neon.uc 3.4 KB

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  1. /* -----------------------------------------------------------------------
  2. *
  3. * neon.uc - RAID-6 syndrome calculation using ARM NEON instructions
  4. *
  5. * Copyright (C) 2012 Rob Herring
  6. * Copyright (C) 2015 Linaro Ltd. <ard.biesheuvel@linaro.org>
  7. *
  8. * Based on altivec.uc:
  9. * Copyright 2002-2004 H. Peter Anvin - All Rights Reserved
  10. *
  11. * This program is free software; you can redistribute it and/or modify
  12. * it under the terms of the GNU General Public License as published by
  13. * the Free Software Foundation, Inc., 53 Temple Place Ste 330,
  14. * Boston MA 02111-1307, USA; either version 2 of the License, or
  15. * (at your option) any later version; incorporated herein by reference.
  16. *
  17. * ----------------------------------------------------------------------- */
  18. /*
  19. * neon$#.c
  20. *
  21. * $#-way unrolled NEON intrinsics math RAID-6 instruction set
  22. *
  23. * This file is postprocessed using unroll.awk
  24. */
  25. #include <arm_neon.h>
  26. typedef uint8x16_t unative_t;
  27. #define NBYTES(x) ((unative_t){x,x,x,x, x,x,x,x, x,x,x,x, x,x,x,x})
  28. #define NSIZE sizeof(unative_t)
  29. /*
  30. * The SHLBYTE() operation shifts each byte left by 1, *not*
  31. * rolling over into the next byte
  32. */
  33. static inline unative_t SHLBYTE(unative_t v)
  34. {
  35. return vshlq_n_u8(v, 1);
  36. }
  37. /*
  38. * The MASK() operation returns 0xFF in any byte for which the high
  39. * bit is 1, 0x00 for any byte for which the high bit is 0.
  40. */
  41. static inline unative_t MASK(unative_t v)
  42. {
  43. const uint8x16_t temp = NBYTES(0);
  44. return (unative_t)vcltq_s8((int8x16_t)v, (int8x16_t)temp);
  45. }
  46. void raid6_neon$#_gen_syndrome_real(int disks, unsigned long bytes, void **ptrs)
  47. {
  48. uint8_t **dptr = (uint8_t **)ptrs;
  49. uint8_t *p, *q;
  50. int d, z, z0;
  51. register unative_t wd$$, wq$$, wp$$, w1$$, w2$$;
  52. const unative_t x1d = NBYTES(0x1d);
  53. z0 = disks - 3; /* Highest data disk */
  54. p = dptr[z0+1]; /* XOR parity */
  55. q = dptr[z0+2]; /* RS syndrome */
  56. for ( d = 0 ; d < bytes ; d += NSIZE*$# ) {
  57. wq$$ = wp$$ = vld1q_u8(&dptr[z0][d+$$*NSIZE]);
  58. for ( z = z0-1 ; z >= 0 ; z-- ) {
  59. wd$$ = vld1q_u8(&dptr[z][d+$$*NSIZE]);
  60. wp$$ = veorq_u8(wp$$, wd$$);
  61. w2$$ = MASK(wq$$);
  62. w1$$ = SHLBYTE(wq$$);
  63. w2$$ = vandq_u8(w2$$, x1d);
  64. w1$$ = veorq_u8(w1$$, w2$$);
  65. wq$$ = veorq_u8(w1$$, wd$$);
  66. }
  67. vst1q_u8(&p[d+NSIZE*$$], wp$$);
  68. vst1q_u8(&q[d+NSIZE*$$], wq$$);
  69. }
  70. }
  71. void raid6_neon$#_xor_syndrome_real(int disks, int start, int stop,
  72. unsigned long bytes, void **ptrs)
  73. {
  74. uint8_t **dptr = (uint8_t **)ptrs;
  75. uint8_t *p, *q;
  76. int d, z, z0;
  77. register unative_t wd$$, wq$$, wp$$, w1$$, w2$$;
  78. const unative_t x1d = NBYTES(0x1d);
  79. z0 = stop; /* P/Q right side optimization */
  80. p = dptr[disks-2]; /* XOR parity */
  81. q = dptr[disks-1]; /* RS syndrome */
  82. for ( d = 0 ; d < bytes ; d += NSIZE*$# ) {
  83. wq$$ = vld1q_u8(&dptr[z0][d+$$*NSIZE]);
  84. wp$$ = veorq_u8(vld1q_u8(&p[d+$$*NSIZE]), wq$$);
  85. /* P/Q data pages */
  86. for ( z = z0-1 ; z >= start ; z-- ) {
  87. wd$$ = vld1q_u8(&dptr[z][d+$$*NSIZE]);
  88. wp$$ = veorq_u8(wp$$, wd$$);
  89. w2$$ = MASK(wq$$);
  90. w1$$ = SHLBYTE(wq$$);
  91. w2$$ = vandq_u8(w2$$, x1d);
  92. w1$$ = veorq_u8(w1$$, w2$$);
  93. wq$$ = veorq_u8(w1$$, wd$$);
  94. }
  95. /* P/Q left side optimization */
  96. for ( z = start-1 ; z >= 0 ; z-- ) {
  97. w2$$ = MASK(wq$$);
  98. w1$$ = SHLBYTE(wq$$);
  99. w2$$ = vandq_u8(w2$$, x1d);
  100. wq$$ = veorq_u8(w1$$, w2$$);
  101. }
  102. w1$$ = vld1q_u8(&q[d+NSIZE*$$]);
  103. wq$$ = veorq_u8(wq$$, w1$$);
  104. vst1q_u8(&p[d+NSIZE*$$], wp$$);
  105. vst1q_u8(&q[d+NSIZE*$$], wq$$);
  106. }
  107. }