blob: 1065fbde0f0a287fdc937701ad2e98db61bd1867 [file] [log] [blame]
// Copyright 2022 Google LLC
//
// This source code is licensed under the BSD-style license found in the
// LICENSE file in the root directory of this source tree.
#include <xnnpack/aarch64-assembler.h>
#include <xnnpack/allocator.h>
#include <xnnpack/common.h>
#include "assembler-helpers.h"
#include <gtest/gtest.h>
namespace xnnpack {
namespace aarch64 {
TEST(AArch64Assembler, Initialization) {
xnn_code_buffer b;
xnn_allocate_code_memory(&b, XNN_DEFAULT_CODE_BUFFER_SIZE);
Assembler a(&b);
ASSERT_EQ(xnn_status_success, xnn_release_code_memory(&b));
}
TEST(AArch64Assembler, BaseInstructionEncoding) {
xnn_code_buffer b;
xnn_allocate_code_memory(&b, XNN_DEFAULT_CODE_BUFFER_SIZE);
Assembler a(&b);
CHECK_ENCODING(0x91008041, a.add(x1, x2, 32));
CHECK_ENCODING(0x913FFC41, a.add(x1, x2, 4095));
EXPECT_ERROR(Error::kInvalidOperand, a.add(x1, x2, 4096));
CHECK_ENCODING(0x8B040069, a.add(x9, x3, x4));
CHECK_ENCODING(0xF100081F, a.cmp(x0, 2));
EXPECT_ERROR(Error::kInvalidOperand, a.cmp(x0, 4096));
CHECK_ENCODING(0xEB0C02DF, a.cmp(x22, x12));
CHECK_ENCODING(0x9A8F322E, a.csel(x14, x17, x15, kLO));
CHECK_ENCODING(0xA9403FEE, a.ldp(x14, x15, mem[sp]));
CHECK_ENCODING(0xA8C13FEE, a.ldp(x14, x15, mem[sp], 16));
CHECK_ENCODING(0xA9413FEE, a.ldp(x14, x15, mem[sp, 16]));
CHECK_ENCODING(0xA9603FEE, a.ldp(x14, x15, mem[sp, -512]));
CHECK_ENCODING(0xA95FBFEE, a.ldp(x14, x15, mem[sp, 504]));
EXPECT_ERROR(Error::kInvalidOperand, a.ldp(x14, x15, mem[sp], 15));
EXPECT_ERROR(Error::kInvalidOperand, a.ldp(x14, x15, mem[sp], -520));
EXPECT_ERROR(Error::kInvalidOperand, a.ldp(x14, x15, mem[sp], 512));
EXPECT_ERROR(Error::kInvalidOperand, a.ldp(x14, x15, mem[sp, 16], 16));
CHECK_ENCODING(0xF9400BE8, a.ldr(x8, mem[sp, 16]));
CHECK_ENCODING(0xF97FFFE8, a.ldr(x8, mem[sp, 32760]));
EXPECT_ERROR(Error::kInvalidOperand, a.ldr(x8, mem[sp, -8]));
EXPECT_ERROR(Error::kInvalidOperand, a.ldr(x8, mem[sp, 7]));
EXPECT_ERROR(Error::kInvalidOperand, a.ldr(x8, mem[sp, 32768]));
EXPECT_ERROR(Error::kInvalidOperand, a.ldr(x8, MemOperand(sp, 16, AddressingMode::kPostIndex)));
CHECK_ENCODING(0xF8408488, a.ldr(x8, mem[x4], 8));
CHECK_ENCODING(0xF84FF488, a.ldr(x8, mem[x4], 255));
CHECK_ENCODING(0xF8500488, a.ldr(x8, mem[x4], -256));
EXPECT_ERROR(Error::kInvalidOperand, a.ldr(x8, mem[x4], 256));
EXPECT_ERROR(Error::kInvalidOperand, a.ldr(x8, mem[x4], -257));
CHECK_ENCODING(0xAA0303E9, a.mov(x9, x3));
CHECK_ENCODING(0xF98000A0, a.prfm(kPLDL1KEEP, mem[x5]));
CHECK_ENCODING(0xF98020A0, a.prfm(kPLDL1KEEP, mem[x5, 64]));
EXPECT_ERROR(Error::kInvalidOperand, a.prfm(kPLDL1KEEP, mem[x5, -8]));
EXPECT_ERROR(Error::kInvalidOperand, a.prfm(kPLDL1KEEP, mem[x5, 32761]));
CHECK_ENCODING(0xD65F03C0, a.ret());
CHECK_ENCODING(0xCB020083, a.sub(x3, x4, x2));
CHECK_ENCODING(0xA90457F4, a.stp(x20, x21, mem[sp, 64]));
CHECK_ENCODING(0xA98457F4, a.stp(x20, x21, mem[sp, 64]++));
CHECK_ENCODING(0xA91FD7F4, a.stp(x20, x21, mem[sp, 504]));
CHECK_ENCODING(0xA92057F4, a.stp(x20, x21, mem[sp, -512]));
EXPECT_ERROR(Error::kInvalidOperand, a.stp(x20, x21, mem[sp, 3]));
EXPECT_ERROR(Error::kInvalidOperand, a.stp(x20, x21, mem[sp, 512]));
EXPECT_ERROR(Error::kInvalidOperand, a.stp(x20, x21, mem[sp, -520]));
CHECK_ENCODING(0xF1008040, a.subs(x0, x2, 32));
CHECK_ENCODING(0xF13FFC40, a.subs(x0, x2, 4095));
EXPECT_ERROR(Error::kInvalidOperand, a.subs(x0, x2, -32));
EXPECT_ERROR(Error::kInvalidOperand, a.subs(x0, x2, 4096));
CHECK_ENCODING(0xF240043F, a.tst(x1, 3));
CHECK_ENCODING(0xF2400C3F, a.tst(x1, 15));
CHECK_ENCODING(0xF240103F, a.tst(x1, 31));
EXPECT_ERROR(Error::kUnimplemented, a.tst(x1, 32));
ASSERT_EQ(xnn_status_success, xnn_release_code_memory(&b));
}
TEST(AArch64Assembler, SIMDInstructionEncoding) {
xnn_code_buffer b;
xnn_allocate_code_memory(&b, XNN_DEFAULT_CODE_BUFFER_SIZE);
Assembler a(&b);
CHECK_ENCODING(0x5E180610, a.dup(d16, v16.d()[1]));
EXPECT_ERROR(Error::kInvalidOperand, a.dup(d16, v16.d()[2]));
EXPECT_ERROR(Error::kInvalidOperand, a.dup(d16, v16.s()[1]));
CHECK_ENCODING(0x4E25D690, a.fadd(v16.v4s(), v20.v4s(), v5.v4s()));
EXPECT_ERROR(Error::kInvalidOperand, a.fadd(v16.v4s(), v20.v4s(), v5.v2s()));
CHECK_ENCODING(0x4E30F7E3, a.fmax(v3.v4s(), v31.v4s(), v16.v4s()));
EXPECT_ERROR(Error::kInvalidOperand, a.fmax(v3.v8h(), v31.v4s(), v16.v4s()));
CHECK_ENCODING(0x4EB1F7C2, a.fmin(v2.v4s(), v30.v4s(), v17.v4s()));
EXPECT_ERROR(Error::kInvalidOperand, a.fmin(v2.v4s(), v30.v16b(), v17.v4s()));
CHECK_ENCODING(0x4F801290, a.fmla(v16.v4s(), v20.v4s(), v0.s()[0]));
EXPECT_ERROR(Error::kInvalidOperand, a.fmla(v16.v4s(), v20.v2s(), v0.s()[0]));
EXPECT_ERROR(Error::kInvalidOperand, a.fmla(v16.v2d(), v20.v2d(), v0.s()[0]));
EXPECT_ERROR(Error::kInvalidLaneIndex, a.fmla(v16.v4s(), v20.v4s(), v0.s()[4]));
CHECK_ENCODING(0x0CDF7060, a.ld1({v0.v8b()}, mem[x3], 8));
EXPECT_ERROR(Error::kInvalidOperand, a.ld1({v0.v8b()}, mem[x3], 16));
EXPECT_ERROR(Error::kInvalidOperand, a.ld1({v0.v16b()}, mem[x3], 8));
CHECK_ENCODING(0x0CDFA060, a.ld1({v0.v8b(), v1.v8b()}, mem[x3], 16));
EXPECT_ERROR(Error::kInvalidOperand, a.ld1({v0.v8b(), v1.v8b()}, mem[x3], 32));
EXPECT_ERROR(Error::kInvalidOperand, a.ld1({v0.v16b(), v1.v16b()}, mem[x3], 16));
EXPECT_ERROR(Error::kInvalidOperand, a.ld1({v0.v8b(), v2.v8b()}, mem[x3], 16));
CHECK_ENCODING(0x4CDF61F0, a.ld1({v16.v16b(), v17.v16b(), v18.v16b()}, mem[x15], 48));
EXPECT_ERROR(Error::kInvalidOperand, a.ld1({v16.v8b(), v17.v16b(), v18.v16b()}, mem[x15], 48));
EXPECT_ERROR(Error::kInvalidOperand, a.ld1({v16.v16b(), v17.v16b(), v18.v8b()}, mem[x15], 48));
EXPECT_ERROR(Error::kInvalidOperand, a.ld1({v16.v16b(), v17.v16b(), v18.v16b()}, mem[x15], 24));
EXPECT_ERROR(Error::kInvalidOperand, a.ld1({v16.v8b(), v17.v8b(), v18.v8b()}, mem[x15], 48));
CHECK_ENCODING(0x6D433FEE, a.ldp(d14, d15, mem[sp, 48]));
CHECK_ENCODING(0x6DC33FEE, a.ldp(d14, d15, mem[sp, 48]++));
CHECK_ENCODING(0x6CC427E8, a.ldp(d8, d9, mem[sp], 64));
EXPECT_ERROR(Error::kInvalidOperand, a.ldp(d14, d15, mem[sp, 7]));
CHECK_ENCODING(0xACC154B4, a.ldp(q20, q21, mem[x5], 32));
CHECK_ENCODING(0xACE054B4, a.ldp(q20, q21, mem[x5], -1024));
CHECK_ENCODING(0xACDFD4B4, a.ldp(q20, q21, mem[x5], 1008));
EXPECT_ERROR(Error::kInvalidOperand, a.ldp(q20, q21, mem[x5], 15));
EXPECT_ERROR(Error::kInvalidOperand, a.ldp(q20, q21, mem[x5], -1040));
EXPECT_ERROR(Error::kInvalidOperand, a.ldp(q20, q21, mem[x5], 1024));
CHECK_ENCODING(0xFC408460, a.ldr(d0, mem[x3], 8));
CHECK_ENCODING(0xBC404460, a.ldr(s0, mem[x3], 4));
CHECK_ENCODING(0x3CC10460, a.ldr(q0, mem[x3], 16));
CHECK_ENCODING(0x3CCFF460, a.ldr(q0, mem[x3], 255));
CHECK_ENCODING(0x3CD00460, a.ldr(q0, mem[x3], -256));
EXPECT_ERROR(Error::kInvalidOperand, a.ldr(q0, mem[x3], -257));
EXPECT_ERROR(Error::kInvalidOperand, a.ldr(q0, mem[x3], 256));
EXPECT_ERROR(Error::kInvalidOperand, a.ldr(q0, mem[x3, 16], 16));
CHECK_ENCODING(0x4D40C904, a.ld1r({v4.v4s()}, mem[x8]));
EXPECT_ERROR(Error::kInvalidOperand, a.ld1r({v4.v4s(), v5.v4s()}, mem[x8]));
EXPECT_ERROR(Error::kInvalidOperand, a.ld1r({v4.v4s()}, mem[x8, 16]));
CHECK_ENCODING(0x4D60C902, a.ld2r({v2.v4s(), v3.v4s()}, mem[x8]));
EXPECT_ERROR(Error::kInvalidOperand, a.ld2r({v2.v4s(), v3.v4s()}, mem[x8, 16]));
EXPECT_ERROR(Error::kInvalidOperand, a.ld2r({v2.v4s(), v4.v4s()}, mem[x8, 16]));
EXPECT_ERROR(Error::kInvalidOperand, a.ld2r({v2.v4s(), v3.v8b()}, mem[x8]));
CHECK_ENCODING(0x4EB21E50, a.mov(v16.v16b(), v18.v16b()));
CHECK_ENCODING(0x0EB21E50, a.mov(v16.v8b(), v18.v8b()));
EXPECT_ERROR(Error::kInvalidOperand, a.mov(v16.v16b(), v18.v8b()));
CHECK_ENCODING(0x4F000405, a.movi(v5.v4s(), 0));
CHECK_ENCODING(0x4F008405, a.movi(v5.v8h(), 0));
CHECK_ENCODING(0x4F00E405, a.movi(v5.v16b(), 0));
EXPECT_ERROR(Error::kUnimplemented, a.movi(v5.v16b(), 0xFF));
CHECK_ENCODING(0x4C82746F, a.st1({v15.v8h()}, mem[x3], x2));
CHECK_ENCODING(0x4C95AA8F, a.st1({v15.v4s(), v16.v4s()}, mem[x20], x21));
EXPECT_ERROR(Error::kInvalidOperand, a.st1({v15.v4s(), v17.v4s()}, mem[x20], x21));
EXPECT_ERROR(Error::kInvalidOperand, a.st1({v15.v4s(), v16.v8h()}, mem[x20], x21));
CHECK_ENCODING(0x4C8E60D0, a.st1({v16.v16b(), v17.v16b(), v18.v16b() }, mem[x6], x14));
EXPECT_ERROR(Error::kInvalidOperand, a.st1({v15.v16b(), v17.v16b(), v18.v16b()}, mem[x6], x14));
EXPECT_ERROR(Error::kInvalidOperand, a.st1({v16.v16b(), v17.v16b(), v18.v4s()}, mem[x6], x14));
CHECK_ENCODING(0x4C812FB4, a.st1({v20.v2d(), v21.v2d(), v22.v2d(), v23.v2d()}, mem[x29], x1));
EXPECT_ERROR(Error::kInvalidOperand, a.st1({v20.v2d(), v21.v2d(), v22.v2d(), v23.v2s()}, mem[x29], x1));
EXPECT_ERROR(Error::kInvalidOperand, a.st1({v20.v2d(), v21.v2d(), v22.v2d(), v27.v2d()}, mem[x29], x1));
CHECK_ENCODING(0x6D012FEA, a.stp(d10, d11, mem[sp, 16]));
CHECK_ENCODING(0x6D202FEA, a.stp(d10, d11, mem[sp, -512]));
CHECK_ENCODING(0x6D1FAFEA, a.stp(d10, d11, mem[sp, 504]));
EXPECT_ERROR(Error::kInvalidOperand, a.stp(d10, d11, mem[sp, -520]));
EXPECT_ERROR(Error::kInvalidOperand, a.stp(d10, d11, mem[sp, 512]));
CHECK_ENCODING(0x6D812FEA, a.stp(d10, d11, mem[sp, 16]++));
CHECK_ENCODING(0xAD0075BC, a.stp(q28, q29, mem[x13]));
CHECK_ENCODING(0xAD80F5BC, a.stp(q28, q29, mem[x13, 16]++));
EXPECT_ERROR(Error::kInvalidOperand, a.stp(q28, q28, mem[x13, 7]));
CHECK_ENCODING(0xAC8144D0, a.stp(q16, q17, mem[x6], 32));
CHECK_ENCODING(0xAC9FC4D0, a.stp(q16, q17, mem[x6], 1008));
CHECK_ENCODING(0xACA044D0, a.stp(q16, q17, mem[x6], -1024));
EXPECT_ERROR(Error::kInvalidOperand, a.stp(q16, q17, mem[x6], 34));
EXPECT_ERROR(Error::kInvalidOperand, a.stp(q16, q17, mem[x6], 1024));
EXPECT_ERROR(Error::kInvalidOperand, a.stp(q16, q17, mem[x6], -1040));
CHECK_ENCODING(0xFC0084D0, a.str(d16, mem[x6], 8));
CHECK_ENCODING(0x3C8104D0, a.str(q16, mem[x6], 16));
CHECK_ENCODING(0x3C8FF4D0, a.str(q16, mem[x6], 255));
CHECK_ENCODING(0x3C9004D0, a.str(q16, mem[x6], -256));
EXPECT_ERROR(Error::kInvalidOperand, a.str(q16, mem[x6], 256));
EXPECT_ERROR(Error::kInvalidOperand, a.str(q16, mem[x6], -257));
CHECK_ENCODING(0xBD0000D0, a.str(s16, mem[x6]));
CHECK_ENCODING(0xBD3FFCD0, a.str(s16, mem[x6, 16380]));
EXPECT_ERROR(Error::kInvalidOperand, a.str(s16, mem[x6, 3]));
EXPECT_ERROR(Error::kInvalidOperand, a.str(s16, mem[x6, -4]));
EXPECT_ERROR(Error::kInvalidOperand, a.str(s16, mem[x6, 16384]));
CHECK_ENCODING(0xBC0044D0, a.str(s16, mem[x6], 4));
CHECK_ENCODING(0xBC0FF4D0, a.str(s16, mem[x6], 255));
CHECK_ENCODING(0xBC1004D0, a.str(s16, mem[x6], -256));
EXPECT_ERROR(Error::kInvalidOperand, a.str(s16, mem[x6], 256));
EXPECT_ERROR(Error::kInvalidOperand, a.str(s16, mem[x6], -257));
ASSERT_EQ(xnn_status_success, xnn_release_code_memory(&b));
}
TEST(AArch64Assembler, Label) {
xnn_code_buffer b;
xnn_allocate_code_memory(&b, XNN_DEFAULT_CODE_BUFFER_SIZE);
Assembler a(&b);
Label l1;
a.movi(v0.v4s(), 0);
// Branch to unbound label.
auto b1 = a.offset<uint32_t*>();
a.b_eq(l1);
a.movi(v1.v4s(), 0);
auto b2 = a.offset<uint32_t*>();
a.b_ne(l1);
a.movi(v2.v4s(), 0);
a.bind(l1);
// Check that b1 and b2 are both patched after binding l1.
EXPECT_INSTR(0x54000080, *b1);
EXPECT_INSTR(0x54000041, *b2);
a.movi(v3, 0);
// Branch to bound label.
auto b3 = a.offset<uint32_t*>();
a.b_hi(l1);
auto b4 = a.offset<uint32_t*>();
a.b_hs(l1);
auto b5 = a.offset<uint32_t*>();
a.b_lo(l1);
EXPECT_INSTR(0x54FFFFE8, *b3);
EXPECT_INSTR(0x54FFFFC2, *b4);
EXPECT_INSTR(0x54FFFFA3, *b5);
// Binding a bound label is an error.
a.bind(l1);
EXPECT_ERROR(Error::kLabelAlreadyBound, a.bind(l1));
// Check for bind failure due to too many users of label.
Label lfail;
a.reset();
// Arbitrary high number of users that we probably won't support.
for (int i = 0; i < 1000; i++) {
a.b_eq(lfail);
}
EXPECT_EQ(Error::kLabelHasTooManyUsers, a.error());
ASSERT_EQ(xnn_status_success, xnn_release_code_memory(&b));
}
TEST(AArch64Assembler, Tbnz) {
xnn_code_buffer b;
xnn_allocate_code_memory(&b, XNN_DEFAULT_CODE_BUFFER_SIZE);
Assembler a(&b);
Label l1;
a.movi(v0.v4s(), 0);
// Branch to unbound label.
auto b1 = a.offset<uint32_t*>();
a.tbnz(x0, 4, l1);
a.movi(v1.v4s(), 0);
a.bind(l1);
EXPECT_INSTR(0x37200040, *b1);
a.movi(v2.v4s(), 0);
// Branch to bound label.
auto b2 = a.offset<uint32_t*>();
a.tbnz(x1, 6, l1);
EXPECT_INSTR(0x3737FFE1, *b2);
ASSERT_EQ(xnn_status_success, xnn_release_code_memory(&b));
}
TEST(AArch64Assembler, Tbz) {
xnn_code_buffer b;
xnn_allocate_code_memory(&b, XNN_DEFAULT_CODE_BUFFER_SIZE);
Assembler a(&b);
Label l1;
a.movi(v0.v4s(), 0);
// Branch to unbound label.
auto b1 = a.offset<uint32_t*>();
a.tbz(x0, 4, l1);
a.movi(v1.v4s(), 0);
a.bind(l1);
EXPECT_INSTR(0x36200040, *b1);
a.movi(v2.v4s(), 0);
// Branch to bound label.
auto b2 = a.offset<uint32_t*>();
a.tbz(x1, 6, l1);
EXPECT_INSTR(0x3637FFE1, *b2);
ASSERT_EQ(xnn_status_success, xnn_release_code_memory(&b));
}
TEST(AArch64Assembler, UnconditionalBranch) {
xnn_code_buffer b;
xnn_allocate_code_memory(&b, XNN_DEFAULT_CODE_BUFFER_SIZE);
Assembler a(&b);
Label l1;
a.movi(v0.v4s(), 0);
// Branch to unbound label.
auto b1 = a.offset<uint32_t*>();
a.b(l1);
a.movi(v1.v4s(), 0);
a.bind(l1);
EXPECT_INSTR(0x14000002, *b1);
a.movi(v2.v4s(), 0);
// Branch to bound label.
auto b2 = a.offset<uint32_t*>();
a.b(l1);
EXPECT_INSTR(0x17FFFFFF, *b2);
ASSERT_EQ(xnn_status_success, xnn_release_code_memory(&b));
}
} // namespace aarch64
} // namespace xnnpack