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https://github.com/openjdk/jdk.git
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624 lines
21 KiB
C++
624 lines
21 KiB
C++
/*
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* Copyright (c) 2008, 2025, 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 "asm/assembler.inline.hpp"
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#include "classfile/vmSymbols.hpp"
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#include "code/vtableStubs.hpp"
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#include "interpreter/interpreter.hpp"
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#include "jvm.h"
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#include "memory/allocation.inline.hpp"
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#include "nativeInst_arm.hpp"
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#include "os_linux.hpp"
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#include "os_posix.hpp"
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#include "prims/jniFastGetField.hpp"
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#include "prims/jvm_misc.hpp"
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#include "runtime/arguments.hpp"
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#include "runtime/frame.inline.hpp"
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#include "runtime/interfaceSupport.inline.hpp"
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#include "runtime/java.hpp"
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#include "runtime/javaCalls.hpp"
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#include "runtime/mutexLocker.hpp"
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#include "runtime/osThread.hpp"
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#include "runtime/safepointMechanism.hpp"
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#include "runtime/sharedRuntime.hpp"
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#include "runtime/stubRoutines.hpp"
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#include "runtime/threads.hpp"
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#include "runtime/timer.hpp"
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#include "signals_posix.hpp"
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#include "utilities/debug.hpp"
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#include "utilities/events.hpp"
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#include "utilities/vmError.hpp"
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// put OS-includes here
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# include <sys/types.h>
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# include <sys/mman.h>
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# include <pthread.h>
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# include <signal.h>
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# include <errno.h>
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# include <dlfcn.h>
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# include <stdlib.h>
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# include <stdio.h>
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# include <unistd.h>
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# include <sys/resource.h>
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# include <pthread.h>
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# include <sys/stat.h>
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# include <sys/time.h>
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# include <sys/utsname.h>
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# include <sys/socket.h>
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# include <sys/wait.h>
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# include <pwd.h>
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# include <poll.h>
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# include <ucontext.h>
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# include <fpu_control.h>
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# include <asm/ptrace.h>
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#define SPELL_REG_SP "sp"
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#ifndef __thumb__
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enum {
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// Offset to add to frame::_fp when dealing with non-thumb C frames
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C_frame_offset = -1,
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};
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#endif
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// Don't #define SPELL_REG_FP for thumb because it is not safe to use, so this makes sure we never fetch it.
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#ifndef __thumb__
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#define SPELL_REG_FP "fp"
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#endif
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address os::current_stack_pointer() {
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register address sp __asm__ (SPELL_REG_SP);
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return sp;
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}
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char* os::non_memory_address_word() {
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// Must never look like an address returned by reserve_memory
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return (char*) -1;
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}
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#if NGREG == 16
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// These definitions are based on the observation that until
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// the certain version of GCC mcontext_t was defined as
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// a structure containing gregs[NGREG] array with 16 elements.
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// In later GCC versions mcontext_t was redefined as struct sigcontext,
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// along with NGREG constant changed to 18.
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#define arm_pc gregs[15]
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#define arm_sp gregs[13]
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#define arm_fp gregs[11]
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#define arm_r0 gregs[0]
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#endif
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#define ARM_REGS_IN_CONTEXT 16
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address os::Posix::ucontext_get_pc(const ucontext_t* uc) {
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return (address)uc->uc_mcontext.arm_pc;
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}
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void os::Posix::ucontext_set_pc(ucontext_t* uc, address pc) {
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uc->uc_mcontext.arm_pc = (uintx)pc;
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}
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intptr_t* os::Linux::ucontext_get_sp(const ucontext_t* uc) {
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return (intptr_t*)uc->uc_mcontext.arm_sp;
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}
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intptr_t* os::Linux::ucontext_get_fp(const ucontext_t* uc) {
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return (intptr_t*)uc->uc_mcontext.arm_fp;
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}
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bool is_safe_for_fp(address pc) {
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#ifdef __thumb__
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if (CodeCache::find_blob(pc) != nullptr) {
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return true;
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}
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// For thumb C frames, given an fp we have no idea how to access the frame contents.
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return false;
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#else
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// Calling os::address_is_in_vm() here leads to a dladdr call. Calling any libc
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// function during os::get_native_stack() can result in a deadlock if JFR is
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// enabled. For now, be more lenient and allow all pc's. There are other
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// frame sanity checks in shared code, and to date they have been sufficient
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// for other platforms.
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//return os::address_is_in_vm(pc);
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return true;
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#endif
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}
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address os::fetch_frame_from_context(const void* ucVoid,
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intptr_t** ret_sp, intptr_t** ret_fp) {
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address epc;
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const ucontext_t* uc = (const ucontext_t*)ucVoid;
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if (uc != nullptr) {
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epc = os::Posix::ucontext_get_pc(uc);
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if (ret_sp) *ret_sp = os::Linux::ucontext_get_sp(uc);
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if (ret_fp) {
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intptr_t* fp = os::Linux::ucontext_get_fp(uc);
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#ifndef __thumb__
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if (CodeCache::find_blob(epc) == nullptr) {
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// It's a C frame. We need to adjust the fp.
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fp += C_frame_offset;
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}
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#endif
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// Clear FP when stack walking is dangerous so that
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// the frame created will not be walked.
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// However, ensure FP is set correctly when reliable and
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// potentially necessary.
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if (!is_safe_for_fp(epc)) {
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// FP unreliable
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fp = (intptr_t *)nullptr;
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}
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*ret_fp = fp;
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}
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} else {
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epc = nullptr;
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if (ret_sp) *ret_sp = (intptr_t *)nullptr;
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if (ret_fp) *ret_fp = (intptr_t *)nullptr;
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}
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return epc;
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}
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frame os::fetch_frame_from_context(const void* ucVoid) {
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intptr_t* sp;
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intptr_t* fp;
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address epc = fetch_frame_from_context(ucVoid, &sp, &fp);
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if (!is_readable_pointer(epc)) {
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// Try to recover from calling into bad memory
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// Assume new frame has not been set up, the same as
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// compiled frame stack bang
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return fetch_compiled_frame_from_context(ucVoid);
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}
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return frame(sp, fp, epc);
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}
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frame os::fetch_compiled_frame_from_context(const void* ucVoid) {
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const ucontext_t* uc = (const ucontext_t*)ucVoid;
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// In compiled code, the stack banging is performed before LR
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// has been saved in the frame. LR is live, and SP and FP
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// belong to the caller.
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intptr_t* fp = os::Linux::ucontext_get_fp(uc);
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intptr_t* sp = os::Linux::ucontext_get_sp(uc);
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address pc = (address)(uc->uc_mcontext.arm_lr
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- NativeInstruction::instruction_size);
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return frame(sp, fp, pc);
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}
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intptr_t* os::fetch_bcp_from_context(const void* ucVoid) {
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assert(ucVoid != nullptr, "invariant");
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const ucontext_t* uc = (const ucontext_t*)ucVoid;
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assert(os::Posix::ucontext_is_interpreter(uc), "invariant");
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#if (FP_REG_NUM == 11)
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assert(Rbcp == R7, "expected FP=R11, Rbcp=R7");
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return (intptr_t*)uc->uc_mcontext.arm_r7;
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#else
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assert(Rbcp == R11, "expected FP=R7, Rbcp=R11");
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return (intptr_t*)uc->uc_mcontext.arm_fp; // r11
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#endif
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}
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frame os::get_sender_for_C_frame(frame* fr) {
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#ifdef __thumb__
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// We can't reliably get anything from a thumb C frame.
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return frame();
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#else
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address pc = fr->sender_pc();
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if (! is_safe_for_fp(pc)) {
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return frame(fr->sender_sp(), (intptr_t *)nullptr, pc);
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} else {
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return frame(fr->sender_sp(), fr->link() + C_frame_offset, pc);
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}
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#endif
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}
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//
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// This actually returns two frames up. It does not return os::current_frame(),
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// which is the actual current frame. Nor does it return os::get_native_stack(),
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// which is the caller. It returns whoever called os::get_native_stack(). Not
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// very intuitive, but consistent with how this API is implemented on other
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// platforms.
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//
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frame os::current_frame() {
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#ifdef __thumb__
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// We can't reliably get anything from a thumb C frame.
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return frame();
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#else
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register intptr_t* fp __asm__ (SPELL_REG_FP);
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// fp is for os::current_frame. We want the fp for our caller.
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frame myframe((intptr_t*)os::current_stack_pointer(), fp + C_frame_offset,
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CAST_FROM_FN_PTR(address, os::current_frame));
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frame caller_frame = os::get_sender_for_C_frame(&myframe);
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if (os::is_first_C_frame(&caller_frame)) {
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// stack is not walkable
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// Assert below was added because it does not seem like this can ever happen.
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// How can this frame ever be the first C frame since it is called from C code?
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// If it does ever happen, undo the assert and comment here on when/why it happens.
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assert(false, "this should never happen");
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return frame();
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}
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// return frame for our caller's caller
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return os::get_sender_for_C_frame(&caller_frame);
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#endif
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}
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extern "C" address check_vfp_fault_instr;
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extern "C" address check_vfp3_32_fault_instr;
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extern "C" address check_simd_fault_instr;
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extern "C" address check_mp_ext_fault_instr;
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address check_vfp_fault_instr = nullptr;
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address check_vfp3_32_fault_instr = nullptr;
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address check_simd_fault_instr = nullptr;
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address check_mp_ext_fault_instr = nullptr;
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bool PosixSignals::pd_hotspot_signal_handler(int sig, siginfo_t* info,
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ucontext_t* uc, JavaThread* thread) {
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if (sig == SIGILL &&
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((info->si_addr == (caddr_t)check_simd_fault_instr)
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|| info->si_addr == (caddr_t)check_vfp_fault_instr
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|| info->si_addr == (caddr_t)check_vfp3_32_fault_instr
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|| info->si_addr == (caddr_t)check_mp_ext_fault_instr)) {
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// skip faulty instruction + instruction that sets return value to
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// success and set return value to failure.
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os::Posix::ucontext_set_pc(uc, (address)info->si_addr + 8);
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uc->uc_mcontext.arm_r0 = 0;
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return true;
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}
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address stub = nullptr;
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address pc = nullptr;
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bool unsafe_access = false;
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if (info != nullptr && uc != nullptr && thread != nullptr) {
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pc = (address) os::Posix::ucontext_get_pc(uc);
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// Handle ALL stack overflow variations here
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if (sig == SIGSEGV) {
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address addr = (address) info->si_addr;
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// check if fault address is within thread stack
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if (thread->is_in_full_stack(addr)) {
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// stack overflow
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StackOverflow* overflow_state = thread->stack_overflow_state();
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if (overflow_state->in_stack_yellow_reserved_zone(addr)) {
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overflow_state->disable_stack_yellow_reserved_zone();
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if (thread->thread_state() == _thread_in_Java) {
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// Throw a stack overflow exception. Guard pages will be re-enabled
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// while unwinding the stack.
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stub = SharedRuntime::continuation_for_implicit_exception(thread, pc, SharedRuntime::STACK_OVERFLOW);
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} else {
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// Thread was in the vm or native code. Return and try to finish.
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return true;
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}
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} else if (overflow_state->in_stack_red_zone(addr)) {
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// Fatal red zone violation. Disable the guard pages and fall through
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// to the exception handling code below.
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overflow_state->disable_stack_red_zone();
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tty->print_raw_cr("An irrecoverable stack overflow has occurred.");
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} else {
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// Accessing stack address below sp may cause SEGV if current
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// thread has MAP_GROWSDOWN stack. This should only happen when
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// current thread was created by user code with MAP_GROWSDOWN flag
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// and then attached to VM. See notes in os_linux.cpp.
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if (thread->osthread()->expanding_stack() == 0) {
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thread->osthread()->set_expanding_stack();
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if (os::Linux::manually_expand_stack(thread, addr)) {
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thread->osthread()->clear_expanding_stack();
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return true;
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}
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thread->osthread()->clear_expanding_stack();
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} else {
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fatal("recursive segv. expanding stack.");
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}
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}
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}
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}
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if (thread->thread_state() == _thread_in_Java) {
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// Java thread running in Java code => find exception handler if any
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// a fault inside compiled code, the interpreter, or a stub
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if (sig == SIGSEGV && SafepointMechanism::is_poll_address((address)info->si_addr)) {
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stub = SharedRuntime::get_poll_stub(pc);
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} else if (sig == SIGBUS) {
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// BugId 4454115: A read from a MappedByteBuffer can fault
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// here if the underlying file has been truncated.
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// Do not crash the VM in such a case.
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CodeBlob* cb = CodeCache::find_blob(pc);
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nmethod* nm = (cb != nullptr) ? cb->as_nmethod_or_null() : nullptr;
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if ((nm != nullptr && nm->has_unsafe_access()) ||
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(thread->doing_unsafe_access() &&
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UnsafeMemoryAccess::contains_pc(pc))) {
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unsafe_access = true;
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}
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} else if (sig == SIGSEGV &&
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MacroAssembler::uses_implicit_null_check(info->si_addr)) {
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// Determination of interpreter/vtable stub/compiled code null exception
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CodeBlob* cb = CodeCache::find_blob(pc);
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if (cb != nullptr) {
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stub = SharedRuntime::continuation_for_implicit_exception(
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thread, pc, SharedRuntime::IMPLICIT_NULL);
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}
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}
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} else if ((thread->thread_state() == _thread_in_vm ||
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thread->thread_state() == _thread_in_native) &&
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sig == SIGBUS && thread->doing_unsafe_access()) {
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unsafe_access = true;
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}
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// jni_fast_Get<Primitive>Field can trap at certain pc's if a GC kicks in
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// and the heap gets shrunk before the field access.
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if (sig == SIGSEGV || sig == SIGBUS) {
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address addr = JNI_FastGetField::find_slowcase_pc(pc);
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if (addr != (address)-1) {
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stub = addr;
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}
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}
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}
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if (unsafe_access && stub == nullptr) {
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// it can be an unsafe access and we haven't found
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// any other suitable exception reason,
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// so assume it is an unsafe access.
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address next_pc = pc + Assembler::InstructionSize;
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if (UnsafeMemoryAccess::contains_pc(pc)) {
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next_pc = UnsafeMemoryAccess::page_error_continue_pc(pc);
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}
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#ifdef __thumb__
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if (uc->uc_mcontext.arm_cpsr & PSR_T_BIT) {
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next_pc = (address)((intptr_t)next_pc | 0x1);
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}
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#endif
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stub = SharedRuntime::handle_unsafe_access(thread, next_pc);
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}
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if (stub != nullptr) {
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#ifdef __thumb__
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if (uc->uc_mcontext.arm_cpsr & PSR_T_BIT) {
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intptr_t p = (intptr_t)pc | 0x1;
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pc = (address)p;
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// Clear Thumb mode bit if we're redirected into the ARM ISA based code
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if (((intptr_t)stub & 0x1) == 0) {
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uc->uc_mcontext.arm_cpsr &= ~PSR_T_BIT;
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}
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} else {
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// No Thumb2 compiled stubs are triggered from ARM ISA compiled JIT'd code today.
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// The support needs to be added if that changes
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assert((((intptr_t)stub & 0x1) == 0), "can't return to Thumb code");
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}
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#endif
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// save all thread context in case we need to restore it
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if (thread != nullptr) thread->set_saved_exception_pc(pc);
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os::Posix::ucontext_set_pc(uc, stub);
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return true;
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}
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return false;
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}
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void os::Linux::init_thread_fpu_state(void) {
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os::setup_fpu();
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}
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int os::Linux::get_fpu_control_word(void) {
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return 0;
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}
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void os::Linux::set_fpu_control_word(int fpu_control) {
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// Nothing to do
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}
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void os::setup_fpu() {
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#if !defined(__SOFTFP__) && defined(__VFP_FP__)
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// Turn on IEEE-754 compliant VFP mode
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__asm__ volatile (
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"mov %%r0, #0;"
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"fmxr fpscr, %%r0"
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: /* no output */ : /* no input */ : "r0"
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);
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#endif
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}
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////////////////////////////////////////////////////////////////////////////////
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// thread stack
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// Minimum usable stack sizes required to get to user code. Space for
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// HotSpot guard pages is added later.
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size_t os::_compiler_thread_min_stack_allowed = (32 DEBUG_ONLY(+ 4)) * K;
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size_t os::_java_thread_min_stack_allowed = (32 DEBUG_ONLY(+ 4)) * K;
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size_t os::_vm_internal_thread_min_stack_allowed = (48 DEBUG_ONLY(+ 4)) * K;
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// return default stack size for thr_type
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size_t os::Posix::default_stack_size(os::ThreadType thr_type) {
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// default stack size (compiler thread needs larger stack)
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size_t s = (thr_type == os::compiler_thread ? 2 * M : 512 * K);
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return s;
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|
}
|
|
|
|
/////////////////////////////////////////////////////////////////////////////
|
|
// helper functions for fatal error handler
|
|
|
|
void os::print_context(outputStream *st, const void *context) {
|
|
if (context == nullptr) return;
|
|
|
|
const ucontext_t *uc = (const ucontext_t*)context;
|
|
|
|
st->print_cr("Registers:");
|
|
intx* reg_area = (intx*)&uc->uc_mcontext.arm_r0;
|
|
for (int r = 0; r < ARM_REGS_IN_CONTEXT; r++) {
|
|
st->print_cr(" %-3s = " INTPTR_FORMAT, as_Register(r)->name(), reg_area[r]);
|
|
}
|
|
#define U64_FORMAT "0x%016llx"
|
|
// now print flag register
|
|
uint32_t cpsr = uc->uc_mcontext.arm_cpsr;
|
|
st->print_cr(" %-4s = 0x%08x", "cpsr", cpsr);
|
|
// print out instruction set state
|
|
st->print("isetstate: ");
|
|
const int isetstate =
|
|
((cpsr & (1 << 5)) ? 1 : 0) | // T
|
|
((cpsr & (1 << 24)) ? 2 : 0); // J
|
|
switch (isetstate) {
|
|
case 0: st->print_cr("ARM"); break;
|
|
case 1: st->print_cr("Thumb"); break;
|
|
case 2: st->print_cr("Jazelle"); break;
|
|
case 3: st->print_cr("ThumbEE"); break;
|
|
default: ShouldNotReachHere();
|
|
};
|
|
st->cr();
|
|
}
|
|
|
|
void os::print_register_info(outputStream *st, const void *context, int& continuation) {
|
|
const int register_count = ARM_REGS_IN_CONTEXT;
|
|
int n = continuation;
|
|
assert(n >= 0 && n <= register_count, "Invalid continuation value");
|
|
if (context == nullptr || n == register_count) {
|
|
return;
|
|
}
|
|
|
|
const ucontext_t *uc = (const ucontext_t*)context;
|
|
intx* reg_area = (intx*)&uc->uc_mcontext.arm_r0;
|
|
|
|
while (n < register_count) {
|
|
// Update continuation with next index before printing location
|
|
continuation = n + 1;
|
|
st->print(" %-3s = ", as_Register(n)->name());
|
|
print_location(st, reg_area[n]);
|
|
++n;
|
|
}
|
|
}
|
|
|
|
|
|
ARMAtomicFuncs::cmpxchg_long_func_t ARMAtomicFuncs::_cmpxchg_long_func = ARMAtomicFuncs::cmpxchg_long_bootstrap;
|
|
ARMAtomicFuncs::load_long_func_t ARMAtomicFuncs::_load_long_func = ARMAtomicFuncs::load_long_bootstrap;
|
|
ARMAtomicFuncs::store_long_func_t ARMAtomicFuncs::_store_long_func = ARMAtomicFuncs::store_long_bootstrap;
|
|
ARMAtomicFuncs::atomic_add_func_t ARMAtomicFuncs::_add_func = ARMAtomicFuncs::add_bootstrap;
|
|
ARMAtomicFuncs::atomic_xchg_func_t ARMAtomicFuncs::_xchg_func = ARMAtomicFuncs::xchg_bootstrap;
|
|
ARMAtomicFuncs::cmpxchg_func_t ARMAtomicFuncs::_cmpxchg_func = ARMAtomicFuncs::cmpxchg_bootstrap;
|
|
|
|
int64_t ARMAtomicFuncs::cmpxchg_long_bootstrap(int64_t compare_value, int64_t exchange_value, volatile int64_t* dest) {
|
|
// try to use the stub:
|
|
cmpxchg_long_func_t func = CAST_TO_FN_PTR(cmpxchg_long_func_t, StubRoutines::atomic_cmpxchg_long_entry());
|
|
|
|
if (func != nullptr) {
|
|
_cmpxchg_long_func = func;
|
|
return (*func)(compare_value, exchange_value, dest);
|
|
}
|
|
assert(Threads::number_of_threads() == 0, "for bootstrap only");
|
|
|
|
int64_t old_value = *dest;
|
|
if (old_value == compare_value)
|
|
*dest = exchange_value;
|
|
return old_value;
|
|
}
|
|
|
|
int64_t ARMAtomicFuncs::load_long_bootstrap(const volatile int64_t* src) {
|
|
// try to use the stub:
|
|
load_long_func_t func = CAST_TO_FN_PTR(load_long_func_t, StubRoutines::Arm::atomic_load_long_entry());
|
|
|
|
if (func != nullptr) {
|
|
_load_long_func = func;
|
|
return (*func)(src);
|
|
}
|
|
assert(Threads::number_of_threads() == 0, "for bootstrap only");
|
|
|
|
int64_t old_value = *src;
|
|
return old_value;
|
|
}
|
|
|
|
void ARMAtomicFuncs::store_long_bootstrap(int64_t val, volatile int64_t* dest) {
|
|
// try to use the stub:
|
|
store_long_func_t func = CAST_TO_FN_PTR(store_long_func_t, StubRoutines::Arm::atomic_store_long_entry());
|
|
|
|
if (func != nullptr) {
|
|
_store_long_func = func;
|
|
return (*func)(val, dest);
|
|
}
|
|
assert(Threads::number_of_threads() == 0, "for bootstrap only");
|
|
|
|
*dest = val;
|
|
}
|
|
|
|
int32_t ARMAtomicFuncs::add_bootstrap(int32_t add_value, volatile int32_t *dest) {
|
|
atomic_add_func_t func = CAST_TO_FN_PTR(atomic_add_func_t,
|
|
StubRoutines::atomic_add_entry());
|
|
if (func != nullptr) {
|
|
_add_func = func;
|
|
return (*func)(add_value, dest);
|
|
}
|
|
|
|
int32_t old_value = *dest;
|
|
*dest = old_value + add_value;
|
|
return (old_value + add_value);
|
|
}
|
|
|
|
int32_t ARMAtomicFuncs::xchg_bootstrap(int32_t exchange_value, volatile int32_t *dest) {
|
|
atomic_xchg_func_t func = CAST_TO_FN_PTR(atomic_xchg_func_t,
|
|
StubRoutines::atomic_xchg_entry());
|
|
if (func != nullptr) {
|
|
_xchg_func = func;
|
|
return (*func)(exchange_value, dest);
|
|
}
|
|
|
|
int32_t old_value = *dest;
|
|
*dest = exchange_value;
|
|
return (old_value);
|
|
}
|
|
|
|
int32_t ARMAtomicFuncs::cmpxchg_bootstrap(int32_t compare_value, int32_t exchange_value, volatile int32_t* dest) {
|
|
// try to use the stub:
|
|
cmpxchg_func_t func = CAST_TO_FN_PTR(cmpxchg_func_t, StubRoutines::atomic_cmpxchg_entry());
|
|
|
|
if (func != nullptr) {
|
|
_cmpxchg_func = func;
|
|
return (*func)(compare_value, exchange_value, dest);
|
|
}
|
|
assert(Threads::number_of_threads() == 0, "for bootstrap only");
|
|
|
|
int32_t old_value = *dest;
|
|
if (old_value == compare_value)
|
|
*dest = exchange_value;
|
|
return old_value;
|
|
}
|
|
|
|
|
|
#ifndef PRODUCT
|
|
void os::verify_stack_alignment() {
|
|
}
|
|
#endif
|
|
|
|
int os::extra_bang_size_in_bytes() {
|
|
// ARM does not require an additional stack bang.
|
|
return 0;
|
|
}
|