blob: d3eafc9d26baaf1139a6f62e18cdf6be42b27389 [file] [log] [blame]
Brian Carlstrom7940e442013-07-12 13:46:57 -07001/*
2 * Copyright (C) 2012 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
Maxim Kazantsev6dccdc22014-08-18 18:43:55 +070017#include <cstdarg>
Nicolas Geoffrayf3e2cc42014-02-18 18:37:26 +000018#include <inttypes.h>
Maxim Kazantsev6dccdc22014-08-18 18:43:55 +070019#include <string>
Nicolas Geoffrayf3e2cc42014-02-18 18:37:26 +000020
Andreas Gampe53c913b2014-08-12 23:19:23 -070021#include "backend_x86.h"
Brian Carlstrom7940e442013-07-12 13:46:57 -070022#include "codegen_x86.h"
23#include "dex/compiler_internals.h"
24#include "dex/quick/mir_to_lir-inl.h"
buzbeeb5860fb2014-06-21 15:31:01 -070025#include "dex/reg_storage_eq.h"
Mark Mendelle19c91f2014-02-25 08:19:08 -080026#include "mirror/array.h"
27#include "mirror/string.h"
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -070028#include "oat.h"
Brian Carlstrom7940e442013-07-12 13:46:57 -070029#include "x86_lir.h"
Tong Shen547cdfd2014-08-05 01:54:19 -070030#include "utils/dwarf_cfi.h"
Brian Carlstrom7940e442013-07-12 13:46:57 -070031
Brian Carlstrom7940e442013-07-12 13:46:57 -070032namespace art {
33
Vladimir Marko089142c2014-06-05 10:57:05 +010034static constexpr RegStorage core_regs_arr_32[] = {
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +070035 rs_rAX, rs_rCX, rs_rDX, rs_rBX, rs_rX86_SP_32, rs_rBP, rs_rSI, rs_rDI,
36};
Vladimir Marko089142c2014-06-05 10:57:05 +010037static constexpr RegStorage core_regs_arr_64[] = {
Dmitry Petrochenko76af0d32014-06-05 21:15:08 +070038 rs_rAX, rs_rCX, rs_rDX, rs_rBX, rs_rX86_SP_32, rs_rBP, rs_rSI, rs_rDI,
buzbee091cc402014-03-31 10:14:40 -070039 rs_r8, rs_r9, rs_r10, rs_r11, rs_r12, rs_r13, rs_r14, rs_r15
Brian Carlstrom7940e442013-07-12 13:46:57 -070040};
Vladimir Marko089142c2014-06-05 10:57:05 +010041static constexpr RegStorage core_regs_arr_64q[] = {
Dmitry Petrochenko0999a6f2014-05-22 12:26:50 +070042 rs_r0q, rs_r1q, rs_r2q, rs_r3q, rs_rX86_SP_64, rs_r5q, rs_r6q, rs_r7q,
Dmitry Petrochenkoa20468c2014-04-30 13:40:19 +070043 rs_r8q, rs_r9q, rs_r10q, rs_r11q, rs_r12q, rs_r13q, rs_r14q, rs_r15q
Dmitry Petrochenko0999a6f2014-05-22 12:26:50 +070044};
Vladimir Marko089142c2014-06-05 10:57:05 +010045static constexpr RegStorage sp_regs_arr_32[] = {
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +070046 rs_fr0, rs_fr1, rs_fr2, rs_fr3, rs_fr4, rs_fr5, rs_fr6, rs_fr7,
47};
Vladimir Marko089142c2014-06-05 10:57:05 +010048static constexpr RegStorage sp_regs_arr_64[] = {
buzbee091cc402014-03-31 10:14:40 -070049 rs_fr0, rs_fr1, rs_fr2, rs_fr3, rs_fr4, rs_fr5, rs_fr6, rs_fr7,
buzbee091cc402014-03-31 10:14:40 -070050 rs_fr8, rs_fr9, rs_fr10, rs_fr11, rs_fr12, rs_fr13, rs_fr14, rs_fr15
Brian Carlstrom7940e442013-07-12 13:46:57 -070051};
Vladimir Marko089142c2014-06-05 10:57:05 +010052static constexpr RegStorage dp_regs_arr_32[] = {
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +070053 rs_dr0, rs_dr1, rs_dr2, rs_dr3, rs_dr4, rs_dr5, rs_dr6, rs_dr7,
54};
Vladimir Marko089142c2014-06-05 10:57:05 +010055static constexpr RegStorage dp_regs_arr_64[] = {
buzbee091cc402014-03-31 10:14:40 -070056 rs_dr0, rs_dr1, rs_dr2, rs_dr3, rs_dr4, rs_dr5, rs_dr6, rs_dr7,
buzbee091cc402014-03-31 10:14:40 -070057 rs_dr8, rs_dr9, rs_dr10, rs_dr11, rs_dr12, rs_dr13, rs_dr14, rs_dr15
Brian Carlstrom7940e442013-07-12 13:46:57 -070058};
Serguei Katkovc3801912014-07-08 17:21:53 +070059static constexpr RegStorage xp_regs_arr_32[] = {
60 rs_xr0, rs_xr1, rs_xr2, rs_xr3, rs_xr4, rs_xr5, rs_xr6, rs_xr7,
61};
62static constexpr RegStorage xp_regs_arr_64[] = {
63 rs_xr0, rs_xr1, rs_xr2, rs_xr3, rs_xr4, rs_xr5, rs_xr6, rs_xr7,
64 rs_xr8, rs_xr9, rs_xr10, rs_xr11, rs_xr12, rs_xr13, rs_xr14, rs_xr15
65};
Vladimir Marko089142c2014-06-05 10:57:05 +010066static constexpr RegStorage reserved_regs_arr_32[] = {rs_rX86_SP_32};
Dmitry Petrochenko76af0d32014-06-05 21:15:08 +070067static constexpr RegStorage reserved_regs_arr_64[] = {rs_rX86_SP_32};
Vladimir Marko089142c2014-06-05 10:57:05 +010068static constexpr RegStorage reserved_regs_arr_64q[] = {rs_rX86_SP_64};
69static constexpr RegStorage core_temps_arr_32[] = {rs_rAX, rs_rCX, rs_rDX, rs_rBX};
70static constexpr RegStorage core_temps_arr_64[] = {
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +070071 rs_rAX, rs_rCX, rs_rDX, rs_rSI, rs_rDI,
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +070072 rs_r8, rs_r9, rs_r10, rs_r11
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +070073};
Serguei Katkovc3801912014-07-08 17:21:53 +070074
75// How to add register to be available for promotion:
76// 1) Remove register from array defining temp
77// 2) Update ClobberCallerSave
78// 3) Update JNI compiler ABI:
79// 3.1) add reg in JniCallingConvention method
80// 3.2) update CoreSpillMask/FpSpillMask
81// 4) Update entrypoints
82// 4.1) Update constants in asm_support_x86_64.h for new frame size
83// 4.2) Remove entry in SmashCallerSaves
84// 4.3) Update jni_entrypoints to spill/unspill new callee save reg
85// 4.4) Update quick_entrypoints to spill/unspill new callee save reg
86// 5) Update runtime ABI
87// 5.1) Update quick_method_frame_info with new required spills
88// 5.2) Update QuickArgumentVisitor with new offsets to gprs and xmms
89// Note that you cannot use register corresponding to incoming args
90// according to ABI and QCG needs one additional XMM temp for
91// bulk copy in preparation to call.
Vladimir Marko089142c2014-06-05 10:57:05 +010092static constexpr RegStorage core_temps_arr_64q[] = {
Dmitry Petrochenko0999a6f2014-05-22 12:26:50 +070093 rs_r0q, rs_r1q, rs_r2q, rs_r6q, rs_r7q,
Dmitry Petrochenko0999a6f2014-05-22 12:26:50 +070094 rs_r8q, rs_r9q, rs_r10q, rs_r11q
Dmitry Petrochenko0999a6f2014-05-22 12:26:50 +070095};
Vladimir Marko089142c2014-06-05 10:57:05 +010096static constexpr RegStorage sp_temps_arr_32[] = {
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +070097 rs_fr0, rs_fr1, rs_fr2, rs_fr3, rs_fr4, rs_fr5, rs_fr6, rs_fr7,
98};
Vladimir Marko089142c2014-06-05 10:57:05 +010099static constexpr RegStorage sp_temps_arr_64[] = {
buzbee091cc402014-03-31 10:14:40 -0700100 rs_fr0, rs_fr1, rs_fr2, rs_fr3, rs_fr4, rs_fr5, rs_fr6, rs_fr7,
Serguei Katkovc3801912014-07-08 17:21:53 +0700101 rs_fr8, rs_fr9, rs_fr10, rs_fr11
buzbee091cc402014-03-31 10:14:40 -0700102};
Vladimir Marko089142c2014-06-05 10:57:05 +0100103static constexpr RegStorage dp_temps_arr_32[] = {
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700104 rs_dr0, rs_dr1, rs_dr2, rs_dr3, rs_dr4, rs_dr5, rs_dr6, rs_dr7,
105};
Vladimir Marko089142c2014-06-05 10:57:05 +0100106static constexpr RegStorage dp_temps_arr_64[] = {
buzbee091cc402014-03-31 10:14:40 -0700107 rs_dr0, rs_dr1, rs_dr2, rs_dr3, rs_dr4, rs_dr5, rs_dr6, rs_dr7,
Serguei Katkovc3801912014-07-08 17:21:53 +0700108 rs_dr8, rs_dr9, rs_dr10, rs_dr11
buzbee091cc402014-03-31 10:14:40 -0700109};
110
Vladimir Marko089142c2014-06-05 10:57:05 +0100111static constexpr RegStorage xp_temps_arr_32[] = {
Mark Mendellfe945782014-05-22 09:52:36 -0400112 rs_xr0, rs_xr1, rs_xr2, rs_xr3, rs_xr4, rs_xr5, rs_xr6, rs_xr7,
113};
Vladimir Marko089142c2014-06-05 10:57:05 +0100114static constexpr RegStorage xp_temps_arr_64[] = {
Mark Mendellfe945782014-05-22 09:52:36 -0400115 rs_xr0, rs_xr1, rs_xr2, rs_xr3, rs_xr4, rs_xr5, rs_xr6, rs_xr7,
Serguei Katkovc3801912014-07-08 17:21:53 +0700116 rs_xr8, rs_xr9, rs_xr10, rs_xr11
Mark Mendellfe945782014-05-22 09:52:36 -0400117};
118
Vladimir Marko089142c2014-06-05 10:57:05 +0100119static constexpr ArrayRef<const RegStorage> empty_pool;
120static constexpr ArrayRef<const RegStorage> core_regs_32(core_regs_arr_32);
121static constexpr ArrayRef<const RegStorage> core_regs_64(core_regs_arr_64);
122static constexpr ArrayRef<const RegStorage> core_regs_64q(core_regs_arr_64q);
123static constexpr ArrayRef<const RegStorage> sp_regs_32(sp_regs_arr_32);
124static constexpr ArrayRef<const RegStorage> sp_regs_64(sp_regs_arr_64);
125static constexpr ArrayRef<const RegStorage> dp_regs_32(dp_regs_arr_32);
126static constexpr ArrayRef<const RegStorage> dp_regs_64(dp_regs_arr_64);
Serguei Katkovc3801912014-07-08 17:21:53 +0700127static constexpr ArrayRef<const RegStorage> xp_regs_32(xp_regs_arr_32);
128static constexpr ArrayRef<const RegStorage> xp_regs_64(xp_regs_arr_64);
Vladimir Marko089142c2014-06-05 10:57:05 +0100129static constexpr ArrayRef<const RegStorage> reserved_regs_32(reserved_regs_arr_32);
130static constexpr ArrayRef<const RegStorage> reserved_regs_64(reserved_regs_arr_64);
131static constexpr ArrayRef<const RegStorage> reserved_regs_64q(reserved_regs_arr_64q);
132static constexpr ArrayRef<const RegStorage> core_temps_32(core_temps_arr_32);
133static constexpr ArrayRef<const RegStorage> core_temps_64(core_temps_arr_64);
134static constexpr ArrayRef<const RegStorage> core_temps_64q(core_temps_arr_64q);
135static constexpr ArrayRef<const RegStorage> sp_temps_32(sp_temps_arr_32);
136static constexpr ArrayRef<const RegStorage> sp_temps_64(sp_temps_arr_64);
137static constexpr ArrayRef<const RegStorage> dp_temps_32(dp_temps_arr_32);
138static constexpr ArrayRef<const RegStorage> dp_temps_64(dp_temps_arr_64);
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700139
Vladimir Marko089142c2014-06-05 10:57:05 +0100140static constexpr ArrayRef<const RegStorage> xp_temps_32(xp_temps_arr_32);
141static constexpr ArrayRef<const RegStorage> xp_temps_64(xp_temps_arr_64);
Mark Mendellfe945782014-05-22 09:52:36 -0400142
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700143RegStorage rs_rX86_SP;
144
145X86NativeRegisterPool rX86_ARG0;
146X86NativeRegisterPool rX86_ARG1;
147X86NativeRegisterPool rX86_ARG2;
148X86NativeRegisterPool rX86_ARG3;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700149X86NativeRegisterPool rX86_ARG4;
150X86NativeRegisterPool rX86_ARG5;
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700151X86NativeRegisterPool rX86_FARG0;
152X86NativeRegisterPool rX86_FARG1;
153X86NativeRegisterPool rX86_FARG2;
154X86NativeRegisterPool rX86_FARG3;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700155X86NativeRegisterPool rX86_FARG4;
156X86NativeRegisterPool rX86_FARG5;
157X86NativeRegisterPool rX86_FARG6;
158X86NativeRegisterPool rX86_FARG7;
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700159X86NativeRegisterPool rX86_RET0;
160X86NativeRegisterPool rX86_RET1;
161X86NativeRegisterPool rX86_INVOKE_TGT;
162X86NativeRegisterPool rX86_COUNT;
163
164RegStorage rs_rX86_ARG0;
165RegStorage rs_rX86_ARG1;
166RegStorage rs_rX86_ARG2;
167RegStorage rs_rX86_ARG3;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700168RegStorage rs_rX86_ARG4;
169RegStorage rs_rX86_ARG5;
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700170RegStorage rs_rX86_FARG0;
171RegStorage rs_rX86_FARG1;
172RegStorage rs_rX86_FARG2;
173RegStorage rs_rX86_FARG3;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700174RegStorage rs_rX86_FARG4;
175RegStorage rs_rX86_FARG5;
176RegStorage rs_rX86_FARG6;
177RegStorage rs_rX86_FARG7;
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700178RegStorage rs_rX86_RET0;
179RegStorage rs_rX86_RET1;
180RegStorage rs_rX86_INVOKE_TGT;
181RegStorage rs_rX86_COUNT;
Brian Carlstrom7940e442013-07-12 13:46:57 -0700182
Brian Carlstrom2ce745c2013-07-17 17:44:30 -0700183RegLocation X86Mir2Lir::LocCReturn() {
Bill Buzbee00e1ec62014-02-27 23:44:13 +0000184 return x86_loc_c_return;
Brian Carlstrom7940e442013-07-12 13:46:57 -0700185}
186
buzbeea0cd2d72014-06-01 09:33:49 -0700187RegLocation X86Mir2Lir::LocCReturnRef() {
Chao-ying Fua77ee512014-07-01 17:43:41 -0700188 return cu_->target64 ? x86_64_loc_c_return_ref : x86_loc_c_return_ref;
buzbeea0cd2d72014-06-01 09:33:49 -0700189}
190
Brian Carlstrom2ce745c2013-07-17 17:44:30 -0700191RegLocation X86Mir2Lir::LocCReturnWide() {
Elena Sayapinadd644502014-07-01 18:39:52 +0700192 return cu_->target64 ? x86_64_loc_c_return_wide : x86_loc_c_return_wide;
Brian Carlstrom7940e442013-07-12 13:46:57 -0700193}
194
Brian Carlstrom2ce745c2013-07-17 17:44:30 -0700195RegLocation X86Mir2Lir::LocCReturnFloat() {
Bill Buzbee00e1ec62014-02-27 23:44:13 +0000196 return x86_loc_c_return_float;
Brian Carlstrom7940e442013-07-12 13:46:57 -0700197}
198
Brian Carlstrom2ce745c2013-07-17 17:44:30 -0700199RegLocation X86Mir2Lir::LocCReturnDouble() {
Bill Buzbee00e1ec62014-02-27 23:44:13 +0000200 return x86_loc_c_return_double;
Brian Carlstrom7940e442013-07-12 13:46:57 -0700201}
202
Chao-ying Fua77ee512014-07-01 17:43:41 -0700203// Return a target-dependent special register for 32-bit.
204RegStorage X86Mir2Lir::TargetReg32(SpecialTargetRegister reg) {
buzbee091cc402014-03-31 10:14:40 -0700205 RegStorage res_reg = RegStorage::InvalidReg();
Brian Carlstrom7940e442013-07-12 13:46:57 -0700206 switch (reg) {
buzbee091cc402014-03-31 10:14:40 -0700207 case kSelf: res_reg = RegStorage::InvalidReg(); break;
208 case kSuspend: res_reg = RegStorage::InvalidReg(); break;
209 case kLr: res_reg = RegStorage::InvalidReg(); break;
210 case kPc: res_reg = RegStorage::InvalidReg(); break;
Andreas Gampeccc60262014-07-04 18:02:38 -0700211 case kSp: res_reg = rs_rX86_SP_32; break; // This must be the concrete one, as _SP is target-
212 // specific size.
buzbee091cc402014-03-31 10:14:40 -0700213 case kArg0: res_reg = rs_rX86_ARG0; break;
214 case kArg1: res_reg = rs_rX86_ARG1; break;
215 case kArg2: res_reg = rs_rX86_ARG2; break;
216 case kArg3: res_reg = rs_rX86_ARG3; break;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700217 case kArg4: res_reg = rs_rX86_ARG4; break;
218 case kArg5: res_reg = rs_rX86_ARG5; break;
buzbee091cc402014-03-31 10:14:40 -0700219 case kFArg0: res_reg = rs_rX86_FARG0; break;
220 case kFArg1: res_reg = rs_rX86_FARG1; break;
221 case kFArg2: res_reg = rs_rX86_FARG2; break;
222 case kFArg3: res_reg = rs_rX86_FARG3; break;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700223 case kFArg4: res_reg = rs_rX86_FARG4; break;
224 case kFArg5: res_reg = rs_rX86_FARG5; break;
225 case kFArg6: res_reg = rs_rX86_FARG6; break;
226 case kFArg7: res_reg = rs_rX86_FARG7; break;
buzbee091cc402014-03-31 10:14:40 -0700227 case kRet0: res_reg = rs_rX86_RET0; break;
228 case kRet1: res_reg = rs_rX86_RET1; break;
229 case kInvokeTgt: res_reg = rs_rX86_INVOKE_TGT; break;
230 case kHiddenArg: res_reg = rs_rAX; break;
Elena Sayapinadd644502014-07-01 18:39:52 +0700231 case kHiddenFpArg: DCHECK(!cu_->target64); res_reg = rs_fr0; break;
buzbee091cc402014-03-31 10:14:40 -0700232 case kCount: res_reg = rs_rX86_COUNT; break;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700233 default: res_reg = RegStorage::InvalidReg();
Brian Carlstrom7940e442013-07-12 13:46:57 -0700234 }
buzbee091cc402014-03-31 10:14:40 -0700235 return res_reg;
Brian Carlstrom7940e442013-07-12 13:46:57 -0700236}
237
Chao-ying Fua77ee512014-07-01 17:43:41 -0700238RegStorage X86Mir2Lir::TargetReg(SpecialTargetRegister reg) {
239 LOG(FATAL) << "Do not use this function!!!";
240 return RegStorage::InvalidReg();
241}
242
Brian Carlstrom7940e442013-07-12 13:46:57 -0700243/*
244 * Decode the register id.
245 */
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100246ResourceMask X86Mir2Lir::GetRegMaskCommon(const RegStorage& reg) const {
247 /* Double registers in x86 are just a single FP register. This is always just a single bit. */
248 return ResourceMask::Bit(
249 /* FP register starts at bit position 16 */
250 ((reg.IsFloat() || reg.StorageSize() > 8) ? kX86FPReg0 : 0) + reg.GetRegNum());
Brian Carlstrom7940e442013-07-12 13:46:57 -0700251}
252
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100253ResourceMask X86Mir2Lir::GetPCUseDefEncoding() const {
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100254 return kEncodeNone;
Brian Carlstrom7940e442013-07-12 13:46:57 -0700255}
256
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100257void X86Mir2Lir::SetupTargetResourceMasks(LIR* lir, uint64_t flags,
258 ResourceMask* use_mask, ResourceMask* def_mask) {
Dmitry Petrochenko6a58cb12014-04-02 17:27:59 +0700259 DCHECK(cu_->instruction_set == kX86 || cu_->instruction_set == kX86_64);
buzbeeb48819d2013-09-14 16:15:25 -0700260 DCHECK(!lir->flags.use_def_invalid);
Brian Carlstrom7940e442013-07-12 13:46:57 -0700261
262 // X86-specific resource map setup here.
Brian Carlstrom7940e442013-07-12 13:46:57 -0700263 if (flags & REG_USE_SP) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100264 use_mask->SetBit(kX86RegSP);
Brian Carlstrom7940e442013-07-12 13:46:57 -0700265 }
266
267 if (flags & REG_DEF_SP) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100268 def_mask->SetBit(kX86RegSP);
Brian Carlstrom7940e442013-07-12 13:46:57 -0700269 }
270
271 if (flags & REG_DEFA) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100272 SetupRegMask(def_mask, rs_rAX.GetReg());
Brian Carlstrom7940e442013-07-12 13:46:57 -0700273 }
274
275 if (flags & REG_DEFD) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100276 SetupRegMask(def_mask, rs_rDX.GetReg());
Brian Carlstrom7940e442013-07-12 13:46:57 -0700277 }
278 if (flags & REG_USEA) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100279 SetupRegMask(use_mask, rs_rAX.GetReg());
Brian Carlstrom7940e442013-07-12 13:46:57 -0700280 }
281
282 if (flags & REG_USEC) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100283 SetupRegMask(use_mask, rs_rCX.GetReg());
Brian Carlstrom7940e442013-07-12 13:46:57 -0700284 }
285
286 if (flags & REG_USED) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100287 SetupRegMask(use_mask, rs_rDX.GetReg());
Brian Carlstrom7940e442013-07-12 13:46:57 -0700288 }
Vladimir Marko70b797d2013-12-03 15:25:24 +0000289
290 if (flags & REG_USEB) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100291 SetupRegMask(use_mask, rs_rBX.GetReg());
Vladimir Marko70b797d2013-12-03 15:25:24 +0000292 }
Mark Mendell4028a6c2014-02-19 20:06:20 -0800293
294 // Fixup hard to describe instruction: Uses rAX, rCX, rDI; sets rDI.
295 if (lir->opcode == kX86RepneScasw) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100296 SetupRegMask(use_mask, rs_rAX.GetReg());
297 SetupRegMask(use_mask, rs_rCX.GetReg());
298 SetupRegMask(use_mask, rs_rDI.GetReg());
299 SetupRegMask(def_mask, rs_rDI.GetReg());
Mark Mendell4028a6c2014-02-19 20:06:20 -0800300 }
Serguei Katkove90501d2014-03-12 15:56:54 +0700301
302 if (flags & USE_FP_STACK) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100303 use_mask->SetBit(kX86FPStack);
304 def_mask->SetBit(kX86FPStack);
Serguei Katkove90501d2014-03-12 15:56:54 +0700305 }
Brian Carlstrom7940e442013-07-12 13:46:57 -0700306}
307
308/* For dumping instructions */
309static const char* x86RegName[] = {
310 "rax", "rcx", "rdx", "rbx", "rsp", "rbp", "rsi", "rdi",
311 "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15"
312};
313
314static const char* x86CondName[] = {
315 "O",
316 "NO",
317 "B/NAE/C",
318 "NB/AE/NC",
319 "Z/EQ",
320 "NZ/NE",
321 "BE/NA",
322 "NBE/A",
323 "S",
324 "NS",
325 "P/PE",
326 "NP/PO",
327 "L/NGE",
328 "NL/GE",
329 "LE/NG",
330 "NLE/G"
331};
332
333/*
334 * Interpret a format string and build a string no longer than size
335 * See format key in Assemble.cc.
336 */
337std::string X86Mir2Lir::BuildInsnString(const char *fmt, LIR *lir, unsigned char* base_addr) {
338 std::string buf;
339 size_t i = 0;
340 size_t fmt_len = strlen(fmt);
341 while (i < fmt_len) {
342 if (fmt[i] != '!') {
343 buf += fmt[i];
344 i++;
345 } else {
346 i++;
347 DCHECK_LT(i, fmt_len);
348 char operand_number_ch = fmt[i];
349 i++;
350 if (operand_number_ch == '!') {
351 buf += "!";
352 } else {
353 int operand_number = operand_number_ch - '0';
354 DCHECK_LT(operand_number, 6); // Expect upto 6 LIR operands.
355 DCHECK_LT(i, fmt_len);
356 int operand = lir->operands[operand_number];
357 switch (fmt[i]) {
358 case 'c':
359 DCHECK_LT(static_cast<size_t>(operand), sizeof(x86CondName));
360 buf += x86CondName[operand];
361 break;
362 case 'd':
363 buf += StringPrintf("%d", operand);
364 break;
Yixin Shou5192cbb2014-07-01 13:48:17 -0400365 case 'q': {
366 int64_t value = static_cast<int64_t>(static_cast<int64_t>(operand) << 32 |
367 static_cast<uint32_t>(lir->operands[operand_number+1]));
368 buf +=StringPrintf("%" PRId64, value);
Haitao Fenge70f1792014-08-09 08:31:02 +0800369 break;
Yixin Shou5192cbb2014-07-01 13:48:17 -0400370 }
Brian Carlstrom7940e442013-07-12 13:46:57 -0700371 case 'p': {
buzbee0d829482013-10-11 15:24:55 -0700372 EmbeddedData *tab_rec = reinterpret_cast<EmbeddedData*>(UnwrapPointer(operand));
Brian Carlstrom7940e442013-07-12 13:46:57 -0700373 buf += StringPrintf("0x%08x", tab_rec->offset);
374 break;
375 }
376 case 'r':
buzbee091cc402014-03-31 10:14:40 -0700377 if (RegStorage::IsFloat(operand)) {
378 int fp_reg = RegStorage::RegNum(operand);
Brian Carlstrom7940e442013-07-12 13:46:57 -0700379 buf += StringPrintf("xmm%d", fp_reg);
380 } else {
buzbee091cc402014-03-31 10:14:40 -0700381 int reg_num = RegStorage::RegNum(operand);
382 DCHECK_LT(static_cast<size_t>(reg_num), sizeof(x86RegName));
383 buf += x86RegName[reg_num];
Brian Carlstrom7940e442013-07-12 13:46:57 -0700384 }
385 break;
386 case 't':
Ian Rogers107c31e2014-01-23 20:55:29 -0800387 buf += StringPrintf("0x%08" PRIxPTR " (L%p)",
388 reinterpret_cast<uintptr_t>(base_addr) + lir->offset + operand,
389 lir->target);
Brian Carlstrom7940e442013-07-12 13:46:57 -0700390 break;
391 default:
392 buf += StringPrintf("DecodeError '%c'", fmt[i]);
393 break;
394 }
395 i++;
396 }
397 }
398 }
399 return buf;
400}
401
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100402void X86Mir2Lir::DumpResourceMask(LIR *x86LIR, const ResourceMask& mask, const char *prefix) {
Brian Carlstrom7940e442013-07-12 13:46:57 -0700403 char buf[256];
404 buf[0] = 0;
405
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100406 if (mask.Equals(kEncodeAll)) {
Brian Carlstrom7940e442013-07-12 13:46:57 -0700407 strcpy(buf, "all");
408 } else {
409 char num[8];
410 int i;
411
412 for (i = 0; i < kX86RegEnd; i++) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100413 if (mask.HasBit(i)) {
Ian Rogers988e6ea2014-01-08 11:30:50 -0800414 snprintf(num, arraysize(num), "%d ", i);
Brian Carlstrom7940e442013-07-12 13:46:57 -0700415 strcat(buf, num);
416 }
417 }
418
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100419 if (mask.HasBit(ResourceMask::kCCode)) {
Brian Carlstrom7940e442013-07-12 13:46:57 -0700420 strcat(buf, "cc ");
421 }
422 /* Memory bits */
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100423 if (x86LIR && (mask.HasBit(ResourceMask::kDalvikReg))) {
Ian Rogers988e6ea2014-01-08 11:30:50 -0800424 snprintf(buf + strlen(buf), arraysize(buf) - strlen(buf), "dr%d%s",
425 DECODE_ALIAS_INFO_REG(x86LIR->flags.alias_info),
426 (DECODE_ALIAS_INFO_WIDE(x86LIR->flags.alias_info)) ? "(+1)" : "");
Brian Carlstrom7940e442013-07-12 13:46:57 -0700427 }
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100428 if (mask.HasBit(ResourceMask::kLiteral)) {
Brian Carlstrom7940e442013-07-12 13:46:57 -0700429 strcat(buf, "lit ");
430 }
431
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100432 if (mask.HasBit(ResourceMask::kHeapRef)) {
Brian Carlstrom7940e442013-07-12 13:46:57 -0700433 strcat(buf, "heap ");
434 }
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100435 if (mask.HasBit(ResourceMask::kMustNotAlias)) {
Brian Carlstrom7940e442013-07-12 13:46:57 -0700436 strcat(buf, "noalias ");
437 }
438 }
439 if (buf[0]) {
440 LOG(INFO) << prefix << ": " << buf;
441 }
442}
443
444void X86Mir2Lir::AdjustSpillMask() {
445 // Adjustment for LR spilling, x86 has no LR so nothing to do here
buzbee091cc402014-03-31 10:14:40 -0700446 core_spill_mask_ |= (1 << rs_rRET.GetRegNum());
Brian Carlstrom7940e442013-07-12 13:46:57 -0700447 num_core_spills_++;
448}
449
Mark Mendelle87f9b52014-04-30 14:13:18 -0400450RegStorage X86Mir2Lir::AllocateByteRegister() {
Chao-ying Fu7e399fd2014-06-10 18:11:11 -0700451 RegStorage reg = AllocTypedTemp(false, kCoreReg);
Elena Sayapinadd644502014-07-01 18:39:52 +0700452 if (!cu_->target64) {
Chao-ying Fu7e399fd2014-06-10 18:11:11 -0700453 DCHECK_LT(reg.GetRegNum(), rs_rX86_SP.GetRegNum());
454 }
455 return reg;
456}
457
Udayan Banerji60bfe7b2014-07-08 19:59:43 -0700458RegStorage X86Mir2Lir::Get128BitRegister(RegStorage reg) {
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -0700459 return GetRegInfo(reg)->Master()->GetReg();
Udayan Banerji60bfe7b2014-07-08 19:59:43 -0700460}
461
Chao-ying Fu7e399fd2014-06-10 18:11:11 -0700462bool X86Mir2Lir::IsByteRegister(RegStorage reg) {
Elena Sayapinadd644502014-07-01 18:39:52 +0700463 return cu_->target64 || reg.GetRegNum() < rs_rX86_SP.GetRegNum();
Mark Mendelle87f9b52014-04-30 14:13:18 -0400464}
465
Brian Carlstrom7940e442013-07-12 13:46:57 -0700466/* Clobber all regs that might be used by an external C call */
Vladimir Marko31c2aac2013-12-09 16:31:19 +0000467void X86Mir2Lir::ClobberCallerSave() {
Elena Sayapinadd644502014-07-01 18:39:52 +0700468 if (cu_->target64) {
Serguei Katkovc3801912014-07-08 17:21:53 +0700469 Clobber(rs_rAX);
470 Clobber(rs_rCX);
471 Clobber(rs_rDX);
472 Clobber(rs_rSI);
473 Clobber(rs_rDI);
474
Chao-ying Fu35ec2b52014-06-16 16:40:31 -0700475 Clobber(rs_r8);
476 Clobber(rs_r9);
477 Clobber(rs_r10);
478 Clobber(rs_r11);
479
480 Clobber(rs_fr8);
481 Clobber(rs_fr9);
482 Clobber(rs_fr10);
483 Clobber(rs_fr11);
Serguei Katkovc3801912014-07-08 17:21:53 +0700484 } else {
485 Clobber(rs_rAX);
486 Clobber(rs_rCX);
487 Clobber(rs_rDX);
488 Clobber(rs_rBX);
Chao-ying Fu35ec2b52014-06-16 16:40:31 -0700489 }
Serguei Katkovc3801912014-07-08 17:21:53 +0700490
491 Clobber(rs_fr0);
492 Clobber(rs_fr1);
493 Clobber(rs_fr2);
494 Clobber(rs_fr3);
495 Clobber(rs_fr4);
496 Clobber(rs_fr5);
497 Clobber(rs_fr6);
498 Clobber(rs_fr7);
Brian Carlstrom7940e442013-07-12 13:46:57 -0700499}
500
501RegLocation X86Mir2Lir::GetReturnWideAlt() {
502 RegLocation res = LocCReturnWide();
buzbee091cc402014-03-31 10:14:40 -0700503 DCHECK(res.reg.GetLowReg() == rs_rAX.GetReg());
504 DCHECK(res.reg.GetHighReg() == rs_rDX.GetReg());
505 Clobber(rs_rAX);
506 Clobber(rs_rDX);
507 MarkInUse(rs_rAX);
508 MarkInUse(rs_rDX);
509 MarkWide(res.reg);
Brian Carlstrom7940e442013-07-12 13:46:57 -0700510 return res;
511}
512
Brian Carlstrom2ce745c2013-07-17 17:44:30 -0700513RegLocation X86Mir2Lir::GetReturnAlt() {
Brian Carlstrom7940e442013-07-12 13:46:57 -0700514 RegLocation res = LocCReturn();
buzbee091cc402014-03-31 10:14:40 -0700515 res.reg.SetReg(rs_rDX.GetReg());
516 Clobber(rs_rDX);
517 MarkInUse(rs_rDX);
Brian Carlstrom7940e442013-07-12 13:46:57 -0700518 return res;
519}
520
Brian Carlstrom7940e442013-07-12 13:46:57 -0700521/* To be used when explicitly managing register use */
Brian Carlstrom2ce745c2013-07-17 17:44:30 -0700522void X86Mir2Lir::LockCallTemps() {
buzbee091cc402014-03-31 10:14:40 -0700523 LockTemp(rs_rX86_ARG0);
524 LockTemp(rs_rX86_ARG1);
525 LockTemp(rs_rX86_ARG2);
526 LockTemp(rs_rX86_ARG3);
Elena Sayapinadd644502014-07-01 18:39:52 +0700527 if (cu_->target64) {
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700528 LockTemp(rs_rX86_ARG4);
529 LockTemp(rs_rX86_ARG5);
530 LockTemp(rs_rX86_FARG0);
531 LockTemp(rs_rX86_FARG1);
532 LockTemp(rs_rX86_FARG2);
533 LockTemp(rs_rX86_FARG3);
534 LockTemp(rs_rX86_FARG4);
535 LockTemp(rs_rX86_FARG5);
536 LockTemp(rs_rX86_FARG6);
537 LockTemp(rs_rX86_FARG7);
538 }
Brian Carlstrom7940e442013-07-12 13:46:57 -0700539}
540
541/* To be used when explicitly managing register use */
Brian Carlstrom2ce745c2013-07-17 17:44:30 -0700542void X86Mir2Lir::FreeCallTemps() {
buzbee091cc402014-03-31 10:14:40 -0700543 FreeTemp(rs_rX86_ARG0);
544 FreeTemp(rs_rX86_ARG1);
545 FreeTemp(rs_rX86_ARG2);
546 FreeTemp(rs_rX86_ARG3);
Elena Sayapinadd644502014-07-01 18:39:52 +0700547 if (cu_->target64) {
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700548 FreeTemp(rs_rX86_ARG4);
549 FreeTemp(rs_rX86_ARG5);
550 FreeTemp(rs_rX86_FARG0);
551 FreeTemp(rs_rX86_FARG1);
552 FreeTemp(rs_rX86_FARG2);
553 FreeTemp(rs_rX86_FARG3);
554 FreeTemp(rs_rX86_FARG4);
555 FreeTemp(rs_rX86_FARG5);
556 FreeTemp(rs_rX86_FARG6);
557 FreeTemp(rs_rX86_FARG7);
558 }
Brian Carlstrom7940e442013-07-12 13:46:57 -0700559}
560
Razvan A Lupusoru99ad7232014-02-25 17:41:08 -0800561bool X86Mir2Lir::ProvidesFullMemoryBarrier(X86OpCode opcode) {
562 switch (opcode) {
563 case kX86LockCmpxchgMR:
564 case kX86LockCmpxchgAR:
Ian Rogers0f9b9c52014-06-09 01:32:12 -0700565 case kX86LockCmpxchg64M:
566 case kX86LockCmpxchg64A:
Razvan A Lupusoru99ad7232014-02-25 17:41:08 -0800567 case kX86XchgMR:
568 case kX86Mfence:
569 // Atomic memory instructions provide full barrier.
570 return true;
571 default:
572 break;
573 }
574
575 // Conservative if cannot prove it provides full barrier.
576 return false;
577}
578
Andreas Gampeb14329f2014-05-15 11:16:06 -0700579bool X86Mir2Lir::GenMemBarrier(MemBarrierKind barrier_kind) {
Brian Carlstrom7940e442013-07-12 13:46:57 -0700580#if ANDROID_SMP != 0
Razvan A Lupusoru99ad7232014-02-25 17:41:08 -0800581 // Start off with using the last LIR as the barrier. If it is not enough, then we will update it.
582 LIR* mem_barrier = last_lir_insn_;
583
Andreas Gampeb14329f2014-05-15 11:16:06 -0700584 bool ret = false;
Razvan A Lupusoru99ad7232014-02-25 17:41:08 -0800585 /*
Hans Boehm48f5c472014-06-27 14:50:10 -0700586 * According to the JSR-133 Cookbook, for x86 only StoreLoad/AnyAny barriers need memory fence.
587 * All other barriers (LoadAny, AnyStore, StoreStore) are nops due to the x86 memory model.
588 * For those cases, all we need to ensure is that there is a scheduling barrier in place.
Razvan A Lupusoru99ad7232014-02-25 17:41:08 -0800589 */
Hans Boehm48f5c472014-06-27 14:50:10 -0700590 if (barrier_kind == kAnyAny) {
Razvan A Lupusoru99ad7232014-02-25 17:41:08 -0800591 // If no LIR exists already that can be used a barrier, then generate an mfence.
592 if (mem_barrier == nullptr) {
593 mem_barrier = NewLIR0(kX86Mfence);
Andreas Gampeb14329f2014-05-15 11:16:06 -0700594 ret = true;
Razvan A Lupusoru99ad7232014-02-25 17:41:08 -0800595 }
596
597 // If last instruction does not provide full barrier, then insert an mfence.
598 if (ProvidesFullMemoryBarrier(static_cast<X86OpCode>(mem_barrier->opcode)) == false) {
599 mem_barrier = NewLIR0(kX86Mfence);
Andreas Gampeb14329f2014-05-15 11:16:06 -0700600 ret = true;
Razvan A Lupusoru99ad7232014-02-25 17:41:08 -0800601 }
Jean Christophe Beylerb5bce7c2014-07-25 12:32:18 -0700602 } else if (barrier_kind == kNTStoreStore) {
603 mem_barrier = NewLIR0(kX86Sfence);
604 ret = true;
Razvan A Lupusoru99ad7232014-02-25 17:41:08 -0800605 }
606
607 // Now ensure that a scheduling barrier is in place.
608 if (mem_barrier == nullptr) {
609 GenBarrier();
610 } else {
611 // Mark as a scheduling barrier.
612 DCHECK(!mem_barrier->flags.use_def_invalid);
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100613 mem_barrier->u.m.def_mask = &kEncodeAll;
Razvan A Lupusoru99ad7232014-02-25 17:41:08 -0800614 }
Andreas Gampeb14329f2014-05-15 11:16:06 -0700615 return ret;
616#else
617 return false;
Brian Carlstrom7940e442013-07-12 13:46:57 -0700618#endif
619}
Bill Buzbee00e1ec62014-02-27 23:44:13 +0000620
Brian Carlstrom7940e442013-07-12 13:46:57 -0700621void X86Mir2Lir::CompilerInitializeRegAlloc() {
Elena Sayapinadd644502014-07-01 18:39:52 +0700622 if (cu_->target64) {
Vladimir Markoe39c54e2014-09-22 14:50:02 +0100623 reg_pool_.reset(new (arena_) RegisterPool(this, arena_, core_regs_64, core_regs_64q, sp_regs_64,
624 dp_regs_64, reserved_regs_64, reserved_regs_64q,
625 core_temps_64, core_temps_64q,
626 sp_temps_64, dp_temps_64));
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700627 } else {
Vladimir Markoe39c54e2014-09-22 14:50:02 +0100628 reg_pool_.reset(new (arena_) RegisterPool(this, arena_, core_regs_32, empty_pool, sp_regs_32,
629 dp_regs_32, reserved_regs_32, empty_pool,
630 core_temps_32, empty_pool,
631 sp_temps_32, dp_temps_32));
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700632 }
buzbee091cc402014-03-31 10:14:40 -0700633
634 // Target-specific adjustments.
635
Mark Mendellfe945782014-05-22 09:52:36 -0400636 // Add in XMM registers.
Serguei Katkovc3801912014-07-08 17:21:53 +0700637 const ArrayRef<const RegStorage> *xp_regs = cu_->target64 ? &xp_regs_64 : &xp_regs_32;
638 for (RegStorage reg : *xp_regs) {
Mark Mendellfe945782014-05-22 09:52:36 -0400639 RegisterInfo* info = new (arena_) RegisterInfo(reg, GetRegMaskCommon(reg));
Vladimir Markoe39c54e2014-09-22 14:50:02 +0100640 reginfo_map_[reg.GetReg()] = info;
Serguei Katkovc3801912014-07-08 17:21:53 +0700641 }
642 const ArrayRef<const RegStorage> *xp_temps = cu_->target64 ? &xp_temps_64 : &xp_temps_32;
643 for (RegStorage reg : *xp_temps) {
644 RegisterInfo* xp_reg_info = GetRegInfo(reg);
645 xp_reg_info->SetIsTemp(true);
Mark Mendellfe945782014-05-22 09:52:36 -0400646 }
647
buzbee091cc402014-03-31 10:14:40 -0700648 // Alias single precision xmm to double xmms.
649 // TODO: as needed, add larger vector sizes - alias all to the largest.
Vladimir Markoe39c54e2014-09-22 14:50:02 +0100650 for (RegisterInfo* info : reg_pool_->sp_regs_) {
buzbee091cc402014-03-31 10:14:40 -0700651 int sp_reg_num = info->GetReg().GetRegNum();
Mark Mendellfe945782014-05-22 09:52:36 -0400652 RegStorage xp_reg = RegStorage::Solo128(sp_reg_num);
653 RegisterInfo* xp_reg_info = GetRegInfo(xp_reg);
654 // 128-bit xmm vector register's master storage should refer to itself.
655 DCHECK_EQ(xp_reg_info, xp_reg_info->Master());
656
657 // Redirect 32-bit vector's master storage to 128-bit vector.
658 info->SetMaster(xp_reg_info);
659
Dmitry Petrochenko76af0d32014-06-05 21:15:08 +0700660 RegStorage dp_reg = RegStorage::FloatSolo64(sp_reg_num);
buzbee091cc402014-03-31 10:14:40 -0700661 RegisterInfo* dp_reg_info = GetRegInfo(dp_reg);
Mark Mendellfe945782014-05-22 09:52:36 -0400662 // Redirect 64-bit vector's master storage to 128-bit vector.
663 dp_reg_info->SetMaster(xp_reg_info);
Dmitry Petrochenko76af0d32014-06-05 21:15:08 +0700664 // Singles should show a single 32-bit mask bit, at first referring to the low half.
665 DCHECK_EQ(info->StorageMask(), 0x1U);
666 }
667
Elena Sayapinadd644502014-07-01 18:39:52 +0700668 if (cu_->target64) {
Dmitry Petrochenko76af0d32014-06-05 21:15:08 +0700669 // Alias 32bit W registers to corresponding 64bit X registers.
Vladimir Markoe39c54e2014-09-22 14:50:02 +0100670 for (RegisterInfo* info : reg_pool_->core_regs_) {
Dmitry Petrochenko76af0d32014-06-05 21:15:08 +0700671 int x_reg_num = info->GetReg().GetRegNum();
672 RegStorage x_reg = RegStorage::Solo64(x_reg_num);
673 RegisterInfo* x_reg_info = GetRegInfo(x_reg);
674 // 64bit X register's master storage should refer to itself.
675 DCHECK_EQ(x_reg_info, x_reg_info->Master());
676 // Redirect 32bit W master storage to 64bit X.
677 info->SetMaster(x_reg_info);
678 // 32bit W should show a single 32-bit mask bit, at first referring to the low half.
679 DCHECK_EQ(info->StorageMask(), 0x1U);
680 }
Brian Carlstrom7940e442013-07-12 13:46:57 -0700681 }
buzbee091cc402014-03-31 10:14:40 -0700682
683 // Don't start allocating temps at r0/s0/d0 or you may clobber return regs in early-exit methods.
684 // TODO: adjust for x86/hard float calling convention.
685 reg_pool_->next_core_reg_ = 2;
686 reg_pool_->next_sp_reg_ = 2;
687 reg_pool_->next_dp_reg_ = 1;
Brian Carlstrom7940e442013-07-12 13:46:57 -0700688}
689
Udayan Banerji60bfe7b2014-07-08 19:59:43 -0700690int X86Mir2Lir::VectorRegisterSize() {
691 return 128;
692}
693
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -0700694int X86Mir2Lir::NumReservableVectorRegisters(bool long_or_fp) {
695 int num_vector_temps = cu_->target64 ? xp_temps_64.size() : xp_temps_32.size();
696
697 // Leave a few temps for use by backend as scratch.
698 return long_or_fp ? num_vector_temps - 2 : num_vector_temps - 1;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -0700699}
700
Brian Carlstrom7940e442013-07-12 13:46:57 -0700701void X86Mir2Lir::SpillCoreRegs() {
702 if (num_core_spills_ == 0) {
703 return;
704 }
705 // Spill mask not including fake return address register
buzbee091cc402014-03-31 10:14:40 -0700706 uint32_t mask = core_spill_mask_ & ~(1 << rs_rRET.GetRegNum());
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700707 int offset = frame_size_ - (GetInstructionSetPointerSize(cu_->instruction_set) * num_core_spills_);
Serguei Katkovc3801912014-07-08 17:21:53 +0700708 OpSize size = cu_->target64 ? k64 : k32;
Brian Carlstrom7940e442013-07-12 13:46:57 -0700709 for (int reg = 0; mask; mask >>= 1, reg++) {
710 if (mask & 0x1) {
Serguei Katkovc3801912014-07-08 17:21:53 +0700711 StoreBaseDisp(rs_rX86_SP, offset, cu_->target64 ? RegStorage::Solo64(reg) : RegStorage::Solo32(reg),
712 size, kNotVolatile);
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700713 offset += GetInstructionSetPointerSize(cu_->instruction_set);
Brian Carlstrom7940e442013-07-12 13:46:57 -0700714 }
715 }
716}
717
718void X86Mir2Lir::UnSpillCoreRegs() {
719 if (num_core_spills_ == 0) {
720 return;
721 }
722 // Spill mask not including fake return address register
buzbee091cc402014-03-31 10:14:40 -0700723 uint32_t mask = core_spill_mask_ & ~(1 << rs_rRET.GetRegNum());
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700724 int offset = frame_size_ - (GetInstructionSetPointerSize(cu_->instruction_set) * num_core_spills_);
Serguei Katkovc3801912014-07-08 17:21:53 +0700725 OpSize size = cu_->target64 ? k64 : k32;
Brian Carlstrom7940e442013-07-12 13:46:57 -0700726 for (int reg = 0; mask; mask >>= 1, reg++) {
727 if (mask & 0x1) {
Serguei Katkovc3801912014-07-08 17:21:53 +0700728 LoadBaseDisp(rs_rX86_SP, offset, cu_->target64 ? RegStorage::Solo64(reg) : RegStorage::Solo32(reg),
729 size, kNotVolatile);
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700730 offset += GetInstructionSetPointerSize(cu_->instruction_set);
Brian Carlstrom7940e442013-07-12 13:46:57 -0700731 }
732 }
733}
734
Serguei Katkovc3801912014-07-08 17:21:53 +0700735void X86Mir2Lir::SpillFPRegs() {
736 if (num_fp_spills_ == 0) {
737 return;
738 }
739 uint32_t mask = fp_spill_mask_;
740 int offset = frame_size_ - (GetInstructionSetPointerSize(cu_->instruction_set) * (num_fp_spills_ + num_core_spills_));
741 for (int reg = 0; mask; mask >>= 1, reg++) {
742 if (mask & 0x1) {
743 StoreBaseDisp(rs_rX86_SP, offset, RegStorage::FloatSolo64(reg),
744 k64, kNotVolatile);
745 offset += sizeof(double);
746 }
747 }
748}
749void X86Mir2Lir::UnSpillFPRegs() {
750 if (num_fp_spills_ == 0) {
751 return;
752 }
753 uint32_t mask = fp_spill_mask_;
754 int offset = frame_size_ - (GetInstructionSetPointerSize(cu_->instruction_set) * (num_fp_spills_ + num_core_spills_));
755 for (int reg = 0; mask; mask >>= 1, reg++) {
756 if (mask & 0x1) {
757 LoadBaseDisp(rs_rX86_SP, offset, RegStorage::FloatSolo64(reg),
758 k64, kNotVolatile);
759 offset += sizeof(double);
760 }
761 }
762}
763
764
Brian Carlstrom2ce745c2013-07-17 17:44:30 -0700765bool X86Mir2Lir::IsUnconditionalBranch(LIR* lir) {
Brian Carlstrom7940e442013-07-12 13:46:57 -0700766 return (lir->opcode == kX86Jmp8 || lir->opcode == kX86Jmp32);
767}
768
Vladimir Marko674744e2014-04-24 15:18:26 +0100769RegisterClass X86Mir2Lir::RegClassForFieldLoadStore(OpSize size, bool is_volatile) {
Chao-ying Fue0ccdc02014-06-06 17:32:37 -0700770 // X86_64 can handle any size.
Elena Sayapinadd644502014-07-01 18:39:52 +0700771 if (cu_->target64) {
Chao-ying Fu06839f82014-08-14 15:59:17 -0700772 return RegClassBySize(size);
Chao-ying Fue0ccdc02014-06-06 17:32:37 -0700773 }
774
Vladimir Marko674744e2014-04-24 15:18:26 +0100775 if (UNLIKELY(is_volatile)) {
776 // On x86, atomic 64-bit load/store requires an fp register.
777 // Smaller aligned load/store is atomic for both core and fp registers.
778 if (size == k64 || size == kDouble) {
779 return kFPReg;
780 }
781 }
782 return RegClassBySize(size);
783}
784
Elena Sayapinadd644502014-07-01 18:39:52 +0700785X86Mir2Lir::X86Mir2Lir(CompilationUnit* cu, MIRGraph* mir_graph, ArenaAllocator* arena)
Mark Mendell55d0eac2014-02-06 11:02:52 -0800786 : Mir2Lir(cu, mir_graph, arena),
Ian Rogersdd7624d2014-03-14 17:43:00 -0700787 base_of_code_(nullptr), store_method_addr_(false), store_method_addr_used_(false),
Vladimir Markoe39c54e2014-09-22 14:50:02 +0100788 method_address_insns_(arena->Adapter()),
789 class_type_address_insns_(arena->Adapter()),
790 call_method_insns_(arena->Adapter()),
Elena Sayapinadd644502014-07-01 18:39:52 +0700791 stack_decrement_(nullptr), stack_increment_(nullptr),
Mark Mendelld65c51a2014-04-29 16:55:20 -0400792 const_vectors_(nullptr) {
Vladimir Markoe39c54e2014-09-22 14:50:02 +0100793 method_address_insns_.reserve(100);
794 class_type_address_insns_.reserve(100);
795 call_method_insns_.reserve(100);
Mark Mendelld65c51a2014-04-29 16:55:20 -0400796 store_method_addr_used_ = false;
Ian Rogersdd7624d2014-03-14 17:43:00 -0700797 if (kIsDebugBuild) {
798 for (int i = 0; i < kX86Last; i++) {
799 if (X86Mir2Lir::EncodingMap[i].opcode != i) {
800 LOG(FATAL) << "Encoding order for " << X86Mir2Lir::EncodingMap[i].name
Mark Mendelld65c51a2014-04-29 16:55:20 -0400801 << " is wrong: expecting " << i << ", seeing "
802 << static_cast<int>(X86Mir2Lir::EncodingMap[i].opcode);
Ian Rogersdd7624d2014-03-14 17:43:00 -0700803 }
Brian Carlstrom7940e442013-07-12 13:46:57 -0700804 }
805 }
Elena Sayapinadd644502014-07-01 18:39:52 +0700806 if (cu_->target64) {
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700807 rs_rX86_SP = rs_rX86_SP_64;
808
809 rs_rX86_ARG0 = rs_rDI;
810 rs_rX86_ARG1 = rs_rSI;
811 rs_rX86_ARG2 = rs_rDX;
812 rs_rX86_ARG3 = rs_rCX;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700813 rs_rX86_ARG4 = rs_r8;
814 rs_rX86_ARG5 = rs_r9;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700815 rs_rX86_FARG0 = rs_fr0;
816 rs_rX86_FARG1 = rs_fr1;
817 rs_rX86_FARG2 = rs_fr2;
818 rs_rX86_FARG3 = rs_fr3;
819 rs_rX86_FARG4 = rs_fr4;
820 rs_rX86_FARG5 = rs_fr5;
821 rs_rX86_FARG6 = rs_fr6;
822 rs_rX86_FARG7 = rs_fr7;
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700823 rX86_ARG0 = rDI;
824 rX86_ARG1 = rSI;
825 rX86_ARG2 = rDX;
826 rX86_ARG3 = rCX;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700827 rX86_ARG4 = r8;
828 rX86_ARG5 = r9;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700829 rX86_FARG0 = fr0;
830 rX86_FARG1 = fr1;
831 rX86_FARG2 = fr2;
832 rX86_FARG3 = fr3;
833 rX86_FARG4 = fr4;
834 rX86_FARG5 = fr5;
835 rX86_FARG6 = fr6;
836 rX86_FARG7 = fr7;
Mark Mendell55884bc2014-06-10 10:21:29 -0400837 rs_rX86_INVOKE_TGT = rs_rDI;
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700838 } else {
839 rs_rX86_SP = rs_rX86_SP_32;
840
841 rs_rX86_ARG0 = rs_rAX;
842 rs_rX86_ARG1 = rs_rCX;
843 rs_rX86_ARG2 = rs_rDX;
844 rs_rX86_ARG3 = rs_rBX;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700845 rs_rX86_ARG4 = RegStorage::InvalidReg();
846 rs_rX86_ARG5 = RegStorage::InvalidReg();
847 rs_rX86_FARG0 = rs_rAX;
848 rs_rX86_FARG1 = rs_rCX;
849 rs_rX86_FARG2 = rs_rDX;
850 rs_rX86_FARG3 = rs_rBX;
851 rs_rX86_FARG4 = RegStorage::InvalidReg();
852 rs_rX86_FARG5 = RegStorage::InvalidReg();
853 rs_rX86_FARG6 = RegStorage::InvalidReg();
854 rs_rX86_FARG7 = RegStorage::InvalidReg();
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700855 rX86_ARG0 = rAX;
856 rX86_ARG1 = rCX;
857 rX86_ARG2 = rDX;
858 rX86_ARG3 = rBX;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700859 rX86_FARG0 = rAX;
860 rX86_FARG1 = rCX;
861 rX86_FARG2 = rDX;
862 rX86_FARG3 = rBX;
Mark Mendell55884bc2014-06-10 10:21:29 -0400863 rs_rX86_INVOKE_TGT = rs_rAX;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +0700864 // TODO(64): Initialize with invalid reg
865// rX86_ARG4 = RegStorage::InvalidReg();
866// rX86_ARG5 = RegStorage::InvalidReg();
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700867 }
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700868 rs_rX86_RET0 = rs_rAX;
869 rs_rX86_RET1 = rs_rDX;
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700870 rs_rX86_COUNT = rs_rCX;
Dmitry Petrochenko9ee801f2014-05-12 11:31:37 +0700871 rX86_RET0 = rAX;
872 rX86_RET1 = rDX;
873 rX86_INVOKE_TGT = rAX;
874 rX86_COUNT = rCX;
Brian Carlstrom7940e442013-07-12 13:46:57 -0700875}
876
877Mir2Lir* X86CodeGenerator(CompilationUnit* const cu, MIRGraph* const mir_graph,
878 ArenaAllocator* const arena) {
Elena Sayapinadd644502014-07-01 18:39:52 +0700879 return new X86Mir2Lir(cu, mir_graph, arena);
Brian Carlstrom7940e442013-07-12 13:46:57 -0700880}
881
Andreas Gampe98430592014-07-27 19:44:50 -0700882// Not used in x86(-64)
883RegStorage X86Mir2Lir::LoadHelper(QuickEntrypointEnum trampoline) {
Andreas Gampe2f244e92014-05-08 03:35:25 -0700884 LOG(FATAL) << "Unexpected use of LoadHelper in x86";
885 return RegStorage::InvalidReg();
886}
887
Dave Allisonb373e092014-02-20 16:06:36 -0800888LIR* X86Mir2Lir::CheckSuspendUsingLoad() {
Dave Allison69dfe512014-07-11 17:11:58 +0000889 // First load the pointer in fs:[suspend-trigger] into eax
890 // Then use a test instruction to indirect via that address.
Dave Allisondfd3b472014-07-16 16:04:32 -0700891 if (cu_->target64) {
892 NewLIR2(kX86Mov64RT, rs_rAX.GetReg(),
893 Thread::ThreadSuspendTriggerOffset<8>().Int32Value());
894 } else {
895 NewLIR2(kX86Mov32RT, rs_rAX.GetReg(),
896 Thread::ThreadSuspendTriggerOffset<4>().Int32Value());
897 }
Dave Allison69dfe512014-07-11 17:11:58 +0000898 return NewLIR3(kX86Test32RM, rs_rAX.GetReg(), rs_rAX.GetReg(), 0);
Dave Allisonb373e092014-02-20 16:06:36 -0800899}
900
Brian Carlstrom2ce745c2013-07-17 17:44:30 -0700901uint64_t X86Mir2Lir::GetTargetInstFlags(int opcode) {
buzbee409fe942013-10-11 10:49:56 -0700902 DCHECK(!IsPseudoLirOp(opcode));
Brian Carlstrom7940e442013-07-12 13:46:57 -0700903 return X86Mir2Lir::EncodingMap[opcode].flags;
904}
905
Brian Carlstrom2ce745c2013-07-17 17:44:30 -0700906const char* X86Mir2Lir::GetTargetInstName(int opcode) {
buzbee409fe942013-10-11 10:49:56 -0700907 DCHECK(!IsPseudoLirOp(opcode));
Brian Carlstrom7940e442013-07-12 13:46:57 -0700908 return X86Mir2Lir::EncodingMap[opcode].name;
909}
910
Brian Carlstrom2ce745c2013-07-17 17:44:30 -0700911const char* X86Mir2Lir::GetTargetInstFmt(int opcode) {
buzbee409fe942013-10-11 10:49:56 -0700912 DCHECK(!IsPseudoLirOp(opcode));
Brian Carlstrom7940e442013-07-12 13:46:57 -0700913 return X86Mir2Lir::EncodingMap[opcode].fmt;
914}
915
Bill Buzbeed61ba4b2014-01-13 21:44:01 +0000916void X86Mir2Lir::GenConstWide(RegLocation rl_dest, int64_t value) {
917 // Can we do this directly to memory?
918 rl_dest = UpdateLocWide(rl_dest);
919 if ((rl_dest.location == kLocDalvikFrame) ||
920 (rl_dest.location == kLocCompilerTemp)) {
921 int32_t val_lo = Low32Bits(value);
922 int32_t val_hi = High32Bits(value);
Chao-ying Fua77ee512014-07-01 17:43:41 -0700923 int r_base = rs_rX86_SP.GetReg();
Bill Buzbeed61ba4b2014-01-13 21:44:01 +0000924 int displacement = SRegOffset(rl_dest.s_reg_low);
925
Vladimir Marko8dea81c2014-06-06 14:50:36 +0100926 ScopedMemRefType mem_ref_type(this, ResourceMask::kDalvikReg);
buzbee2700f7e2014-03-07 09:46:20 -0800927 LIR * store = NewLIR3(kX86Mov32MI, r_base, displacement + LOWORD_OFFSET, val_lo);
Bill Buzbeed61ba4b2014-01-13 21:44:01 +0000928 AnnotateDalvikRegAccess(store, (displacement + LOWORD_OFFSET) >> 2,
929 false /* is_load */, true /* is64bit */);
buzbee2700f7e2014-03-07 09:46:20 -0800930 store = NewLIR3(kX86Mov32MI, r_base, displacement + HIWORD_OFFSET, val_hi);
Bill Buzbeed61ba4b2014-01-13 21:44:01 +0000931 AnnotateDalvikRegAccess(store, (displacement + HIWORD_OFFSET) >> 2,
932 false /* is_load */, true /* is64bit */);
933 return;
934 }
935
936 // Just use the standard code to do the generation.
937 Mir2Lir::GenConstWide(rl_dest, value);
938}
Mark Mendelle02d48f2014-01-15 11:19:23 -0800939
940// TODO: Merge with existing RegLocation dumper in vreg_analysis.cc
941void X86Mir2Lir::DumpRegLocation(RegLocation loc) {
942 LOG(INFO) << "location: " << loc.location << ','
943 << (loc.wide ? " w" : " ")
944 << (loc.defined ? " D" : " ")
945 << (loc.is_const ? " c" : " ")
946 << (loc.fp ? " F" : " ")
947 << (loc.core ? " C" : " ")
948 << (loc.ref ? " r" : " ")
949 << (loc.high_word ? " h" : " ")
950 << (loc.home ? " H" : " ")
buzbee2700f7e2014-03-07 09:46:20 -0800951 << ", low: " << static_cast<int>(loc.reg.GetLowReg())
Bill Buzbee00e1ec62014-02-27 23:44:13 +0000952 << ", high: " << static_cast<int>(loc.reg.GetHighReg())
Mark Mendelle02d48f2014-01-15 11:19:23 -0800953 << ", s_reg: " << loc.s_reg_low
954 << ", orig: " << loc.orig_sreg;
955}
956
Mark Mendell67c39c42014-01-31 17:28:00 -0800957void X86Mir2Lir::Materialize() {
958 // A good place to put the analysis before starting.
959 AnalyzeMIR();
960
961 // Now continue with regular code generation.
962 Mir2Lir::Materialize();
963}
964
Jeff Hao49161ce2014-03-12 11:05:25 -0700965void X86Mir2Lir::LoadMethodAddress(const MethodReference& target_method, InvokeType type,
Mark Mendell55d0eac2014-02-06 11:02:52 -0800966 SpecialTargetRegister symbolic_reg) {
967 /*
968 * For x86, just generate a 32 bit move immediate instruction, that will be filled
969 * in at 'link time'. For now, put a unique value based on target to ensure that
970 * code deduplication works.
971 */
Jeff Hao49161ce2014-03-12 11:05:25 -0700972 int target_method_idx = target_method.dex_method_index;
973 const DexFile* target_dex_file = target_method.dex_file;
974 const DexFile::MethodId& target_method_id = target_dex_file->GetMethodId(target_method_idx);
975 uintptr_t target_method_id_ptr = reinterpret_cast<uintptr_t>(&target_method_id);
Mark Mendell55d0eac2014-02-06 11:02:52 -0800976
Jeff Hao49161ce2014-03-12 11:05:25 -0700977 // Generate the move instruction with the unique pointer and save index, dex_file, and type.
Andreas Gampeccc60262014-07-04 18:02:38 -0700978 LIR *move = RawLIR(current_dalvik_offset_, kX86Mov32RI,
979 TargetReg(symbolic_reg, kNotWide).GetReg(),
Jeff Hao49161ce2014-03-12 11:05:25 -0700980 static_cast<int>(target_method_id_ptr), target_method_idx,
981 WrapPointer(const_cast<DexFile*>(target_dex_file)), type);
Mark Mendell55d0eac2014-02-06 11:02:52 -0800982 AppendLIR(move);
Vladimir Markoe39c54e2014-09-22 14:50:02 +0100983 method_address_insns_.push_back(move);
Mark Mendell55d0eac2014-02-06 11:02:52 -0800984}
985
Fred Shihe7f82e22014-08-06 10:46:37 -0700986void X86Mir2Lir::LoadClassType(const DexFile& dex_file, uint32_t type_idx,
987 SpecialTargetRegister symbolic_reg) {
Mark Mendell55d0eac2014-02-06 11:02:52 -0800988 /*
989 * For x86, just generate a 32 bit move immediate instruction, that will be filled
990 * in at 'link time'. For now, put a unique value based on target to ensure that
991 * code deduplication works.
992 */
Fred Shihe7f82e22014-08-06 10:46:37 -0700993 const DexFile::TypeId& id = dex_file.GetTypeId(type_idx);
Mark Mendell55d0eac2014-02-06 11:02:52 -0800994 uintptr_t ptr = reinterpret_cast<uintptr_t>(&id);
995
996 // Generate the move instruction with the unique pointer and save index and type.
Andreas Gampeccc60262014-07-04 18:02:38 -0700997 LIR *move = RawLIR(current_dalvik_offset_, kX86Mov32RI,
998 TargetReg(symbolic_reg, kNotWide).GetReg(),
Fred Shihe7f82e22014-08-06 10:46:37 -0700999 static_cast<int>(ptr), type_idx,
1000 WrapPointer(const_cast<DexFile*>(&dex_file)));
Mark Mendell55d0eac2014-02-06 11:02:52 -08001001 AppendLIR(move);
Vladimir Markoe39c54e2014-09-22 14:50:02 +01001002 class_type_address_insns_.push_back(move);
Mark Mendell55d0eac2014-02-06 11:02:52 -08001003}
1004
Jeff Hao49161ce2014-03-12 11:05:25 -07001005LIR *X86Mir2Lir::CallWithLinkerFixup(const MethodReference& target_method, InvokeType type) {
Mark Mendell55d0eac2014-02-06 11:02:52 -08001006 /*
1007 * For x86, just generate a 32 bit call relative instruction, that will be filled
1008 * in at 'link time'. For now, put a unique value based on target to ensure that
1009 * code deduplication works.
1010 */
Jeff Hao49161ce2014-03-12 11:05:25 -07001011 int target_method_idx = target_method.dex_method_index;
1012 const DexFile* target_dex_file = target_method.dex_file;
1013 const DexFile::MethodId& target_method_id = target_dex_file->GetMethodId(target_method_idx);
1014 uintptr_t target_method_id_ptr = reinterpret_cast<uintptr_t>(&target_method_id);
Mark Mendell55d0eac2014-02-06 11:02:52 -08001015
Jeff Hao49161ce2014-03-12 11:05:25 -07001016 // Generate the call instruction with the unique pointer and save index, dex_file, and type.
1017 LIR *call = RawLIR(current_dalvik_offset_, kX86CallI, static_cast<int>(target_method_id_ptr),
1018 target_method_idx, WrapPointer(const_cast<DexFile*>(target_dex_file)), type);
Mark Mendell55d0eac2014-02-06 11:02:52 -08001019 AppendLIR(call);
Vladimir Markoe39c54e2014-09-22 14:50:02 +01001020 call_method_insns_.push_back(call);
Mark Mendell55d0eac2014-02-06 11:02:52 -08001021 return call;
1022}
1023
1024void X86Mir2Lir::InstallLiteralPools() {
1025 // These are handled differently for x86.
1026 DCHECK(code_literal_list_ == nullptr);
1027 DCHECK(method_literal_list_ == nullptr);
1028 DCHECK(class_literal_list_ == nullptr);
1029
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001030
Mark Mendelld65c51a2014-04-29 16:55:20 -04001031 if (const_vectors_ != nullptr) {
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001032 // Vector literals must be 16-byte aligned. The header that is placed
1033 // in the code section causes misalignment so we take it into account.
1034 // Otherwise, we are sure that for x86 method is aligned to 16.
1035 DCHECK_EQ(GetInstructionSetAlignment(cu_->instruction_set), 16u);
1036 uint32_t bytes_to_fill = (0x10 - ((code_buffer_.size() + sizeof(OatQuickMethodHeader)) & 0xF)) & 0xF;
1037 while (bytes_to_fill > 0) {
1038 code_buffer_.push_back(0);
1039 bytes_to_fill--;
Mark Mendelld65c51a2014-04-29 16:55:20 -04001040 }
1041
Mark Mendelld65c51a2014-04-29 16:55:20 -04001042 for (LIR *p = const_vectors_; p != nullptr; p = p->next) {
Tong Shen547cdfd2014-08-05 01:54:19 -07001043 PushWord(&code_buffer_, p->operands[0]);
1044 PushWord(&code_buffer_, p->operands[1]);
1045 PushWord(&code_buffer_, p->operands[2]);
1046 PushWord(&code_buffer_, p->operands[3]);
Mark Mendelld65c51a2014-04-29 16:55:20 -04001047 }
1048 }
1049
Mark Mendell55d0eac2014-02-06 11:02:52 -08001050 // Handle the fixups for methods.
Vladimir Markoe39c54e2014-09-22 14:50:02 +01001051 for (LIR* p : method_address_insns_) {
Mark Mendell55d0eac2014-02-06 11:02:52 -08001052 DCHECK_EQ(p->opcode, kX86Mov32RI);
Jeff Hao49161ce2014-03-12 11:05:25 -07001053 uint32_t target_method_idx = p->operands[2];
1054 const DexFile* target_dex_file =
1055 reinterpret_cast<const DexFile*>(UnwrapPointer(p->operands[3]));
Mark Mendell55d0eac2014-02-06 11:02:52 -08001056
1057 // The offset to patch is the last 4 bytes of the instruction.
1058 int patch_offset = p->offset + p->flags.size - 4;
1059 cu_->compiler_driver->AddMethodPatch(cu_->dex_file, cu_->class_def_idx,
1060 cu_->method_idx, cu_->invoke_type,
Jeff Hao49161ce2014-03-12 11:05:25 -07001061 target_method_idx, target_dex_file,
1062 static_cast<InvokeType>(p->operands[4]),
Mark Mendell55d0eac2014-02-06 11:02:52 -08001063 patch_offset);
1064 }
1065
1066 // Handle the fixups for class types.
Vladimir Markoe39c54e2014-09-22 14:50:02 +01001067 for (LIR* p : class_type_address_insns_) {
Mark Mendell55d0eac2014-02-06 11:02:52 -08001068 DCHECK_EQ(p->opcode, kX86Mov32RI);
Fred Shihe7f82e22014-08-06 10:46:37 -07001069
1070 const DexFile* class_dex_file =
1071 reinterpret_cast<const DexFile*>(UnwrapPointer(p->operands[3]));
Jeff Hao49161ce2014-03-12 11:05:25 -07001072 uint32_t target_method_idx = p->operands[2];
Mark Mendell55d0eac2014-02-06 11:02:52 -08001073
1074 // The offset to patch is the last 4 bytes of the instruction.
1075 int patch_offset = p->offset + p->flags.size - 4;
1076 cu_->compiler_driver->AddClassPatch(cu_->dex_file, cu_->class_def_idx,
Fred Shihe7f82e22014-08-06 10:46:37 -07001077 cu_->method_idx, target_method_idx, class_dex_file,
1078 patch_offset);
Mark Mendell55d0eac2014-02-06 11:02:52 -08001079 }
1080
1081 // And now the PC-relative calls to methods.
Vladimir Markoe39c54e2014-09-22 14:50:02 +01001082 for (LIR* p : call_method_insns_) {
Mark Mendell55d0eac2014-02-06 11:02:52 -08001083 DCHECK_EQ(p->opcode, kX86CallI);
Jeff Hao49161ce2014-03-12 11:05:25 -07001084 uint32_t target_method_idx = p->operands[1];
1085 const DexFile* target_dex_file =
1086 reinterpret_cast<const DexFile*>(UnwrapPointer(p->operands[2]));
Mark Mendell55d0eac2014-02-06 11:02:52 -08001087
1088 // The offset to patch is the last 4 bytes of the instruction.
1089 int patch_offset = p->offset + p->flags.size - 4;
1090 cu_->compiler_driver->AddRelativeCodePatch(cu_->dex_file, cu_->class_def_idx,
Jeff Hao49161ce2014-03-12 11:05:25 -07001091 cu_->method_idx, cu_->invoke_type,
1092 target_method_idx, target_dex_file,
1093 static_cast<InvokeType>(p->operands[3]),
Mark Mendell55d0eac2014-02-06 11:02:52 -08001094 patch_offset, -4 /* offset */);
1095 }
1096
1097 // And do the normal processing.
1098 Mir2Lir::InstallLiteralPools();
1099}
1100
DaniilSokolov70c4f062014-06-24 17:34:00 -07001101bool X86Mir2Lir::GenInlinedArrayCopyCharArray(CallInfo* info) {
DaniilSokolov70c4f062014-06-24 17:34:00 -07001102 RegLocation rl_src = info->args[0];
1103 RegLocation rl_srcPos = info->args[1];
1104 RegLocation rl_dst = info->args[2];
1105 RegLocation rl_dstPos = info->args[3];
1106 RegLocation rl_length = info->args[4];
1107 if (rl_srcPos.is_const && (mir_graph_->ConstantValue(rl_srcPos) < 0)) {
1108 return false;
1109 }
1110 if (rl_dstPos.is_const && (mir_graph_->ConstantValue(rl_dstPos) < 0)) {
1111 return false;
1112 }
1113 ClobberCallerSave();
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001114 LockCallTemps(); // Using fixed registers.
1115 RegStorage tmp_reg = cu_->target64 ? rs_r11 : rs_rBX;
1116 LoadValueDirectFixed(rl_src, rs_rAX);
1117 LoadValueDirectFixed(rl_dst, rs_rCX);
1118 LIR* src_dst_same = OpCmpBranch(kCondEq, rs_rAX, rs_rCX, nullptr);
1119 LIR* src_null_branch = OpCmpImmBranch(kCondEq, rs_rAX, 0, nullptr);
1120 LIR* dst_null_branch = OpCmpImmBranch(kCondEq, rs_rCX, 0, nullptr);
1121 LoadValueDirectFixed(rl_length, rs_rDX);
1122 // If the length of the copy is > 128 characters (256 bytes) or negative then go slow path.
1123 LIR* len_too_big = OpCmpImmBranch(kCondHi, rs_rDX, 128, nullptr);
1124 LoadValueDirectFixed(rl_src, rs_rAX);
1125 LoadWordDisp(rs_rAX, mirror::Array::LengthOffset().Int32Value(), rs_rAX);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001126 LIR* src_bad_len = nullptr;
avignatef9f0ed42014-09-17 22:35:07 +07001127 LIR* src_bad_off = nullptr;
DaniilSokolov70c4f062014-06-24 17:34:00 -07001128 LIR* srcPos_negative = nullptr;
1129 if (!rl_srcPos.is_const) {
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001130 LoadValueDirectFixed(rl_srcPos, tmp_reg);
1131 srcPos_negative = OpCmpImmBranch(kCondLt, tmp_reg, 0, nullptr);
avignatef9f0ed42014-09-17 22:35:07 +07001132 // src_pos < src_len
1133 src_bad_off = OpCmpBranch(kCondLt, rs_rAX, tmp_reg, nullptr);
1134 // src_len - src_pos < copy_len
1135 OpRegRegReg(kOpSub, tmp_reg, rs_rAX, tmp_reg);
1136 src_bad_len = OpCmpBranch(kCondLt, tmp_reg, rs_rDX, nullptr);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001137 } else {
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001138 int32_t pos_val = mir_graph_->ConstantValue(rl_srcPos.orig_sreg);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001139 if (pos_val == 0) {
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001140 src_bad_len = OpCmpBranch(kCondLt, rs_rAX, rs_rDX, nullptr);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001141 } else {
avignatef9f0ed42014-09-17 22:35:07 +07001142 // src_pos < src_len
1143 src_bad_off = OpCmpImmBranch(kCondLt, rs_rAX, pos_val, nullptr);
1144 // src_len - src_pos < copy_len
1145 OpRegRegImm(kOpSub, tmp_reg, rs_rAX, pos_val);
1146 src_bad_len = OpCmpBranch(kCondLt, tmp_reg, rs_rDX, nullptr);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001147 }
1148 }
1149 LIR* dstPos_negative = nullptr;
1150 LIR* dst_bad_len = nullptr;
avignatef9f0ed42014-09-17 22:35:07 +07001151 LIR* dst_bad_off = nullptr;
DaniilSokolov70c4f062014-06-24 17:34:00 -07001152 LoadValueDirectFixed(rl_dst, rs_rAX);
1153 LoadWordDisp(rs_rAX, mirror::Array::LengthOffset().Int32Value(), rs_rAX);
1154 if (!rl_dstPos.is_const) {
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001155 LoadValueDirectFixed(rl_dstPos, tmp_reg);
1156 dstPos_negative = OpCmpImmBranch(kCondLt, tmp_reg, 0, nullptr);
avignatef9f0ed42014-09-17 22:35:07 +07001157 // dst_pos < dst_len
1158 dst_bad_off = OpCmpBranch(kCondLt, rs_rAX, tmp_reg, nullptr);
1159 // dst_len - dst_pos < copy_len
1160 OpRegRegReg(kOpSub, tmp_reg, rs_rAX, tmp_reg);
1161 dst_bad_len = OpCmpBranch(kCondLt, tmp_reg, rs_rDX, nullptr);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001162 } else {
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001163 int32_t pos_val = mir_graph_->ConstantValue(rl_dstPos.orig_sreg);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001164 if (pos_val == 0) {
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001165 dst_bad_len = OpCmpBranch(kCondLt, rs_rAX, rs_rDX, nullptr);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001166 } else {
avignatef9f0ed42014-09-17 22:35:07 +07001167 // dst_pos < dst_len
1168 dst_bad_off = OpCmpImmBranch(kCondLt, rs_rAX, pos_val, nullptr);
1169 // dst_len - dst_pos < copy_len
1170 OpRegRegImm(kOpSub, tmp_reg, rs_rAX, pos_val);
1171 dst_bad_len = OpCmpBranch(kCondLt, tmp_reg, rs_rDX, nullptr);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001172 }
1173 }
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001174 // Everything is checked now.
1175 LoadValueDirectFixed(rl_src, rs_rAX);
1176 LoadValueDirectFixed(rl_dst, tmp_reg);
1177 LoadValueDirectFixed(rl_srcPos, rs_rCX);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001178 NewLIR5(kX86Lea32RA, rs_rAX.GetReg(), rs_rAX.GetReg(),
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001179 rs_rCX.GetReg(), 1, mirror::Array::DataOffset(2).Int32Value());
1180 // RAX now holds the address of the first src element to be copied.
DaniilSokolov70c4f062014-06-24 17:34:00 -07001181
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001182 LoadValueDirectFixed(rl_dstPos, rs_rCX);
1183 NewLIR5(kX86Lea32RA, tmp_reg.GetReg(), tmp_reg.GetReg(),
1184 rs_rCX.GetReg(), 1, mirror::Array::DataOffset(2).Int32Value() );
1185 // RBX now holds the address of the first dst element to be copied.
DaniilSokolov70c4f062014-06-24 17:34:00 -07001186
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001187 // Check if the number of elements to be copied is odd or even. If odd
DaniilSokolov70c4f062014-06-24 17:34:00 -07001188 // then copy the first element (so that the remaining number of elements
1189 // is even).
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001190 LoadValueDirectFixed(rl_length, rs_rCX);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001191 OpRegImm(kOpAnd, rs_rCX, 1);
1192 LIR* jmp_to_begin_loop = OpCmpImmBranch(kCondEq, rs_rCX, 0, nullptr);
1193 OpRegImm(kOpSub, rs_rDX, 1);
1194 LoadBaseIndexedDisp(rs_rAX, rs_rDX, 1, 0, rs_rCX, kSignedHalf);
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001195 StoreBaseIndexedDisp(tmp_reg, rs_rDX, 1, 0, rs_rCX, kSignedHalf);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001196
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001197 // Since the remaining number of elements is even, we will copy by
DaniilSokolov70c4f062014-06-24 17:34:00 -07001198 // two elements at a time.
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001199 LIR* beginLoop = NewLIR0(kPseudoTargetLabel);
1200 LIR* jmp_to_ret = OpCmpImmBranch(kCondEq, rs_rDX, 0, nullptr);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001201 OpRegImm(kOpSub, rs_rDX, 2);
1202 LoadBaseIndexedDisp(rs_rAX, rs_rDX, 1, 0, rs_rCX, kSingle);
DaniilSokolov5a5e8562014-07-17 18:58:15 -07001203 StoreBaseIndexedDisp(tmp_reg, rs_rDX, 1, 0, rs_rCX, kSingle);
DaniilSokolov70c4f062014-06-24 17:34:00 -07001204 OpUnconditionalBranch(beginLoop);
1205 LIR *check_failed = NewLIR0(kPseudoTargetLabel);
1206 LIR* launchpad_branch = OpUnconditionalBranch(nullptr);
1207 LIR *return_point = NewLIR0(kPseudoTargetLabel);
1208 jmp_to_ret->target = return_point;
1209 jmp_to_begin_loop->target = beginLoop;
1210 src_dst_same->target = check_failed;
DaniilSokolov70c4f062014-06-24 17:34:00 -07001211 len_too_big->target = check_failed;
1212 src_null_branch->target = check_failed;
1213 if (srcPos_negative != nullptr)
1214 srcPos_negative ->target = check_failed;
avignatef9f0ed42014-09-17 22:35:07 +07001215 if (src_bad_off != nullptr)
1216 src_bad_off->target = check_failed;
DaniilSokolov70c4f062014-06-24 17:34:00 -07001217 if (src_bad_len != nullptr)
1218 src_bad_len->target = check_failed;
1219 dst_null_branch->target = check_failed;
1220 if (dstPos_negative != nullptr)
1221 dstPos_negative->target = check_failed;
avignatef9f0ed42014-09-17 22:35:07 +07001222 if (dst_bad_off != nullptr)
1223 dst_bad_off->target = check_failed;
DaniilSokolov70c4f062014-06-24 17:34:00 -07001224 if (dst_bad_len != nullptr)
1225 dst_bad_len->target = check_failed;
1226 AddIntrinsicSlowPath(info, launchpad_branch, return_point);
Serguei Katkov9863daf2014-09-04 15:21:32 +07001227 ClobberCallerSave(); // We must clobber everything because slow path will return here
DaniilSokolov70c4f062014-06-24 17:34:00 -07001228 return true;
1229}
1230
1231
Mark Mendell4028a6c2014-02-19 20:06:20 -08001232/*
1233 * Fast string.index_of(I) & (II). Inline check for simple case of char <= 0xffff,
1234 * otherwise bails to standard library code.
1235 */
1236bool X86Mir2Lir::GenInlinedIndexOf(CallInfo* info, bool zero_based) {
Mark Mendell4028a6c2014-02-19 20:06:20 -08001237 RegLocation rl_obj = info->args[0];
1238 RegLocation rl_char = info->args[1];
buzbeea44d4f52014-03-05 11:26:39 -08001239 RegLocation rl_start; // Note: only present in III flavor or IndexOf.
nikolay serdjuk8bd698f2014-08-01 09:24:06 +07001240 // RBX is promotable in 64-bit mode.
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001241 RegStorage rs_tmp = cu_->target64 ? rs_r11 : rs_rBX;
1242 int start_value = -1;
Mark Mendell4028a6c2014-02-19 20:06:20 -08001243
1244 uint32_t char_value =
1245 rl_char.is_const ? mir_graph_->ConstantValue(rl_char.orig_sreg) : 0;
1246
1247 if (char_value > 0xFFFF) {
1248 // We have to punt to the real String.indexOf.
1249 return false;
1250 }
1251
1252 // Okay, we are commited to inlining this.
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001253 // EAX: 16 bit character being searched.
1254 // ECX: count: number of words to be searched.
1255 // EDI: String being searched.
1256 // EDX: temporary during execution.
1257 // EBX or R11: temporary during execution (depending on mode).
1258 // REP SCASW: search instruction.
1259
nikolay serdjuk8bd698f2014-08-01 09:24:06 +07001260 FlushAllRegs();
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001261
buzbeea0cd2d72014-06-01 09:33:49 -07001262 RegLocation rl_return = GetReturn(kCoreReg);
Mark Mendell4028a6c2014-02-19 20:06:20 -08001263 RegLocation rl_dest = InlineTarget(info);
1264
1265 // Is the string non-NULL?
buzbee2700f7e2014-03-07 09:46:20 -08001266 LoadValueDirectFixed(rl_obj, rs_rDX);
1267 GenNullCheck(rs_rDX, info->opt_flags);
Vladimir Marko3bc86152014-03-13 14:11:28 +00001268 info->opt_flags |= MIR_IGNORE_NULL_CHECK; // Record that we've null checked.
Mark Mendell4028a6c2014-02-19 20:06:20 -08001269
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001270 LIR *slowpath_branch = nullptr, *length_compare = nullptr;
1271
1272 // We need the value in EAX.
Mark Mendell4028a6c2014-02-19 20:06:20 -08001273 if (rl_char.is_const) {
buzbee2700f7e2014-03-07 09:46:20 -08001274 LoadConstantNoClobber(rs_rAX, char_value);
Mark Mendell4028a6c2014-02-19 20:06:20 -08001275 } else {
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001276 // Does the character fit in 16 bits? Compare it at runtime.
buzbee2700f7e2014-03-07 09:46:20 -08001277 LoadValueDirectFixed(rl_char, rs_rAX);
Mingyao Yang3a74d152014-04-21 15:39:44 -07001278 slowpath_branch = OpCmpImmBranch(kCondGt, rs_rAX, 0xFFFF, nullptr);
Mark Mendell4028a6c2014-02-19 20:06:20 -08001279 }
1280
1281 // From here down, we know that we are looking for a char that fits in 16 bits.
Mark Mendelle19c91f2014-02-25 08:19:08 -08001282 // Location of reference to data array within the String object.
1283 int value_offset = mirror::String::ValueOffset().Int32Value();
1284 // Location of count within the String object.
1285 int count_offset = mirror::String::CountOffset().Int32Value();
1286 // Starting offset within data array.
1287 int offset_offset = mirror::String::OffsetOffset().Int32Value();
1288 // Start of char data with array_.
1289 int data_offset = mirror::Array::DataOffset(sizeof(uint16_t)).Int32Value();
Mark Mendell4028a6c2014-02-19 20:06:20 -08001290
Dave Allison69dfe512014-07-11 17:11:58 +00001291 // Compute the number of words to search in to rCX.
1292 Load32Disp(rs_rDX, count_offset, rs_rCX);
1293
Dave Allisondfd3b472014-07-16 16:04:32 -07001294 // Possible signal here due to null pointer dereference.
1295 // Note that the signal handler will expect the top word of
1296 // the stack to be the ArtMethod*. If the PUSH edi instruction
1297 // below is ahead of the load above then this will not be true
1298 // and the signal handler will not work.
1299 MarkPossibleNullPointerException(0);
Dave Allison69dfe512014-07-11 17:11:58 +00001300
Dave Allisondfd3b472014-07-16 16:04:32 -07001301 if (!cu_->target64) {
nikolay serdjuk8bd698f2014-08-01 09:24:06 +07001302 // EDI is promotable in 32-bit mode.
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001303 NewLIR1(kX86Push32R, rs_rDI.GetReg());
1304 }
Mark Mendell4028a6c2014-02-19 20:06:20 -08001305
Mark Mendell4028a6c2014-02-19 20:06:20 -08001306 if (zero_based) {
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001307 // Start index is not present.
Mark Mendell4028a6c2014-02-19 20:06:20 -08001308 // We have to handle an empty string. Use special instruction JECXZ.
1309 length_compare = NewLIR0(kX86Jecxz8);
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001310
1311 // Copy the number of words to search in a temporary register.
1312 // We will use the register at the end to calculate result.
1313 OpRegReg(kOpMov, rs_tmp, rs_rCX);
Mark Mendell4028a6c2014-02-19 20:06:20 -08001314 } else {
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001315 // Start index is present.
buzbeea44d4f52014-03-05 11:26:39 -08001316 rl_start = info->args[2];
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001317
Mark Mendell4028a6c2014-02-19 20:06:20 -08001318 // We have to offset by the start index.
1319 if (rl_start.is_const) {
1320 start_value = mir_graph_->ConstantValue(rl_start.orig_sreg);
1321 start_value = std::max(start_value, 0);
1322
1323 // Is the start > count?
buzbee2700f7e2014-03-07 09:46:20 -08001324 length_compare = OpCmpImmBranch(kCondLe, rs_rCX, start_value, nullptr);
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001325 OpRegImm(kOpMov, rs_rDI, start_value);
1326
1327 // Copy the number of words to search in a temporary register.
1328 // We will use the register at the end to calculate result.
1329 OpRegReg(kOpMov, rs_tmp, rs_rCX);
Mark Mendell4028a6c2014-02-19 20:06:20 -08001330
1331 if (start_value != 0) {
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001332 // Decrease the number of words to search by the start index.
buzbee2700f7e2014-03-07 09:46:20 -08001333 OpRegImm(kOpSub, rs_rCX, start_value);
Mark Mendell4028a6c2014-02-19 20:06:20 -08001334 }
1335 } else {
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001336 // Handle "start index < 0" case.
1337 if (!cu_->target64 && rl_start.location != kLocPhysReg) {
Alexei Zavjalova1758d82014-04-17 01:55:43 +07001338 // Load the start index from stack, remembering that we pushed EDI.
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001339 int displacement = SRegOffset(rl_start.s_reg_low) + sizeof(uint32_t);
Vladimir Marko74de63b2014-08-19 15:00:34 +01001340 ScopedMemRefType mem_ref_type(this, ResourceMask::kDalvikReg);
1341 Load32Disp(rs_rX86_SP, displacement, rs_rDI);
1342 // Dalvik register annotation in LoadBaseIndexedDisp() used wrong offset. Fix it.
1343 DCHECK(!DECODE_ALIAS_INFO_WIDE(last_lir_insn_->flags.alias_info));
1344 int reg_id = DECODE_ALIAS_INFO_REG(last_lir_insn_->flags.alias_info) - 1;
1345 AnnotateDalvikRegAccess(last_lir_insn_, reg_id, true, false);
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001346 } else {
1347 LoadValueDirectFixed(rl_start, rs_rDI);
Mark Mendell4028a6c2014-02-19 20:06:20 -08001348 }
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001349 OpRegReg(kOpXor, rs_tmp, rs_tmp);
1350 OpRegReg(kOpCmp, rs_rDI, rs_tmp);
1351 OpCondRegReg(kOpCmov, kCondLt, rs_rDI, rs_tmp);
1352
1353 // The length of the string should be greater than the start index.
1354 length_compare = OpCmpBranch(kCondLe, rs_rCX, rs_rDI, nullptr);
1355
1356 // Copy the number of words to search in a temporary register.
1357 // We will use the register at the end to calculate result.
1358 OpRegReg(kOpMov, rs_tmp, rs_rCX);
1359
1360 // Decrease the number of words to search by the start index.
1361 OpRegReg(kOpSub, rs_rCX, rs_rDI);
Mark Mendell4028a6c2014-02-19 20:06:20 -08001362 }
1363 }
Mark Mendell4028a6c2014-02-19 20:06:20 -08001364
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001365 // Load the address of the string into EDI.
1366 // In case of start index we have to add the address to existing value in EDI.
Mark Mendelle19c91f2014-02-25 08:19:08 -08001367 // The string starts at VALUE(String) + 2 * OFFSET(String) + DATA_OFFSET.
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001368 if (zero_based || (!zero_based && rl_start.is_const && start_value == 0)) {
1369 Load32Disp(rs_rDX, offset_offset, rs_rDI);
Mark Mendell4028a6c2014-02-19 20:06:20 -08001370 } else {
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001371 OpRegMem(kOpAdd, rs_rDI, rs_rDX, offset_offset);
Mark Mendell4028a6c2014-02-19 20:06:20 -08001372 }
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001373 OpRegImm(kOpLsl, rs_rDI, 1);
1374 OpRegMem(kOpAdd, rs_rDI, rs_rDX, value_offset);
1375 OpRegImm(kOpAdd, rs_rDI, data_offset);
Mark Mendell4028a6c2014-02-19 20:06:20 -08001376
1377 // EDI now contains the start of the string to be searched.
1378 // We are all prepared to do the search for the character.
1379 NewLIR0(kX86RepneScasw);
1380
1381 // Did we find a match?
1382 LIR* failed_branch = OpCondBranch(kCondNe, nullptr);
1383
1384 // yes, we matched. Compute the index of the result.
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001385 OpRegReg(kOpSub, rs_tmp, rs_rCX);
1386 NewLIR3(kX86Lea32RM, rl_return.reg.GetReg(), rs_tmp.GetReg(), -1);
1387
Mark Mendell4028a6c2014-02-19 20:06:20 -08001388 LIR *all_done = NewLIR1(kX86Jmp8, 0);
1389
1390 // Failed to match; return -1.
1391 LIR *not_found = NewLIR0(kPseudoTargetLabel);
1392 length_compare->target = not_found;
1393 failed_branch->target = not_found;
buzbee2700f7e2014-03-07 09:46:20 -08001394 LoadConstantNoClobber(rl_return.reg, -1);
Mark Mendell4028a6c2014-02-19 20:06:20 -08001395
1396 // And join up at the end.
1397 all_done->target = NewLIR0(kPseudoTargetLabel);
nikolay serdjukc3561ae2014-07-18 12:35:46 +07001398
1399 if (!cu_->target64)
1400 NewLIR1(kX86Pop32R, rs_rDI.GetReg());
Mark Mendell4028a6c2014-02-19 20:06:20 -08001401
1402 // Out of line code returns here.
Mingyao Yang3a74d152014-04-21 15:39:44 -07001403 if (slowpath_branch != nullptr) {
Mark Mendell4028a6c2014-02-19 20:06:20 -08001404 LIR *return_point = NewLIR0(kPseudoTargetLabel);
Mingyao Yang3a74d152014-04-21 15:39:44 -07001405 AddIntrinsicSlowPath(info, slowpath_branch, return_point);
Serguei Katkov9863daf2014-09-04 15:21:32 +07001406 ClobberCallerSave(); // We must clobber everything because slow path will return here
Mark Mendell4028a6c2014-02-19 20:06:20 -08001407 }
1408
1409 StoreValue(rl_dest, rl_return);
1410 return true;
1411}
1412
Tong Shen35e1e6a2014-07-30 09:31:22 -07001413static bool ARTRegIDToDWARFRegID(bool is_x86_64, int art_reg_id, int* dwarf_reg_id) {
1414 if (is_x86_64) {
1415 switch (art_reg_id) {
Andreas Gampebda27222014-07-30 23:21:36 -07001416 case 3 : *dwarf_reg_id = 3; return true; // %rbx
Tong Shen35e1e6a2014-07-30 09:31:22 -07001417 // This is the only discrepancy between ART & DWARF register numbering.
Andreas Gampebda27222014-07-30 23:21:36 -07001418 case 5 : *dwarf_reg_id = 6; return true; // %rbp
1419 case 12: *dwarf_reg_id = 12; return true; // %r12
1420 case 13: *dwarf_reg_id = 13; return true; // %r13
1421 case 14: *dwarf_reg_id = 14; return true; // %r14
1422 case 15: *dwarf_reg_id = 15; return true; // %r15
1423 default: return false; // Should not get here
Tong Shen35e1e6a2014-07-30 09:31:22 -07001424 }
1425 } else {
1426 switch (art_reg_id) {
Andreas Gampebda27222014-07-30 23:21:36 -07001427 case 5: *dwarf_reg_id = 5; return true; // %ebp
1428 case 6: *dwarf_reg_id = 6; return true; // %esi
1429 case 7: *dwarf_reg_id = 7; return true; // %edi
1430 default: return false; // Should not get here
Tong Shen35e1e6a2014-07-30 09:31:22 -07001431 }
1432 }
1433}
1434
Tong Shen547cdfd2014-08-05 01:54:19 -07001435std::vector<uint8_t>* X86Mir2Lir::ReturnFrameDescriptionEntry() {
1436 std::vector<uint8_t>* cfi_info = new std::vector<uint8_t>;
Mark Mendellae9fd932014-02-10 16:14:35 -08001437
1438 // Generate the FDE for the method.
1439 DCHECK_NE(data_offset_, 0U);
1440
Yevgeny Roubane3ea8382014-08-08 16:29:38 +07001441 WriteFDEHeader(cfi_info, cu_->target64);
1442 WriteFDEAddressRange(cfi_info, data_offset_, cu_->target64);
Tong Shen35e1e6a2014-07-30 09:31:22 -07001443
Mark Mendellae9fd932014-02-10 16:14:35 -08001444 // The instructions in the FDE.
1445 if (stack_decrement_ != nullptr) {
1446 // Advance LOC to just past the stack decrement.
1447 uint32_t pc = NEXT_LIR(stack_decrement_)->offset;
Tong Shen547cdfd2014-08-05 01:54:19 -07001448 DW_CFA_advance_loc(cfi_info, pc);
Mark Mendellae9fd932014-02-10 16:14:35 -08001449
1450 // Now update the offset to the call frame: DW_CFA_def_cfa_offset frame_size.
Tong Shen547cdfd2014-08-05 01:54:19 -07001451 DW_CFA_def_cfa_offset(cfi_info, frame_size_);
Mark Mendellae9fd932014-02-10 16:14:35 -08001452
Tong Shen35e1e6a2014-07-30 09:31:22 -07001453 // Handle register spills
1454 const uint32_t kSpillInstLen = (cu_->target64) ? 5 : 4;
1455 const int kDataAlignmentFactor = (cu_->target64) ? -8 : -4;
1456 uint32_t mask = core_spill_mask_ & ~(1 << rs_rRET.GetRegNum());
1457 int offset = -(GetInstructionSetPointerSize(cu_->instruction_set) * num_core_spills_);
1458 for (int reg = 0; mask; mask >>= 1, reg++) {
1459 if (mask & 0x1) {
1460 pc += kSpillInstLen;
1461
1462 // Advance LOC to pass this instruction
Tong Shen547cdfd2014-08-05 01:54:19 -07001463 DW_CFA_advance_loc(cfi_info, kSpillInstLen);
Tong Shen35e1e6a2014-07-30 09:31:22 -07001464
1465 int dwarf_reg_id;
1466 if (ARTRegIDToDWARFRegID(cu_->target64, reg, &dwarf_reg_id)) {
Tong Shen547cdfd2014-08-05 01:54:19 -07001467 // DW_CFA_offset_extended_sf reg offset
1468 DW_CFA_offset_extended_sf(cfi_info, dwarf_reg_id, offset / kDataAlignmentFactor);
Tong Shen35e1e6a2014-07-30 09:31:22 -07001469 }
1470
1471 offset += GetInstructionSetPointerSize(cu_->instruction_set);
1472 }
1473 }
1474
Mark Mendellae9fd932014-02-10 16:14:35 -08001475 // We continue with that stack until the epilogue.
1476 if (stack_increment_ != nullptr) {
1477 uint32_t new_pc = NEXT_LIR(stack_increment_)->offset;
Tong Shen547cdfd2014-08-05 01:54:19 -07001478 DW_CFA_advance_loc(cfi_info, new_pc - pc);
Mark Mendellae9fd932014-02-10 16:14:35 -08001479
1480 // We probably have code snippets after the epilogue, so save the
1481 // current state: DW_CFA_remember_state.
Tong Shen547cdfd2014-08-05 01:54:19 -07001482 DW_CFA_remember_state(cfi_info);
Mark Mendellae9fd932014-02-10 16:14:35 -08001483
Tong Shen35e1e6a2014-07-30 09:31:22 -07001484 // We have now popped the stack: DW_CFA_def_cfa_offset 4/8.
1485 // There is only the return PC on the stack now.
Tong Shen547cdfd2014-08-05 01:54:19 -07001486 DW_CFA_def_cfa_offset(cfi_info, GetInstructionSetPointerSize(cu_->instruction_set));
Mark Mendellae9fd932014-02-10 16:14:35 -08001487
1488 // Everything after that is the same as before the epilogue.
1489 // Stack bump was followed by RET instruction.
1490 LIR *post_ret_insn = NEXT_LIR(NEXT_LIR(stack_increment_));
1491 if (post_ret_insn != nullptr) {
1492 pc = new_pc;
1493 new_pc = post_ret_insn->offset;
Tong Shen547cdfd2014-08-05 01:54:19 -07001494 DW_CFA_advance_loc(cfi_info, new_pc - pc);
Mark Mendellae9fd932014-02-10 16:14:35 -08001495 // Restore the state: DW_CFA_restore_state.
Tong Shen547cdfd2014-08-05 01:54:19 -07001496 DW_CFA_restore_state(cfi_info);
Mark Mendellae9fd932014-02-10 16:14:35 -08001497 }
1498 }
1499 }
1500
Tong Shen547cdfd2014-08-05 01:54:19 -07001501 PadCFI(cfi_info);
Yevgeny Roubane3ea8382014-08-08 16:29:38 +07001502 WriteCFILength(cfi_info, cu_->target64);
Mark Mendellae9fd932014-02-10 16:14:35 -08001503
Mark Mendellae9fd932014-02-10 16:14:35 -08001504 return cfi_info;
1505}
1506
Mark Mendelld65c51a2014-04-29 16:55:20 -04001507void X86Mir2Lir::GenMachineSpecificExtendedMethodMIR(BasicBlock* bb, MIR* mir) {
1508 switch (static_cast<ExtendedMIROpcode>(mir->dalvikInsn.opcode)) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001509 case kMirOpReserveVectorRegisters:
1510 ReserveVectorRegisters(mir);
1511 break;
1512 case kMirOpReturnVectorRegisters:
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001513 ReturnVectorRegisters(mir);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001514 break;
Mark Mendelld65c51a2014-04-29 16:55:20 -04001515 case kMirOpConstVector:
1516 GenConst128(bb, mir);
1517 break;
Mark Mendellfe945782014-05-22 09:52:36 -04001518 case kMirOpMoveVector:
1519 GenMoveVector(bb, mir);
1520 break;
1521 case kMirOpPackedMultiply:
1522 GenMultiplyVector(bb, mir);
1523 break;
1524 case kMirOpPackedAddition:
1525 GenAddVector(bb, mir);
1526 break;
1527 case kMirOpPackedSubtract:
1528 GenSubtractVector(bb, mir);
1529 break;
1530 case kMirOpPackedShiftLeft:
1531 GenShiftLeftVector(bb, mir);
1532 break;
1533 case kMirOpPackedSignedShiftRight:
1534 GenSignedShiftRightVector(bb, mir);
1535 break;
1536 case kMirOpPackedUnsignedShiftRight:
1537 GenUnsignedShiftRightVector(bb, mir);
1538 break;
1539 case kMirOpPackedAnd:
1540 GenAndVector(bb, mir);
1541 break;
1542 case kMirOpPackedOr:
1543 GenOrVector(bb, mir);
1544 break;
1545 case kMirOpPackedXor:
1546 GenXorVector(bb, mir);
1547 break;
1548 case kMirOpPackedAddReduce:
1549 GenAddReduceVector(bb, mir);
1550 break;
1551 case kMirOpPackedReduce:
1552 GenReduceVector(bb, mir);
1553 break;
1554 case kMirOpPackedSet:
1555 GenSetVector(bb, mir);
1556 break;
Jean Christophe Beylerb5bce7c2014-07-25 12:32:18 -07001557 case kMirOpMemBarrier:
1558 GenMemBarrier(static_cast<MemBarrierKind>(mir->dalvikInsn.vA));
1559 break;
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001560 case kMirOpPackedArrayGet:
1561 GenPackedArrayGet(bb, mir);
1562 break;
1563 case kMirOpPackedArrayPut:
1564 GenPackedArrayPut(bb, mir);
1565 break;
Mark Mendelld65c51a2014-04-29 16:55:20 -04001566 default:
1567 break;
1568 }
1569}
1570
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001571void X86Mir2Lir::ReserveVectorRegisters(MIR* mir) {
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001572 for (uint32_t i = mir->dalvikInsn.vA; i <= mir->dalvikInsn.vB; i++) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001573 RegStorage xp_reg = RegStorage::Solo128(i);
1574 RegisterInfo *xp_reg_info = GetRegInfo(xp_reg);
1575 Clobber(xp_reg);
1576
1577 for (RegisterInfo *info = xp_reg_info->GetAliasChain();
1578 info != nullptr;
1579 info = info->GetAliasChain()) {
Vladimir Markoe39c54e2014-09-22 14:50:02 +01001580 ArenaVector<RegisterInfo*>* regs =
1581 info->GetReg().IsSingle() ? &reg_pool_->sp_regs_ : &reg_pool_->dp_regs_;
1582 auto it = std::find(regs->begin(), regs->end(), info);
1583 DCHECK(it != regs->end());
1584 regs->erase(it);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001585 }
1586 }
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001587}
1588
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001589void X86Mir2Lir::ReturnVectorRegisters(MIR* mir) {
1590 for (uint32_t i = mir->dalvikInsn.vA; i <= mir->dalvikInsn.vB; i++) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001591 RegStorage xp_reg = RegStorage::Solo128(i);
1592 RegisterInfo *xp_reg_info = GetRegInfo(xp_reg);
1593
1594 for (RegisterInfo *info = xp_reg_info->GetAliasChain();
1595 info != nullptr;
1596 info = info->GetAliasChain()) {
1597 if (info->GetReg().IsSingle()) {
Vladimir Markoe39c54e2014-09-22 14:50:02 +01001598 reg_pool_->sp_regs_.push_back(info);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001599 } else {
Vladimir Markoe39c54e2014-09-22 14:50:02 +01001600 reg_pool_->dp_regs_.push_back(info);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001601 }
1602 }
1603 }
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001604}
1605
Mark Mendelld65c51a2014-04-29 16:55:20 -04001606void X86Mir2Lir::GenConst128(BasicBlock* bb, MIR* mir) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001607 RegStorage rs_dest = RegStorage::Solo128(mir->dalvikInsn.vA);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001608 Clobber(rs_dest);
1609
Mark Mendelld65c51a2014-04-29 16:55:20 -04001610 uint32_t *args = mir->dalvikInsn.arg;
Mark Mendellfe945782014-05-22 09:52:36 -04001611 int reg = rs_dest.GetReg();
Mark Mendelld65c51a2014-04-29 16:55:20 -04001612 // Check for all 0 case.
1613 if (args[0] == 0 && args[1] == 0 && args[2] == 0 && args[3] == 0) {
1614 NewLIR2(kX86XorpsRR, reg, reg);
1615 return;
1616 }
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001617
1618 // Append the mov const vector to reg opcode.
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001619 AppendOpcodeWithConst(kX86MovdqaRM, reg, mir);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001620}
1621
1622void X86Mir2Lir::AppendOpcodeWithConst(X86OpCode opcode, int reg, MIR* mir) {
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001623 // The literal pool needs position independent logic.
1624 store_method_addr_used_ = true;
1625
1626 // To deal with correct memory ordering, reverse order of constants.
1627 int32_t constants[4];
1628 constants[3] = mir->dalvikInsn.arg[0];
1629 constants[2] = mir->dalvikInsn.arg[1];
1630 constants[1] = mir->dalvikInsn.arg[2];
1631 constants[0] = mir->dalvikInsn.arg[3];
1632
1633 // Search if there is already a constant in pool with this value.
1634 LIR *data_target = ScanVectorLiteral(constants);
Mark Mendelld65c51a2014-04-29 16:55:20 -04001635 if (data_target == nullptr) {
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001636 data_target = AddVectorLiteral(constants);
Mark Mendelld65c51a2014-04-29 16:55:20 -04001637 }
1638
1639 // Address the start of the method.
1640 RegLocation rl_method = mir_graph_->GetRegLocation(base_of_code_->s_reg_low);
Chao-ying Fue0ccdc02014-06-06 17:32:37 -07001641 if (rl_method.wide) {
1642 rl_method = LoadValueWide(rl_method, kCoreReg);
1643 } else {
1644 rl_method = LoadValue(rl_method, kCoreReg);
1645 }
Mark Mendelld65c51a2014-04-29 16:55:20 -04001646
1647 // Load the proper value from the literal area.
1648 // We don't know the proper offset for the value, so pick one that will force
1649 // 4 byte offset. We will fix this up in the assembler later to have the right
1650 // value.
Vladimir Marko8dea81c2014-06-06 14:50:36 +01001651 ScopedMemRefType mem_ref_type(this, ResourceMask::kLiteral);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001652 LIR *load = NewLIR3(opcode, reg, rl_method.reg.GetReg(), 256 /* bogus */);
Mark Mendelld65c51a2014-04-29 16:55:20 -04001653 load->flags.fixup = kFixupLoad;
1654 load->target = data_target;
Mark Mendelld65c51a2014-04-29 16:55:20 -04001655}
1656
Mark Mendellfe945782014-05-22 09:52:36 -04001657void X86Mir2Lir::GenMoveVector(BasicBlock *bb, MIR *mir) {
1658 // We only support 128 bit registers.
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001659 DCHECK_EQ(mir->dalvikInsn.vC & 0xFFFF, 128U);
1660 RegStorage rs_dest = RegStorage::Solo128(mir->dalvikInsn.vA);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001661 Clobber(rs_dest);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001662 RegStorage rs_src = RegStorage::Solo128(mir->dalvikInsn.vB);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001663 NewLIR2(kX86MovdqaRR, rs_dest.GetReg(), rs_src.GetReg());
Mark Mendellfe945782014-05-22 09:52:36 -04001664}
1665
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001666void X86Mir2Lir::GenMultiplyVectorSignedByte(RegStorage rs_dest_src1, RegStorage rs_src2) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001667 /*
1668 * Emulate the behavior of a kSignedByte by separating out the 16 values in the two XMM
1669 * and multiplying 8 at a time before recombining back into one XMM register.
1670 *
1671 * let xmm1, xmm2 be real srcs (keep low bits of 16bit lanes)
1672 * xmm3 is tmp (operate on high bits of 16bit lanes)
1673 *
1674 * xmm3 = xmm1
1675 * xmm1 = xmm1 .* xmm2
1676 * xmm1 = xmm1 & 0x00ff00ff00ff00ff00ff00ff00ff00ff // xmm1 now has low bits
1677 * xmm3 = xmm3 .>> 8
1678 * xmm2 = xmm2 & 0xff00ff00ff00ff00ff00ff00ff00ff00
1679 * xmm2 = xmm2 .* xmm3 // xmm2 now has high bits
1680 * xmm1 = xmm1 | xmm2 // combine results
1681 */
1682
1683 // Copy xmm1.
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001684 RegStorage rs_src1_high_tmp = Get128BitRegister(AllocTempDouble());
1685 RegStorage rs_dest_high_tmp = Get128BitRegister(AllocTempDouble());
1686 NewLIR2(kX86MovdqaRR, rs_src1_high_tmp.GetReg(), rs_src2.GetReg());
1687 NewLIR2(kX86MovdqaRR, rs_dest_high_tmp.GetReg(), rs_dest_src1.GetReg());
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001688
1689 // Multiply low bits.
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001690 // x7 *= x3
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001691 NewLIR2(kX86PmullwRR, rs_dest_src1.GetReg(), rs_src2.GetReg());
1692
1693 // xmm1 now has low bits.
1694 AndMaskVectorRegister(rs_dest_src1, 0x00FF00FF, 0x00FF00FF, 0x00FF00FF, 0x00FF00FF);
1695
1696 // Prepare high bits for multiplication.
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001697 NewLIR2(kX86PsrlwRI, rs_src1_high_tmp.GetReg(), 0x8);
1698 AndMaskVectorRegister(rs_dest_high_tmp, 0xFF00FF00, 0xFF00FF00, 0xFF00FF00, 0xFF00FF00);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001699
1700 // Multiply high bits and xmm2 now has high bits.
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001701 NewLIR2(kX86PmullwRR, rs_src1_high_tmp.GetReg(), rs_dest_high_tmp.GetReg());
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001702
1703 // Combine back into dest XMM register.
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001704 NewLIR2(kX86PorRR, rs_dest_src1.GetReg(), rs_src1_high_tmp.GetReg());
1705}
1706
1707void X86Mir2Lir::GenMultiplyVectorLong(RegStorage rs_dest_src1, RegStorage rs_src2) {
1708 /*
1709 * We need to emulate the packed long multiply.
1710 * For kMirOpPackedMultiply xmm1, xmm0:
1711 * - xmm1 is src/dest
1712 * - xmm0 is src
1713 * - Get xmm2 and xmm3 as temp
1714 * - Idea is to multiply the lower 32 of each operand with the higher 32 of the other.
1715 * - Then add the two results.
1716 * - Move it to the upper 32 of the destination
1717 * - Then multiply the lower 32-bits of the operands and add the result to the destination.
1718 *
1719 * (op dest src )
1720 * movdqa %xmm2, %xmm1
1721 * movdqa %xmm3, %xmm0
1722 * psrlq %xmm3, $0x20
1723 * pmuludq %xmm3, %xmm2
1724 * psrlq %xmm1, $0x20
1725 * pmuludq %xmm1, %xmm0
1726 * paddq %xmm1, %xmm3
1727 * psllq %xmm1, $0x20
1728 * pmuludq %xmm2, %xmm0
1729 * paddq %xmm1, %xmm2
1730 *
1731 * When both the operands are the same, then we need to calculate the lower-32 * higher-32
1732 * calculation only once. Thus we don't need the xmm3 temp above. That sequence becomes:
1733 *
1734 * (op dest src )
1735 * movdqa %xmm2, %xmm1
1736 * psrlq %xmm1, $0x20
1737 * pmuludq %xmm1, %xmm0
1738 * paddq %xmm1, %xmm1
1739 * psllq %xmm1, $0x20
1740 * pmuludq %xmm2, %xmm0
1741 * paddq %xmm1, %xmm2
1742 *
1743 */
1744
1745 bool both_operands_same = (rs_dest_src1.GetReg() == rs_src2.GetReg());
1746
1747 RegStorage rs_tmp_vector_1;
1748 RegStorage rs_tmp_vector_2;
1749 rs_tmp_vector_1 = Get128BitRegister(AllocTempDouble());
1750 NewLIR2(kX86MovdqaRR, rs_tmp_vector_1.GetReg(), rs_dest_src1.GetReg());
1751
1752 if (both_operands_same == false) {
1753 rs_tmp_vector_2 = Get128BitRegister(AllocTempDouble());
1754 NewLIR2(kX86MovdqaRR, rs_tmp_vector_2.GetReg(), rs_src2.GetReg());
1755 NewLIR2(kX86PsrlqRI, rs_tmp_vector_2.GetReg(), 0x20);
1756 NewLIR2(kX86PmuludqRR, rs_tmp_vector_2.GetReg(), rs_tmp_vector_1.GetReg());
1757 }
1758
1759 NewLIR2(kX86PsrlqRI, rs_dest_src1.GetReg(), 0x20);
1760 NewLIR2(kX86PmuludqRR, rs_dest_src1.GetReg(), rs_src2.GetReg());
1761
1762 if (both_operands_same == false) {
1763 NewLIR2(kX86PaddqRR, rs_dest_src1.GetReg(), rs_tmp_vector_2.GetReg());
1764 } else {
1765 NewLIR2(kX86PaddqRR, rs_dest_src1.GetReg(), rs_dest_src1.GetReg());
1766 }
1767
1768 NewLIR2(kX86PsllqRI, rs_dest_src1.GetReg(), 0x20);
1769 NewLIR2(kX86PmuludqRR, rs_tmp_vector_1.GetReg(), rs_src2.GetReg());
1770 NewLIR2(kX86PaddqRR, rs_dest_src1.GetReg(), rs_tmp_vector_1.GetReg());
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001771}
1772
Mark Mendellfe945782014-05-22 09:52:36 -04001773void X86Mir2Lir::GenMultiplyVector(BasicBlock *bb, MIR *mir) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001774 DCHECK_EQ(mir->dalvikInsn.vC & 0xFFFF, 128U);
1775 OpSize opsize = static_cast<OpSize>(mir->dalvikInsn.vC >> 16);
1776 RegStorage rs_dest_src1 = RegStorage::Solo128(mir->dalvikInsn.vA);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001777 Clobber(rs_dest_src1);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001778 RegStorage rs_src2 = RegStorage::Solo128(mir->dalvikInsn.vB);
Mark Mendellfe945782014-05-22 09:52:36 -04001779 int opcode = 0;
1780 switch (opsize) {
1781 case k32:
1782 opcode = kX86PmulldRR;
1783 break;
1784 case kSignedHalf:
1785 opcode = kX86PmullwRR;
1786 break;
1787 case kSingle:
1788 opcode = kX86MulpsRR;
1789 break;
1790 case kDouble:
1791 opcode = kX86MulpdRR;
1792 break;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001793 case kSignedByte:
1794 // HW doesn't support 16x16 byte multiplication so emulate it.
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001795 GenMultiplyVectorSignedByte(rs_dest_src1, rs_src2);
1796 return;
1797 case k64:
1798 GenMultiplyVectorLong(rs_dest_src1, rs_src2);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001799 return;
Mark Mendellfe945782014-05-22 09:52:36 -04001800 default:
1801 LOG(FATAL) << "Unsupported vector multiply " << opsize;
1802 break;
1803 }
1804 NewLIR2(opcode, rs_dest_src1.GetReg(), rs_src2.GetReg());
1805}
1806
1807void X86Mir2Lir::GenAddVector(BasicBlock *bb, MIR *mir) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001808 DCHECK_EQ(mir->dalvikInsn.vC & 0xFFFF, 128U);
1809 OpSize opsize = static_cast<OpSize>(mir->dalvikInsn.vC >> 16);
1810 RegStorage rs_dest_src1 = RegStorage::Solo128(mir->dalvikInsn.vA);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001811 Clobber(rs_dest_src1);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001812 RegStorage rs_src2 = RegStorage::Solo128(mir->dalvikInsn.vB);
Mark Mendellfe945782014-05-22 09:52:36 -04001813 int opcode = 0;
1814 switch (opsize) {
1815 case k32:
1816 opcode = kX86PadddRR;
1817 break;
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001818 case k64:
1819 opcode = kX86PaddqRR;
1820 break;
Mark Mendellfe945782014-05-22 09:52:36 -04001821 case kSignedHalf:
1822 case kUnsignedHalf:
1823 opcode = kX86PaddwRR;
1824 break;
1825 case kUnsignedByte:
1826 case kSignedByte:
1827 opcode = kX86PaddbRR;
1828 break;
1829 case kSingle:
1830 opcode = kX86AddpsRR;
1831 break;
1832 case kDouble:
1833 opcode = kX86AddpdRR;
1834 break;
1835 default:
1836 LOG(FATAL) << "Unsupported vector addition " << opsize;
1837 break;
1838 }
1839 NewLIR2(opcode, rs_dest_src1.GetReg(), rs_src2.GetReg());
1840}
1841
1842void X86Mir2Lir::GenSubtractVector(BasicBlock *bb, MIR *mir) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001843 DCHECK_EQ(mir->dalvikInsn.vC & 0xFFFF, 128U);
1844 OpSize opsize = static_cast<OpSize>(mir->dalvikInsn.vC >> 16);
1845 RegStorage rs_dest_src1 = RegStorage::Solo128(mir->dalvikInsn.vA);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001846 Clobber(rs_dest_src1);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001847 RegStorage rs_src2 = RegStorage::Solo128(mir->dalvikInsn.vB);
Mark Mendellfe945782014-05-22 09:52:36 -04001848 int opcode = 0;
1849 switch (opsize) {
1850 case k32:
1851 opcode = kX86PsubdRR;
1852 break;
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001853 case k64:
1854 opcode = kX86PsubqRR;
1855 break;
Mark Mendellfe945782014-05-22 09:52:36 -04001856 case kSignedHalf:
1857 case kUnsignedHalf:
1858 opcode = kX86PsubwRR;
1859 break;
1860 case kUnsignedByte:
1861 case kSignedByte:
1862 opcode = kX86PsubbRR;
1863 break;
1864 case kSingle:
1865 opcode = kX86SubpsRR;
1866 break;
1867 case kDouble:
1868 opcode = kX86SubpdRR;
1869 break;
1870 default:
1871 LOG(FATAL) << "Unsupported vector subtraction " << opsize;
1872 break;
1873 }
1874 NewLIR2(opcode, rs_dest_src1.GetReg(), rs_src2.GetReg());
1875}
1876
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001877void X86Mir2Lir::GenShiftByteVector(BasicBlock *bb, MIR *mir) {
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001878 // Destination does not need clobbered because it has already been as part
1879 // of the general packed shift handler (caller of this method).
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001880 RegStorage rs_dest_src1 = RegStorage::Solo128(mir->dalvikInsn.vA);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001881
1882 int opcode = 0;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001883 switch (static_cast<ExtendedMIROpcode>(mir->dalvikInsn.opcode)) {
1884 case kMirOpPackedShiftLeft:
1885 opcode = kX86PsllwRI;
1886 break;
1887 case kMirOpPackedSignedShiftRight:
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001888 case kMirOpPackedUnsignedShiftRight:
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001889 // TODO Add support for emulated byte shifts.
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001890 default:
1891 LOG(FATAL) << "Unsupported shift operation on byte vector " << opcode;
1892 break;
1893 }
1894
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001895 // Clear xmm register and return if shift more than byte length.
1896 int imm = mir->dalvikInsn.vB;
1897 if (imm >= 8) {
1898 NewLIR2(kX86PxorRR, rs_dest_src1.GetReg(), rs_dest_src1.GetReg());
1899 return;
1900 }
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001901
1902 // Shift lower values.
1903 NewLIR2(opcode, rs_dest_src1.GetReg(), imm);
1904
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001905 /*
1906 * The above shift will shift the whole word, but that means
1907 * both the bytes will shift as well. To emulate a byte level
1908 * shift, we can just throw away the lower (8 - N) bits of the
1909 * upper byte, and we are done.
1910 */
1911 uint8_t byte_mask = 0xFF << imm;
1912 uint32_t int_mask = byte_mask;
1913 int_mask = int_mask << 8 | byte_mask;
1914 int_mask = int_mask << 8 | byte_mask;
1915 int_mask = int_mask << 8 | byte_mask;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001916
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001917 // And the destination with the mask
1918 AndMaskVectorRegister(rs_dest_src1, int_mask, int_mask, int_mask, int_mask);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001919}
1920
Mark Mendellfe945782014-05-22 09:52:36 -04001921void X86Mir2Lir::GenShiftLeftVector(BasicBlock *bb, MIR *mir) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001922 DCHECK_EQ(mir->dalvikInsn.vC & 0xFFFF, 128U);
1923 OpSize opsize = static_cast<OpSize>(mir->dalvikInsn.vC >> 16);
1924 RegStorage rs_dest_src1 = RegStorage::Solo128(mir->dalvikInsn.vA);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001925 Clobber(rs_dest_src1);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001926 int imm = mir->dalvikInsn.vB;
Mark Mendellfe945782014-05-22 09:52:36 -04001927 int opcode = 0;
1928 switch (opsize) {
1929 case k32:
1930 opcode = kX86PslldRI;
1931 break;
1932 case k64:
1933 opcode = kX86PsllqRI;
1934 break;
1935 case kSignedHalf:
1936 case kUnsignedHalf:
1937 opcode = kX86PsllwRI;
1938 break;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001939 case kSignedByte:
1940 case kUnsignedByte:
1941 GenShiftByteVector(bb, mir);
1942 return;
Mark Mendellfe945782014-05-22 09:52:36 -04001943 default:
1944 LOG(FATAL) << "Unsupported vector shift left " << opsize;
1945 break;
1946 }
1947 NewLIR2(opcode, rs_dest_src1.GetReg(), imm);
1948}
1949
1950void X86Mir2Lir::GenSignedShiftRightVector(BasicBlock *bb, MIR *mir) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001951 DCHECK_EQ(mir->dalvikInsn.vC & 0xFFFF, 128U);
1952 OpSize opsize = static_cast<OpSize>(mir->dalvikInsn.vC >> 16);
1953 RegStorage rs_dest_src1 = RegStorage::Solo128(mir->dalvikInsn.vA);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001954 Clobber(rs_dest_src1);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001955 int imm = mir->dalvikInsn.vB;
Mark Mendellfe945782014-05-22 09:52:36 -04001956 int opcode = 0;
1957 switch (opsize) {
1958 case k32:
1959 opcode = kX86PsradRI;
1960 break;
1961 case kSignedHalf:
1962 case kUnsignedHalf:
1963 opcode = kX86PsrawRI;
1964 break;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001965 case kSignedByte:
1966 case kUnsignedByte:
1967 GenShiftByteVector(bb, mir);
1968 return;
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001969 case k64:
1970 // TODO Implement emulated shift algorithm.
Mark Mendellfe945782014-05-22 09:52:36 -04001971 default:
1972 LOG(FATAL) << "Unsupported vector signed shift right " << opsize;
1973 break;
1974 }
1975 NewLIR2(opcode, rs_dest_src1.GetReg(), imm);
1976}
1977
1978void X86Mir2Lir::GenUnsignedShiftRightVector(BasicBlock *bb, MIR *mir) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001979 DCHECK_EQ(mir->dalvikInsn.vC & 0xFFFF, 128U);
1980 OpSize opsize = static_cast<OpSize>(mir->dalvikInsn.vC >> 16);
1981 RegStorage rs_dest_src1 = RegStorage::Solo128(mir->dalvikInsn.vA);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07001982 Clobber(rs_dest_src1);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001983 int imm = mir->dalvikInsn.vB;
Mark Mendellfe945782014-05-22 09:52:36 -04001984 int opcode = 0;
1985 switch (opsize) {
1986 case k32:
1987 opcode = kX86PsrldRI;
1988 break;
1989 case k64:
1990 opcode = kX86PsrlqRI;
1991 break;
1992 case kSignedHalf:
1993 case kUnsignedHalf:
1994 opcode = kX86PsrlwRI;
1995 break;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07001996 case kSignedByte:
1997 case kUnsignedByte:
1998 GenShiftByteVector(bb, mir);
1999 return;
Mark Mendellfe945782014-05-22 09:52:36 -04002000 default:
2001 LOG(FATAL) << "Unsupported vector unsigned shift right " << opsize;
2002 break;
2003 }
2004 NewLIR2(opcode, rs_dest_src1.GetReg(), imm);
2005}
2006
2007void X86Mir2Lir::GenAndVector(BasicBlock *bb, MIR *mir) {
2008 // We only support 128 bit registers.
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002009 DCHECK_EQ(mir->dalvikInsn.vC & 0xFFFF, 128U);
2010 RegStorage rs_dest_src1 = RegStorage::Solo128(mir->dalvikInsn.vA);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002011 Clobber(rs_dest_src1);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002012 RegStorage rs_src2 = RegStorage::Solo128(mir->dalvikInsn.vB);
Mark Mendellfe945782014-05-22 09:52:36 -04002013 NewLIR2(kX86PandRR, rs_dest_src1.GetReg(), rs_src2.GetReg());
2014}
2015
2016void X86Mir2Lir::GenOrVector(BasicBlock *bb, MIR *mir) {
2017 // We only support 128 bit registers.
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002018 DCHECK_EQ(mir->dalvikInsn.vC & 0xFFFF, 128U);
2019 RegStorage rs_dest_src1 = RegStorage::Solo128(mir->dalvikInsn.vA);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002020 Clobber(rs_dest_src1);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002021 RegStorage rs_src2 = RegStorage::Solo128(mir->dalvikInsn.vB);
Mark Mendellfe945782014-05-22 09:52:36 -04002022 NewLIR2(kX86PorRR, rs_dest_src1.GetReg(), rs_src2.GetReg());
2023}
2024
2025void X86Mir2Lir::GenXorVector(BasicBlock *bb, MIR *mir) {
2026 // We only support 128 bit registers.
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002027 DCHECK_EQ(mir->dalvikInsn.vC & 0xFFFF, 128U);
2028 RegStorage rs_dest_src1 = RegStorage::Solo128(mir->dalvikInsn.vA);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002029 Clobber(rs_dest_src1);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002030 RegStorage rs_src2 = RegStorage::Solo128(mir->dalvikInsn.vB);
Mark Mendellfe945782014-05-22 09:52:36 -04002031 NewLIR2(kX86PxorRR, rs_dest_src1.GetReg(), rs_src2.GetReg());
2032}
2033
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002034void X86Mir2Lir::AndMaskVectorRegister(RegStorage rs_src1, uint32_t m1, uint32_t m2, uint32_t m3, uint32_t m4) {
2035 MaskVectorRegister(kX86PandRM, rs_src1, m1, m2, m3, m4);
2036}
2037
2038void X86Mir2Lir::MaskVectorRegister(X86OpCode opcode, RegStorage rs_src1, uint32_t m0, uint32_t m1, uint32_t m2, uint32_t m3) {
2039 // Create temporary MIR as container for 128-bit binary mask.
2040 MIR const_mir;
2041 MIR* const_mirp = &const_mir;
2042 const_mirp->dalvikInsn.opcode = static_cast<Instruction::Code>(kMirOpConstVector);
2043 const_mirp->dalvikInsn.arg[0] = m0;
2044 const_mirp->dalvikInsn.arg[1] = m1;
2045 const_mirp->dalvikInsn.arg[2] = m2;
2046 const_mirp->dalvikInsn.arg[3] = m3;
2047
2048 // Mask vector with const from literal pool.
2049 AppendOpcodeWithConst(opcode, rs_src1.GetReg(), const_mirp);
2050}
2051
Mark Mendellfe945782014-05-22 09:52:36 -04002052void X86Mir2Lir::GenAddReduceVector(BasicBlock *bb, MIR *mir) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002053 OpSize opsize = static_cast<OpSize>(mir->dalvikInsn.vC >> 16);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002054 RegStorage vector_src = RegStorage::Solo128(mir->dalvikInsn.vB);
2055 bool is_wide = opsize == k64 || opsize == kDouble;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002056
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002057 // Get the location of the virtual register. Since this bytecode is overloaded
2058 // for different types (and sizes), we need different logic for each path.
2059 // The design of bytecode uses same VR for source and destination.
2060 RegLocation rl_src, rl_dest, rl_result;
2061 if (is_wide) {
2062 rl_src = mir_graph_->GetSrcWide(mir, 0);
2063 rl_dest = mir_graph_->GetDestWide(mir);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002064 } else {
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002065 rl_src = mir_graph_->GetSrc(mir, 0);
2066 rl_dest = mir_graph_->GetDest(mir);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002067 }
2068
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002069 // We need a temp for byte and short values
2070 RegStorage temp;
2071
2072 // There is a different path depending on type and size.
2073 if (opsize == kSingle) {
2074 // Handle float case.
2075 // TODO Add support for fast math (not value safe) and do horizontal add in that case.
2076
2077 rl_src = LoadValue(rl_src, kFPReg);
2078 rl_result = EvalLoc(rl_dest, kFPReg, true);
2079
2080 // Since we are doing an add-reduce, we move the reg holding the VR
2081 // into the result so we include it in result.
2082 OpRegCopy(rl_result.reg, rl_src.reg);
2083 NewLIR2(kX86AddssRR, rl_result.reg.GetReg(), vector_src.GetReg());
2084
2085 // Since FP must keep order of operation for value safety, we shift to low
2086 // 32-bits and add to result.
2087 for (int i = 0; i < 3; i++) {
2088 NewLIR3(kX86ShufpsRRI, vector_src.GetReg(), vector_src.GetReg(), 0x39);
2089 NewLIR2(kX86AddssRR, rl_result.reg.GetReg(), vector_src.GetReg());
2090 }
2091
2092 StoreValue(rl_dest, rl_result);
2093 } else if (opsize == kDouble) {
2094 // Handle double case.
2095 rl_src = LoadValueWide(rl_src, kFPReg);
2096 rl_result = EvalLocWide(rl_dest, kFPReg, true);
2097 LOG(FATAL) << "Unsupported vector add reduce for double.";
2098 } else if (opsize == k64) {
2099 /*
2100 * Handle long case:
2101 * 1) Reduce the vector register to lower half (with addition).
2102 * 1-1) Get an xmm temp and fill it with vector register.
2103 * 1-2) Shift the xmm temp by 8-bytes.
2104 * 1-3) Add the xmm temp to vector register that is being reduced.
2105 * 2) Allocate temp GP / GP pair.
2106 * 2-1) In 64-bit case, use movq to move result to a 64-bit GP.
2107 * 2-2) In 32-bit case, use movd twice to move to 32-bit GP pair.
2108 * 3) Finish the add reduction by doing what add-long/2addr does,
2109 * but instead of having a VR as one of the sources, we have our temp GP.
2110 */
2111 RegStorage rs_tmp_vector = Get128BitRegister(AllocTempDouble());
2112 NewLIR2(kX86MovdqaRR, rs_tmp_vector.GetReg(), vector_src.GetReg());
2113 NewLIR2(kX86PsrldqRI, rs_tmp_vector.GetReg(), 8);
2114 NewLIR2(kX86PaddqRR, vector_src.GetReg(), rs_tmp_vector.GetReg());
2115 FreeTemp(rs_tmp_vector);
2116
2117 // We would like to be able to reuse the add-long implementation, so set up a fake
2118 // register location to pass it.
2119 RegLocation temp_loc = mir_graph_->GetBadLoc();
2120 temp_loc.core = 1;
2121 temp_loc.wide = 1;
2122 temp_loc.location = kLocPhysReg;
2123 temp_loc.reg = AllocTempWide();
2124
2125 if (cu_->target64) {
2126 DCHECK(!temp_loc.reg.IsPair());
2127 NewLIR2(kX86MovqrxRR, temp_loc.reg.GetReg(), vector_src.GetReg());
2128 } else {
2129 NewLIR2(kX86MovdrxRR, temp_loc.reg.GetLowReg(), vector_src.GetReg());
2130 NewLIR2(kX86PsrlqRI, vector_src.GetReg(), 0x20);
2131 NewLIR2(kX86MovdrxRR, temp_loc.reg.GetHighReg(), vector_src.GetReg());
2132 }
2133
2134 GenArithOpLong(Instruction::ADD_LONG_2ADDR, rl_dest, temp_loc, temp_loc);
2135 } else if (opsize == kSignedByte || opsize == kUnsignedByte) {
2136 RegStorage rs_tmp = Get128BitRegister(AllocTempDouble());
2137 NewLIR2(kX86PxorRR, rs_tmp.GetReg(), rs_tmp.GetReg());
2138 NewLIR2(kX86PsadbwRR, vector_src.GetReg(), rs_tmp.GetReg());
2139 NewLIR3(kX86PshufdRRI, rs_tmp.GetReg(), vector_src.GetReg(), 0x4e);
2140 NewLIR2(kX86PaddbRR, vector_src.GetReg(), rs_tmp.GetReg());
2141 // Move to a GPR
2142 temp = AllocTemp();
2143 NewLIR2(kX86MovdrxRR, temp.GetReg(), vector_src.GetReg());
2144 } else {
2145 // Handle and the int and short cases together
2146
2147 // Initialize as if we were handling int case. Below we update
2148 // the opcode if handling byte or short.
2149 int vec_bytes = (mir->dalvikInsn.vC & 0xFFFF) / 8;
2150 int vec_unit_size;
2151 int horizontal_add_opcode;
2152 int extract_opcode;
2153
2154 if (opsize == kSignedHalf || opsize == kUnsignedHalf) {
2155 extract_opcode = kX86PextrwRRI;
2156 horizontal_add_opcode = kX86PhaddwRR;
2157 vec_unit_size = 2;
2158 } else if (opsize == k32) {
2159 vec_unit_size = 4;
2160 horizontal_add_opcode = kX86PhadddRR;
2161 extract_opcode = kX86PextrdRRI;
2162 } else {
2163 LOG(FATAL) << "Unsupported vector add reduce " << opsize;
2164 return;
2165 }
2166
2167 int elems = vec_bytes / vec_unit_size;
2168
2169 while (elems > 1) {
2170 NewLIR2(horizontal_add_opcode, vector_src.GetReg(), vector_src.GetReg());
2171 elems >>= 1;
2172 }
2173
2174 // Handle this as arithmetic unary case.
2175 ScopedMemRefType mem_ref_type(this, ResourceMask::kDalvikReg);
2176
2177 // Extract to a GP register because this is integral typed.
2178 temp = AllocTemp();
2179 NewLIR3(extract_opcode, temp.GetReg(), vector_src.GetReg(), 0);
2180 }
2181
2182 if (opsize != k64 && opsize != kSingle && opsize != kDouble) {
2183 // The logic below looks very similar to the handling of ADD_INT_2ADDR
2184 // except the rhs is not a VR but a physical register allocated above.
2185 // No load of source VR is done because it assumes that rl_result will
2186 // share physical register / memory location.
2187 rl_result = UpdateLocTyped(rl_dest, kCoreReg);
2188 if (rl_result.location == kLocPhysReg) {
2189 // Ensure res is in a core reg.
2190 rl_result = EvalLoc(rl_dest, kCoreReg, true);
2191 OpRegReg(kOpAdd, rl_result.reg, temp);
2192 StoreFinalValue(rl_dest, rl_result);
2193 } else {
2194 // Do the addition directly to memory.
2195 OpMemReg(kOpAdd, rl_result, temp.GetReg());
2196 }
2197 }
Mark Mendellfe945782014-05-22 09:52:36 -04002198}
2199
2200void X86Mir2Lir::GenReduceVector(BasicBlock *bb, MIR *mir) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002201 OpSize opsize = static_cast<OpSize>(mir->dalvikInsn.vC >> 16);
2202 RegLocation rl_dest = mir_graph_->GetDest(mir);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002203 RegStorage vector_src = RegStorage::Solo128(mir->dalvikInsn.vB);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002204 int extract_index = mir->dalvikInsn.arg[0];
2205 int extr_opcode = 0;
2206 RegLocation rl_result;
2207 bool is_wide = false;
2208
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002209 // There is a different path depending on type and size.
2210 if (opsize == kSingle) {
2211 // Handle float case.
2212 // TODO Add support for fast math (not value safe) and do horizontal add in that case.
Mark Mendellfe945782014-05-22 09:52:36 -04002213
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002214 rl_result = EvalLoc(rl_dest, kFPReg, true);
2215 NewLIR2(kX86PxorRR, rl_result.reg.GetReg(), rl_result.reg.GetReg());
2216 NewLIR2(kX86AddssRR, rl_result.reg.GetReg(), vector_src.GetReg());
2217
2218 // Since FP must keep order of operation for value safety, we shift to low
2219 // 32-bits and add to result.
2220 for (int i = 0; i < 3; i++) {
2221 NewLIR3(kX86ShufpsRRI, vector_src.GetReg(), vector_src.GetReg(), 0x39);
2222 NewLIR2(kX86AddssRR, rl_result.reg.GetReg(), vector_src.GetReg());
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002223 }
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002224
2225 StoreValue(rl_dest, rl_result);
2226 } else if (opsize == kDouble) {
2227 // TODO Handle double case.
2228 LOG(FATAL) << "Unsupported add reduce for double.";
2229 } else if (opsize == k64) {
2230 /*
2231 * Handle long case:
2232 * 1) Reduce the vector register to lower half (with addition).
2233 * 1-1) Get an xmm temp and fill it with vector register.
2234 * 1-2) Shift the xmm temp by 8-bytes.
2235 * 1-3) Add the xmm temp to vector register that is being reduced.
2236 * 2) Evaluate destination to a GP / GP pair.
2237 * 2-1) In 64-bit case, use movq to move result to a 64-bit GP.
2238 * 2-2) In 32-bit case, use movd twice to move to 32-bit GP pair.
2239 * 3) Store the result to the final destination.
2240 */
2241 RegStorage rs_tmp_vector = Get128BitRegister(AllocTempDouble());
2242 NewLIR2(kX86MovdqaRR, rs_tmp_vector.GetReg(), vector_src.GetReg());
2243 NewLIR2(kX86PsrldqRI, rs_tmp_vector.GetReg(), 8);
2244 NewLIR2(kX86PaddqRR, vector_src.GetReg(), rs_tmp_vector.GetReg());
2245 FreeTemp(rs_tmp_vector);
2246
2247 rl_result = EvalLocWide(rl_dest, kCoreReg, true);
2248 if (cu_->target64) {
2249 DCHECK(!rl_result.reg.IsPair());
2250 NewLIR2(kX86MovqrxRR, rl_result.reg.GetReg(), vector_src.GetReg());
2251 } else {
2252 NewLIR2(kX86MovdrxRR, rl_result.reg.GetLowReg(), vector_src.GetReg());
2253 NewLIR2(kX86PsrlqRI, vector_src.GetReg(), 0x20);
2254 NewLIR2(kX86MovdrxRR, rl_result.reg.GetHighReg(), vector_src.GetReg());
2255 }
2256
2257 StoreValueWide(rl_dest, rl_result);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002258 } else {
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002259 // Handle the rest of integral types now.
2260 switch (opsize) {
2261 case k32:
2262 rl_result = UpdateLocTyped(rl_dest, kCoreReg);
2263 extr_opcode = (rl_result.location == kLocPhysReg) ? kX86PextrdMRI : kX86PextrdRRI;
2264 break;
2265 case kSignedHalf:
2266 case kUnsignedHalf:
2267 rl_result= UpdateLocTyped(rl_dest, kCoreReg);
2268 extr_opcode = (rl_result.location == kLocPhysReg) ? kX86PextrwMRI : kX86PextrwRRI;
2269 break;
2270 default:
2271 LOG(FATAL) << "Unsupported vector reduce " << opsize;
2272 return;
2273 }
2274
2275 if (rl_result.location == kLocPhysReg) {
2276 NewLIR3(extr_opcode, rl_result.reg.GetReg(), vector_src.GetReg(), extract_index);
2277 if (is_wide == true) {
2278 StoreFinalValue(rl_dest, rl_result);
2279 } else {
2280 StoreFinalValueWide(rl_dest, rl_result);
2281 }
2282 } else {
2283 int displacement = SRegOffset(rl_result.s_reg_low);
2284 LIR *l = NewLIR3(extr_opcode, rs_rX86_SP.GetReg(), displacement, vector_src.GetReg());
2285 AnnotateDalvikRegAccess(l, displacement >> 2, true /* is_load */, is_wide /* is_64bit */);
2286 AnnotateDalvikRegAccess(l, displacement >> 2, false /* is_load */, is_wide /* is_64bit */);
2287 }
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002288 }
Mark Mendellfe945782014-05-22 09:52:36 -04002289}
2290
Mark Mendell0a1174e2014-09-11 14:51:02 -04002291void X86Mir2Lir::LoadVectorRegister(RegStorage rs_dest, RegStorage rs_src,
2292 OpSize opsize, int op_mov) {
2293 if (!cu_->target64 && opsize == k64) {
2294 // Logic assumes that longs are loaded in GP register pairs.
2295 NewLIR2(kX86MovdxrRR, rs_dest.GetReg(), rs_src.GetLowReg());
2296 RegStorage r_tmp = AllocTempDouble();
2297 NewLIR2(kX86MovdxrRR, r_tmp.GetReg(), rs_src.GetHighReg());
2298 NewLIR2(kX86PunpckldqRR, rs_dest.GetReg(), r_tmp.GetReg());
2299 FreeTemp(r_tmp);
2300 } else {
2301 NewLIR2(op_mov, rs_dest.GetReg(), rs_src.GetReg());
2302 }
2303}
2304
Mark Mendellfe945782014-05-22 09:52:36 -04002305void X86Mir2Lir::GenSetVector(BasicBlock *bb, MIR *mir) {
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002306 DCHECK_EQ(mir->dalvikInsn.vC & 0xFFFF, 128U);
2307 OpSize opsize = static_cast<OpSize>(mir->dalvikInsn.vC >> 16);
2308 RegStorage rs_dest = RegStorage::Solo128(mir->dalvikInsn.vA);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002309 Clobber(rs_dest);
2310 int op_shuffle = 0, op_shuffle_high = 0, op_mov = kX86MovdxrRR;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002311 RegisterClass reg_type = kCoreReg;
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002312 bool is_wide = false;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002313
Mark Mendellfe945782014-05-22 09:52:36 -04002314 switch (opsize) {
2315 case k32:
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002316 op_shuffle = kX86PshufdRRI;
Mark Mendellfe945782014-05-22 09:52:36 -04002317 break;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002318 case kSingle:
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002319 op_shuffle = kX86PshufdRRI;
2320 op_mov = kX86MovdqaRR;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002321 reg_type = kFPReg;
2322 break;
2323 case k64:
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002324 op_shuffle = kX86PunpcklqdqRR;
2325 op_mov = kX86MovqrxRR;
2326 is_wide = true;
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002327 break;
2328 case kSignedByte:
2329 case kUnsignedByte:
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002330 // We will have the source loaded up in a
2331 // double-word before we use this shuffle
2332 op_shuffle = kX86PshufdRRI;
2333 break;
Mark Mendellfe945782014-05-22 09:52:36 -04002334 case kSignedHalf:
2335 case kUnsignedHalf:
2336 // Handles low quadword.
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002337 op_shuffle = kX86PshuflwRRI;
Mark Mendellfe945782014-05-22 09:52:36 -04002338 // Handles upper quadword.
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002339 op_shuffle_high = kX86PshufdRRI;
Mark Mendellfe945782014-05-22 09:52:36 -04002340 break;
2341 default:
2342 LOG(FATAL) << "Unsupported vector set " << opsize;
2343 break;
2344 }
2345
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002346 // Load the value from the VR into a physical register.
2347 RegLocation rl_src;
2348 if (!is_wide) {
2349 rl_src = mir_graph_->GetSrc(mir, 0);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002350 rl_src = LoadValue(rl_src, reg_type);
2351 } else {
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002352 rl_src = mir_graph_->GetSrcWide(mir, 0);
Udayan Banerji60bfe7b2014-07-08 19:59:43 -07002353 rl_src = LoadValueWide(rl_src, reg_type);
2354 }
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002355 RegStorage reg_to_shuffle = rl_src.reg;
Mark Mendellfe945782014-05-22 09:52:36 -04002356
2357 // Load the value into the XMM register.
Mark Mendell0a1174e2014-09-11 14:51:02 -04002358 LoadVectorRegister(rs_dest, reg_to_shuffle, opsize, op_mov);
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002359
2360 if (opsize == kSignedByte || opsize == kUnsignedByte) {
2361 // In the byte case, first duplicate it to be a word
2362 // Then duplicate it to be a double-word
2363 NewLIR2(kX86PunpcklbwRR, rs_dest.GetReg(), rs_dest.GetReg());
2364 NewLIR2(kX86PunpcklwdRR, rs_dest.GetReg(), rs_dest.GetReg());
2365 }
Mark Mendellfe945782014-05-22 09:52:36 -04002366
2367 // Now shuffle the value across the destination.
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002368 if (op_shuffle == kX86PunpcklqdqRR) {
2369 NewLIR2(op_shuffle, rs_dest.GetReg(), rs_dest.GetReg());
2370 } else {
2371 NewLIR3(op_shuffle, rs_dest.GetReg(), rs_dest.GetReg(), 0);
2372 }
Mark Mendellfe945782014-05-22 09:52:36 -04002373
2374 // And then repeat as needed.
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002375 if (op_shuffle_high != 0) {
2376 NewLIR3(op_shuffle_high, rs_dest.GetReg(), rs_dest.GetReg(), 0);
Mark Mendellfe945782014-05-22 09:52:36 -04002377 }
2378}
2379
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002380void X86Mir2Lir::GenPackedArrayGet(BasicBlock *bb, MIR *mir) {
2381 UNIMPLEMENTED(FATAL) << "Extended opcode kMirOpPackedArrayGet not supported.";
2382}
2383
2384void X86Mir2Lir::GenPackedArrayPut(BasicBlock *bb, MIR *mir) {
2385 UNIMPLEMENTED(FATAL) << "Extended opcode kMirOpPackedArrayPut not supported.";
2386}
2387
2388LIR* X86Mir2Lir::ScanVectorLiteral(int32_t* constants) {
Mark Mendelld65c51a2014-04-29 16:55:20 -04002389 for (LIR *p = const_vectors_; p != nullptr; p = p->next) {
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002390 if (constants[0] == p->operands[0] && constants[1] == p->operands[1] &&
2391 constants[2] == p->operands[2] && constants[3] == p->operands[3]) {
Mark Mendelld65c51a2014-04-29 16:55:20 -04002392 return p;
2393 }
2394 }
2395 return nullptr;
2396}
2397
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002398LIR* X86Mir2Lir::AddVectorLiteral(int32_t* constants) {
Mark Mendelld65c51a2014-04-29 16:55:20 -04002399 LIR* new_value = static_cast<LIR*>(arena_->Alloc(sizeof(LIR), kArenaAllocData));
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002400 new_value->operands[0] = constants[0];
2401 new_value->operands[1] = constants[1];
2402 new_value->operands[2] = constants[2];
2403 new_value->operands[3] = constants[3];
Mark Mendelld65c51a2014-04-29 16:55:20 -04002404 new_value->next = const_vectors_;
2405 if (const_vectors_ == nullptr) {
Lupusoru, Razvan Ab3a84e22014-07-28 14:11:01 -07002406 estimated_native_code_size_ += 12; // Maximum needed to align to 16 byte boundary.
Mark Mendelld65c51a2014-04-29 16:55:20 -04002407 }
2408 estimated_native_code_size_ += 16; // Space for one vector.
2409 const_vectors_ = new_value;
2410 return new_value;
2411}
2412
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002413// ------------ ABI support: mapping of args to physical registers -------------
Andreas Gampeccc60262014-07-04 18:02:38 -07002414RegStorage X86Mir2Lir::InToRegStorageX86_64Mapper::GetNextReg(bool is_double_or_float, bool is_wide,
2415 bool is_ref) {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002416 const SpecialTargetRegister coreArgMappingToPhysicalReg[] = {kArg1, kArg2, kArg3, kArg4, kArg5};
Andreas Gampeccc60262014-07-04 18:02:38 -07002417 const int coreArgMappingToPhysicalRegSize = sizeof(coreArgMappingToPhysicalReg) /
2418 sizeof(SpecialTargetRegister);
Chao-ying Fua77ee512014-07-01 17:43:41 -07002419 const SpecialTargetRegister fpArgMappingToPhysicalReg[] = {kFArg0, kFArg1, kFArg2, kFArg3,
Andreas Gampeccc60262014-07-04 18:02:38 -07002420 kFArg4, kFArg5, kFArg6, kFArg7};
2421 const int fpArgMappingToPhysicalRegSize = sizeof(fpArgMappingToPhysicalReg) /
2422 sizeof(SpecialTargetRegister);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002423
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002424 if (is_double_or_float) {
2425 if (cur_fp_reg_ < fpArgMappingToPhysicalRegSize) {
Andreas Gampeccc60262014-07-04 18:02:38 -07002426 return ml_->TargetReg(fpArgMappingToPhysicalReg[cur_fp_reg_++], is_wide ? kWide : kNotWide);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002427 }
2428 } else {
2429 if (cur_core_reg_ < coreArgMappingToPhysicalRegSize) {
Andreas Gampeccc60262014-07-04 18:02:38 -07002430 return ml_->TargetReg(coreArgMappingToPhysicalReg[cur_core_reg_++],
2431 is_ref ? kRef : (is_wide ? kWide : kNotWide));
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002432 }
2433 }
Chao-ying Fua77ee512014-07-01 17:43:41 -07002434 return RegStorage::InvalidReg();
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002435}
2436
2437RegStorage X86Mir2Lir::InToRegStorageMapping::Get(int in_position) {
2438 DCHECK(IsInitialized());
2439 auto res = mapping_.find(in_position);
2440 return res != mapping_.end() ? res->second : RegStorage::InvalidReg();
2441}
2442
Andreas Gampeccc60262014-07-04 18:02:38 -07002443void X86Mir2Lir::InToRegStorageMapping::Initialize(RegLocation* arg_locs, int count,
2444 InToRegStorageMapper* mapper) {
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002445 DCHECK(mapper != nullptr);
2446 max_mapped_in_ = -1;
2447 is_there_stack_mapped_ = false;
2448 for (int in_position = 0; in_position < count; in_position++) {
Serguei Katkov407a9d22014-07-05 03:09:32 +07002449 RegStorage reg = mapper->GetNextReg(arg_locs[in_position].fp,
2450 arg_locs[in_position].wide, arg_locs[in_position].ref);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002451 if (reg.Valid()) {
2452 mapping_[in_position] = reg;
2453 max_mapped_in_ = std::max(max_mapped_in_, in_position);
Serguei Katkov407a9d22014-07-05 03:09:32 +07002454 if (arg_locs[in_position].wide) {
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002455 // We covered 2 args, so skip the next one
2456 in_position++;
2457 }
2458 } else {
2459 is_there_stack_mapped_ = true;
2460 }
2461 }
2462 initialized_ = true;
2463}
2464
2465RegStorage X86Mir2Lir::GetArgMappingToPhysicalReg(int arg_num) {
Elena Sayapinadd644502014-07-01 18:39:52 +07002466 if (!cu_->target64) {
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002467 return GetCoreArgMappingToPhysicalReg(arg_num);
2468 }
2469
2470 if (!in_to_reg_storage_mapping_.IsInitialized()) {
Razvan A Lupusoru8d0d03e2014-06-06 17:04:52 -07002471 int start_vreg = cu_->mir_graph->GetFirstInVR();
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002472 RegLocation* arg_locs = &mir_graph_->reg_location_[start_vreg];
2473
Chao-ying Fua77ee512014-07-01 17:43:41 -07002474 InToRegStorageX86_64Mapper mapper(this);
Razvan A Lupusoru8d0d03e2014-06-06 17:04:52 -07002475 in_to_reg_storage_mapping_.Initialize(arg_locs, mir_graph_->GetNumOfInVRs(), &mapper);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002476 }
2477 return in_to_reg_storage_mapping_.Get(arg_num);
2478}
2479
2480RegStorage X86Mir2Lir::GetCoreArgMappingToPhysicalReg(int core_arg_num) {
2481 // For the 32-bit internal ABI, the first 3 arguments are passed in registers.
2482 // Not used for 64-bit, TODO: Move X86_32 to the same framework
2483 switch (core_arg_num) {
2484 case 0:
2485 return rs_rX86_ARG1;
2486 case 1:
2487 return rs_rX86_ARG2;
2488 case 2:
2489 return rs_rX86_ARG3;
2490 default:
2491 return RegStorage::InvalidReg();
2492 }
2493}
2494
2495// ---------End of ABI support: mapping of args to physical registers -------------
2496
2497/*
2498 * If there are any ins passed in registers that have not been promoted
2499 * to a callee-save register, flush them to the frame. Perform initial
2500 * assignment of promoted arguments.
2501 *
2502 * ArgLocs is an array of location records describing the incoming arguments
2503 * with one location record per word of argument.
2504 */
2505void X86Mir2Lir::FlushIns(RegLocation* ArgLocs, RegLocation rl_method) {
Elena Sayapinadd644502014-07-01 18:39:52 +07002506 if (!cu_->target64) return Mir2Lir::FlushIns(ArgLocs, rl_method);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002507 /*
2508 * Dummy up a RegLocation for the incoming Method*
2509 * It will attempt to keep kArg0 live (or copy it to home location
2510 * if promoted).
2511 */
2512
2513 RegLocation rl_src = rl_method;
2514 rl_src.location = kLocPhysReg;
Andreas Gampeccc60262014-07-04 18:02:38 -07002515 rl_src.reg = TargetReg(kArg0, kRef);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002516 rl_src.home = false;
2517 MarkLive(rl_src);
2518 StoreValue(rl_method, rl_src);
2519 // If Method* has been promoted, explicitly flush
2520 if (rl_method.location == kLocPhysReg) {
Andreas Gampeccc60262014-07-04 18:02:38 -07002521 StoreRefDisp(rs_rX86_SP, 0, As32BitReg(TargetReg(kArg0, kRef)), kNotVolatile);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002522 }
2523
Razvan A Lupusoru8d0d03e2014-06-06 17:04:52 -07002524 if (mir_graph_->GetNumOfInVRs() == 0) {
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002525 return;
2526 }
2527
Razvan A Lupusoru8d0d03e2014-06-06 17:04:52 -07002528 int start_vreg = cu_->mir_graph->GetFirstInVR();
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002529 /*
2530 * Copy incoming arguments to their proper home locations.
2531 * NOTE: an older version of dx had an issue in which
2532 * it would reuse static method argument registers.
2533 * This could result in the same Dalvik virtual register
2534 * being promoted to both core and fp regs. To account for this,
2535 * we only copy to the corresponding promoted physical register
2536 * if it matches the type of the SSA name for the incoming
2537 * argument. It is also possible that long and double arguments
2538 * end up half-promoted. In those cases, we must flush the promoted
2539 * half to memory as well.
2540 */
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002541 ScopedMemRefType mem_ref_type(this, ResourceMask::kDalvikReg);
Razvan A Lupusoru8d0d03e2014-06-06 17:04:52 -07002542 for (uint32_t i = 0; i < mir_graph_->GetNumOfInVRs(); i++) {
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002543 // get reg corresponding to input
Dmitry Petrochenko4d5d7942014-06-27 12:25:01 +07002544 RegStorage reg = GetArgMappingToPhysicalReg(i);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002545
Dmitry Petrochenko4d5d7942014-06-27 12:25:01 +07002546 RegLocation* t_loc = &ArgLocs[i];
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002547 if (reg.Valid()) {
Dmitry Petrochenko4d5d7942014-06-27 12:25:01 +07002548 // If arriving in register.
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002549
Dmitry Petrochenko4d5d7942014-06-27 12:25:01 +07002550 // We have already updated the arg location with promoted info
2551 // so we can be based on it.
2552 if (t_loc->location == kLocPhysReg) {
2553 // Just copy it.
2554 OpRegCopy(t_loc->reg, reg);
2555 } else {
2556 // Needs flush.
2557 if (t_loc->ref) {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002558 StoreRefDisp(rs_rX86_SP, SRegOffset(start_vreg + i), reg, kNotVolatile);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002559 } else {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002560 StoreBaseDisp(rs_rX86_SP, SRegOffset(start_vreg + i), reg, t_loc->wide ? k64 : k32,
Dmitry Petrochenko4d5d7942014-06-27 12:25:01 +07002561 kNotVolatile);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002562 }
2563 }
2564 } else {
Dmitry Petrochenko4d5d7942014-06-27 12:25:01 +07002565 // If arriving in frame & promoted.
2566 if (t_loc->location == kLocPhysReg) {
2567 if (t_loc->ref) {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002568 LoadRefDisp(rs_rX86_SP, SRegOffset(start_vreg + i), t_loc->reg, kNotVolatile);
Dmitry Petrochenko4d5d7942014-06-27 12:25:01 +07002569 } else {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002570 LoadBaseDisp(rs_rX86_SP, SRegOffset(start_vreg + i), t_loc->reg,
Dmitry Petrochenko4d5d7942014-06-27 12:25:01 +07002571 t_loc->wide ? k64 : k32, kNotVolatile);
2572 }
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002573 }
Dmitry Petrochenko4d5d7942014-06-27 12:25:01 +07002574 }
2575 if (t_loc->wide) {
2576 // Increment i to skip the next one.
2577 i++;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002578 }
2579 }
2580}
2581
2582/*
2583 * Load up to 5 arguments, the first three of which will be in
2584 * kArg1 .. kArg3. On entry kArg0 contains the current method pointer,
2585 * and as part of the load sequence, it must be replaced with
2586 * the target method pointer. Note, this may also be called
2587 * for "range" variants if the number of arguments is 5 or fewer.
2588 */
2589int X86Mir2Lir::GenDalvikArgsNoRange(CallInfo* info,
2590 int call_state, LIR** pcrLabel, NextCallInsn next_call_insn,
2591 const MethodReference& target_method,
2592 uint32_t vtable_idx, uintptr_t direct_code,
2593 uintptr_t direct_method, InvokeType type, bool skip_this) {
Elena Sayapinadd644502014-07-01 18:39:52 +07002594 if (!cu_->target64) {
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002595 return Mir2Lir::GenDalvikArgsNoRange(info,
2596 call_state, pcrLabel, next_call_insn,
2597 target_method,
2598 vtable_idx, direct_code,
2599 direct_method, type, skip_this);
2600 }
2601 return GenDalvikArgsRange(info,
2602 call_state, pcrLabel, next_call_insn,
2603 target_method,
2604 vtable_idx, direct_code,
2605 direct_method, type, skip_this);
2606}
2607
2608/*
2609 * May have 0+ arguments (also used for jumbo). Note that
2610 * source virtual registers may be in physical registers, so may
2611 * need to be flushed to home location before copying. This
2612 * applies to arg3 and above (see below).
2613 *
2614 * Two general strategies:
2615 * If < 20 arguments
2616 * Pass args 3-18 using vldm/vstm block copy
2617 * Pass arg0, arg1 & arg2 in kArg1-kArg3
2618 * If 20+ arguments
2619 * Pass args arg19+ using memcpy block copy
2620 * Pass arg0, arg1 & arg2 in kArg1-kArg3
2621 *
2622 */
2623int X86Mir2Lir::GenDalvikArgsRange(CallInfo* info, int call_state,
2624 LIR** pcrLabel, NextCallInsn next_call_insn,
2625 const MethodReference& target_method,
2626 uint32_t vtable_idx, uintptr_t direct_code, uintptr_t direct_method,
2627 InvokeType type, bool skip_this) {
Elena Sayapinadd644502014-07-01 18:39:52 +07002628 if (!cu_->target64) {
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002629 return Mir2Lir::GenDalvikArgsRange(info, call_state,
2630 pcrLabel, next_call_insn,
2631 target_method,
2632 vtable_idx, direct_code, direct_method,
2633 type, skip_this);
2634 }
2635
2636 /* If no arguments, just return */
2637 if (info->num_arg_words == 0)
2638 return call_state;
2639
2640 const int start_index = skip_this ? 1 : 0;
2641
Chao-ying Fua77ee512014-07-01 17:43:41 -07002642 InToRegStorageX86_64Mapper mapper(this);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002643 InToRegStorageMapping in_to_reg_storage_mapping;
2644 in_to_reg_storage_mapping.Initialize(info->args, info->num_arg_words, &mapper);
2645 const int last_mapped_in = in_to_reg_storage_mapping.GetMaxMappedIn();
2646 const int size_of_the_last_mapped = last_mapped_in == -1 ? 1 :
Serguei Katkov8e3acdd2014-07-15 12:01:00 +07002647 info->args[last_mapped_in].wide ? 2 : 1;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002648 int regs_left_to_pass_via_stack = info->num_arg_words - (last_mapped_in + size_of_the_last_mapped);
2649
2650 // Fisrt of all, check whether it make sense to use bulk copying
2651 // Optimization is aplicable only for range case
2652 // TODO: make a constant instead of 2
2653 if (info->is_range && regs_left_to_pass_via_stack >= 2) {
2654 // Scan the rest of the args - if in phys_reg flush to memory
2655 for (int next_arg = last_mapped_in + size_of_the_last_mapped; next_arg < info->num_arg_words;) {
2656 RegLocation loc = info->args[next_arg];
2657 if (loc.wide) {
2658 loc = UpdateLocWide(loc);
2659 if (loc.location == kLocPhysReg) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002660 ScopedMemRefType mem_ref_type(this, ResourceMask::kDalvikReg);
Chao-ying Fua77ee512014-07-01 17:43:41 -07002661 StoreBaseDisp(rs_rX86_SP, SRegOffset(loc.s_reg_low), loc.reg, k64, kNotVolatile);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002662 }
2663 next_arg += 2;
2664 } else {
2665 loc = UpdateLoc(loc);
2666 if (loc.location == kLocPhysReg) {
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002667 ScopedMemRefType mem_ref_type(this, ResourceMask::kDalvikReg);
Chao-ying Fua77ee512014-07-01 17:43:41 -07002668 StoreBaseDisp(rs_rX86_SP, SRegOffset(loc.s_reg_low), loc.reg, k32, kNotVolatile);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002669 }
2670 next_arg++;
2671 }
2672 }
2673
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002674 // The rest can be copied together
2675 int start_offset = SRegOffset(info->args[last_mapped_in + size_of_the_last_mapped].s_reg_low);
Andreas Gampeccc60262014-07-04 18:02:38 -07002676 int outs_offset = StackVisitor::GetOutVROffset(last_mapped_in + size_of_the_last_mapped,
2677 cu_->instruction_set);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002678
2679 int current_src_offset = start_offset;
2680 int current_dest_offset = outs_offset;
2681
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002682 // Only davik regs are accessed in this loop; no next_call_insn() calls.
2683 ScopedMemRefType mem_ref_type(this, ResourceMask::kDalvikReg);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002684 while (regs_left_to_pass_via_stack > 0) {
2685 // This is based on the knowledge that the stack itself is 16-byte aligned.
2686 bool src_is_16b_aligned = (current_src_offset & 0xF) == 0;
2687 bool dest_is_16b_aligned = (current_dest_offset & 0xF) == 0;
2688 size_t bytes_to_move;
2689
2690 /*
2691 * The amount to move defaults to 32-bit. If there are 4 registers left to move, then do a
2692 * a 128-bit move because we won't get the chance to try to aligned. If there are more than
2693 * 4 registers left to move, consider doing a 128-bit only if either src or dest are aligned.
2694 * We do this because we could potentially do a smaller move to align.
2695 */
2696 if (regs_left_to_pass_via_stack == 4 ||
2697 (regs_left_to_pass_via_stack > 4 && (src_is_16b_aligned || dest_is_16b_aligned))) {
2698 // Moving 128-bits via xmm register.
2699 bytes_to_move = sizeof(uint32_t) * 4;
2700
2701 // Allocate a free xmm temp. Since we are working through the calling sequence,
2702 // we expect to have an xmm temporary available. AllocTempDouble will abort if
2703 // there are no free registers.
2704 RegStorage temp = AllocTempDouble();
2705
2706 LIR* ld1 = nullptr;
2707 LIR* ld2 = nullptr;
2708 LIR* st1 = nullptr;
2709 LIR* st2 = nullptr;
2710
2711 /*
2712 * The logic is similar for both loads and stores. If we have 16-byte alignment,
2713 * do an aligned move. If we have 8-byte alignment, then do the move in two
2714 * parts. This approach prevents possible cache line splits. Finally, fall back
2715 * to doing an unaligned move. In most cases we likely won't split the cache
2716 * line but we cannot prove it and thus take a conservative approach.
2717 */
2718 bool src_is_8b_aligned = (current_src_offset & 0x7) == 0;
2719 bool dest_is_8b_aligned = (current_dest_offset & 0x7) == 0;
2720
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002721 ScopedMemRefType mem_ref_type(this, ResourceMask::kDalvikReg);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002722 if (src_is_16b_aligned) {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002723 ld1 = OpMovRegMem(temp, rs_rX86_SP, current_src_offset, kMovA128FP);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002724 } else if (src_is_8b_aligned) {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002725 ld1 = OpMovRegMem(temp, rs_rX86_SP, current_src_offset, kMovLo128FP);
2726 ld2 = OpMovRegMem(temp, rs_rX86_SP, current_src_offset + (bytes_to_move >> 1),
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002727 kMovHi128FP);
2728 } else {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002729 ld1 = OpMovRegMem(temp, rs_rX86_SP, current_src_offset, kMovU128FP);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002730 }
2731
2732 if (dest_is_16b_aligned) {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002733 st1 = OpMovMemReg(rs_rX86_SP, current_dest_offset, temp, kMovA128FP);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002734 } else if (dest_is_8b_aligned) {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002735 st1 = OpMovMemReg(rs_rX86_SP, current_dest_offset, temp, kMovLo128FP);
2736 st2 = OpMovMemReg(rs_rX86_SP, current_dest_offset + (bytes_to_move >> 1),
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002737 temp, kMovHi128FP);
2738 } else {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002739 st1 = OpMovMemReg(rs_rX86_SP, current_dest_offset, temp, kMovU128FP);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002740 }
2741
2742 // TODO If we could keep track of aliasing information for memory accesses that are wider
2743 // than 64-bit, we wouldn't need to set up a barrier.
2744 if (ld1 != nullptr) {
2745 if (ld2 != nullptr) {
2746 // For 64-bit load we can actually set up the aliasing information.
2747 AnnotateDalvikRegAccess(ld1, current_src_offset >> 2, true, true);
2748 AnnotateDalvikRegAccess(ld2, (current_src_offset + (bytes_to_move >> 1)) >> 2, true, true);
2749 } else {
2750 // Set barrier for 128-bit load.
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002751 ld1->u.m.def_mask = &kEncodeAll;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002752 }
2753 }
2754 if (st1 != nullptr) {
2755 if (st2 != nullptr) {
2756 // For 64-bit store we can actually set up the aliasing information.
2757 AnnotateDalvikRegAccess(st1, current_dest_offset >> 2, false, true);
2758 AnnotateDalvikRegAccess(st2, (current_dest_offset + (bytes_to_move >> 1)) >> 2, false, true);
2759 } else {
2760 // Set barrier for 128-bit store.
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002761 st1->u.m.def_mask = &kEncodeAll;
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002762 }
2763 }
2764
2765 // Free the temporary used for the data movement.
2766 FreeTemp(temp);
2767 } else {
2768 // Moving 32-bits via general purpose register.
2769 bytes_to_move = sizeof(uint32_t);
2770
2771 // Instead of allocating a new temp, simply reuse one of the registers being used
2772 // for argument passing.
Andreas Gampeccc60262014-07-04 18:02:38 -07002773 RegStorage temp = TargetReg(kArg3, kNotWide);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002774
2775 // Now load the argument VR and store to the outs.
Chao-ying Fua77ee512014-07-01 17:43:41 -07002776 Load32Disp(rs_rX86_SP, current_src_offset, temp);
2777 Store32Disp(rs_rX86_SP, current_dest_offset, temp);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002778 }
2779
2780 current_src_offset += bytes_to_move;
2781 current_dest_offset += bytes_to_move;
2782 regs_left_to_pass_via_stack -= (bytes_to_move >> 2);
2783 }
2784 DCHECK_EQ(regs_left_to_pass_via_stack, 0);
2785 }
2786
2787 // Now handle rest not registers if they are
2788 if (in_to_reg_storage_mapping.IsThereStackMapped()) {
Andreas Gampeccc60262014-07-04 18:02:38 -07002789 RegStorage regSingle = TargetReg(kArg2, kNotWide);
2790 RegStorage regWide = TargetReg(kArg3, kWide);
Chao-ying Fub6564c12014-06-24 13:24:36 -07002791 for (int i = start_index;
2792 i < last_mapped_in + size_of_the_last_mapped + regs_left_to_pass_via_stack; i++) {
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002793 RegLocation rl_arg = info->args[i];
2794 rl_arg = UpdateRawLoc(rl_arg);
2795 RegStorage reg = in_to_reg_storage_mapping.Get(i);
2796 if (!reg.Valid()) {
2797 int out_offset = StackVisitor::GetOutVROffset(i, cu_->instruction_set);
2798
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002799 {
2800 ScopedMemRefType mem_ref_type(this, ResourceMask::kDalvikReg);
2801 if (rl_arg.wide) {
2802 if (rl_arg.location == kLocPhysReg) {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002803 StoreBaseDisp(rs_rX86_SP, out_offset, rl_arg.reg, k64, kNotVolatile);
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002804 } else {
2805 LoadValueDirectWideFixed(rl_arg, regWide);
Chao-ying Fua77ee512014-07-01 17:43:41 -07002806 StoreBaseDisp(rs_rX86_SP, out_offset, regWide, k64, kNotVolatile);
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002807 }
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002808 } else {
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002809 if (rl_arg.location == kLocPhysReg) {
Chao-ying Fua77ee512014-07-01 17:43:41 -07002810 StoreBaseDisp(rs_rX86_SP, out_offset, rl_arg.reg, k32, kNotVolatile);
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002811 } else {
2812 LoadValueDirectFixed(rl_arg, regSingle);
Chao-ying Fua77ee512014-07-01 17:43:41 -07002813 StoreBaseDisp(rs_rX86_SP, out_offset, regSingle, k32, kNotVolatile);
Vladimir Marko8dea81c2014-06-06 14:50:36 +01002814 }
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002815 }
2816 }
2817 call_state = next_call_insn(cu_, info, call_state, target_method,
2818 vtable_idx, direct_code, direct_method, type);
2819 }
Chao-ying Fub6564c12014-06-24 13:24:36 -07002820 if (rl_arg.wide) {
2821 i++;
2822 }
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002823 }
2824 }
2825
2826 // Finish with mapped registers
2827 for (int i = start_index; i <= last_mapped_in; i++) {
2828 RegLocation rl_arg = info->args[i];
2829 rl_arg = UpdateRawLoc(rl_arg);
2830 RegStorage reg = in_to_reg_storage_mapping.Get(i);
2831 if (reg.Valid()) {
2832 if (rl_arg.wide) {
2833 LoadValueDirectWideFixed(rl_arg, reg);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002834 } else {
2835 LoadValueDirectFixed(rl_arg, reg);
2836 }
2837 call_state = next_call_insn(cu_, info, call_state, target_method, vtable_idx,
2838 direct_code, direct_method, type);
2839 }
Chao-ying Fub6564c12014-06-24 13:24:36 -07002840 if (rl_arg.wide) {
2841 i++;
2842 }
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002843 }
2844
2845 call_state = next_call_insn(cu_, info, call_state, target_method, vtable_idx,
2846 direct_code, direct_method, type);
2847 if (pcrLabel) {
Dave Allison69dfe512014-07-11 17:11:58 +00002848 if (!cu_->compiler_driver->GetCompilerOptions().GetImplicitNullChecks()) {
Andreas Gampeccc60262014-07-04 18:02:38 -07002849 *pcrLabel = GenExplicitNullCheck(TargetReg(kArg1, kRef), info->opt_flags);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002850 } else {
2851 *pcrLabel = nullptr;
2852 // In lieu of generating a check for kArg1 being null, we need to
2853 // perform a load when doing implicit checks.
2854 RegStorage tmp = AllocTemp();
Andreas Gampeccc60262014-07-04 18:02:38 -07002855 Load32Disp(TargetReg(kArg1, kRef), 0, tmp);
Dmitry Petrochenko58994cd2014-05-17 01:02:18 +07002856 MarkPossibleNullPointerException(info->opt_flags);
2857 FreeTemp(tmp);
2858 }
2859 }
2860 return call_state;
2861}
2862
Andreas Gampe98430592014-07-27 19:44:50 -07002863bool X86Mir2Lir::GenInlinedCharAt(CallInfo* info) {
2864 // Location of reference to data array
2865 int value_offset = mirror::String::ValueOffset().Int32Value();
2866 // Location of count
2867 int count_offset = mirror::String::CountOffset().Int32Value();
2868 // Starting offset within data array
2869 int offset_offset = mirror::String::OffsetOffset().Int32Value();
2870 // Start of char data with array_
2871 int data_offset = mirror::Array::DataOffset(sizeof(uint16_t)).Int32Value();
2872
2873 RegLocation rl_obj = info->args[0];
2874 RegLocation rl_idx = info->args[1];
2875 rl_obj = LoadValue(rl_obj, kRefReg);
2876 // X86 wants to avoid putting a constant index into a register.
2877 if (!rl_idx.is_const) {
2878 rl_idx = LoadValue(rl_idx, kCoreReg);
2879 }
2880 RegStorage reg_max;
2881 GenNullCheck(rl_obj.reg, info->opt_flags);
2882 bool range_check = (!(info->opt_flags & MIR_IGNORE_RANGE_CHECK));
2883 LIR* range_check_branch = nullptr;
2884 RegStorage reg_off;
2885 RegStorage reg_ptr;
2886 if (range_check) {
2887 // On x86, we can compare to memory directly
2888 // Set up a launch pad to allow retry in case of bounds violation */
2889 if (rl_idx.is_const) {
2890 LIR* comparison;
2891 range_check_branch = OpCmpMemImmBranch(
2892 kCondUlt, RegStorage::InvalidReg(), rl_obj.reg, count_offset,
2893 mir_graph_->ConstantValue(rl_idx.orig_sreg), nullptr, &comparison);
2894 MarkPossibleNullPointerExceptionAfter(0, comparison);
2895 } else {
2896 OpRegMem(kOpCmp, rl_idx.reg, rl_obj.reg, count_offset);
2897 MarkPossibleNullPointerException(0);
2898 range_check_branch = OpCondBranch(kCondUge, nullptr);
2899 }
2900 }
2901 reg_off = AllocTemp();
2902 reg_ptr = AllocTempRef();
2903 Load32Disp(rl_obj.reg, offset_offset, reg_off);
2904 LoadRefDisp(rl_obj.reg, value_offset, reg_ptr, kNotVolatile);
2905 if (rl_idx.is_const) {
2906 OpRegImm(kOpAdd, reg_off, mir_graph_->ConstantValue(rl_idx.orig_sreg));
2907 } else {
2908 OpRegReg(kOpAdd, reg_off, rl_idx.reg);
2909 }
2910 FreeTemp(rl_obj.reg);
2911 if (rl_idx.location == kLocPhysReg) {
2912 FreeTemp(rl_idx.reg);
2913 }
2914 RegLocation rl_dest = InlineTarget(info);
2915 RegLocation rl_result = EvalLoc(rl_dest, kCoreReg, true);
2916 LoadBaseIndexedDisp(reg_ptr, reg_off, 1, data_offset, rl_result.reg, kUnsignedHalf);
2917 FreeTemp(reg_off);
2918 FreeTemp(reg_ptr);
2919 StoreValue(rl_dest, rl_result);
2920 if (range_check) {
2921 DCHECK(range_check_branch != nullptr);
2922 info->opt_flags |= MIR_IGNORE_NULL_CHECK; // Record that we've already null checked.
2923 AddIntrinsicSlowPath(info, range_check_branch);
2924 }
2925 return true;
2926}
2927
Alexei Zavjalov6bbf0962014-07-15 02:19:41 +07002928bool X86Mir2Lir::GenInlinedCurrentThread(CallInfo* info) {
2929 RegLocation rl_dest = InlineTarget(info);
2930
2931 // Early exit if the result is unused.
2932 if (rl_dest.orig_sreg < 0) {
2933 return true;
2934 }
2935
2936 RegLocation rl_result = EvalLoc(rl_dest, kRefReg, true);
2937
2938 if (cu_->target64) {
2939 OpRegThreadMem(kOpMov, rl_result.reg, Thread::PeerOffset<8>());
2940 } else {
2941 OpRegThreadMem(kOpMov, rl_result.reg, Thread::PeerOffset<4>());
2942 }
2943
2944 StoreValue(rl_dest, rl_result);
2945 return true;
2946}
2947
Maxim Kazantsev6dccdc22014-08-18 18:43:55 +07002948/**
2949 * Lock temp registers for explicit usage. Registers will be freed in destructor.
2950 */
2951X86Mir2Lir::ExplicitTempRegisterLock::ExplicitTempRegisterLock(X86Mir2Lir* mir_to_lir,
2952 int n_regs, ...) :
2953 temp_regs_(n_regs),
2954 mir_to_lir_(mir_to_lir) {
2955 va_list regs;
2956 va_start(regs, n_regs);
2957 for (int i = 0; i < n_regs; i++) {
2958 RegStorage reg = *(va_arg(regs, RegStorage*));
2959 RegisterInfo* info = mir_to_lir_->GetRegInfo(reg);
2960
2961 // Make sure we don't have promoted register here.
2962 DCHECK(info->IsTemp());
2963
2964 temp_regs_.push_back(reg);
2965 mir_to_lir_->FlushReg(reg);
2966
2967 if (reg.IsPair()) {
2968 RegStorage partner = info->Partner();
2969 temp_regs_.push_back(partner);
2970 mir_to_lir_->FlushReg(partner);
2971 }
2972
2973 mir_to_lir_->Clobber(reg);
2974 mir_to_lir_->LockTemp(reg);
2975 }
2976
2977 va_end(regs);
2978}
2979
2980/*
2981 * Free all locked registers.
2982 */
2983X86Mir2Lir::ExplicitTempRegisterLock::~ExplicitTempRegisterLock() {
2984 // Free all locked temps.
2985 for (auto it : temp_regs_) {
2986 mir_to_lir_->FreeTemp(it);
2987 }
2988}
2989
Brian Carlstrom7934ac22013-07-26 10:54:15 -07002990} // namespace art