
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// cleaning it immediately is harmless.
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// assert(is_megamorphic(), "sanity check");
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}
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// true if destination is megamorphic stub
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bool CompiledIC::is_megamorphic() const {
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assert(CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "");
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assert(!is_optimized(), "an optimized call cannot be megamorphic");
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// Cannot rely on cached_oop. It is either an interface or a method.
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return VtableStubs::is_entry_point(ic_destination());
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}
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bool CompiledIC::is_call_to_compiled() const {
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assert (CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "");
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// Use unsafe, since an inline cache might point to a zombie method. However, the zombie
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// method is guaranteed to still exist, since we only remove methods after all inline caches
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// has been cleaned up
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CodeBlob* cb = CodeCache::find_blob_unsafe(ic_destination());
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bool is_monomorphic = (cb != NULL && cb->is_nmethod());
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// Check that the cached_oop is a klass for non-optimized monomorphic calls
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// This assertion is invalid for compiler1: a call that does not look optimized (no static stub) can be used
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// for calling directly to vep without using the inline cache (i.e., cached_oop == NULL)
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#ifdef ASSERT
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#ifdef TIERED
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CodeBlob* caller = CodeCache::find_blob_unsafe(instruction_address());
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bool is_c1_method = caller->is_compiled_by_c1();
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#else
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#ifdef COMPILER1
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bool is_c1_method = true;
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#else
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bool is_c1_method = false;
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#endif // COMPILER1
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#endif // TIERED
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assert( is_c1_method ||
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!is_monomorphic ||
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is_optimized() ||
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(cached_oop() != NULL && cached_oop()->is_klass()), "sanity check");
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#endif // ASSERT
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return is_monomorphic;
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}
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bool CompiledIC::is_call_to_interpreted() const {
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assert (CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "");
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// Call to interpreter if destination is either calling to a stub (if it
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// is optimized), or calling to an I2C blob
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bool is_call_to_interpreted = false;
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if (!is_optimized()) {
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// must use unsafe because the destination can be a zombie (and we're cleaning)
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// and the print_compiled_ic code wants to know if site (in the non-zombie)
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// is to the interpreter.
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CodeBlob* cb = CodeCache::find_blob_unsafe(ic_destination());
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is_call_to_interpreted = (cb != NULL && cb->is_adapter_blob());
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assert(!is_call_to_interpreted || (cached_oop() != NULL && cached_oop()->is_compiledICHolder()), "sanity check");
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} else {
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// Check if we are calling into our own codeblob (i.e., to a stub)
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CodeBlob* cb = CodeCache::find_blob(_ic_call->instruction_address());
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address dest = ic_destination();
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#ifdef ASSERT
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{
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CodeBlob* db = CodeCache::find_blob_unsafe(dest);
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assert(!db->is_adapter_blob(), "must use stub!");
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}
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#endif /* ASSERT */
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is_call_to_interpreted = cb->contains(dest);
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}
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return is_call_to_interpreted;
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}
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void CompiledIC::set_to_clean() {
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assert(SafepointSynchronize::is_at_safepoint() || CompiledIC_lock->is_locked() , "MT-unsafe call");
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if (TraceInlineCacheClearing || TraceICs) {
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tty->print_cr("IC@" INTPTR_FORMAT ": set to clean", instruction_address());
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print();
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}
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address entry;
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if (is_optimized()) {
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entry = SharedRuntime::get_resolve_opt_virtual_call_stub();
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} else {
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entry = SharedRuntime::get_resolve_virtual_call_stub();
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}
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// A zombie transition will always be safe, since the oop has already been set to NULL, so
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// we only need to patch the destination
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bool safe_transition = is_optimized() || SafepointSynchronize::is_at_safepoint();
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if (safe_transition) {
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if (!is_optimized()) set_cached_oop(NULL);
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// Kill any leftover stub we might have too
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if (is_in_transition_state()) {
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ICStub* old_stub = ICStub_from_destination_address(stub_address());
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old_stub->clear();
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}
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set_ic_destination(entry);
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} else {
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// Unsafe transition - create stub.
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InlineCacheBuffer::create_transition_stub(this, NULL, entry);
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}
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// We can't check this anymore. With lazy deopt we could have already
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// cleaned this IC entry before we even return. This is possible if
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// we ran out of space in the inline cache buffer trying to do the
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// set_next and we safepointed to free up space. This is a benign
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// race because the IC entry was complete when we safepointed so
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// cleaning it immediately is harmless.
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// assert(is_clean(), "sanity check");
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}
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bool CompiledIC::is_clean() const {
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assert (CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "");
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bool is_clean = false;
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address dest = ic_destination();
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is_clean = dest == SharedRuntime::get_resolve_opt_virtual_call_stub() ||
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dest == SharedRuntime::get_resolve_virtual_call_stub();
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assert(!is_clean || is_optimized() || cached_oop() == NULL, "sanity check");
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return is_clean;
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}
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void CompiledIC::set_to_monomorphic(const CompiledICInfo& info) {
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assert (CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "");
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// Updating a cache to the wrong entry can cause bugs that are very hard
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// to track down - if cache entry gets invalid - we just clean it. In
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// this way it is always the same code path that is responsible for
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// updating and resolving an inline cache
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//
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// The above is no longer true. SharedRuntime::fixup_callers_callsite will change optimized
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// callsites. In addition ic_miss code will update a site to monomorphic if it determines
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// that an monomorphic call to the interpreter can now be monomorphic to compiled code.
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//
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// In both of these cases the only thing being modifed is the jump/call target and these
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// transitions are mt_safe
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Thread *thread = Thread::current();
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if (info._to_interpreter) {
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// Call to interpreter
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if (info.is_optimized() && is_optimized()) {
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assert(is_clean(), "unsafe IC path");
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MutexLockerEx pl(Patching_lock, Mutex::_no_safepoint_check_flag);
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// the call analysis (callee structure) specifies that the call is optimized
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// (either because of CHA or the static target is final)
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// At code generation time, this call has been emitted as static call
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// Call via stub
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assert(info.cached_oop().not_null() && info.cached_oop()->is_method(), "sanity check");
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CompiledStaticCall* csc = compiledStaticCall_at(instruction_address());
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methodHandle method (thread, (methodOop)info.cached_oop()());
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csc->set_to_interpreted(method, info.entry());
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if (TraceICs) {
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ResourceMark rm(thread);
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tty->print_cr ("IC@" INTPTR_FORMAT ": monomorphic to interpreter: %s",
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instruction_address(),
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method->print_value_string());
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}
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} else {
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// Call via method-klass-holder
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assert(info.cached_oop().not_null(), "must be set");
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InlineCacheBuffer::create_transition_stub(this, info.cached_oop()(), info.entry());
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if (TraceICs) {
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ResourceMark rm(thread);
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tty->print_cr ("IC@" INTPTR_FORMAT ": monomorphic to interpreter via mkh", instruction_address());
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}
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}
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} else {
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// Call to compiled code
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bool static_bound = info.is_optimized() || (info.cached_oop().is_null());
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#ifdef ASSERT
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CodeBlob* cb = CodeCache::find_blob_unsafe(info.entry());
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assert (cb->is_nmethod(), "must be compiled!");
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#endif /* ASSERT */
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// This is MT safe if we come from a clean-cache and go through a
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// non-verified entry point
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bool safe = SafepointSynchronize::is_at_safepoint() ||
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(!is_in_transition_state() && (info.is_optimized() || static_bound || is_clean()));
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if (!safe) {
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InlineCacheBuffer::create_transition_stub(this, info.cached_oop()(), info.entry());
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} else {
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set_ic_destination(info.entry());
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if (!is_optimized()) set_cached_oop(info.cached_oop()());
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}
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if (TraceICs) {
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ResourceMark rm(thread);
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assert(info.cached_oop() == NULL || info.cached_oop()()->is_klass(), "must be");
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tty->print_cr ("IC@" INTPTR_FORMAT ": monomorphic to compiled (rcvr klass) %s: %s",
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instruction_address(),
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((klassOop)info.cached_oop()())->print_value_string(),
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(safe) ? "" : "via stub");
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}
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}
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// We can't check this anymore. With lazy deopt we could have already
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// cleaned this IC entry before we even return. This is possible if
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// we ran out of space in the inline cache buffer trying to do the
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// set_next and we safepointed to free up space. This is a benign
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// race because the IC entry was complete when we safepointed so
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// cleaning it immediately is harmless.
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// assert(is_call_to_compiled() || is_call_to_interpreted(), "sanity check");
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}
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// is_optimized: Compiler has generated an optimized call (i.e., no inline
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// cache) static_bound: The call can be static bound (i.e, no need to use
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// inline cache)
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void CompiledIC::compute_monomorphic_entry(methodHandle method,
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KlassHandle receiver_klass,
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bool is_optimized,
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bool static_bound,
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CompiledICInfo& info,
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TRAPS) {
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info._is_optimized = is_optimized;
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nmethod* method_code = method->code();
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address entry = NULL;
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if (method_code != NULL) {
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// Call to compiled code
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if (static_bound || is_optimized) {
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entry = method_code->verified_entry_point();
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} else {
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entry = method_code->entry_point();
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}
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}
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if (entry != NULL) {
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// Call to compiled code
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info._entry = entry;
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if (static_bound || is_optimized) {
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info._cached_oop = Handle(THREAD, (oop)NULL);
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} else {
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info._cached_oop = receiver_klass;
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}
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info._to_interpreter = false;
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} else {
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// Note: the following problem exists with Compiler1:
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// - at compile time we may or may not know if the destination is final
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// - if we know that the destination is final, we will emit an optimized
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// virtual call (no inline cache), and need a methodOop to make a call
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// to the interpreter
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// - if we do not know if the destination is final, we emit a standard
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// virtual call, and use CompiledICHolder to call interpreted code
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// (no static call stub has been generated)
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// However in that case we will now notice it is static_bound
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// and convert the call into what looks to be an optimized
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// virtual call. This causes problems in verifying the IC because
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// it look vanilla but is optimized. Code in is_call_to_interpreted
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// is aware of this and weakens its asserts.
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info._to_interpreter = true;
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// static_bound should imply is_optimized -- otherwise we have a
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// performance bug (statically-bindable method is called via
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// dynamically-dispatched call note: the reverse implication isn't
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// necessarily true -- the call may have been optimized based on compiler
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// analysis (static_bound is only based on "final" etc.)
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#ifdef COMPILER2
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#ifdef TIERED
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#if defined(ASSERT)
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// can't check the assert because we don't have the CompiledIC with which to
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// find the address if the call instruction.
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//
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// CodeBlob* cb = find_blob_unsafe(instruction_address());
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// assert(cb->is_compiled_by_c1() || !static_bound || is_optimized, "static_bound should imply is_optimized");
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#endif // ASSERT
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#else
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assert(!static_bound || is_optimized, "static_bound should imply is_optimized");
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#endif // TIERED
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#endif // COMPILER2
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if (is_optimized) {
|
|
// Use stub entry
|
|
info._entry = method()->get_c2i_entry();
|
|
info._cached_oop = method;
|
|
} else {
|
|
// Use mkh entry
|
|
oop holder = oopFactory::new_compiledICHolder(method, receiver_klass, CHECK);
|
|
info._cached_oop = Handle(THREAD, holder);
|
|
info._entry = method()->get_c2i_unverified_entry();
|
|
}
|
|
}
|
|
}
|
|
|
|
|
|
inline static RelocIterator parse_ic(nmethod* nm, address ic_call, oop* &_oop_addr, bool *is_optimized) {
|
|
address first_oop = NULL;
|
|
// Mergers please note: Sun SC5.x CC insists on an lvalue for a reference parameter.
|
|
nmethod* tmp_nm = nm;
|
|
return virtual_call_Relocation::parse_ic(tmp_nm, ic_call, first_oop, _oop_addr, is_optimized);
|
|
}
|
|
|
|
CompiledIC::CompiledIC(NativeCall* ic_call)
|
|
: _ic_call(ic_call),
|
|
_oops(parse_ic(NULL, ic_call->instruction_address(), _oop_addr, &_is_optimized))
|
|
{
|
|
}
|
|
|
|
|
|
CompiledIC::CompiledIC(Relocation* ic_reloc)
|
|
: _ic_call(nativeCall_at(ic_reloc->addr())),
|
|
_oops(parse_ic(ic_reloc->code(), ic_reloc->addr(), _oop_addr, &_is_optimized))
|
|
{
|
|
assert(ic_reloc->type() == relocInfo::virtual_call_type ||
|
|
ic_reloc->type() == relocInfo::opt_virtual_call_type, "wrong reloc. info");
|
|
}
|
|
|
|
|
|
// ----------------------------------------------------------------------------
|
|
|
|
void CompiledStaticCall::set_to_clean() {
|
|
assert (CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "mt unsafe call");
|
|
// Reset call site
|
|
MutexLockerEx pl(Patching_lock, Mutex::_no_safepoint_check_flag);
|
|
#ifdef ASSERT
|
|
CodeBlob* cb = CodeCache::find_blob_unsafe(this);
|
|
assert(cb != NULL && cb->is_nmethod(), "must be nmethod");
|
|
#endif
|
|
set_destination_mt_safe(SharedRuntime::get_resolve_static_call_stub());
|
|
|
|
// Do not reset stub here: It is too expensive to call find_stub.
|
|
// Instead, rely on caller (nmethod::clear_inline_caches) to clear
|
|
// both the call and its stub.
|
|
}
|
|
|
|
|
|
bool CompiledStaticCall::is_clean() const {
|
|
return destination() == SharedRuntime::get_resolve_static_call_stub();
|
|
}
|
|
|
|
bool CompiledStaticCall::is_call_to_compiled() const {
|
|
return CodeCache::contains(destination());
|
|
}
|
|
|
|
|
|
bool CompiledStaticCall::is_call_to_interpreted() const {
|
|
// It is a call to interpreted, if it calls to a stub. Hence, the destination
|
|
// must be in the stub part of the nmethod that contains the call
|
|
nmethod* nm = CodeCache::find_nmethod(instruction_address());
|
|
return nm->stub_contains(destination());
|
|
}
|
|
|
|
|
|
void CompiledStaticCall::set_to_interpreted(methodHandle callee, address entry) {
|
|
address stub=find_stub();
|
|
assert(stub!=NULL, "stub not found");
|
|
|
|
if (TraceICs) {
|
|
ResourceMark rm;
|
|
tty->print_cr("CompiledStaticCall@" INTPTR_FORMAT ": set_to_interpreted %s",
|
|
instruction_address(),
|
|
callee->name_and_sig_as_C_string());
|
|
}
|
|
|
|
NativeMovConstReg* method_holder = nativeMovConstReg_at(stub); // creation also verifies the object
|
|
NativeJump* jump = nativeJump_at(method_holder->next_instruction_address());
|
|
|
|
assert(method_holder->data() == 0 || method_holder->data() == (intptr_t)callee(), "a) MT-unsafe modification of inline cache");
|
|
assert(jump->jump_destination() == (address)-1 || jump->jump_destination() == entry, "b) MT-unsafe modification of inline cache");
|
|
|
|
// Update stub
|
|
method_holder->set_data((intptr_t)callee());
|
|
jump->set_jump_destination(entry);
|
|
|
|
// Update jump to call
|
|
set_destination_mt_safe(stub);
|
|
}
|
|
|
|
|
|
void CompiledStaticCall::set(const StaticCallInfo& info) {
|
|
assert (CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "mt unsafe call");
|
|
MutexLockerEx pl(Patching_lock, Mutex::_no_safepoint_check_flag);
|
|
// Updating a cache to the wrong entry can cause bugs that are very hard
|
|
// to track down - if cache entry gets invalid - we just clean it. In
|
|
// this way it is always the same code path that is responsible for
|
|
// updating and resolving an inline cache
|
|
assert(is_clean(), "do not update a call entry - use clean");
|
|
|
|
if (info._to_interpreter) {
|
|
// Call to interpreted code
|
|
set_to_interpreted(info.callee(), info.entry());
|
|
} else {
|
|
if (TraceICs) {
|
|
ResourceMark rm;
|
|
tty->print_cr("CompiledStaticCall@" INTPTR_FORMAT ": set_to_compiled " INTPTR_FORMAT,
|
|
instruction_address(),
|
|
info.entry());
|
|
}
|
|
// Call to compiled code
|
|
assert (CodeCache::contains(info.entry()), "wrong entry point");
|
|
set_destination_mt_safe(info.entry());
|
|
}
|
|
}
|
|
|
|
|
|
// Compute settings for a CompiledStaticCall. Since we might have to set
|
|
// the stub when calling to the interpreter, we need to return arguments.
|
|
void CompiledStaticCall::compute_entry(methodHandle m, StaticCallInfo& info) {
|
|
nmethod* m_code = m->code();
|
|
info._callee = m;
|
|
if (m_code != NULL) {
|
|
info._to_interpreter = false;
|
|
info._entry = m_code->verified_entry_point();
|
|
} else {
|
|
// Callee is interpreted code. In any case entering the interpreter
|
|
// puts a converter-frame on the stack to save arguments.
|
|
info._to_interpreter = true;
|
|
info._entry = m()->get_c2i_entry();
|
|
}
|
|
}
|
|
|
|
|
|
void CompiledStaticCall::set_stub_to_clean(static_stub_Relocation* static_stub) {
|
|
assert (CompiledIC_lock->is_locked() || SafepointSynchronize::is_at_safepoint(), "mt unsafe call");
|
|
// Reset stub
|
|
address stub = static_stub->addr();
|
|
assert(stub!=NULL, "stub not found");
|
|
NativeMovConstReg* method_holder = nativeMovConstReg_at(stub); // creation also verifies the object
|
|
NativeJump* jump = nativeJump_at(method_holder->next_instruction_address());
|
|
method_holder->set_data(0);
|
|
jump->set_jump_destination((address)-1);
|
|
}
|
|
|
|
|
|
address CompiledStaticCall::find_stub() {
|
|
// Find reloc. information containing this call-site
|
|
RelocIterator iter((nmethod*)NULL, instruction_address());
|
|
while (iter.next()) {
|
|
if (iter.addr() == instruction_address()) {
|
|
switch(iter.type()) {
|
|
case relocInfo::static_call_type:
|
|
return iter.static_call_reloc()->static_stub();
|
|
// We check here for opt_virtual_call_type, since we reuse the code
|
|
// from the CompiledIC implementation
|
|
case relocInfo::opt_virtual_call_type:
|
|
return iter.opt_virtual_call_reloc()->static_stub();
|
|
case relocInfo::poll_type:
|
|
case relocInfo::poll_return_type: // A safepoint can't overlap a call.
|
|
default:
|
|
ShouldNotReachHere();
|
|
}
|
|
}
|
|
}
|
|
return NULL;
|
|
}
|
|
|
|
|
|
//-----------------------------------------------------------------------------
|
|
// Non-product mode code
|
|
#ifndef PRODUCT
|
|
|
|
void CompiledIC::verify() {
|
|
// make sure code pattern is actually a call imm32 instruction
|
|
_ic_call->verify();
|
|
if (os::is_MP()) {
|
|
_ic_call->verify_alignment();
|
|
}
|
|
assert(is_clean() || is_call_to_compiled() || is_call_to_interpreted()
|
|
|| is_optimized() || is_megamorphic(), "sanity check");
|
|
}
|
|
|
|
|
|
void CompiledIC::print() {
|
|
print_compiled_ic();
|
|
tty->cr();
|
|
}
|
|
|
|
|
|
void CompiledIC::print_compiled_ic() {
|
|
tty->print("Inline cache at " INTPTR_FORMAT ", calling %s " INTPTR_FORMAT,
|
|
instruction_address(), is_call_to_interpreted() ? "interpreted " : "", ic_destination());
|
|
}
|
|
|
|
|
|
void CompiledStaticCall::print() {
|
|
tty->print("static call at " INTPTR_FORMAT " -> ", instruction_address());
|
|
if (is_clean()) {
|
|
tty->print("clean");
|
|
} else if (is_call_to_compiled()) {
|
|
tty->print("compiled");
|
|
} else if (is_call_to_interpreted()) {
|
|
tty->print("interpreted");
|
|
}
|
|
tty->cr();
|
|
}
|
|
|
|
void CompiledStaticCall::verify() {
|
|
// Verify call
|
|
NativeCall::verify();
|
|
if (os::is_MP()) {
|
|
verify_alignment();
|
|
}
|
|
|
|
// Verify stub
|
|
address stub = find_stub();
|
|
assert(stub != NULL, "no stub found for static call");
|
|
NativeMovConstReg* method_holder = nativeMovConstReg_at(stub); // creation also verifies the object
|
|
NativeJump* jump = nativeJump_at(method_holder->next_instruction_address());
|
|
|
|
// Verify state
|
|
assert(is_clean() || is_call_to_compiled() || is_call_to_interpreted(), "sanity check");
|
|
}
|
|
|
|
#endif
|