#include "config.h"
#include <stdint.h>
#include <stdlib.h>
#if defined(_MSC_VER)
#include <intrin.h>
#else
#include <emmintrin.h>
#endif
#include "parasail.h"
#include "parasail/memory.h"
#include "parasail/internal_sse.h"
#define SG_SUFFIX _striped_sse2_128_64
#define SG_SUFFIX_PROF _striped_profile_sse2_128_64
#include "sg_helper.h"
static inline __m128i _mm_cmpeq_epi64_rpl(__m128i a, __m128i b) {
__m128i_64_t A;
__m128i_64_t B;
A.m = a;
B.m = b;
A.v[0] = (A.v[0]==B.v[0]) ? 0xFFFFFFFFFFFFFFFF : 0;
A.v[1] = (A.v[1]==B.v[1]) ? 0xFFFFFFFFFFFFFFFF : 0;
return A.m;
}
static inline __m128i _mm_cmpgt_epi64_rpl(__m128i a, __m128i b) {
__m128i_64_t A;
__m128i_64_t B;
A.m = a;
B.m = b;
A.v[0] = (A.v[0]>B.v[0]) ? 0xFFFFFFFFFFFFFFFF : 0;
A.v[1] = (A.v[1]>B.v[1]) ? 0xFFFFFFFFFFFFFFFF : 0;
return A.m;
}
static inline __m128i _mm_insert_epi64_rpl(__m128i a, int64_t i, const int imm) {
__m128i_64_t A;
A.m = a;
A.v[imm] = i;
return A.m;
}
static inline __m128i _mm_max_epi64_rpl(__m128i a, __m128i b) {
__m128i_64_t A;
__m128i_64_t B;
A.m = a;
B.m = b;
A.v[0] = (A.v[0]>B.v[0]) ? A.v[0] : B.v[0];
A.v[1] = (A.v[1]>B.v[1]) ? A.v[1] : B.v[1];
return A.m;
}
#if HAVE_SSE2_MM_SET_EPI64X
#define _mm_set_epi64x_rpl _mm_set_epi64x
#else
static inline __m128i _mm_set_epi64x_rpl(int64_t e1, int64_t e0) {
__m128i_64_t A;
A.v[0] = e0;
A.v[1] = e1;
return A.m;
}
#endif
static inline int64_t _mm_extract_epi64_rpl(__m128i a, const int imm) {
__m128i_64_t A;
A.m = a;
return A.v[imm];
}
static inline __m128i _mm_min_epi64_rpl(__m128i a, __m128i b) {
__m128i_64_t A;
__m128i_64_t B;
A.m = a;
B.m = b;
A.v[0] = (A.v[0]<B.v[0]) ? A.v[0] : B.v[0];
A.v[1] = (A.v[1]<B.v[1]) ? A.v[1] : B.v[1];
return A.m;
}
static inline __m128i _mm_cmplt_epi64_rpl(__m128i a, __m128i b) {
__m128i_64_t A;
__m128i_64_t B;
A.m = a;
B.m = b;
A.v[0] = (A.v[0]<B.v[0]) ? 0xFFFFFFFFFFFFFFFF : 0;
A.v[1] = (A.v[1]<B.v[1]) ? 0xFFFFFFFFFFFFFFFF : 0;
return A.m;
}
#if HAVE_SSE2_MM_SET1_EPI64X
#define _mm_set1_epi64x_rpl _mm_set1_epi64x
#else
static inline __m128i _mm_set1_epi64x_rpl(int64_t i) {
__m128i_64_t A;
A.v[0] = i;
A.v[1] = i;
return A.m;
}
#endif
#ifdef PARASAIL_TABLE
static inline void arr_store_si128(
int *array,
__m128i vH,
int32_t t,
int32_t seglen,
int32_t d,
int32_t dlen)
{
array[1LL*(0*seglen+t)*dlen + d] = (int64_t)_mm_extract_epi64_rpl(vH, 0);
array[1LL*(1*seglen+t)*dlen + d] = (int64_t)_mm_extract_epi64_rpl(vH, 1);
}
#endif
#ifdef PARASAIL_ROWCOL
static inline void arr_store_col(
int *col,
__m128i vH,
int32_t t,
int32_t seglen)
{
col[0*seglen+t] = (int64_t)_mm_extract_epi64_rpl(vH, 0);
col[1*seglen+t] = (int64_t)_mm_extract_epi64_rpl(vH, 1);
}
#endif
#ifdef PARASAIL_TABLE
#define FNAME parasail_sg_flags_table_striped_sse2_128_64
#define PNAME parasail_sg_flags_table_striped_profile_sse2_128_64
#else
#ifdef PARASAIL_ROWCOL
#define FNAME parasail_sg_flags_rowcol_striped_sse2_128_64
#define PNAME parasail_sg_flags_rowcol_striped_profile_sse2_128_64
#else
#define FNAME parasail_sg_flags_striped_sse2_128_64
#define PNAME parasail_sg_flags_striped_profile_sse2_128_64
#endif
#endif
parasail_result_t* FNAME(
const char * const restrict s1, const int s1Len,
const char * const restrict s2, const int s2Len,
const int open, const int gap, const parasail_matrix_t *matrix,
int s1_beg, int s1_end, int s2_beg, int s2_end)
{
parasail_profile_t *profile = NULL;
parasail_result_t *result = NULL;
PARASAIL_CHECK_NULL(s2);
PARASAIL_CHECK_GT0(s2Len);
PARASAIL_CHECK_GE0(open);
PARASAIL_CHECK_GE0(gap);
PARASAIL_CHECK_NULL(matrix);
if (matrix->type == PARASAIL_MATRIX_TYPE_SQUARE) {
PARASAIL_CHECK_NULL(s1);
PARASAIL_CHECK_GT0(s1Len);
}
profile = parasail_profile_create_sse_128_64(s1, s1Len, matrix);
if (!profile) return NULL;
result = PNAME(profile, s2, s2Len, open, gap, s1_beg, s1_end, s2_beg, s2_end);
parasail_profile_free(profile);
return result;
}
parasail_result_t* PNAME(
const parasail_profile_t * const restrict profile,
const char * const restrict s2, const int s2Len,
const int open, const int gap,
int s1_beg, int s1_end, int s2_beg, int s2_end)
{
int32_t i = 0;
int32_t j = 0;
int32_t k = 0;
int32_t s1Len = 0;
int32_t end_query = 0;
int32_t end_ref = 0;
const parasail_matrix_t *matrix = NULL;
int32_t segWidth = 0;
int32_t segLen = 0;
int32_t offset = 0;
int32_t position = 0;
__m128i* restrict vProfile = NULL;
__m128i* restrict pvHStore = NULL;
__m128i* restrict pvHLoad = NULL;
__m128i* restrict pvE = NULL;
int64_t* restrict boundary = NULL;
__m128i vGapO;
__m128i vGapE;
int64_t NEG_LIMIT = 0;
int64_t POS_LIMIT = 0;
int64_t score = 0;
__m128i vNegLimit;
__m128i vPosLimit;
__m128i vSaturationCheckMin;
__m128i vSaturationCheckMax;
__m128i vMaxH;
__m128i vPosMask;
parasail_result_t *result = NULL;
PARASAIL_CHECK_NULL(profile);
PARASAIL_CHECK_NULL(profile->profile64.score);
PARASAIL_CHECK_NULL(profile->matrix);
PARASAIL_CHECK_GT0(profile->s1Len);
PARASAIL_CHECK_NULL(s2);
PARASAIL_CHECK_GT0(s2Len);
PARASAIL_CHECK_GE0(open);
PARASAIL_CHECK_GE0(gap);
i = 0;
j = 0;
k = 0;
s1Len = profile->s1Len;
end_query = s1Len-1;
end_ref = s2Len-1;
matrix = profile->matrix;
segWidth = 2;
segLen = (s1Len + segWidth - 1) / segWidth;
offset = (s1Len - 1) % segLen;
position = (segWidth - 1) - (s1Len - 1) / segLen;
vProfile = (__m128i*)profile->profile64.score;
vGapO = _mm_set1_epi64x_rpl(open);
vGapE = _mm_set1_epi64x_rpl(gap);
NEG_LIMIT = (-open < matrix->min ? INT64_MIN + open : INT64_MIN - matrix->min) + 1;
POS_LIMIT = INT64_MAX - matrix->max - 1;
score = NEG_LIMIT;
vNegLimit = _mm_set1_epi64x_rpl(NEG_LIMIT);
vPosLimit = _mm_set1_epi64x_rpl(POS_LIMIT);
vSaturationCheckMin = vPosLimit;
vSaturationCheckMax = vNegLimit;
vMaxH = vNegLimit;
vPosMask = _mm_cmpeq_epi64_rpl(_mm_set1_epi64x_rpl(position),
_mm_set_epi64x_rpl(0,1));
#ifdef PARASAIL_TABLE
result = parasail_result_new_table1(segLen*segWidth, s2Len);
#else
#ifdef PARASAIL_ROWCOL
result = parasail_result_new_rowcol1(segLen*segWidth, s2Len);
#else
result = parasail_result_new();
#endif
#endif
if (!result) return NULL;
result->flag |= PARASAIL_FLAG_SG | PARASAIL_FLAG_STRIPED
| PARASAIL_FLAG_BITS_64 | PARASAIL_FLAG_LANES_2;
result->flag |= s1_beg ? PARASAIL_FLAG_SG_S1_BEG : 0;
result->flag |= s1_end ? PARASAIL_FLAG_SG_S1_END : 0;
result->flag |= s2_beg ? PARASAIL_FLAG_SG_S2_BEG : 0;
result->flag |= s2_end ? PARASAIL_FLAG_SG_S2_END : 0;
#ifdef PARASAIL_TABLE
result->flag |= PARASAIL_FLAG_TABLE;
#endif
#ifdef PARASAIL_ROWCOL
result->flag |= PARASAIL_FLAG_ROWCOL;
#endif
pvHStore = parasail_memalign___m128i(16, segLen);
pvHLoad = parasail_memalign___m128i(16, segLen);
pvE = parasail_memalign___m128i(16, segLen);
boundary = parasail_memalign_int64_t(16, s2Len+1);
if (!pvHStore) return NULL;
if (!pvHLoad) return NULL;
if (!pvE) return NULL;
if (!boundary) return NULL;
{
int32_t index = 0;
for (i=0; i<segLen; ++i) {
int32_t segNum = 0;
__m128i_64_t h;
__m128i_64_t e;
for (segNum=0; segNum<segWidth; ++segNum) {
int64_t tmp = s1_beg ? 0 : (-open-gap*(segNum*segLen+i));
h.v[segNum] = tmp < INT64_MIN ? INT64_MIN : tmp;
tmp = tmp - open;
e.v[segNum] = tmp < INT64_MIN ? INT64_MIN : tmp;
}
_mm_store_si128(&pvHStore[index], h.m);
_mm_store_si128(&pvE[index], e.m);
++index;
}
}
{
boundary[0] = 0;
for (i=1; i<=s2Len; ++i) {
int64_t tmp = s2_beg ? 0 : (-open-gap*(i-1));
boundary[i] = tmp < INT64_MIN ? INT64_MIN : tmp;
}
}
for (j=0; j<s2Len; ++j) {
__m128i vE;
__m128i vF = vNegLimit;
__m128i vH = _mm_slli_si128(pvHStore[segLen - 1], 8);
const __m128i* vP = vProfile + matrix->mapper[(unsigned char)s2[j]] * segLen;
__m128i* pv = pvHLoad;
pvHLoad = pvHStore;
pvHStore = pv;
vH = _mm_insert_epi64_rpl(vH, boundary[j], 0);
for (i=0; i<segLen; ++i) {
vH = _mm_add_epi64(vH, _mm_load_si128(vP + i));
vE = _mm_load_si128(pvE + i);
vH = _mm_max_epi64_rpl(vH, vE);
vH = _mm_max_epi64_rpl(vH, vF);
_mm_store_si128(pvHStore + i, vH);
vSaturationCheckMax = _mm_max_epi64_rpl(vSaturationCheckMax, vH);
vSaturationCheckMin = _mm_min_epi64_rpl(vSaturationCheckMin, vH);
vSaturationCheckMin = _mm_min_epi64_rpl(vSaturationCheckMin, vE);
vSaturationCheckMin = _mm_min_epi64_rpl(vSaturationCheckMin, vF);
#ifdef PARASAIL_TABLE
arr_store_si128(result->tables->score_table, vH, i, segLen, j, s2Len);
#endif
vH = _mm_sub_epi64(vH, vGapO);
vE = _mm_sub_epi64(vE, vGapE);
vE = _mm_max_epi64_rpl(vE, vH);
_mm_store_si128(pvE + i, vE);
vF = _mm_sub_epi64(vF, vGapE);
vF = _mm_max_epi64_rpl(vF, vH);
vH = _mm_load_si128(pvHLoad + i);
}
for (k=0; k<segWidth; ++k) {
int64_t tmp = s2_beg ? -open : (boundary[j+1]-open);
int64_t tmp2 = tmp < INT64_MIN ? INT64_MIN : tmp;
vF = _mm_slli_si128(vF, 8);
vF = _mm_insert_epi64_rpl(vF, tmp2, 0);
for (i=0; i<segLen; ++i) {
vH = _mm_load_si128(pvHStore + i);
vH = _mm_max_epi64_rpl(vH,vF);
_mm_store_si128(pvHStore + i, vH);
vSaturationCheckMin = _mm_min_epi64_rpl(vSaturationCheckMin, vH);
vSaturationCheckMax = _mm_max_epi64_rpl(vSaturationCheckMax, vH);
#ifdef PARASAIL_TABLE
arr_store_si128(result->tables->score_table, vH, i, segLen, j, s2Len);
#endif
vH = _mm_sub_epi64(vH, vGapO);
vF = _mm_sub_epi64(vF, vGapE);
if (! _mm_movemask_epi8(_mm_cmpgt_epi64_rpl(vF, vH))) goto end;
}
}
end:
{
__m128i vCompare;
vH = _mm_load_si128(pvHStore + offset);
vCompare = _mm_and_si128(vPosMask, _mm_cmpgt_epi64_rpl(vH, vMaxH));
vMaxH = _mm_max_epi64_rpl(vH, vMaxH);
if (_mm_movemask_epi8(vCompare)) {
end_ref = j;
}
#ifdef PARASAIL_ROWCOL
for (k=0; k<position; ++k) {
vH = _mm_slli_si128(vH, 8);
}
result->rowcols->score_row[j] = (int64_t) _mm_extract_epi64_rpl (vH, 1);
#endif
}
}
#ifdef PARASAIL_ROWCOL
for (i=0; i<segLen; ++i) {
__m128i vH = _mm_load_si128(pvHStore + i);
arr_store_col(result->rowcols->score_col, vH, i, segLen);
}
#endif
if (s2_end)
{
for (k=0; k<position; ++k) {
vMaxH = _mm_slli_si128(vMaxH, 8);
}
score = (int64_t) _mm_extract_epi64_rpl(vMaxH, 1);
end_query = s1Len-1;
}
if (s1_end)
{
int64_t *t = (int64_t*)pvHStore;
int32_t column_len = segLen * segWidth;
for (i = 0; i<column_len; ++i, ++t) {
int32_t temp = i / segWidth + i % segWidth * segLen;
if (temp >= s1Len) continue;
if (*t > score) {
score = *t;
end_query = temp;
end_ref = s2Len-1;
}
else if (*t == score && end_ref == s2Len-1 && temp < end_query) {
end_query = temp;
}
}
}
if (!s1_end && !s2_end) {
{
__m128i vH = _mm_load_si128(pvHStore + offset);
for (k=0; k<position; ++k) {
vH = _mm_slli_si128(vH, 8);
}
score = (int64_t) _mm_extract_epi64_rpl (vH, 1);
end_ref = s2Len - 1;
end_query = s1Len - 1;
}
}
if (_mm_movemask_epi8(_mm_or_si128(
_mm_cmplt_epi64_rpl(vSaturationCheckMin, vNegLimit),
_mm_cmpgt_epi64_rpl(vSaturationCheckMax, vPosLimit)))) {
result->flag |= PARASAIL_FLAG_SATURATED;
score = 0;
end_query = 0;
end_ref = 0;
}
result->score = score;
result->end_query = end_query;
result->end_ref = end_ref;
parasail_free(boundary);
parasail_free(pvE);
parasail_free(pvHLoad);
parasail_free(pvHStore);
return result;
}
SG_IMPL_ALL
SG_IMPL_PROF_ALL