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580 lines
23 KiB
580 lines
23 KiB
// Copyright 2018 The Gemmlowp Authors. All Rights Reserved.
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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// kernel_msa.h: a collection of MSA optimized kernels.
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// Check in kernel_default.h which one(s) are actually used by default.
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// Others are mere experiments; they are still covered by tests
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// in case they might be useful some day.
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#ifndef GEMMLOWP_INTERNAL_KERNEL_MSA_H_
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#define GEMMLOWP_INTERNAL_KERNEL_MSA_H_
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#include "kernel.h"
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#include <msa.h>
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#include <cassert>
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namespace gemmlowp {
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#ifdef GEMMLOWP_MSA
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// Some convenience macros to hide differences between MIPS32 and MIPS64.
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#ifdef GEMMLOWP_MIPS_64
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#define GEMMLOWP_MIPS_XADDU "daddu"
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#define GEMMLOWP_MIPS_XADDIU "daddiu"
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#define GEMMLOWP_MIPS_XSLL "dsll"
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#else
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#define GEMMLOWP_MIPS_XADDU "addu"
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#define GEMMLOWP_MIPS_XADDIU "addiu"
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#define GEMMLOWP_MIPS_XSLL "sll"
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#endif
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// Our main GEMM kernel.
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struct MSA_Kernel12x8Depth2 : KernelBase {
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typedef KernelFormat<KernelSideFormat<CellFormat<4, 2, CellOrder::WidthMajor>, 3>,
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KernelSideFormat<CellFormat<4, 2, CellOrder::WidthMajor>, 2> >
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Format;
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const char* Name() const override { return "MSA, 12x8, depth 2"; }
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// TODO(benoitjacob): reorder function arguments so dst comes last
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void Run(std::int32_t* dst_ptr, std::size_t dst_row_stride,
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std::size_t dst_col_stride, const std::uint8_t* lhs_ptr,
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const std::uint8_t* rhs_ptr, std::size_t start_depth,
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std::size_t run_depth) const override {
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ScopedProfilingLabel label("optimized kernel (MSA 12x8)");
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// See comments above for why we need local numerical labels in our asm.
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#define GEMMLOWP_LABEL_CLEAR_ACCUMULATORS "1"
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#define GEMMLOWP_LABEL_BEFORE_LOOP "2"
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#define GEMMLOWP_LABEL_LOOP "3"
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#define GEMMLOWP_LABEL_AFTER_LOOP "4"
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assert(dst_row_stride == 1);
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asm volatile(
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// Multiply dst_col_stride by 4 == sizeof(int32) to use
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// it as a byte offset below.
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GEMMLOWP_MIPS_XSLL
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" %[dst_col_stride], %[dst_col_stride], 2\n"
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// Check if start_depth==0 to decide whether we will clear
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// accumulators or load existing accumulators.
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"beqz %[start_depth], " GEMMLOWP_LABEL_CLEAR_ACCUMULATORS "f\n"
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// Load accumulators (start_depth != 0).
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GEMMLOWP_MIPS_XADDU " $a0, %[dst_ptr], %[dst_col_stride]\n"
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"ld.w $w0, (0*16)(%[dst_ptr])\n"
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"ld.w $w4, (1*16)(%[dst_ptr])\n"
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"ld.w $w8, (2*16)(%[dst_ptr])\n" GEMMLOWP_MIPS_XADDU " $a1, $a0, %[dst_col_stride]\n"
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"ld.w $w1, (0*16)($a0)\n"
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"ld.w $w5, (1*16)($a0)\n"
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"ld.w $w9, (2*16)($a0)\n" GEMMLOWP_MIPS_XADDU " $a0, $a1, %[dst_col_stride]\n"
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"ld.w $w2, (0*16)($a1)\n"
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"ld.w $w6, (1*16)($a1)\n"
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"ld.w $w10, (2*16)($a1)\n" GEMMLOWP_MIPS_XADDU " $a1, $a0, %[dst_col_stride]\n"
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"ld.w $w3, (0*16)($a0)\n"
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"ld.w $w7, (1*16)($a0)\n"
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"ld.w $w11, (2*16)($a0)\n" GEMMLOWP_MIPS_XADDU " $a0, $a1, %[dst_col_stride]\n"
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"ld.w $w12, (0*16)($a1)\n"
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"ld.w $w16, (1*16)($a1)\n"
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"ld.w $w20, (2*16)($a1)\n" GEMMLOWP_MIPS_XADDU " $a1, $a0, %[dst_col_stride]\n"
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"ld.w $w13, (0*16)($a0)\n"
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"ld.w $w17, (1*16)($a0)\n"
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"ld.w $w21, (2*16)($a0)\n" GEMMLOWP_MIPS_XADDU " $a0, $a1, %[dst_col_stride]\n"
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"ld.w $w14, (0*16)($a1)\n"
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"ld.w $w18, (1*16)($a1)\n"
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"ld.w $w22, (2*16)($a1)\n"
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"ld.w $w15, (0*16)($a0)\n"
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"ld.w $w19, (1*16)($a0)\n"
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"ld.w $w23, (2*16)($a0)\n"
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"b " GEMMLOWP_LABEL_BEFORE_LOOP "f\n"
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GEMMLOWP_LABEL_CLEAR_ACCUMULATORS ":\n"
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// Clear accumulators (start_depth == 0).
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"ldi.w $w0, 0\n"
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"ldi.w $w4, 0\n"
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"ldi.w $w8, 0\n"
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"ldi.w $w1, 0\n"
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"ldi.w $w5, 0\n"
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"ldi.w $w9, 0\n"
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"ldi.w $w2, 0\n"
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"ldi.w $w6, 0\n"
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"ldi.w $w10, 0\n"
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"ldi.w $w3, 0\n"
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"ldi.w $w7, 0\n"
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"ldi.w $w11, 0\n"
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"ldi.w $w12, 0\n"
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"ldi.w $w16, 0\n"
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"ldi.w $w20, 0\n"
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"ldi.w $w13, 0\n"
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"ldi.w $w17, 0\n"
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"ldi.w $w21, 0\n"
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"ldi.w $w14, 0\n"
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"ldi.w $w18, 0\n"
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"ldi.w $w22, 0\n"
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"ldi.w $w15, 0\n"
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"ldi.w $w19, 0\n"
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"ldi.w $w23, 0\n"
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GEMMLOWP_LABEL_BEFORE_LOOP ":\n"
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GEMMLOWP_LABEL_LOOP ":\n"
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// Overview of register layout:
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//
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// A half of the 2 2x4 cells of Rhs is stored in 16bit in w28-w31
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// (each register contains 4 replicas of a pair of elements).
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// A 12x2 block of 3 4x2 cells Lhs is stored in 16bit in w24-w26.
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// A 12x8 block of accumulators is stored in 32bit in w0-w23.
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//
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// +------+------+------+------+
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// Rhs |w28 |w29 |w30 |w31 |
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// +------+------+------+------+
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//
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// | | | | |
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//
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// Lhs | | | | |
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//
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// +---+ - - - - +------+------+------+------+
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// |w24| |w0/12 |w1/13 |w2/14 |w3/15 |
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// |w24| |w0/12 |w1/13 |w2/14 |w3/15 |
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// |w24| |w0/12 |w1/13 |w2/14 |w3/15 |
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// |w24| |w0/12 |w1/13 |w2/14 |w3/15 |
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// +---+ - - - - +------+------+------+------+
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// |w25| |w4/16 |w5/17 |w6/18 |w7/19 |
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// |w25| |w4/16 |w5/17 |w6/18 |w7/19 |
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// |w25| |w4/16 |w5/17 |w6/18 |w7/19 |
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// |w25| |w4/16 |w5/17 |w6/18 |w7/19 |
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// +---+ - - - - +------+------+------+------+
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// |w26| |w8/20 |w9/21 |w10/22|w11/23|
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// |w26| |w8/20 |w9/21 |w10/22|w11/23|
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// |w26| |w8/20 |w9/21 |w10/22|w11/23|
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// |w26| |w8/20 |w9/21 |w10/22|w11/23|
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// +---+ - - - - +------+------+------+------+
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//
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// Accumulators
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// Load 3 x 8 bytes of lhs[] with 2 16-byte overlapped loads.
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"ld.b $w24, 0(%[lhs_ptr])\n"
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"ld.b $w25, 8(%[lhs_ptr])\n"
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// Load 2 x 8 bytes of rhs[].
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"ld.b $w27, 0(%[rhs_ptr])\n"
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// Zero-extend 8-bit elements of lhs[] to 16 bits.
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"ldi.b $w31, 0\n"
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"ilvr.b $w24, $w31, $w24\n"
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"ilvl.b $w26, $w31, $w25\n"
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"ilvr.b $w25, $w31, $w25\n"
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// First half of depths 0 and 1.
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// Zero-extend 8-bit elements of rhs[] to 16 bits.
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"ilvr.b $w31, $w31, $w27\n"
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// Make 4 replicas of every pair of rhs[] elements.
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"splati.w $w28, $w31[0]\n"
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"splati.w $w29, $w31[1]\n"
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"splati.w $w30, $w31[2]\n"
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"splati.w $w31, $w31[3]\n"
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// Dot-product-(and)-add doubles multiplicand width.
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"dpadd_u.w $w0, $w24, $w28\n"
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"dpadd_u.w $w4, $w25, $w28\n"
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"dpadd_u.w $w8, $w26, $w28\n"
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"dpadd_u.w $w1, $w24, $w29\n"
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"dpadd_u.w $w5, $w25, $w29\n"
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"dpadd_u.w $w9, $w26, $w29\n"
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"dpadd_u.w $w2, $w24, $w30\n"
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"dpadd_u.w $w6, $w25, $w30\n"
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"dpadd_u.w $w10, $w26, $w30\n"
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"dpadd_u.w $w3, $w24, $w31\n"
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"dpadd_u.w $w7, $w25, $w31\n"
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"dpadd_u.w $w11, $w26, $w31\n"
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// Second half of depths 0 and 1.
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// Zero-extend 8-bit elements of rhs[] to 16 bits.
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"ldi.b $w31, 0\n"
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"ilvl.b $w31, $w31, $w27\n"
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// Make 4 replicas of every pair of rhs[] elements.
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"splati.w $w28, $w31[0]\n"
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"splati.w $w29, $w31[1]\n"
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"splati.w $w30, $w31[2]\n"
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"splati.w $w31, $w31[3]\n"
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// Dot-product-(and)-add doubles multiplicand width.
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"dpadd_u.w $w12, $w24, $w28\n"
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"dpadd_u.w $w16, $w25, $w28\n"
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"dpadd_u.w $w20, $w26, $w28\n"
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"dpadd_u.w $w13, $w24, $w29\n"
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"dpadd_u.w $w17, $w25, $w29\n"
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"dpadd_u.w $w21, $w26, $w29\n"
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"dpadd_u.w $w14, $w24, $w30\n"
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"dpadd_u.w $w18, $w25, $w30\n"
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"dpadd_u.w $w22, $w26, $w30\n"
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"dpadd_u.w $w15, $w24, $w31\n"
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"dpadd_u.w $w19, $w25, $w31\n"
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"dpadd_u.w $w23, $w26, $w31\n"
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GEMMLOWP_MIPS_XADDIU " %[run_depth], -2\n" GEMMLOWP_MIPS_XADDIU
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" %[lhs_ptr], 24\n" GEMMLOWP_MIPS_XADDIU " %[rhs_ptr], 16\n"
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"bnez %[run_depth]," GEMMLOWP_LABEL_LOOP "b\n"
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GEMMLOWP_LABEL_AFTER_LOOP ":\n"
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// Store accumulators.
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GEMMLOWP_MIPS_XADDU " $a0, %[dst_ptr], %[dst_col_stride]\n"
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"st.w $w0, (0*16)(%[dst_ptr])\n"
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"st.w $w4, (1*16)(%[dst_ptr])\n"
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"st.w $w8, (2*16)(%[dst_ptr])\n" GEMMLOWP_MIPS_XADDU " $a1, $a0, %[dst_col_stride]\n"
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"st.w $w1, (0*16)($a0)\n"
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"st.w $w5, (1*16)($a0)\n"
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"st.w $w9, (2*16)($a0)\n" GEMMLOWP_MIPS_XADDU " $a0, $a1, %[dst_col_stride]\n"
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"st.w $w2, (0*16)($a1)\n"
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"st.w $w6, (1*16)($a1)\n"
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"st.w $w10, (2*16)($a1)\n" GEMMLOWP_MIPS_XADDU " $a1, $a0, %[dst_col_stride]\n"
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"st.w $w3, (0*16)($a0)\n"
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"st.w $w7, (1*16)($a0)\n"
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"st.w $w11, (2*16)($a0)\n" GEMMLOWP_MIPS_XADDU " $a0, $a1, %[dst_col_stride]\n"
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"st.w $w12, (0*16)($a1)\n"
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"st.w $w16, (1*16)($a1)\n"
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"st.w $w20, (2*16)($a1)\n" GEMMLOWP_MIPS_XADDU " $a1, $a0, %[dst_col_stride]\n"
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"st.w $w13, (0*16)($a0)\n"
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"st.w $w17, (1*16)($a0)\n"
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"st.w $w21, (2*16)($a0)\n" GEMMLOWP_MIPS_XADDU " $a0, $a1, %[dst_col_stride]\n"
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"st.w $w14, (0*16)($a1)\n"
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"st.w $w18, (1*16)($a1)\n"
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"st.w $w22, (2*16)($a1)\n"
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"st.w $w15, (0*16)($a0)\n"
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"st.w $w19, (1*16)($a0)\n"
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"st.w $w23, (2*16)($a0)\n"
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: // outputs
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[lhs_ptr] "+r"(lhs_ptr), [rhs_ptr] "+r"(rhs_ptr), [run_depth] "+r"(run_depth),
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[dst_col_stride] "+r"(dst_col_stride)
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: // inputs
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[dst_ptr] "r"(dst_ptr),
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[start_depth] "r"(start_depth)
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: // clobbers
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"memory", "a0", "a1", "$f0", "$f1", "$f2", "$f3", "$f4", "$f5", "$f6", "$f7", "$f8", "$f9",
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"$f10", "$f11", "$f12", "$f13", "$f14", "$f15", "$f16", "$f17", "$f18", "$f19", "$f20",
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"$f21", "$f22", "$f23", "$f24", "$f25", "$f26", "$f27", "$f28", "$f29", "$f30", "$f31");
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#undef GEMMLOWP_LABEL_CLEAR_ACCUMULATORS
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#undef GEMMLOWP_LABEL_BEFORE_LOOP
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#undef GEMMLOWP_LABEL_LOOP
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#undef GEMMLOWP_LABEL_AFTER_LOOP
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}
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};
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// Fast kernel operating on int8 operands.
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// It is assumed that one of the two int8 operands only takes values
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// in [-127, 127], while the other may freely range in [-128, 127].
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// The issue with both operands taking the value -128 is that:
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// -128*-128 + -128*-128 == -32768 overflows int16.
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// Every other expression a*b + c*d, for any int8 a,b,c,d, fits in int16
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// range. That is the basic idea of this kernel.
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struct MSA_GEMM_Int8Operands_LhsNonzero : KernelBase {
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typedef KernelFormat<
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KernelSideFormatInt8<CellFormat<4, 16, CellOrder::WidthMajor>, 1>,
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KernelSideFormatInt8<CellFormat<4, 16, CellOrder::WidthMajor>, 1> >
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Format;
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const char* Name() const override {
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return "MSA, 4x4, depth 16, accumulating two within signed int16";
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}
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// TODO(benoitjacob): reorder function arguments so dst comes last
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void Run(std::int32_t* dst_ptr, std::size_t dst_row_stride,
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std::size_t dst_col_stride, const std::uint8_t* lhs_ptr,
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const std::uint8_t* rhs_ptr, std::size_t start_depth,
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std::size_t run_depth) const override {
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(void)dst_row_stride;
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#define GEMMLOWP_LABEL_AFTER_LOOP_LAST16 "1"
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#define GEMMLOWP_LABEL_LOOP "2"
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#define GEMMLOWP_LABEL_ACCUMULATE_EXISTING_DST_VALUES "3"
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#define GEMMLOWP_LABEL_STORE "4"
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asm volatile(
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GEMMLOWP_MIPS_XADDIU " %[run_depth], -16\n"
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// Load lhs[] and rhs[], zero out internal accumulators.
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"ld.b $w16, 0(%[lhs_ptr])\n"
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"ldi.b $w0, 0\n"
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"ld.b $w20, 0(%[rhs_ptr])\n"
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"ldi.b $w1, 0\n"
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"ld.b $w17, 16(%[lhs_ptr])\n"
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"ldi.b $w2, 0\n"
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"ld.b $w21, 16(%[rhs_ptr])\n"
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"ldi.b $w3, 0\n"
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"ld.b $w18, 32(%[lhs_ptr])\n"
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"ldi.b $w4, 0\n"
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"ld.b $w19, 48(%[lhs_ptr])\n"
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"ldi.b $w5, 0\n"
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"ld.b $w22, 32(%[rhs_ptr])\n"
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"ldi.b $w6, 0\n"
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"ld.b $w23, 48(%[rhs_ptr])\n"
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"ldi.b $w7, 0\n"
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"ldi.b $w8, 0\n"
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"ldi.b $w9, 0\n"
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"ldi.b $w10, 0\n"
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"ldi.b $w11, 0\n"
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"ldi.b $w12, 0\n"
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"ldi.b $w13, 0\n"
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"ldi.b $w14, 0\n"
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"ldi.b $w15, 0\n"
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"ldi.h $w31, 1\n"
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// If the loop depth is only 16, then we can skip the general loop
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// and go straight to the final part of the code.
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"beqz %[run_depth], " GEMMLOWP_LABEL_AFTER_LOOP_LAST16 "f\n"
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GEMMLOWP_LABEL_LOOP ":\n"
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// Overview of register layout:
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//
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// A 4x16 block of Rhs is stored in 8 bit in w16-w19.
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// A 4x16 block of Lhs is stored in 8 bit in w20-w23.
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//
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// A 4x4 block of accumulators is stored in w0-w15 (as 4x32 bit
|
|
// components which need to be horizontally added at the end).
|
|
//
|
|
// Dot products of Lhs and Rhs are 16-bit values, which can't
|
|
// immediately be accumulated in 32-bit accumulators by that
|
|
// same instruction that calculates them.
|
|
// For example, "dotp_s.h $w25, $w16, $w20" produces 8 16-bit
|
|
// sums in w25 (note, the 16 sums have already been reduced to 8
|
|
// by the horizontal addition of the dotp instruction).
|
|
// They are then sign-extended to 32 bits, horizontally added
|
|
// (again) to form 4 32-bit sums and then they are finally added
|
|
// to the 32-bit accumulators, all by "dpadd_s.w $w0, $w25, $w31".
|
|
//
|
|
// +-----+-----+-----+-----+
|
|
// Rhs | w20 | w21 | w22 | w23 |
|
|
// +-----+-----+-----+-----+
|
|
//
|
|
// | | | | |
|
|
//
|
|
// Lhs | | | | |
|
|
//
|
|
// +---+ - - - - +-----+-----+-----+-----+
|
|
// |w16| | w0 | w4 | w8 | w12 |
|
|
// |w17| | w1 | w5 | w9 | w13 |
|
|
// |w18| | w2 | w6 | w10 | w14 |
|
|
// |w19| | w3 | w7 | w11 | w15 |
|
|
// +---+ - - - - +-----+-----+-----+-----+
|
|
//
|
|
// Accumulators
|
|
|
|
// Calculate the results for 16 depths and load
|
|
// lhs[] and rhs[] for the next iteration.
|
|
GEMMLOWP_MIPS_XADDIU " %[lhs_ptr], 64\n"
|
|
GEMMLOWP_MIPS_XADDIU " %[rhs_ptr], 64\n"
|
|
GEMMLOWP_MIPS_XADDIU " %[run_depth], -16\n"
|
|
|
|
// Dot product: multiply-add pairs of adjacent int8 elements.
|
|
// Each dot product takes 16*2 int8 values in and produces 8 int16 sums.
|
|
"dotp_s.h $w25, $w16, $w20\n"
|
|
"dotp_s.h $w26, $w17, $w20\n"
|
|
"dotp_s.h $w27, $w16, $w21\n"
|
|
"dotp_s.h $w28, $w17, $w21\n"
|
|
"dotp_s.h $w29, $w18, $w20\n"
|
|
// Horizontal add of pairs of adjacent int16 sums into internal int32
|
|
// accumulators.
|
|
"dpadd_s.w $w0, $w25, $w31\n"
|
|
"dpadd_s.w $w1, $w26, $w31\n"
|
|
"dpadd_s.w $w4, $w27, $w31\n"
|
|
"dpadd_s.w $w5, $w28, $w31\n"
|
|
"dpadd_s.w $w2, $w29, $w31\n"
|
|
|
|
// Dot product: multiply-add pairs of adjacent int8 elements.
|
|
// Each dot product takes 16*2 int8 values in and produces 8 int16 sums.
|
|
"dotp_s.h $w24, $w16, $w22\n"
|
|
"dotp_s.h $w25, $w19, $w20\n"
|
|
"dotp_s.h $w26, $w16, $w23\n"
|
|
"dotp_s.h $w27, $w17, $w22\n"
|
|
"ld.b $w20, 0(%[rhs_ptr])\n"
|
|
"dotp_s.h $w28, $w17, $w23\n"
|
|
"ld.b $w16, 0(%[lhs_ptr])\n"
|
|
"dotp_s.h $w29, $w18, $w21\n"
|
|
"ld.b $w17, 16(%[lhs_ptr])\n"
|
|
// Horizontal add of pairs of adjacent int16 sums into internal int32
|
|
// accumulators.
|
|
"dpadd_s.w $w8, $w24, $w31\n"
|
|
"dpadd_s.w $w3, $w25, $w31\n"
|
|
"dpadd_s.w $w12, $w26, $w31\n"
|
|
"dpadd_s.w $w9, $w27, $w31\n"
|
|
"dpadd_s.w $w13, $w28, $w31\n"
|
|
"dpadd_s.w $w6, $w29, $w31\n"
|
|
|
|
// Dot product: multiply-add pairs of adjacent int8 elements.
|
|
// Each dot product takes 16*2 int8 values in and produces 8 int16 sums.
|
|
"dotp_s.h $w25, $w19, $w21\n"
|
|
"dotp_s.h $w26, $w18, $w22\n"
|
|
"dotp_s.h $w27, $w18, $w23\n"
|
|
"ld.b $w21, 16(%[rhs_ptr])\n"
|
|
"dotp_s.h $w28, $w19, $w22\n"
|
|
"ld.b $w18, 32(%[lhs_ptr])\n"
|
|
"dotp_s.h $w29, $w19, $w23\n"
|
|
"ld.b $w22, 32(%[rhs_ptr])\n"
|
|
// Horizontal add of pairs of adjacent int16 sums into internal int32
|
|
// accumulators.
|
|
"dpadd_s.w $w7, $w25, $w31\n"
|
|
"ld.b $w19, 48(%[lhs_ptr])\n"
|
|
"dpadd_s.w $w10, $w26, $w31\n"
|
|
"ld.b $w23, 48(%[rhs_ptr])\n"
|
|
"dpadd_s.w $w14, $w27, $w31\n"
|
|
"dpadd_s.w $w11, $w28, $w31\n"
|
|
"dpadd_s.w $w15, $w29, $w31\n"
|
|
|
|
"bnez %[run_depth], " GEMMLOWP_LABEL_LOOP "b\n"
|
|
|
|
GEMMLOWP_LABEL_AFTER_LOOP_LAST16 ":\n"
|
|
// Calculate the results for the last 16 depths.
|
|
|
|
// Dot product: multiply-add pairs of adjacent int8 elements.
|
|
// Each dot product takes 16*2 int8 values in and produces 8 int16 sums.
|
|
"dotp_s.h $w25, $w16, $w20\n"
|
|
"dotp_s.h $w26, $w17, $w20\n"
|
|
"dotp_s.h $w27, $w16, $w21\n"
|
|
"dotp_s.h $w28, $w17, $w21\n"
|
|
"dotp_s.h $w29, $w18, $w20\n"
|
|
// Horizontal add of pairs of adjacent int16 sums into internal int32
|
|
// accumulators.
|
|
"dpadd_s.w $w0, $w25, $w31\n"
|
|
"dpadd_s.w $w1, $w26, $w31\n"
|
|
"dpadd_s.w $w4, $w27, $w31\n"
|
|
"dpadd_s.w $w5, $w28, $w31\n"
|
|
"dpadd_s.w $w2, $w29, $w31\n"
|
|
|
|
// Dot product: multiply-add pairs of adjacent int8 elements.
|
|
// Each dot product takes 16*2 int8 values in and produces 8 int16 sums.
|
|
"dotp_s.h $w24, $w16, $w22\n"
|
|
"dotp_s.h $w25, $w19, $w20\n"
|
|
"dotp_s.h $w26, $w16, $w23\n"
|
|
"dotp_s.h $w27, $w17, $w22\n"
|
|
"dotp_s.h $w28, $w17, $w23\n"
|
|
"dotp_s.h $w29, $w18, $w21\n"
|
|
// Horizontal add of pairs of adjacent int16 sums into internal int32
|
|
// accumulators.
|
|
"dpadd_s.w $w8, $w24, $w31\n"
|
|
"dpadd_s.w $w3, $w25, $w31\n"
|
|
"dpadd_s.w $w12, $w26, $w31\n"
|
|
"dpadd_s.w $w9, $w27, $w31\n"
|
|
"dpadd_s.w $w13, $w28, $w31\n"
|
|
"dpadd_s.w $w6, $w29, $w31\n"
|
|
|
|
// Dot product: multiply-add pairs of adjacent int8 elements.
|
|
// Each dot product takes 16*2 int8 values in and produces 8 int16 sums.
|
|
"dotp_s.h $w25, $w19, $w21\n"
|
|
"dotp_s.h $w26, $w18, $w22\n"
|
|
"dotp_s.h $w27, $w18, $w23\n"
|
|
"dotp_s.h $w28, $w19, $w22\n"
|
|
"dotp_s.h $w29, $w19, $w23\n"
|
|
// Horizontal add of pairs of adjacent int16 sums into internal int32
|
|
// accumulators.
|
|
"dpadd_s.w $w7, $w25, $w31\n"
|
|
"dpadd_s.w $w10, $w26, $w31\n"
|
|
"dpadd_s.w $w14, $w27, $w31\n"
|
|
"dpadd_s.w $w11, $w28, $w31\n"
|
|
"dpadd_s.w $w15, $w29, $w31\n"
|
|
|
|
// Horizontal-add internal accumulators.
|
|
"hadd_s.d $w0, $w0, $w0\n"
|
|
"hadd_s.d $w1, $w1, $w1\n"
|
|
"hadd_s.d $w2, $w2, $w2\n"
|
|
"hadd_s.d $w3, $w3, $w3\n"
|
|
"hadd_s.d $w4, $w4, $w4\n"
|
|
"hadd_s.d $w5, $w5, $w5\n"
|
|
"hadd_s.d $w6, $w6, $w6\n"
|
|
"hadd_s.d $w7, $w7, $w7\n"
|
|
"hadd_s.d $w8, $w8, $w8\n"
|
|
"hadd_s.d $w9, $w9, $w9\n"
|
|
"hadd_s.d $w10, $w10, $w10\n"
|
|
"hadd_s.d $w11, $w11, $w11\n"
|
|
"hadd_s.d $w12, $w12, $w12\n"
|
|
"hadd_s.d $w13, $w13, $w13\n"
|
|
"hadd_s.d $w14, $w14, $w14\n"
|
|
"hadd_s.d $w15, $w15, $w15\n"
|
|
"pckev.w $w0, $w1, $w0\n"
|
|
"pckev.w $w2, $w3, $w2\n"
|
|
"pckev.w $w4, $w5, $w4\n"
|
|
"pckev.w $w6, $w7, $w6\n"
|
|
"pckev.w $w8, $w9, $w8\n"
|
|
"pckev.w $w10, $w11, $w10\n"
|
|
"pckev.w $w12, $w13, $w12\n"
|
|
"pckev.w $w14, $w15, $w14\n"
|
|
"hadd_s.d $w0, $w0, $w0\n"
|
|
"hadd_s.d $w2, $w2, $w2\n"
|
|
"hadd_s.d $w4, $w4, $w4\n"
|
|
"hadd_s.d $w6, $w6, $w6\n"
|
|
"hadd_s.d $w8, $w8, $w8\n"
|
|
"hadd_s.d $w10, $w10, $w10\n"
|
|
"hadd_s.d $w12, $w12, $w12\n"
|
|
"hadd_s.d $w14, $w14, $w14\n"
|
|
// 4 more pckev instructions follow in both paths below.
|
|
|
|
// Check if start_depth==0 to decide whether we will load
|
|
// existing accumulators from memory.
|
|
"bnez %[start_depth], " GEMMLOWP_LABEL_ACCUMULATE_EXISTING_DST_VALUES "f\n"
|
|
|
|
"pckev.w $w0, $w2, $w0\n"
|
|
"pckev.w $w1, $w6, $w4\n"
|
|
"pckev.w $w2, $w10, $w8\n"
|
|
"pckev.w $w3, $w14, $w12\n"
|
|
|
|
"b " GEMMLOWP_LABEL_STORE "f\n"
|
|
|
|
GEMMLOWP_LABEL_ACCUMULATE_EXISTING_DST_VALUES ":\n"
|
|
// Load accumulators from memory.
|
|
"ld.w $w16, 0(%[dst_ptr0])\n"
|
|
"pckev.w $w0, $w2, $w0\n"
|
|
"ld.w $w17, 0(%[dst_ptr1])\n"
|
|
"pckev.w $w1, $w6, $w4\n"
|
|
"ld.w $w18, 0(%[dst_ptr2])\n"
|
|
"pckev.w $w2, $w10, $w8\n"
|
|
"ld.w $w19, 0(%[dst_ptr3])\n"
|
|
"pckev.w $w3, $w14, $w12\n"
|
|
|
|
// Add them to internal accumulators.
|
|
"addv.w $w0, $w0, $w16\n"
|
|
"addv.w $w1, $w1, $w17\n"
|
|
"addv.w $w2, $w2, $w18\n"
|
|
"addv.w $w3, $w3, $w19\n"
|
|
|
|
GEMMLOWP_LABEL_STORE ":\n"
|
|
// Store accumulators.
|
|
"st.w $w0, 0(%[dst_ptr0])\n"
|
|
"st.w $w1, 0(%[dst_ptr1])\n"
|
|
"st.w $w2, 0(%[dst_ptr2])\n"
|
|
"st.w $w3, 0(%[dst_ptr3])\n"
|
|
: // outputs
|
|
[lhs_ptr] "+r"(lhs_ptr), [rhs_ptr] "+r"(rhs_ptr),
|
|
[run_depth] "+r"(run_depth)
|
|
: // inputs
|
|
[dst_ptr0] "r"(dst_ptr), [dst_ptr1] "r"(dst_ptr + dst_col_stride),
|
|
[dst_ptr2] "r"(dst_ptr + dst_col_stride * 2),
|
|
[dst_ptr3] "r"(dst_ptr + dst_col_stride * 3),
|
|
[start_depth] "r"(start_depth)
|
|
: // clobbers
|
|
"memory", "$f0", "$f1", "$f2", "$f3", "$f4", "$f5", "$f6", "$f7", "$f8",
|
|
"$f9", "$f10", "$f11", "$f12", "$f13", "$f14", "$f15", "$f16", "$f17",
|
|
"$f18", "$f19", "$f20", "$f21", "$f22", "$f23", "$f24", "$f25", "$f26",
|
|
"$f27", "$f28", "$f29", "$f30", "$f31");
|
|
#undef GEMMLOWP_LABEL_LOOP
|
|
#undef GEMMLOWP_LABEL_AFTER_LOOP_LAST16
|
|
#undef GEMMLOWP_LABEL_ACCUMULATE_EXISTING_DST_VALUES
|
|
#undef GEMMLOWP_LABEL_STORE
|
|
}
|
|
};
|
|
|
|
#undef GEMMLOWP_MIPS_XADDU
|
|
#undef GEMMLOWP_MIPS_XADDIU
|
|
#undef GEMMLOWP_MIPS_XSLL
|
|
|
|
#endif // GEMMLOWP_MSA
|
|
|
|
} // namespace gemmlowp
|
|
|
|
#endif // GEMMLOWP_INTERNAL_KERNEL_MSA_H_
|