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1 // Auto-generated file. Do not edit!
2 //   Template: src/qs8-gemm/MRx4c2-sse.c.in
3 //   Generator: tools/xngen
4 //
5 // Copyright 2020 Google LLC
6 //
7 // This source code is licensed under the BSD-style license found in the
8 // LICENSE file in the root directory of this source tree.
9 
10 #include <assert.h>
11 
12 #include <emmintrin.h>
13 
14 #include <xnnpack/gemm.h>
15 #include <xnnpack/math.h>
16 
17 
18 
xnn_qu8_gemm_minmax_fp32_ukernel_1x4c2__sse2_ld128(size_t mr,size_t nc,size_t kc,const uint8_t * restrict a,size_t a_stride,const void * restrict w,uint8_t * restrict c,size_t cm_stride,size_t cn_stride,const union xnn_qu8_conv_minmax_params params[restrict XNN_MIN_ELEMENTS (1)])19 void xnn_qu8_gemm_minmax_fp32_ukernel_1x4c2__sse2_ld128(
20     size_t mr,
21     size_t nc,
22     size_t kc,
23     const uint8_t* restrict a,
24     size_t a_stride,
25     const void* restrict w,
26     uint8_t* restrict c,
27     size_t cm_stride,
28     size_t cn_stride,
29     const union xnn_qu8_conv_minmax_params params[restrict XNN_MIN_ELEMENTS(1)]) XNN_OOB_READS
30 {
31   assert(mr != 0);
32   assert(mr <= 1);
33   assert(nc != 0);
34   assert(kc != 0);
35   assert(kc % sizeof(uint8_t) == 0);
36   assert(a != NULL);
37   assert(w != NULL);
38   assert(c != NULL);
39 
40   kc = round_up_po2(kc, 2);
41   const uint8_t* a0 = a;
42   uint8_t* c0 = c;
43 
44   do {
45     __m128i vacc0x0123 = _mm_loadu_si128((const __m128i*) w);
46     w = (const void*) ((const int32_t*) w + 4);
47 
48     size_t k = kc;
49     const __m128i vb_zero_point = _mm_load_si128((const __m128i*) params->fp32_sse2.kernel_zero_point);
50     const __m128i vzero = _mm_setzero_si128();
51     while (k >= 8 * sizeof(uint8_t)) {
52       const __m128i va0 = _mm_loadl_epi64((const __m128i*) a0);
53       const __m128i vxa0 = _mm_unpacklo_epi8(va0, vzero);
54       a0 += 8;
55 
56       const __m128i vb01 = _mm_loadu_si128((const __m128i*) w);
57       const __m128i vxb0 = _mm_sub_epi16(_mm_unpacklo_epi8(vb01, vzero), vb_zero_point);
58       const __m128i vxb1 = _mm_sub_epi16(_mm_unpackhi_epi8(vb01, vzero), vb_zero_point);
59 
60       vacc0x0123 = _mm_add_epi32(vacc0x0123,
61         _mm_madd_epi16(_mm_shuffle_epi32(vxa0, _MM_SHUFFLE(0, 0, 0, 0)), vxb0));
62 
63       vacc0x0123 = _mm_add_epi32(vacc0x0123,
64         _mm_madd_epi16(_mm_shuffle_epi32(vxa0, _MM_SHUFFLE(1, 1, 1, 1)), vxb1));
65       const __m128i vb23 = _mm_loadu_si128((const __m128i*) ((const uint8_t*) w + 16));
66       const __m128i vxb2 = _mm_sub_epi16(_mm_unpacklo_epi8(vb23, vzero), vb_zero_point);
67       const __m128i vxb3 = _mm_sub_epi16(_mm_unpackhi_epi8(vb23, vzero), vb_zero_point);
68 
69       vacc0x0123 = _mm_add_epi32(vacc0x0123,
70         _mm_madd_epi16(_mm_shuffle_epi32(vxa0, _MM_SHUFFLE(2, 2, 2, 2)), vxb2));
71 
72       vacc0x0123 = _mm_add_epi32(vacc0x0123,
73         _mm_madd_epi16(_mm_shuffle_epi32(vxa0, _MM_SHUFFLE(3, 3, 3, 3)), vxb3));
74 
75       w = (const void*) ((const uint8_t*) w + 32);
76       k -= 8 * sizeof(uint8_t);
77     }
78     if (k != 0) {
79       const __m128i va0 = _mm_loadl_epi64((const __m128i*) a0);
80       const __m128i vxa0 = _mm_unpacklo_epi8(va0, vzero);
81       a0 = (const uint8_t*) ((uintptr_t) a0 + k);
82 
83       const __m128i vb0 = _mm_loadl_epi64((const __m128i*) w);
84       const __m128i vxb0 = _mm_sub_epi16(_mm_unpacklo_epi8(vb0, vzero), vb_zero_point);
85       w = (const void*) ((const uint8_t*) w + 8);
86 
87       vacc0x0123 = _mm_add_epi32(vacc0x0123,
88         _mm_madd_epi16(_mm_shuffle_epi32(vxa0, _MM_SHUFFLE(0, 0, 0, 0)), vxb0));
89 
90       if (k > 2 * sizeof(uint8_t)) {
91         const __m128i vb1 = _mm_loadl_epi64((const __m128i*) w);
92         const __m128i vxb1 = _mm_sub_epi16(_mm_unpacklo_epi8(vb1, vzero), vb_zero_point);
93         w = (const void*) ((const uint8_t*) w + 8);
94 
95         vacc0x0123 = _mm_add_epi32(vacc0x0123,
96           _mm_madd_epi16(_mm_shuffle_epi32(vxa0, _MM_SHUFFLE(1, 1, 1, 1)), vxb1));
97 
98         if (k > 4 * sizeof(uint8_t)) {
99           const __m128i vb2 = _mm_loadl_epi64((const __m128i*) w);
100           const __m128i vxb2 = _mm_sub_epi16(_mm_unpacklo_epi8(vb2, vzero), vb_zero_point);
101           w = (const void*) ((const uint8_t*) w + 8);
102 
103           vacc0x0123 = _mm_add_epi32(vacc0x0123,
104             _mm_madd_epi16(_mm_shuffle_epi32(vxa0, _MM_SHUFFLE(2, 2, 2, 2)), vxb2));
105         }
106       }
107     }
108 
109     __m128 vscaled0x0123 = _mm_cvtepi32_ps(vacc0x0123);
110 
111     const __m128 vscale = _mm_load_ps(params->fp32_sse2.scale);
112     vscaled0x0123 = _mm_mul_ps(vscaled0x0123, vscale);
113 
114     const __m128 voutput_max_less_zero_point = _mm_load_ps(params->fp32_sse2.output_max_less_zero_point);
115     vscaled0x0123 = _mm_min_ps(vscaled0x0123, voutput_max_less_zero_point);
116 
117     vacc0x0123 = _mm_cvtps_epi32(vscaled0x0123);
118 
119     const __m128i voutput_zero_point = _mm_load_si128((const __m128i*) params->fp32_sse2.output_zero_point);
120     __m128i vacc00x0123 = _mm_adds_epi16(_mm_packs_epi32(vacc0x0123, vacc0x0123), voutput_zero_point);
121 
122     __m128i vout = _mm_packus_epi16(vacc00x0123, vacc00x0123);
123 
124     vout = _mm_max_epu8(vout, _mm_load_si128((const __m128i*) params->fp32_sse2.output_min));
125 
126     if (nc >= 4) {
127       *((uint32_t*) c0) = (uint32_t) _mm_cvtsi128_si32(vout);
128 
129       c0 = (uint8_t*) ((uintptr_t) c0 + cn_stride);
130 
131       a0 = (const uint8_t*) ((uintptr_t) a0 - kc);
132 
133       nc -= 4;
134     } else {
135       if (nc & 2) {
136         *((uint16_t*) c0) = (uint16_t) _mm_extract_epi16(vout, 0);
137         c0 += 2;
138         vout = _mm_srli_epi32(vout, 16);
139       }
140       if (nc & 1) {
141         *c0 = (uint8_t) _mm_cvtsi128_si32(vout);
142       }
143 
144       nc = 0;
145     }
146   } while (nc != 0);
147 }
148