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$assert CHANNEL_TILE % 4 == 0 |
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$assert KERNEL_TILE >= 2 |
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$assert ACCUMULATORS >= 1 |
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$assert ACTIVATION != "MINMAX" or ARCH in ["ARM", "X86", "RELAXED"] |
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$assert not FMA or ARCH == "RELAXED" |
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$ABC = "0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZ" |
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#include <assert.h> |
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#include <wasm_simd128.h> |
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#include <xnnpack/dwconv.h> |
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$assert ACTIVATION in ["LINEAR", "RELU", "MINMAX"] |
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$if ACTIVATION == "MINMAX": |
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$ WASM_F32X4_MIN={"ARM": "wasm_f32x4_min", "X86": "wasm_f32x4_pmin", "RELAXED": "wasm_f32x4_relaxed_min"}[ARCH] |
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$ WASM_F32X4_MAX={"ARM": "wasm_f32x4_max", "X86": "wasm_f32x4_pmax", "RELAXED": "wasm_f32x4_relaxed_max"}[ARCH] |
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$ACTIVATION_SUFFIX = {"LINEAR": ""}.get(ACTIVATION, "_" + ACTIVATION.lower()) |
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$ISA = "wasmsimd" if not FMA and (ACTIVATION in ["LINEAR", "RELU"] or ARCH != "RELAXED") else "wasmrelaxedsimd" |
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$ARCH_SUFFIX = "" if not FMA and (ACTIVATION in ["LINEAR", "RELU"] or ARCH == "RELAXED") else "_" + ("fma" if FMA else ARCH.lower()) |
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$PARAMS = {"LINEAR": "xnn_f32_default_params", "RELU": "xnn_f32_relu_params", "MINMAX": "xnn_f32_minmax_params"}[ACTIVATION] |
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void xnn_f32_dwconv${ACTIVATION_SUFFIX}_ukernel_${KERNEL_TILE}p${CHANNEL_TILE}c__${ISA}${ARCH_SUFFIX}${"" if ACCUMULATORS == 1 else "_acc%d" % ACCUMULATORS}( |
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size_t channels, |
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size_t output_width, |
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const float** input, |
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const float* weights, |
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float* output, |
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intptr_t input_stride, |
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size_t output_increment, |
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size_t input_offset, |
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const float* zero, |
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const union ${PARAMS} params[restrict XNN_MIN_ELEMENTS(1)]) XNN_OOB_READS |
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{ |
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assert(channels != 0); |
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assert(output_width != 0); |
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$if ACTIVATION == "MINMAX": |
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const v128_t vmin = wasm_v128_load64_splat(params->wasmsimd.min); |
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const v128_t vmax = wasm_v128_load64_splat(params->wasmsimd.max); |
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$elif ACTIVATION == "RELU": |
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const v128_t vzero = wasm_i32x4_const_splat(0); |
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do { |
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$for K in range(KERNEL_TILE): |
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const float* i${K} = input[${K}]; |
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assert(i${K} != NULL); |
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if XNN_UNPREDICTABLE(i${K} != zero) { |
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i${K} = (const float*) ((uintptr_t) i${K} + input_offset); |
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} |
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input = (const float**) ((uintptr_t) input + input_stride); |
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size_t c = channels; |
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const float* w = weights; |
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for (; c >= ${CHANNEL_TILE}; c -= ${CHANNEL_TILE}) { |
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v128_t vacc${ABC[0:4]}p0 = wasm_v128_load(w); |
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$for C in range(4, CHANNEL_TILE, 4): |
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v128_t vacc${ABC[C:C+4]}p0 = wasm_v128_load(w + ${C}); |
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$for K in range(KERNEL_TILE): |
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const v128_t vi${K}x${ABC[0:4]} = wasm_v128_load(i${K}); |
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$for C in range(4, CHANNEL_TILE, 4): |
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const v128_t vi${K}x${ABC[C:C+4]} = wasm_v128_load(i${K} + ${C}); |
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i${K} += ${CHANNEL_TILE}; |
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$for C in range(0, CHANNEL_TILE, 4): |
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const v128_t vk${K}x${ABC[C:C+4]} = wasm_v128_load(w + ${(K + 1) * CHANNEL_TILE + C}); |
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$for C in range(0, CHANNEL_TILE, 4): |
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$if 1 <= K < ACCUMULATORS: |
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v128_t vacc${ABC[C:C+4]}p${K} = wasm_f32x4_mul(vi${K}x${ABC[C:C+4]}, vk${K}x${ABC[C:C+4]}); |
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$else: |
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$if FMA: |
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vacc${ABC[C:C+4]}p${K % ACCUMULATORS} = wasm_f32x4_relaxed_madd(vi${K}x${ABC[C:C+4]}, vk${K}x${ABC[C:C+4]}, vacc${ABC[C:C+4]}p${K % ACCUMULATORS}); |
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$else: |
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vacc${ABC[C:C+4]}p${K % ACCUMULATORS} = wasm_f32x4_add(wasm_f32x4_mul(vi${K}x${ABC[C:C+4]}, vk${K}x${ABC[C:C+4]}), vacc${ABC[C:C+4]}p${K % ACCUMULATORS}); |
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w += ${(KERNEL_TILE + 1) * CHANNEL_TILE}; |
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$if ACCUMULATORS > 1: |
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$ACC_SLICE = 1 |
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$while ACC_SLICE < ACCUMULATORS: |
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$for A in range(0, ACCUMULATORS, ACC_SLICE * 2): |
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$if A + ACC_SLICE < ACCUMULATORS: |
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$for C in range(0, CHANNEL_TILE, 4): |
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vacc${ABC[C:C+4]}p${A} = wasm_f32x4_add(vacc${ABC[C:C+4]}p${A}, vacc${ABC[C:C+4]}p${A + ACC_SLICE}); |
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$ACC_SLICE *= 2 |
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$if ACTIVATION == "MINMAX": |
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$for C in range(0, CHANNEL_TILE, 4): |
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v128_t vacc${ABC[C:C+4]} = ${WASM_F32X4_MAX}(vmin, vacc${ABC[C:C+4]}p0); |
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$for C in range(0, CHANNEL_TILE, 4): |
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vacc${ABC[C:C+4]} = ${WASM_F32X4_MIN}(vmax, vacc${ABC[C:C+4]}); |
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$elif ACTIVATION == "RELU": |
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$for C in range(0, CHANNEL_TILE, 4): |
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const v128_t vacc${ABC[C:C+4]} = wasm_i32x4_max(vacc${ABC[C:C+4]}p0, vzero); |
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$elif ACTIVATION == "LINEAR": |
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$for C in range(0, CHANNEL_TILE, 4): |
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const v128_t vacc${ABC[C:C+4]} = vacc${ABC[C:C+4]}p0; |
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wasm_v128_store(output, vacc${ABC[0:4]}); |
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$for C in range(4, CHANNEL_TILE, 4): |
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wasm_v128_store(output + ${C}, vacc${ABC[C:C+4]}); |
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output += ${CHANNEL_TILE}; |
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} |
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$if CHANNEL_TILE > 4: |
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for (; c >= 4; c -= 4) { |
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v128_t vacc0123p0 = wasm_v128_load(w); |
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$for K in range(KERNEL_TILE): |
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const v128_t vi${K}x0123 = wasm_v128_load(i${K}); |
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i${K} += 4; |
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const v128_t vk${K}x0123 = wasm_v128_load(w + ${(K + 1) * CHANNEL_TILE}); |
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$if 1 <= K < ACCUMULATORS: |
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v128_t vacc0123p${K} = wasm_f32x4_mul(vi${K}x0123, vk${K}x0123); |
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$else: |
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$if FMA: |
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vacc0123p${K % ACCUMULATORS} = wasm_f32x4_relaxed_madd(vi${K}x0123, vk${K}x0123, vacc0123p${K % ACCUMULATORS}); |
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$else: |
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vacc0123p${K % ACCUMULATORS} = wasm_f32x4_add(wasm_f32x4_mul(vi${K}x0123, vk${K}x0123), vacc0123p${K % ACCUMULATORS}); |
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w += 4; |
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$if ACCUMULATORS > 1: |
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$ACC_SLICE = 1 |
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$while ACC_SLICE < ACCUMULATORS: |
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$for A in range(0, ACCUMULATORS, ACC_SLICE * 2): |
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$if A + ACC_SLICE < ACCUMULATORS: |
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vacc0123p${A} = wasm_f32x4_add(vacc0123p${A}, vacc0123p${A + ACC_SLICE}); |
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$ACC_SLICE *= 2 |
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$if ACTIVATION == "MINMAX": |
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v128_t vacc0123 = ${WASM_F32X4_MAX}(vmin, vacc0123p0); |
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vacc0123 = ${WASM_F32X4_MIN}(vmax, vacc0123); |
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$elif ACTIVATION == "RELU": |
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const v128_t vacc0123 = wasm_i32x4_max(vacc0123p0, vzero); |
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$elif ACTIVATION == "LINEAR": |
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const v128_t vacc0123 = vacc0123p0; |
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wasm_v128_store(output, vacc0123); |
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output += 4; |
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} |
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if XNN_UNLIKELY(c != 0) { |
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v128_t vacc0123p0 = wasm_v128_load(w); |
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$for K in range(KERNEL_TILE): |
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const v128_t vi${K}x0123 = wasm_v128_load(i${K}); |
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const v128_t vk${K}x0123 = wasm_v128_load(w + ${(K+1) * CHANNEL_TILE}); |
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$if 1 <= K < ACCUMULATORS: |
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v128_t vacc0123p${K} = wasm_f32x4_mul(vi${K}x0123, vk${K}x0123); |
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$else: |
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$if FMA: |
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vacc0123p${K % ACCUMULATORS} = wasm_f32x4_relaxed_madd(vi${K}x0123, vk${K}x0123, vacc0123p${K % ACCUMULATORS}); |
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$else: |
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vacc0123p${K % ACCUMULATORS} = wasm_f32x4_add(wasm_f32x4_mul(vi${K}x0123, vk${K}x0123), vacc0123p${K % ACCUMULATORS}); |
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$if ACCUMULATORS > 1: |
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$ACC_SLICE = 1 |
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$while ACC_SLICE < ACCUMULATORS: |
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$for A in range(0, ACCUMULATORS, ACC_SLICE * 2): |
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$if A + ACC_SLICE < ACCUMULATORS: |
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vacc0123p${A} = wasm_f32x4_add(vacc0123p${A}, vacc0123p${A + ACC_SLICE}); |
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$ACC_SLICE *= 2 |
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$if ACTIVATION == "MINMAX": |
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v128_t vacc0123 = ${WASM_F32X4_MAX}(vmin, vacc0123p0); |
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vacc0123 = ${WASM_F32X4_MIN}(vmax, vacc0123); |
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$elif ACTIVATION == "RELU": |
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v128_t vacc0123 = wasm_i32x4_max(vacc0123p0, vzero); |
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$elif ACTIVATION == "LINEAR": |
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v128_t vacc0123 = vacc0123p0; |
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if (c & 2) { |
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wasm_v128_store64_lane(output, vacc0123, 0); |
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vacc0123 = wasm_v64x2_shuffle(vacc0123, vacc0123, 1, 1); |
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output += 2; |
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} |
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if (c & 1) { |
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wasm_v128_store32_lane(output, vacc0123, 0); |
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output += 1; |
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} |
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} |
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output = (float*) ((uintptr_t) output + output_increment); |
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} while (--output_width != 0); |
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} |
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