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506 lines
18 KiB
C++
506 lines
18 KiB
C++
/*
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* Copyright (c) 1997, 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/macroAssembler.hpp"
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#include "code/compiledIC.hpp"
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#include "memory/resourceArea.hpp"
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#include "nativeInst_x86.hpp"
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#include "oops/oop.inline.hpp"
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#include "runtime/handles.hpp"
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#include "runtime/safepoint.hpp"
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#include "runtime/sharedRuntime.hpp"
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#include "runtime/stubRoutines.hpp"
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#include "utilities/ostream.hpp"
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#ifdef COMPILER1
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#include "c1/c1_Runtime1.hpp"
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#endif
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void NativeInstruction::wrote(int offset) {
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ICache::invalidate_word(addr_at(offset));
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}
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void NativeCall::verify() {
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// Make sure code pattern is actually a call imm32 instruction.
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int inst = ubyte_at(0);
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if (inst != instruction_code) {
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tty->print_cr("Addr: " INTPTR_FORMAT " Code: 0x%x", p2i(instruction_address()),
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inst);
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fatal("not a call disp32");
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}
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}
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address NativeCall::destination() const {
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// Getting the destination of a call isn't safe because that call can
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// be getting patched while you're calling this. There's only special
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// places where this can be called but not automatically verifiable by
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// checking which locks are held. The solution is true atomic patching
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// on x86, nyi.
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return return_address() + displacement();
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}
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void NativeCall::print() {
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tty->print_cr(PTR_FORMAT ": call " PTR_FORMAT,
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p2i(instruction_address()), p2i(destination()));
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}
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// Inserts a native call instruction at a given pc
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void NativeCall::insert(address code_pos, address entry) {
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intptr_t disp = (intptr_t)entry - ((intptr_t)code_pos + 1 + 4);
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guarantee(disp == (intptr_t)(jint)disp, "must be 32-bit offset");
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*code_pos = instruction_code;
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*((int32_t *)(code_pos+1)) = (int32_t) disp;
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ICache::invalidate_range(code_pos, instruction_size);
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}
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// MT-safe patching of a call instruction.
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// First patches first word of instruction to two jmp's that jmps to themselves
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// (spinlock). Then patches the last byte, and then atomically replaces
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// the jmp's with the first 4 byte of the new instruction.
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void NativeCall::replace_mt_safe(address instr_addr, address code_buffer) {
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assert(CodeCache_lock->is_locked() ||
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SafepointSynchronize::is_at_safepoint(), "concurrent code patching");
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assert (instr_addr != nullptr, "illegal address for code patching");
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NativeCall* n_call = nativeCall_at (instr_addr); // checking that it is a call
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guarantee((intptr_t)instr_addr % BytesPerWord == 0, "must be aligned");
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// First patch dummy jmp in place
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unsigned char patch[4];
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assert(sizeof(patch)==sizeof(jint), "sanity check");
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patch[0] = 0xEB; // jmp rel8
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patch[1] = 0xFE; // jmp to self
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patch[2] = 0xEB;
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patch[3] = 0xFE;
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// First patch dummy jmp in place
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*(jint*)instr_addr = *(jint *)patch;
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// Invalidate. Opteron requires a flush after every write.
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n_call->wrote(0);
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// Patch 4th byte
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instr_addr[4] = code_buffer[4];
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n_call->wrote(4);
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// Patch bytes 0-3
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*(jint*)instr_addr = *(jint *)code_buffer;
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n_call->wrote(0);
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#ifdef ASSERT
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// verify patching
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for ( int i = 0; i < instruction_size; i++) {
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address ptr = (address)((intptr_t)code_buffer + i);
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int a_byte = (*ptr) & 0xFF;
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assert(*((address)((intptr_t)instr_addr + i)) == a_byte, "mt safe patching failed");
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}
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#endif
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}
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bool NativeCall::is_displacement_aligned() {
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return (uintptr_t) displacement_address() % 4 == 0;
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}
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// Similar to replace_mt_safe, but just changes the destination. The
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// important thing is that free-running threads are able to execute this
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// call instruction at all times. If the displacement field is aligned
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// we can simply rely on atomicity of 32-bit writes to make sure other threads
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// will see no intermediate states. Otherwise, the first two bytes of the
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// call are guaranteed to be aligned, and can be atomically patched to a
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// self-loop to guard the instruction while we change the other bytes.
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// We cannot rely on locks here, since the free-running threads must run at
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// full speed.
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//
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// Used in the runtime linkage of calls; see class CompiledIC.
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// (Cf. 4506997 and 4479829, where threads witnessed garbage displacements.)
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void NativeCall::set_destination_mt_safe(address dest) {
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DEBUG_ONLY(verify());
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// Make sure patching code is locked. No two threads can patch at the same
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// time but one may be executing this code.
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assert(CodeCache_lock->is_locked() || SafepointSynchronize::is_at_safepoint() ||
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CompiledICLocker::is_safe(instruction_address()), "concurrent code patching");
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// Both C1 and C2 should now be generating code which aligns the patched address
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// to be within a single cache line.
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bool is_aligned = is_displacement_aligned();
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guarantee(is_aligned, "destination must be aligned");
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// The destination lies within a single cache line.
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set_destination(dest);
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}
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void NativeMovConstReg::verify() {
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// make sure code pattern is actually a mov reg64, imm64 instruction
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bool valid_rex_prefix = ubyte_at(0) == Assembler::REX_W || ubyte_at(0) == Assembler::REX_WB;
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bool valid_rex2_prefix = ubyte_at(0) == Assembler::REX2 &&
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(ubyte_at(1) == Assembler::REX2BIT_W ||
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ubyte_at(1) == Assembler::REX2BIT_WB ||
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ubyte_at(1) == Assembler::REX2BIT_WB4);
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int opcode = has_rex2_prefix() ? ubyte_at(2) : ubyte_at(1);
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if ((!valid_rex_prefix || !valid_rex2_prefix) && (opcode & (0xff ^ register_mask)) != 0xB8) {
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print();
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fatal("not a REX.W[B] mov reg64, imm64");
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}
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}
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void NativeMovConstReg::print() {
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tty->print_cr(PTR_FORMAT ": mov reg, " INTPTR_FORMAT,
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p2i(instruction_address()), data());
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}
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//-------------------------------------------------------------------
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int NativeMovRegMem::instruction_start() const {
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int off = 0;
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u_char instr_0 = ubyte_at(off);
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// See comment in Assembler::locate_operand() about VEX prefixes.
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if (instr_0 == instruction_VEX_prefix_2bytes) {
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assert((UseAVX > 0), "shouldn't have VEX prefix");
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return 2;
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}
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if (instr_0 == instruction_VEX_prefix_3bytes) {
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assert((UseAVX > 0), "shouldn't have VEX prefix");
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return 3;
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}
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if (instr_0 == instruction_EVEX_prefix_4bytes) {
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assert(VM_Version::supports_evex(), "shouldn't have EVEX prefix");
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return 4;
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}
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// First check to see if we have a (prefixed or not) xor
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if (instr_0 >= instruction_prefix_wide_lo && // 0x40
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instr_0 <= instruction_prefix_wide_hi) { // 0x4f
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off++;
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instr_0 = ubyte_at(off);
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}
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if (instr_0 == instruction_REX2_prefix) {
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off+=2;
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instr_0 = ubyte_at(off);
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}
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if (instr_0 == instruction_code_xor) {
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off += 2;
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instr_0 = ubyte_at(off);
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}
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// Now look for the real instruction and the many prefix/size specifiers.
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if (instr_0 == instruction_operandsize_prefix ) { // 0x66
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off++; // Not SSE instructions
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instr_0 = ubyte_at(off);
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}
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if ( instr_0 == instruction_code_xmm_ss_prefix || // 0xf3
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instr_0 == instruction_code_xmm_sd_prefix) { // 0xf2
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off++;
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instr_0 = ubyte_at(off);
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}
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if (instr_0 == instruction_REX2_prefix) {
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off+=2;
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instr_0 = ubyte_at(off);
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}
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if ( instr_0 >= instruction_prefix_wide_lo && // 0x40
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instr_0 <= instruction_prefix_wide_hi) { // 0x4f
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off++;
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instr_0 = ubyte_at(off);
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}
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// Extended prefixes can only follow REX prefixes,
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// REX2 is directly followed by main opcode.
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if (instr_0 == instruction_extended_prefix ) { // 0x0f
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off++;
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}
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// Offset of instruction opcode.
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return off;
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}
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// Format [REX/REX2] [OPCODE] [ModRM] [SIB] [IMM/DISP32]
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int NativeMovRegMem::patch_offset() const {
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int off = data_offset + instruction_start();
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u_char mod_rm = *(u_char*)(instruction_address() + 1);
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// nnnn(r12|rsp) isn't coded as simple mod/rm since that is
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// the encoding to use an SIB byte. Which will have the nnnn
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// field off by one byte
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// ModRM Byte Format = Mod[2] REG[3] RM[3]
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if ((mod_rm & 7) == 0x4) {
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off++;
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}
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// Displacement offset.
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return off;
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}
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void NativeMovRegMem::verify() {
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// make sure code pattern is actually a mov [reg+offset], reg instruction
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u_char test_byte = *(u_char*)instruction_address();
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switch (test_byte) {
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case instruction_code_reg2memb: // 0x88 movb a, r
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case instruction_code_reg2mem: // 0x89 movl a, r (can be movq in 64bit)
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case instruction_code_mem2regb: // 0x8a movb r, a
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case instruction_code_mem2reg: // 0x8b movl r, a (can be movq in 64bit)
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break;
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case instruction_code_mem2reg_movslq: // 0x63 movsql r, a
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case instruction_code_mem2reg_movzxb: // 0xb6 movzbl r, a (movzxb)
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case instruction_code_mem2reg_movzxw: // 0xb7 movzwl r, a (movzxw)
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case instruction_code_mem2reg_movsxb: // 0xbe movsbl r, a (movsxb)
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case instruction_code_mem2reg_movsxw: // 0xbf movswl r, a (movsxw)
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break;
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case instruction_code_float_s: // 0xd9 fld_s a
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case instruction_code_float_d: // 0xdd fld_d a
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case instruction_code_xmm_load: // 0x10 movsd xmm, a
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case instruction_code_xmm_store: // 0x11 movsd a, xmm
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case instruction_code_xmm_lpd: // 0x12 movlpd xmm, a
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break;
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case instruction_code_lea: // 0x8d lea r, a
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break;
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default:
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fatal ("not a mov [reg+offs], reg instruction");
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}
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}
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void NativeMovRegMem::print() {
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tty->print_cr(PTR_FORMAT ": mov reg, [reg + %x]", p2i(instruction_address()), offset());
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}
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//-------------------------------------------------------------------
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void NativeLoadAddress::verify() {
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// make sure code pattern is actually a mov [reg+offset], reg instruction
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u_char test_byte = *(u_char*)instruction_address();
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if ((test_byte != lea_instruction_code) && (test_byte != mov64_instruction_code)) {
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fatal ("not a lea reg, [reg+offs] instruction");
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}
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}
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void NativeLoadAddress::print() {
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tty->print_cr(PTR_FORMAT ": lea [reg + %x], reg", p2i(instruction_address()), offset());
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}
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//--------------------------------------------------------------------------------
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void NativeJump::verify() {
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if (*(u_char*)instruction_address() != instruction_code) {
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// far jump
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NativeMovConstReg* mov = nativeMovConstReg_at(instruction_address());
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NativeInstruction* jmp = nativeInstruction_at(mov->next_instruction_address());
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if (!jmp->is_jump_reg()) {
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fatal("not a jump instruction");
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}
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}
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}
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void NativeJump::insert(address code_pos, address entry) {
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intptr_t disp = (intptr_t)entry - ((intptr_t)code_pos + 1 + 4);
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guarantee(disp == (intptr_t)(int32_t)disp, "must be 32-bit offset");
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*code_pos = instruction_code;
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*((int32_t*)(code_pos + 1)) = (int32_t)disp;
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ICache::invalidate_range(code_pos, instruction_size);
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}
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void NativeJump::check_verified_entry_alignment(address entry, address verified_entry) {
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// Patching to not_entrant can happen while activations of the method are
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// in use. The patching in that instance must happen only when certain
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// alignment restrictions are true. These guarantees check those
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// conditions.
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const int linesize = 64;
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// Must be wordSize aligned
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guarantee(((uintptr_t) verified_entry & (wordSize -1)) == 0,
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"illegal address for code patching 2");
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// First 5 bytes must be within the same cache line - 4827828
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guarantee((uintptr_t) verified_entry / linesize ==
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((uintptr_t) verified_entry + 4) / linesize,
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"illegal address for code patching 3");
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}
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// MT safe inserting of a jump over an unknown instruction sequence (used by nmethod::make_not_entrant)
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// The problem: jmp <dest> is a 5-byte instruction. Atomic write can be only with 4 bytes.
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// First patches the first word atomically to be a jump to itself.
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// Then patches the last byte and then atomically patches the first word (4-bytes),
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// thus inserting the desired jump
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// This code is mt-safe with the following conditions: entry point is 4 byte aligned,
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// entry point is in same cache line as unverified entry point, and the instruction being
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// patched is >= 5 byte (size of patch).
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//
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// In C2 the 5+ byte sized instruction is enforced by code in MachPrologNode::emit.
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// In C1 the restriction is enforced by CodeEmitter::method_entry
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// In JVMCI, the restriction is enforced by HotSpotFrameContext.enter(...)
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//
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void NativeJump::patch_verified_entry(address entry, address verified_entry, address dest) {
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// complete jump instruction (to be inserted) is in code_buffer;
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union {
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jlong cb_long;
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unsigned char code_buffer[8];
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} u;
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u.cb_long = *(jlong *)verified_entry;
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intptr_t disp = (intptr_t)dest - ((intptr_t)verified_entry + 1 + 4);
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guarantee(disp == (intptr_t)(int32_t)disp, "must be 32-bit offset");
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u.code_buffer[0] = instruction_code;
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*(int32_t*)(u.code_buffer + 1) = (int32_t)disp;
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Atomic::store((jlong *) verified_entry, u.cb_long);
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ICache::invalidate_range(verified_entry, 8);
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}
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void NativeIllegalInstruction::insert(address code_pos) {
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assert(NativeIllegalInstruction::instruction_size == sizeof(short), "right address unit for update");
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*(short *)code_pos = instruction_code;
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ICache::invalidate_range(code_pos, instruction_size);
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}
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void NativeGeneralJump::verify() {
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assert(((NativeInstruction *)this)->is_jump() ||
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((NativeInstruction *)this)->is_cond_jump(), "not a general jump instruction");
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}
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void NativeGeneralJump::insert_unconditional(address code_pos, address entry) {
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intptr_t disp = (intptr_t)entry - ((intptr_t)code_pos + 1 + 4);
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guarantee(disp == (intptr_t)(int32_t)disp, "must be 32-bit offset");
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*code_pos = unconditional_long_jump;
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*((int32_t *)(code_pos+1)) = (int32_t) disp;
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ICache::invalidate_range(code_pos, instruction_size);
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}
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// MT-safe patching of a long jump instruction.
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// First patches first word of instruction to two jmp's that jmps to themselves
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// (spinlock). Then patches the last byte, and then atomically replaces
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// the jmp's with the first 4 byte of the new instruction.
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void NativeGeneralJump::replace_mt_safe(address instr_addr, address code_buffer) {
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assert (instr_addr != nullptr, "illegal address for code patching (4)");
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NativeGeneralJump* n_jump = nativeGeneralJump_at (instr_addr); // checking that it is a jump
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// Temporary code
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unsigned char patch[4];
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assert(sizeof(patch)==sizeof(int32_t), "sanity check");
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patch[0] = 0xEB; // jmp rel8
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patch[1] = 0xFE; // jmp to self
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patch[2] = 0xEB;
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patch[3] = 0xFE;
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// First patch dummy jmp in place
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*(int32_t*)instr_addr = *(int32_t *)patch;
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n_jump->wrote(0);
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// Patch 4th byte
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instr_addr[4] = code_buffer[4];
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n_jump->wrote(4);
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// Patch bytes 0-3
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*(jint*)instr_addr = *(jint *)code_buffer;
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n_jump->wrote(0);
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#ifdef ASSERT
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// verify patching
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for ( int i = 0; i < instruction_size; i++) {
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address ptr = (address)((intptr_t)code_buffer + i);
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int a_byte = (*ptr) & 0xFF;
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assert(*((address)((intptr_t)instr_addr + i)) == a_byte, "mt safe patching failed");
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}
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#endif
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}
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address NativeGeneralJump::jump_destination() const {
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int op_code = ubyte_at(0);
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bool is_rel32off = (op_code == 0xE9 || op_code == 0x0F);
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int offset = (op_code == 0x0F) ? 2 : 1;
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int length = offset + ((is_rel32off) ? 4 : 1);
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if (is_rel32off)
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return addr_at(0) + length + int_at(offset);
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else
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return addr_at(0) + length + sbyte_at(offset);
|
|
}
|
|
|
|
void NativePostCallNop::make_deopt() {
|
|
/* makes the first 3 bytes into UD
|
|
* With the 8 bytes possibly (likely) split over cachelines the protocol on x86 looks like:
|
|
*
|
|
* Original state: NOP (4 bytes) offset (4 bytes)
|
|
* Writing the offset only touches the 4 last bytes (offset bytes)
|
|
* Making a deopt only touches the first 4 bytes and turns the NOP into a UD
|
|
* and to make disasembly look "reasonable" it turns the last byte into a
|
|
* TEST eax, offset so that the offset bytes of the NOP now becomes the imm32.
|
|
*/
|
|
|
|
unsigned char patch[4];
|
|
NativeDeoptInstruction::insert((address) patch, false);
|
|
patch[3] = 0xA9; // TEST eax, imm32 - this is just to keep disassembly looking correct and fills no real use.
|
|
address instr_addr = addr_at(0);
|
|
*(int32_t *)instr_addr = *(int32_t *)patch;
|
|
ICache::invalidate_range(instr_addr, instruction_size);
|
|
}
|
|
|
|
bool NativePostCallNop::patch(int32_t oopmap_slot, int32_t cb_offset) {
|
|
if (((oopmap_slot & 0xff) != oopmap_slot) || ((cb_offset & 0xffffff) != cb_offset)) {
|
|
return false; // cannot encode
|
|
}
|
|
int32_t data = (oopmap_slot << 24) | cb_offset;
|
|
assert(data != 0, "must be");
|
|
int32_t *code_pos = (int32_t *) addr_at(displacement_offset);
|
|
*((int32_t *)(code_pos)) = (int32_t) data;
|
|
return true; // successfully encoded
|
|
}
|
|
|
|
void NativeDeoptInstruction::verify() {
|
|
}
|
|
|
|
// Inserts an undefined instruction at a given pc
|
|
void NativeDeoptInstruction::insert(address code_pos, bool invalidate) {
|
|
*code_pos = instruction_prefix;
|
|
*(code_pos+1) = instruction_code;
|
|
*(code_pos+2) = 0x00;
|
|
if (invalidate) {
|
|
ICache::invalidate_range(code_pos, instruction_size);
|
|
}
|
|
}
|