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hashcat/OpenCL/m01460_a3.cl

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/**
* Author......: See docs/credits.txt
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* License.....: MIT
*/
#define NEW_SIMD_CODE
#include "inc_vendor.cl"
#include "inc_hash_constants.h"
#include "inc_hash_functions.cl"
#include "inc_types.cl"
#include "inc_common.cl"
#include "inc_simd.cl"
#include "inc_hash_sha256.cl"
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__kernel void m01460_mxx (__global pw_t *pws, __global const kernel_rule_t *rules_buf, __global const pw_t *combs_buf, __constant const u32x *words_buf_r, __global void *tmps, __global void *hooks, __global const u32 *bitmaps_buf_s1_a, __global const u32 *bitmaps_buf_s1_b, __global const u32 *bitmaps_buf_s1_c, __global const u32 *bitmaps_buf_s1_d, __global const u32 *bitmaps_buf_s2_a, __global const u32 *bitmaps_buf_s2_b, __global const u32 *bitmaps_buf_s2_c, __global const u32 *bitmaps_buf_s2_d, __global plain_t *plains_buf, __global const digest_t *digests_buf, __global u32 *hashes_shown, __global const salt_t *salt_bufs, __global const void *esalt_bufs, __global u32 *d_return_buf, __global u32 *d_scryptV0_buf, __global u32 *d_scryptV1_buf, __global u32 *d_scryptV2_buf, __global u32 *d_scryptV3_buf, const u32 bitmap_mask, const u32 bitmap_shift1, const u32 bitmap_shift2, const u32 salt_pos, const u32 loop_pos, const u32 loop_cnt, const u32 il_cnt, const u32 digests_cnt, const u32 digests_offset, const u32 combs_mode, const u32 gid_max)
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{
/**
* modifier
*/
const u32 lid = get_local_id (0);
const u32 gid = get_global_id (0);
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if (gid >= gid_max) return;
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/**
* base
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*/
const u32 pw_len = pws[gid].pw_len;
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const u32 pw_lenv = ceil ((float) pw_len / 4);
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u32x w[64] = { 0 };
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for (int idx = 0; idx < pw_lenv; idx++)
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{
w[idx] = pws[gid].i[idx];
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barrier (CLK_GLOBAL_MEM_FENCE);
}
const u32 salt_len = salt_bufs[salt_pos].salt_len;
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const u32 salt_lenv = ceil ((float) salt_len / 4);
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u32x s[64] = { 0 };
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for (int idx = 0; idx < salt_lenv; idx++)
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{
s[idx] = swap32_S (salt_bufs[salt_pos].salt_buf[idx]);
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barrier (CLK_GLOBAL_MEM_FENCE);
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}
sha256_hmac_ctx_vector_t ctx0;
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sha256_hmac_init_vector (&ctx0, s, salt_len);
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/**
* loop
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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)
{
const u32x w0r = words_buf_r[il_pos / VECT_SIZE];
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const u32x w0 = w0l | w0r;
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w[0] = w0;
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sha256_hmac_ctx_vector_t ctx = ctx0;
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sha256_hmac_update_vector (&ctx, w, pw_len);
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sha256_hmac_final_vector (&ctx);
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const u32x r0 = ctx.opad.h[DGST_R0];
const u32x r1 = ctx.opad.h[DGST_R1];
const u32x r2 = ctx.opad.h[DGST_R2];
const u32x r3 = ctx.opad.h[DGST_R3];
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COMPARE_M_SIMD (r0, r1, r2, r3);
}
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}
__kernel void m01460_sxx (__global pw_t *pws, __global const kernel_rule_t *rules_buf, __global const pw_t *combs_buf, __constant const u32x *words_buf_r, __global void *tmps, __global void *hooks, __global const u32 *bitmaps_buf_s1_a, __global const u32 *bitmaps_buf_s1_b, __global const u32 *bitmaps_buf_s1_c, __global const u32 *bitmaps_buf_s1_d, __global const u32 *bitmaps_buf_s2_a, __global const u32 *bitmaps_buf_s2_b, __global const u32 *bitmaps_buf_s2_c, __global const u32 *bitmaps_buf_s2_d, __global plain_t *plains_buf, __global const digest_t *digests_buf, __global u32 *hashes_shown, __global const salt_t *salt_bufs, __global const void *esalt_bufs, __global u32 *d_return_buf, __global u32 *d_scryptV0_buf, __global u32 *d_scryptV1_buf, __global u32 *d_scryptV2_buf, __global u32 *d_scryptV3_buf, const u32 bitmap_mask, const u32 bitmap_shift1, const u32 bitmap_shift2, const u32 salt_pos, const u32 loop_pos, const u32 loop_cnt, const u32 il_cnt, const u32 digests_cnt, const u32 digests_offset, const u32 combs_mode, const u32 gid_max)
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{
/**
* modifier
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*/
const u32 lid = get_local_id (0);
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const u32 gid = get_global_id (0);
if (gid >= gid_max) return;
/**
* digest
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*/
const u32 search[4] =
{
digests_buf[digests_offset].digest_buf[DGST_R0],
digests_buf[digests_offset].digest_buf[DGST_R1],
digests_buf[digests_offset].digest_buf[DGST_R2],
digests_buf[digests_offset].digest_buf[DGST_R3]
};
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/**
* base
*/
const u32 pw_len = pws[gid].pw_len;
const u32 pw_lenv = ceil ((float) pw_len / 4);
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u32x w[64] = { 0 };
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for (int idx = 0; idx < pw_lenv; idx++)
{
w[idx] = pws[gid].i[idx];
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barrier (CLK_GLOBAL_MEM_FENCE);
}
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const u32 salt_len = salt_bufs[salt_pos].salt_len;
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const u32 salt_lenv = ceil ((float) salt_len / 4);
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u32x s[64] = { 0 };
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for (int idx = 0; idx < salt_lenv; idx++)
{
s[idx] = swap32_S (salt_bufs[salt_pos].salt_buf[idx]);
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barrier (CLK_GLOBAL_MEM_FENCE);
}
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sha256_hmac_ctx_vector_t ctx0;
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sha256_hmac_init_vector (&ctx0, s, salt_len);
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/**
* loop
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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)
{
const u32x w0r = words_buf_r[il_pos / VECT_SIZE];
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const u32x w0 = w0l | w0r;
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w[0] = w0;
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sha256_hmac_ctx_vector_t ctx = ctx0;
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sha256_hmac_update_vector (&ctx, w, pw_len);
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sha256_hmac_final_vector (&ctx);
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const u32x r0 = ctx.opad.h[DGST_R0];
const u32x r1 = ctx.opad.h[DGST_R1];
const u32x r2 = ctx.opad.h[DGST_R2];
const u32x r3 = ctx.opad.h[DGST_R3];
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COMPARE_S_SIMD (r0, r1, r2, r3);
}
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}