• Home
  • Line#
  • Scopes#
  • Navigate#
  • Raw
  • Download
1 // Auto-generated file. Do not edit!
2 //   Template: src/f32-raddstoreexpminusmax/avx512f-p5-scalef.c.in
3 //   Generator: tools/xngen
4 //
5 // Copyright 2019 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 <immintrin.h>
13 
14 #include <xnnpack/intrinsics-polyfill.h>
15 #include <xnnpack/raddstoreexpminusmax.h>
16 
17 
xnn_f32_raddstoreexpminusmax_ukernel__avx512f_p5_scalef_x128(size_t elements,const float * input,float * output,float * sum,float max)18 void xnn_f32_raddstoreexpminusmax_ukernel__avx512f_p5_scalef_x128(
19     size_t elements,
20     const float* input,
21     float* output,
22     float* sum,
23     float max)
24 {
25   assert(elements % sizeof(float) == 0);
26 
27   const __m512 vlog2e = _mm512_set1_ps(0x1.715476p+0f);
28   const __m512 vminus_ln2_hi = _mm512_set1_ps(-0x1.62E43p-1f);
29   const __m512 vminus_ln2_lo = _mm512_set1_ps(0x1.05C61p-29f);
30 
31   const __m512 vc0 = _mm512_set1_ps(1.0f);
32   const __m512 vc1 = _mm512_set1_ps(0x1.FFFFF6p-1f);
33   const __m512 vc2 = _mm512_set1_ps(0x1.FFFDC6p-2f);
34   const __m512 vc3 = _mm512_set1_ps(0x1.555A80p-3f);
35   const __m512 vc4 = _mm512_set1_ps(0x1.573A1Ap-5f);
36   const __m512 vc5 = _mm512_set1_ps(0x1.0F9F9Cp-7f);
37 
38   const __m512 vi_max = _mm512_set1_ps(max);
39 
40   __m512 vacc0 = _mm512_setzero_ps();
41   for (; elements >= 128 * sizeof(float); elements -= 128 * sizeof(float)) {
42     // Load 128 (8x16) inputs at a time.
43     const __m512 vi0 = _mm512_loadu_ps(input);
44     const __m512 vi1 = _mm512_loadu_ps(input + 16);
45     const __m512 vi2 = _mm512_loadu_ps(input + 32);
46     const __m512 vi3 = _mm512_loadu_ps(input + 48);
47     const __m512 vi4 = _mm512_loadu_ps(input + 64);
48     const __m512 vi5 = _mm512_loadu_ps(input + 80);
49     const __m512 vi6 = _mm512_loadu_ps(input + 96);
50     const __m512 vi7 = _mm512_loadu_ps(input + 112);
51     input += 128;
52 
53     // Subtract maximum input x := i - i_max.
54     const __m512 vx0 = _mm512_sub_ps(vi0, vi_max);
55     const __m512 vx1 = _mm512_sub_ps(vi1, vi_max);
56     const __m512 vx2 = _mm512_sub_ps(vi2, vi_max);
57     const __m512 vx3 = _mm512_sub_ps(vi3, vi_max);
58     const __m512 vx4 = _mm512_sub_ps(vi4, vi_max);
59     const __m512 vx5 = _mm512_sub_ps(vi5, vi_max);
60     const __m512 vx6 = _mm512_sub_ps(vi6, vi_max);
61     const __m512 vx7 = _mm512_sub_ps(vi7, vi_max);
62 
63     // Compute reduced argument elements := round(x / log(2)).
64     const __m512 vn0 = _mm512_roundscale_ps(_mm512_mul_ps(vx0, vlog2e), 0);
65     const __m512 vn1 = _mm512_roundscale_ps(_mm512_mul_ps(vx1, vlog2e), 0);
66     const __m512 vn2 = _mm512_roundscale_ps(_mm512_mul_ps(vx2, vlog2e), 0);
67     const __m512 vn3 = _mm512_roundscale_ps(_mm512_mul_ps(vx3, vlog2e), 0);
68     const __m512 vn4 = _mm512_roundscale_ps(_mm512_mul_ps(vx4, vlog2e), 0);
69     const __m512 vn5 = _mm512_roundscale_ps(_mm512_mul_ps(vx5, vlog2e), 0);
70     const __m512 vn6 = _mm512_roundscale_ps(_mm512_mul_ps(vx6, vlog2e), 0);
71     const __m512 vn7 = _mm512_roundscale_ps(_mm512_mul_ps(vx7, vlog2e), 0);
72 
73     // Compute reduced argument t := x - elements * log(2).
74     // Use Cody-Waite range reduction method (note two constants to represent log(2)) to improve accuracy.
75     __m512 vt0 = _mm512_fmadd_ps(vn0, vminus_ln2_hi, vx0);
76     __m512 vt1 = _mm512_fmadd_ps(vn1, vminus_ln2_hi, vx1);
77     __m512 vt2 = _mm512_fmadd_ps(vn2, vminus_ln2_hi, vx2);
78     __m512 vt3 = _mm512_fmadd_ps(vn3, vminus_ln2_hi, vx3);
79     __m512 vt4 = _mm512_fmadd_ps(vn4, vminus_ln2_hi, vx4);
80     __m512 vt5 = _mm512_fmadd_ps(vn5, vminus_ln2_hi, vx5);
81     __m512 vt6 = _mm512_fmadd_ps(vn6, vminus_ln2_hi, vx6);
82     __m512 vt7 = _mm512_fmadd_ps(vn7, vminus_ln2_hi, vx7);
83 
84     vt0 = _mm512_fmadd_ps(vn0, vminus_ln2_lo, vt0);
85     vt1 = _mm512_fmadd_ps(vn1, vminus_ln2_lo, vt1);
86     vt2 = _mm512_fmadd_ps(vn2, vminus_ln2_lo, vt2);
87     vt3 = _mm512_fmadd_ps(vn3, vminus_ln2_lo, vt3);
88     vt4 = _mm512_fmadd_ps(vn4, vminus_ln2_lo, vt4);
89     vt5 = _mm512_fmadd_ps(vn5, vminus_ln2_lo, vt5);
90     vt6 = _mm512_fmadd_ps(vn6, vminus_ln2_lo, vt6);
91     vt7 = _mm512_fmadd_ps(vn7, vminus_ln2_lo, vt7);
92 
93     // Compute degree-5 polynomial approxiatmion for exp(t) on [-log(2)/2, log(2)/2].
94     __m512 vp0 = _mm512_fmadd_ps(vc5, vt0, vc4);
95     __m512 vp1 = _mm512_fmadd_ps(vc5, vt1, vc4);
96     __m512 vp2 = _mm512_fmadd_ps(vc5, vt2, vc4);
97     __m512 vp3 = _mm512_fmadd_ps(vc5, vt3, vc4);
98     __m512 vp4 = _mm512_fmadd_ps(vc5, vt4, vc4);
99     __m512 vp5 = _mm512_fmadd_ps(vc5, vt5, vc4);
100     __m512 vp6 = _mm512_fmadd_ps(vc5, vt6, vc4);
101     __m512 vp7 = _mm512_fmadd_ps(vc5, vt7, vc4);
102 
103     vp0 = _mm512_fmadd_ps(vp0, vt0, vc3);
104     vp1 = _mm512_fmadd_ps(vp1, vt1, vc3);
105     vp2 = _mm512_fmadd_ps(vp2, vt2, vc3);
106     vp3 = _mm512_fmadd_ps(vp3, vt3, vc3);
107     vp4 = _mm512_fmadd_ps(vp4, vt4, vc3);
108     vp5 = _mm512_fmadd_ps(vp5, vt5, vc3);
109     vp6 = _mm512_fmadd_ps(vp6, vt6, vc3);
110     vp7 = _mm512_fmadd_ps(vp7, vt7, vc3);
111 
112     vp0 = _mm512_fmadd_ps(vp0, vt0, vc2);
113     vp1 = _mm512_fmadd_ps(vp1, vt1, vc2);
114     vp2 = _mm512_fmadd_ps(vp2, vt2, vc2);
115     vp3 = _mm512_fmadd_ps(vp3, vt3, vc2);
116     vp4 = _mm512_fmadd_ps(vp4, vt4, vc2);
117     vp5 = _mm512_fmadd_ps(vp5, vt5, vc2);
118     vp6 = _mm512_fmadd_ps(vp6, vt6, vc2);
119     vp7 = _mm512_fmadd_ps(vp7, vt7, vc2);
120 
121     vp0 = _mm512_fmadd_ps(vp0, vt0, vc1);
122     vp1 = _mm512_fmadd_ps(vp1, vt1, vc1);
123     vp2 = _mm512_fmadd_ps(vp2, vt2, vc1);
124     vp3 = _mm512_fmadd_ps(vp3, vt3, vc1);
125     vp4 = _mm512_fmadd_ps(vp4, vt4, vc1);
126     vp5 = _mm512_fmadd_ps(vp5, vt5, vc1);
127     vp6 = _mm512_fmadd_ps(vp6, vt6, vc1);
128     vp7 = _mm512_fmadd_ps(vp7, vt7, vc1);
129 
130     vp0 = _mm512_fmadd_ps(vp0, vt0, vc0);
131     vp1 = _mm512_fmadd_ps(vp1, vt1, vc0);
132     vp2 = _mm512_fmadd_ps(vp2, vt2, vc0);
133     vp3 = _mm512_fmadd_ps(vp3, vt3, vc0);
134     vp4 = _mm512_fmadd_ps(vp4, vt4, vc0);
135     vp5 = _mm512_fmadd_ps(vp5, vt5, vc0);
136     vp6 = _mm512_fmadd_ps(vp6, vt6, vc0);
137     vp7 = _mm512_fmadd_ps(vp7, vt7, vc0);
138 
139     // Reconstruct the final f value:
140     //   f = 2**elements * (1 + t * (c1 + t * (c2 + t * (c3 + t * (c4 + t * c5)))))
141     //     = 2**elements * p
142     const __m512 vf0 = _mm512_scalef_ps(vp0, vn0);
143     const __m512 vf1 = _mm512_scalef_ps(vp1, vn1);
144     const __m512 vf2 = _mm512_scalef_ps(vp2, vn2);
145     const __m512 vf3 = _mm512_scalef_ps(vp3, vn3);
146     const __m512 vf4 = _mm512_scalef_ps(vp4, vn4);
147     const __m512 vf5 = _mm512_scalef_ps(vp5, vn5);
148     const __m512 vf6 = _mm512_scalef_ps(vp6, vn6);
149     const __m512 vf7 = _mm512_scalef_ps(vp7, vn7);
150 
151     // Store 128 (8x16) outputs at a time.
152     _mm512_storeu_ps(output, vf0);
153     _mm512_storeu_ps(output + 16, vf1);
154     _mm512_storeu_ps(output + 32, vf2);
155     _mm512_storeu_ps(output + 48, vf3);
156     _mm512_storeu_ps(output + 64, vf4);
157     _mm512_storeu_ps(output + 80, vf5);
158     _mm512_storeu_ps(output + 96, vf6);
159     _mm512_storeu_ps(output + 112, vf7);
160     output += 128;
161 
162     // Accumulate computed exponents.
163     vacc0 = _mm512_add_ps(vacc0, vf0);
164     vacc0 = _mm512_add_ps(vacc0, vf1);
165     vacc0 = _mm512_add_ps(vacc0, vf2);
166     vacc0 = _mm512_add_ps(vacc0, vf3);
167     vacc0 = _mm512_add_ps(vacc0, vf4);
168     vacc0 = _mm512_add_ps(vacc0, vf5);
169     vacc0 = _mm512_add_ps(vacc0, vf6);
170     vacc0 = _mm512_add_ps(vacc0, vf7);
171   }
172 
173   __m512 vacc = vacc0;
174   for (; elements >= 16 * sizeof(float); elements -= 16 * sizeof(float)) {
175     // Load 16 inputs at a time.
176     const __m512 vi = _mm512_loadu_ps(input);
177     input += 16;
178 
179     // Subtract maximum input x := i - i_max.
180     const __m512 vx = _mm512_sub_ps(vi, vi_max);
181 
182     // Compute reduced argument elements := round(x / log(2)).
183     const __m512 vn = _mm512_roundscale_ps(_mm512_mul_ps(vx, vlog2e), 0);
184 
185     // Compute reduced argument t := x - elements * log(2).
186     // Use Cody-Waite range reduction method (note two constants to represent log(2)) to improve accuracy.
187     __m512 vt = _mm512_fmadd_ps(vn, vminus_ln2_hi, vx);
188     vt = _mm512_fmadd_ps(vn, vminus_ln2_lo, vt);
189 
190     // Compute degree-5 polynomial approxiatmion for exp(t) on [-log(2)/2, log(2)/2].
191     __m512 vp = _mm512_fmadd_ps(vc5, vt, vc4);
192     vp = _mm512_fmadd_ps(vp, vt, vc3);
193     vp = _mm512_fmadd_ps(vp, vt, vc2);
194     vp = _mm512_fmadd_ps(vp, vt, vc1);
195     vp = _mm512_fmadd_ps(vp, vt, vc0);
196 
197     // Reconstruct the final f value:
198     //   f = 2**elements * (1 + t * (c1 + t * (c2 + t * (c3 + t * (c4 + t * c5)))))
199     //     = 2**elements * p
200     const __m512 vf = _mm512_scalef_ps(vp, vn);
201 
202     // Store 16 outputs at a time.
203     _mm512_storeu_ps(output, vf);
204     output += 16;
205 
206     // Accumulate computed exponents.
207     vacc = _mm512_add_ps(vacc, vf);
208   }
209   if (elements != 0) {
210     // Prepare mask for valid 32-bit elements (depends on elements).
211     elements >>= 2 /* log2(sizeof(float)) */;
212     const __mmask16 vmask = _cvtu32_mask16((uint16_t) ((uint32_t) (UINT32_C(1) << elements) - UINT32_C(1)));
213 
214     // Load up to 15 inputs at a time.
215     const __m512 vi = _mm512_maskz_loadu_ps(vmask, input);
216 
217     // Subtract maximum input x := i - i_max.
218     const __m512 vx = _mm512_sub_ps(vi, vi_max);
219 
220     // Compute reduced argument elements := round(x / log(2)).
221     const __m512 vn = _mm512_roundscale_ps(_mm512_mul_ps(vx, vlog2e), 0);
222 
223     // Compute reduced argument t := x - elements * log(2).
224     // Use Cody-Waite range reduction method (note two constants to represent log(2)) to improve accuracy.
225     __m512 vt = _mm512_fmadd_ps(vn, vminus_ln2_hi, vx);
226     vt = _mm512_fmadd_ps(vn, vminus_ln2_lo, vt);
227 
228     // Compute degree-5 polynomial approxiatmion for exp(t) on [-log(2)/2, log(2)/2].
229     __m512 vp = _mm512_fmadd_ps(vc5, vt, vc4);
230     vp = _mm512_fmadd_ps(vp, vt, vc3);
231     vp = _mm512_fmadd_ps(vp, vt, vc2);
232     vp = _mm512_fmadd_ps(vp, vt, vc1);
233     vp = _mm512_fmadd_ps(vp, vt, vc0);
234 
235     // Reconstruct the final f value:
236     //   f = 2**elements * (1 + t * (c1 + t * (c2 + t * (c3 + t * (c4 + t * c5)))))
237     //     = 2**elements * p
238     const __m512 vf = _mm512_scalef_ps(vp, vn);
239 
240     // Store up to 15 outputs at a time.
241     _mm512_mask_storeu_ps(output, vmask, vf);
242 
243     // Accumulate computed exponents.
244     vacc = _mm512_mask_add_ps(vacc, vmask, vacc, vf);
245   }
246   *sum = _mm512_reduce_add_ps(vacc);
247 }
248