Coverage Report

Created: 2020-02-14 15:38

/src/botan/src/lib/modes/aead/gcm/clmul_cpu/clmul_cpu.cpp
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Count
Source
1
/*
2
* Hook for CLMUL/PMULL/VPMSUM
3
* (C) 2013,2017,2019,2020 Jack Lloyd
4
*
5
* Botan is released under the Simplified BSD License (see license.txt)
6
*/
7
8
#include <botan/internal/clmul_cpu.h>
9
#include <botan/internal/simd_32.h>
10
11
#if defined(BOTAN_SIMD_USE_SSE2)
12
  #include <immintrin.h>
13
  #include <wmmintrin.h>
14
#endif
15
16
namespace Botan {
17
18
namespace {
19
20
BOTAN_FORCE_INLINE SIMD_4x32 BOTAN_FUNC_ISA(BOTAN_VPERM_ISA) reverse_vector(const SIMD_4x32& in)
21
40.6k
   {
22
40.6k
#if defined(BOTAN_SIMD_USE_SSE2)
23
40.6k
   const __m128i BSWAP_MASK = _mm_set_epi8(0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15);
24
40.6k
   return SIMD_4x32(_mm_shuffle_epi8(in.raw(), BSWAP_MASK));
25
#elif defined(BOTAN_SIMD_USE_NEON)
26
   const uint8_t maskb[16] = { 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0 };
27
   const uint8x16_t mask = vld1q_u8(maskb);
28
   return SIMD_4x32(vreinterpretq_u32_u8(vqtbl1q_u8(vreinterpretq_u8_u32(in.raw()), mask)));
29
#elif defined(BOTAN_SIMD_USE_ALTIVEC)
30
   const __vector unsigned char mask = {15,14,13,12, 11,10,9,8, 7,6,5,4, 3,2,1,0};
31
   return SIMD_4x32(vec_perm(in.raw(), in.raw(), mask));
32
#endif
33
   }
34
35
template<int M>
36
BOTAN_FORCE_INLINE SIMD_4x32 BOTAN_FUNC_ISA(BOTAN_CLMUL_ISA) clmul(const SIMD_4x32& H, const SIMD_4x32& x)
37
110k
   {
38
110k
   static_assert(M == 0x00 || M == 0x01 || M == 0x10 || M == 0x11, "Valid clmul mode");
39
110k
40
110k
#if defined(BOTAN_SIMD_USE_SSE2)
41
110k
   return SIMD_4x32(_mm_clmulepi64_si128(x.raw(), H.raw(), M));
42
#elif defined(BOTAN_SIMD_USE_NEON)
43
   const uint64_t a = vgetq_lane_u64(vreinterpretq_u64_u32(x.raw()), M & 0x01);
44
   const uint64_t b = vgetq_lane_u64(vreinterpretq_u64_u32(H.raw()), (M & 0x10) >> 4);
45
   return SIMD_4x32(reinterpret_cast<uint32x4_t>(vmull_p64(a, b)));
46
#elif defined(BOTAN_SIMD_USE_ALTIVEC)
47
   const SIMD_4x32 mask_lo = SIMD_4x32(0, 0, 0xFFFFFFFF, 0xFFFFFFFF);
48
49
   SIMD_4x32 i1 = x;
50
   SIMD_4x32 i2 = H;
51
52
   if(M == 0x11)
53
      {
54
      i1 &= mask_lo;
55
      i2 &= mask_lo;
56
      }
57
   else if(M == 0x10)
58
      {
59
      i1 = i1.shift_elems_left<2>();
60
      }
61
   else if(M == 0x01)
62
      {
63
      i2 = i2.shift_elems_left<2>();
64
      }
65
   else if(M == 0x00)
66
      {
67
      i1 = mask_lo.andc(i1);
68
      i2 = mask_lo.andc(i2);
69
      }
70
71
   return SIMD_4x32((__vector unsigned int)__builtin_crypto_vpmsumd(
72
                       (__vector unsigned long)i1.raw(),
73
                       (__vector unsigned long)i2.raw())
74
      );
75
#endif
76
   }
clmul_cpu.cpp:Botan::SIMD_4x32 Botan::(anonymous namespace)::clmul<17>(Botan::SIMD_4x32 const&, Botan::SIMD_4x32 const&)
Line
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Source
37
34.2k
   {
38
34.2k
   static_assert(M == 0x00 || M == 0x01 || M == 0x10 || M == 0x11, "Valid clmul mode");
39
34.2k
40
34.2k
#if defined(BOTAN_SIMD_USE_SSE2)
41
34.2k
   return SIMD_4x32(_mm_clmulepi64_si128(x.raw(), H.raw(), M));
42
#elif defined(BOTAN_SIMD_USE_NEON)
43
   const uint64_t a = vgetq_lane_u64(vreinterpretq_u64_u32(x.raw()), M & 0x01);
44
   const uint64_t b = vgetq_lane_u64(vreinterpretq_u64_u32(H.raw()), (M & 0x10) >> 4);
45
   return SIMD_4x32(reinterpret_cast<uint32x4_t>(vmull_p64(a, b)));
46
#elif defined(BOTAN_SIMD_USE_ALTIVEC)
47
   const SIMD_4x32 mask_lo = SIMD_4x32(0, 0, 0xFFFFFFFF, 0xFFFFFFFF);
48
49
   SIMD_4x32 i1 = x;
50
   SIMD_4x32 i2 = H;
51
52
   if(M == 0x11)
53
      {
54
      i1 &= mask_lo;
55
      i2 &= mask_lo;
56
      }
57
   else if(M == 0x10)
58
      {
59
      i1 = i1.shift_elems_left<2>();
60
      }
61
   else if(M == 0x01)
62
      {
63
      i2 = i2.shift_elems_left<2>();
64
      }
65
   else if(M == 0x00)
66
      {
67
      i1 = mask_lo.andc(i1);
68
      i2 = mask_lo.andc(i2);
69
      }
70
71
   return SIMD_4x32((__vector unsigned int)__builtin_crypto_vpmsumd(
72
                       (__vector unsigned long)i1.raw(),
73
                       (__vector unsigned long)i2.raw())
74
      );
75
#endif
76
   }
clmul_cpu.cpp:Botan::SIMD_4x32 Botan::(anonymous namespace)::clmul<16>(Botan::SIMD_4x32 const&, Botan::SIMD_4x32 const&)
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Source
37
7.19k
   {
38
7.19k
   static_assert(M == 0x00 || M == 0x01 || M == 0x10 || M == 0x11, "Valid clmul mode");
39
7.19k
40
7.19k
#if defined(BOTAN_SIMD_USE_SSE2)
41
7.19k
   return SIMD_4x32(_mm_clmulepi64_si128(x.raw(), H.raw(), M));
42
#elif defined(BOTAN_SIMD_USE_NEON)
43
   const uint64_t a = vgetq_lane_u64(vreinterpretq_u64_u32(x.raw()), M & 0x01);
44
   const uint64_t b = vgetq_lane_u64(vreinterpretq_u64_u32(H.raw()), (M & 0x10) >> 4);
45
   return SIMD_4x32(reinterpret_cast<uint32x4_t>(vmull_p64(a, b)));
46
#elif defined(BOTAN_SIMD_USE_ALTIVEC)
47
   const SIMD_4x32 mask_lo = SIMD_4x32(0, 0, 0xFFFFFFFF, 0xFFFFFFFF);
48
49
   SIMD_4x32 i1 = x;
50
   SIMD_4x32 i2 = H;
51
52
   if(M == 0x11)
53
      {
54
      i1 &= mask_lo;
55
      i2 &= mask_lo;
56
      }
57
   else if(M == 0x10)
58
      {
59
      i1 = i1.shift_elems_left<2>();
60
      }
61
   else if(M == 0x01)
62
      {
63
      i2 = i2.shift_elems_left<2>();
64
      }
65
   else if(M == 0x00)
66
      {
67
      i1 = mask_lo.andc(i1);
68
      i2 = mask_lo.andc(i2);
69
      }
70
71
   return SIMD_4x32((__vector unsigned int)__builtin_crypto_vpmsumd(
72
                       (__vector unsigned long)i1.raw(),
73
                       (__vector unsigned long)i2.raw())
74
      );
75
#endif
76
   }
clmul_cpu.cpp:Botan::SIMD_4x32 Botan::(anonymous namespace)::clmul<1>(Botan::SIMD_4x32 const&, Botan::SIMD_4x32 const&)
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Count
Source
37
7.19k
   {
38
7.19k
   static_assert(M == 0x00 || M == 0x01 || M == 0x10 || M == 0x11, "Valid clmul mode");
39
7.19k
40
7.19k
#if defined(BOTAN_SIMD_USE_SSE2)
41
7.19k
   return SIMD_4x32(_mm_clmulepi64_si128(x.raw(), H.raw(), M));
42
#elif defined(BOTAN_SIMD_USE_NEON)
43
   const uint64_t a = vgetq_lane_u64(vreinterpretq_u64_u32(x.raw()), M & 0x01);
44
   const uint64_t b = vgetq_lane_u64(vreinterpretq_u64_u32(H.raw()), (M & 0x10) >> 4);
45
   return SIMD_4x32(reinterpret_cast<uint32x4_t>(vmull_p64(a, b)));
46
#elif defined(BOTAN_SIMD_USE_ALTIVEC)
47
   const SIMD_4x32 mask_lo = SIMD_4x32(0, 0, 0xFFFFFFFF, 0xFFFFFFFF);
48
49
   SIMD_4x32 i1 = x;
50
   SIMD_4x32 i2 = H;
51
52
   if(M == 0x11)
53
      {
54
      i1 &= mask_lo;
55
      i2 &= mask_lo;
56
      }
57
   else if(M == 0x10)
58
      {
59
      i1 = i1.shift_elems_left<2>();
60
      }
61
   else if(M == 0x01)
62
      {
63
      i2 = i2.shift_elems_left<2>();
64
      }
65
   else if(M == 0x00)
66
      {
67
      i1 = mask_lo.andc(i1);
68
      i2 = mask_lo.andc(i2);
69
      }
70
71
   return SIMD_4x32((__vector unsigned int)__builtin_crypto_vpmsumd(
72
                       (__vector unsigned long)i1.raw(),
73
                       (__vector unsigned long)i2.raw())
74
      );
75
#endif
76
   }
clmul_cpu.cpp:Botan::SIMD_4x32 Botan::(anonymous namespace)::clmul<0>(Botan::SIMD_4x32 const&, Botan::SIMD_4x32 const&)
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Count
Source
37
61.3k
   {
38
61.3k
   static_assert(M == 0x00 || M == 0x01 || M == 0x10 || M == 0x11, "Valid clmul mode");
39
61.3k
40
61.3k
#if defined(BOTAN_SIMD_USE_SSE2)
41
61.3k
   return SIMD_4x32(_mm_clmulepi64_si128(x.raw(), H.raw(), M));
42
#elif defined(BOTAN_SIMD_USE_NEON)
43
   const uint64_t a = vgetq_lane_u64(vreinterpretq_u64_u32(x.raw()), M & 0x01);
44
   const uint64_t b = vgetq_lane_u64(vreinterpretq_u64_u32(H.raw()), (M & 0x10) >> 4);
45
   return SIMD_4x32(reinterpret_cast<uint32x4_t>(vmull_p64(a, b)));
46
#elif defined(BOTAN_SIMD_USE_ALTIVEC)
47
   const SIMD_4x32 mask_lo = SIMD_4x32(0, 0, 0xFFFFFFFF, 0xFFFFFFFF);
48
49
   SIMD_4x32 i1 = x;
50
   SIMD_4x32 i2 = H;
51
52
   if(M == 0x11)
53
      {
54
      i1 &= mask_lo;
55
      i2 &= mask_lo;
56
      }
57
   else if(M == 0x10)
58
      {
59
      i1 = i1.shift_elems_left<2>();
60
      }
61
   else if(M == 0x01)
62
      {
63
      i2 = i2.shift_elems_left<2>();
64
      }
65
   else if(M == 0x00)
66
      {
67
      i1 = mask_lo.andc(i1);
68
      i2 = mask_lo.andc(i2);
69
      }
70
71
   return SIMD_4x32((__vector unsigned int)__builtin_crypto_vpmsumd(
72
                       (__vector unsigned long)i1.raw(),
73
                       (__vector unsigned long)i2.raw())
74
      );
75
#endif
76
   }
77
78
inline SIMD_4x32 gcm_reduce(const SIMD_4x32& B0, const SIMD_4x32& B1)
79
13.9k
   {
80
13.9k
   SIMD_4x32 X0 = B1.shr<31>();
81
13.9k
   SIMD_4x32 X1 = B1.shl<1>();
82
13.9k
   SIMD_4x32 X2 = B0.shr<31>();
83
13.9k
   SIMD_4x32 X3 = B0.shl<1>();
84
13.9k
85
13.9k
   X3 |= X0.shift_elems_right<3>();
86
13.9k
   X3 |= X2.shift_elems_left<1>();
87
13.9k
   X1 |= X0.shift_elems_left<1>();
88
13.9k
89
13.9k
   X0 = X1.shl<31>() ^ X1.shl<30>() ^ X1.shl<25>();
90
13.9k
91
13.9k
   X1 ^= X0.shift_elems_left<3>();
92
13.9k
93
13.9k
   X0 = X1 ^ X3 ^ X0.shift_elems_right<1>();
94
13.9k
   X0 ^= X1.shr<7>() ^ X1.shr<2>() ^ X1.shr<1>();
95
13.9k
   return X0;
96
13.9k
   }
97
98
inline SIMD_4x32 BOTAN_FUNC_ISA(BOTAN_CLMUL_ISA) gcm_multiply(const SIMD_4x32& H, const SIMD_4x32& x)
99
7.19k
   {
100
7.19k
   SIMD_4x32 T0 = clmul<0x11>(H, x);
101
7.19k
   SIMD_4x32 T1 = clmul<0x10>(H, x);
102
7.19k
   SIMD_4x32 T2 = clmul<0x01>(H, x);
103
7.19k
   SIMD_4x32 T3 = clmul<0x00>(H, x);
104
7.19k
105
7.19k
   T1 ^= T2;
106
7.19k
   T0 ^= T1.shift_elems_right<2>();
107
7.19k
   T3 ^= T1.shift_elems_left<2>();
108
7.19k
109
7.19k
   return gcm_reduce(T0, T3);
110
7.19k
   }
111
112
inline SIMD_4x32 BOTAN_FUNC_ISA(BOTAN_CLMUL_ISA)
113
   gcm_multiply_x4(const SIMD_4x32& H1, const SIMD_4x32& H2, const SIMD_4x32& H3, const SIMD_4x32& H4,
114
                   const SIMD_4x32& X1, const SIMD_4x32& X2, const SIMD_4x32& X3, const SIMD_4x32& X4)
115
6.77k
   {
116
6.77k
   /*
117
6.77k
   * Mutiply with delayed reduction, algorithm by Krzysztof Jankowski
118
6.77k
   * and Pierre Laurent of Intel
119
6.77k
   */
120
6.77k
121
6.77k
   const SIMD_4x32 lo = (clmul<0x00>(H1, X1) ^ clmul<0x00>(H2, X2)) ^
122
6.77k
                        (clmul<0x00>(H3, X3) ^ clmul<0x00>(H4, X4));
123
6.77k
124
6.77k
   const SIMD_4x32 hi = (clmul<0x11>(H1, X1) ^ clmul<0x11>(H2, X2)) ^
125
6.77k
                        (clmul<0x11>(H3, X3) ^ clmul<0x11>(H4, X4));
126
6.77k
127
6.77k
   SIMD_4x32 T;
128
6.77k
129
6.77k
   T ^= clmul<0x00>(H1 ^ H1.shift_elems_right<2>(), X1 ^ X1.shift_elems_right<2>());
130
6.77k
   T ^= clmul<0x00>(H2 ^ H2.shift_elems_right<2>(), X2 ^ X2.shift_elems_right<2>());
131
6.77k
   T ^= clmul<0x00>(H3 ^ H3.shift_elems_right<2>(), X3 ^ X3.shift_elems_right<2>());
132
6.77k
   T ^= clmul<0x00>(H4 ^ H4.shift_elems_right<2>(), X4 ^ X4.shift_elems_right<2>());
133
6.77k
   T ^= lo;
134
6.77k
   T ^= hi;
135
6.77k
136
6.77k
   return gcm_reduce(hi ^ T.shift_elems_right<2>(),
137
6.77k
                     lo ^ T.shift_elems_left<2>());
138
6.77k
   }
139
140
}
141
142
BOTAN_FUNC_ISA(BOTAN_VPERM_ISA)
143
void gcm_clmul_precompute(const uint8_t H_bytes[16], uint64_t H_pow[4*2])
144
950
   {
145
950
   const SIMD_4x32 H1 = reverse_vector(SIMD_4x32::load_le(H_bytes));
146
950
   const SIMD_4x32 H2 = gcm_multiply(H1, H1);
147
950
   const SIMD_4x32 H3 = gcm_multiply(H1, H2);
148
950
   const SIMD_4x32 H4 = gcm_multiply(H2, H2);
149
950
150
950
   H1.store_le(H_pow);
151
950
   H2.store_le(H_pow + 2);
152
950
   H3.store_le(H_pow + 4);
153
950
   H4.store_le(H_pow + 6);
154
950
   }
155
156
BOTAN_FUNC_ISA(BOTAN_VPERM_ISA)
157
void gcm_multiply_clmul(uint8_t x[16],
158
                        const uint64_t H_pow[8],
159
                        const uint8_t input[], size_t blocks)
160
4.14k
   {
161
4.14k
   /*
162
4.14k
   * Algorithms 1 and 5 from Intel's CLMUL guide
163
4.14k
   */
164
4.14k
   const SIMD_4x32 H1 = SIMD_4x32::load_le(H_pow);
165
4.14k
166
4.14k
   SIMD_4x32 a = reverse_vector(SIMD_4x32::load_le(x));
167
4.14k
168
4.14k
   if(blocks >= 4)
169
477
      {
170
477
      const SIMD_4x32 H2 = SIMD_4x32::load_le(H_pow + 2);
171
477
      const SIMD_4x32 H3 = SIMD_4x32::load_le(H_pow + 4);
172
477
      const SIMD_4x32 H4 = SIMD_4x32::load_le(H_pow + 6);
173
477
174
7.25k
      while(blocks >= 4)
175
6.77k
         {
176
6.77k
         const SIMD_4x32 m0 = reverse_vector(SIMD_4x32::load_le(input       ));
177
6.77k
         const SIMD_4x32 m1 = reverse_vector(SIMD_4x32::load_le(input + 16*1));
178
6.77k
         const SIMD_4x32 m2 = reverse_vector(SIMD_4x32::load_le(input + 16*2));
179
6.77k
         const SIMD_4x32 m3 = reverse_vector(SIMD_4x32::load_le(input + 16*3));
180
6.77k
181
6.77k
         a ^= m0;
182
6.77k
         a = gcm_multiply_x4(H1, H2, H3, H4, m3, m2, m1, a);
183
6.77k
184
6.77k
         input += 4*16;
185
6.77k
         blocks -= 4;
186
6.77k
         }
187
477
      }
188
4.14k
189
8.49k
   for(size_t i = 0; i != blocks; ++i)
190
4.34k
      {
191
4.34k
      const SIMD_4x32 m = reverse_vector(SIMD_4x32::load_le(input + 16*i));
192
4.34k
193
4.34k
      a ^= m;
194
4.34k
      a = gcm_multiply(H1, a);
195
4.34k
      }
196
4.14k
197
4.14k
   a = reverse_vector(a);
198
4.14k
   a.store_le(x);
199
4.14k
   }
200
201
}