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Updated kernel declarations from "KERNEL_FQ void HC_ATTR_SEQ" to "KERNEL_FQ KERNEL_FA void". Please update your custom plugin kernels accordingly. Added spilling size as a factor in calculating usable memory per device. This is based on undocumented variables and may not be 100% accurate, but it works well in practice. Added a compiler hint to scrypt-based kernels indicating the guaranteed maximum thread count per kernel invocation. Removed redundant kernel code 29800, as it is identical to 27700, and updated the plugin.
298 lines
5.8 KiB
Common Lisp
298 lines
5.8 KiB
Common Lisp
/**
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* Author......: See docs/credits.txt
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* License.....: MIT
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*/
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#define NEW_SIMD_CODE
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#ifdef KERNEL_STATIC
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#include M2S(INCLUDE_PATH/inc_vendor.h)
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#include M2S(INCLUDE_PATH/inc_types.h)
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#include M2S(INCLUDE_PATH/inc_platform.cl)
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#include M2S(INCLUDE_PATH/inc_common.cl)
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#include M2S(INCLUDE_PATH/inc_simd.cl)
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#include M2S(INCLUDE_PATH/inc_hash_sha1.cl)
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#endif
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#if VECT_SIZE == 1
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#define uint_to_hex_lower8_le(i) make_u32x (l_bin2asc[(i)])
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#elif VECT_SIZE == 2
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#define uint_to_hex_lower8_le(i) make_u32x (l_bin2asc[(i).s0], l_bin2asc[(i).s1])
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#elif VECT_SIZE == 4
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#define uint_to_hex_lower8_le(i) make_u32x (l_bin2asc[(i).s0], l_bin2asc[(i).s1], l_bin2asc[(i).s2], l_bin2asc[(i).s3])
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#elif VECT_SIZE == 8
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#define uint_to_hex_lower8_le(i) make_u32x (l_bin2asc[(i).s0], l_bin2asc[(i).s1], l_bin2asc[(i).s2], l_bin2asc[(i).s3], l_bin2asc[(i).s4], l_bin2asc[(i).s5], l_bin2asc[(i).s6], l_bin2asc[(i).s7])
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#elif VECT_SIZE == 16
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#define uint_to_hex_lower8_le(i) make_u32x (l_bin2asc[(i).s0], l_bin2asc[(i).s1], l_bin2asc[(i).s2], l_bin2asc[(i).s3], l_bin2asc[(i).s4], l_bin2asc[(i).s5], l_bin2asc[(i).s6], l_bin2asc[(i).s7], l_bin2asc[(i).s8], l_bin2asc[(i).s9], l_bin2asc[(i).sa], l_bin2asc[(i).sb], l_bin2asc[(i).sc], l_bin2asc[(i).sd], l_bin2asc[(i).se], l_bin2asc[(i).sf])
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#endif
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KERNEL_FQ KERNEL_FA void m11200_mxx (KERN_ATTR_VECTOR ())
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{
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/**
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* modifier
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*/
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const u64 lid = get_local_id (0);
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const u64 gid = get_global_id (0);
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if (gid >= GID_CNT) return;
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/**
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* base
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*/
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const u32 pw_len = pws[gid].pw_len;
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u32x w[64] = { 0 };
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for (u32 i = 0, idx = 0; i < pw_len; i += 4, idx += 1)
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{
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w[idx] = pws[gid].i[idx];
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}
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sha1_ctx_t ctx0;
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sha1_init (&ctx0);
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sha1_update_global_swap (&ctx0, salt_bufs[SALT_POS_HOST].salt_buf, salt_bufs[SALT_POS_HOST].salt_len);
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/**
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* loop
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*/
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u32x w0l = w[0];
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for (u32 il_pos = 0; il_pos < IL_CNT; il_pos += VECT_SIZE)
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{
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const u32x w0r = words_buf_r[il_pos / VECT_SIZE];
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const u32x w0lr = w0l | w0r;
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w[0] = w0lr;
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sha1_ctx_vector_t ctx2;
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sha1_init_vector (&ctx2);
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sha1_update_vector (&ctx2, w, pw_len);
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sha1_final_vector (&ctx2);
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u32x a = ctx2.h[0];
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u32x b = ctx2.h[1];
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u32x c = ctx2.h[2];
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u32x d = ctx2.h[3];
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u32x e = ctx2.h[4];
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const u32x a_sav = a;
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const u32x b_sav = b;
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const u32x c_sav = c;
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const u32x d_sav = d;
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const u32x e_sav = e;
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sha1_ctx_vector_t ctx1;
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sha1_init_vector (&ctx1);
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ctx1.w0[0] = a;
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ctx1.w0[1] = b;
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ctx1.w0[2] = c;
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ctx1.w0[3] = d;
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ctx1.w1[0] = e;
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ctx1.len = 20;
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sha1_final_vector (&ctx1);
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a = ctx1.h[0];
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b = ctx1.h[1];
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c = ctx1.h[2];
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d = ctx1.h[3];
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e = ctx1.h[4];
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sha1_ctx_vector_t ctx;
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sha1_init_vector_from_scalar (&ctx, &ctx0);
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u32x w0[4];
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u32x w1[4];
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u32x w2[4];
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u32x w3[4];
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w0[0] = a;
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w0[1] = b;
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w0[2] = c;
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w0[3] = d;
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w1[0] = e;
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w1[1] = 0;
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w1[2] = 0;
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w1[3] = 0;
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w2[0] = 0;
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w2[1] = 0;
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w2[2] = 0;
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w2[3] = 0;
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w3[0] = 0;
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w3[1] = 0;
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w3[2] = 0;
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w3[3] = 0;
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sha1_update_vector_64 (&ctx, w0, w1, w2, w3, 20);
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sha1_final_vector (&ctx);
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ctx.h[0] ^= a_sav;
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ctx.h[1] ^= b_sav;
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ctx.h[2] ^= c_sav;
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ctx.h[3] ^= d_sav;
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ctx.h[4] ^= e_sav;
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const u32x r0 = ctx.h[DGST_R0];
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const u32x r1 = ctx.h[DGST_R1];
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const u32x r2 = ctx.h[DGST_R2];
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const u32x r3 = ctx.h[DGST_R3];
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COMPARE_M_SIMD (r0, r1, r2, r3);
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}
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}
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KERNEL_FQ KERNEL_FA void m11200_sxx (KERN_ATTR_VECTOR ())
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{
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/**
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* modifier
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*/
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const u64 lid = get_local_id (0);
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const u64 gid = get_global_id (0);
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if (gid >= GID_CNT) return;
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/**
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* digest
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*/
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const u32 search[4] =
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{
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digests_buf[DIGESTS_OFFSET_HOST].digest_buf[DGST_R0],
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digests_buf[DIGESTS_OFFSET_HOST].digest_buf[DGST_R1],
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digests_buf[DIGESTS_OFFSET_HOST].digest_buf[DGST_R2],
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digests_buf[DIGESTS_OFFSET_HOST].digest_buf[DGST_R3]
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};
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/**
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* base
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*/
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const u32 pw_len = pws[gid].pw_len;
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u32x w[64] = { 0 };
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for (u32 i = 0, idx = 0; i < pw_len; i += 4, idx += 1)
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{
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w[idx] = pws[gid].i[idx];
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}
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sha1_ctx_t ctx0;
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sha1_init (&ctx0);
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sha1_update_global_swap (&ctx0, salt_bufs[SALT_POS_HOST].salt_buf, salt_bufs[SALT_POS_HOST].salt_len);
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/**
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* loop
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*/
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u32x w0l = w[0];
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for (u32 il_pos = 0; il_pos < IL_CNT; il_pos += VECT_SIZE)
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{
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const u32x w0r = words_buf_r[il_pos / VECT_SIZE];
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const u32x w0lr = w0l | w0r;
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w[0] = w0lr;
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sha1_ctx_vector_t ctx2;
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sha1_init_vector (&ctx2);
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sha1_update_vector (&ctx2, w, pw_len);
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sha1_final_vector (&ctx2);
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u32x a = ctx2.h[0];
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u32x b = ctx2.h[1];
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u32x c = ctx2.h[2];
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u32x d = ctx2.h[3];
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u32x e = ctx2.h[4];
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const u32x a_sav = a;
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const u32x b_sav = b;
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const u32x c_sav = c;
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const u32x d_sav = d;
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const u32x e_sav = e;
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sha1_ctx_vector_t ctx1;
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sha1_init_vector (&ctx1);
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ctx1.w0[0] = a;
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ctx1.w0[1] = b;
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ctx1.w0[2] = c;
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ctx1.w0[3] = d;
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ctx1.w1[0] = e;
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ctx1.len = 20;
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sha1_final_vector (&ctx1);
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a = ctx1.h[0];
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b = ctx1.h[1];
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c = ctx1.h[2];
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d = ctx1.h[3];
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e = ctx1.h[4];
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sha1_ctx_vector_t ctx;
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sha1_init_vector_from_scalar (&ctx, &ctx0);
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u32x w0[4];
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u32x w1[4];
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u32x w2[4];
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u32x w3[4];
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w0[0] = a;
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w0[1] = b;
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w0[2] = c;
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w0[3] = d;
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w1[0] = e;
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w1[1] = 0;
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w1[2] = 0;
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w1[3] = 0;
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w2[0] = 0;
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w2[1] = 0;
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w2[2] = 0;
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w2[3] = 0;
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w3[0] = 0;
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w3[1] = 0;
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w3[2] = 0;
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w3[3] = 0;
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sha1_update_vector_64 (&ctx, w0, w1, w2, w3, 20);
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sha1_final_vector (&ctx);
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ctx.h[0] ^= a_sav;
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ctx.h[1] ^= b_sav;
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ctx.h[2] ^= c_sav;
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ctx.h[3] ^= d_sav;
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ctx.h[4] ^= e_sav;
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const u32x r0 = ctx.h[DGST_R0];
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const u32x r1 = ctx.h[DGST_R1];
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const u32x r2 = ctx.h[DGST_R2];
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const u32x r3 = ctx.h[DGST_R3];
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COMPARE_S_SIMD (r0, r1, r2, r3);
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}
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}
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