filename stringlengths 19 182 | omp_pragma_line stringlengths 24 416 | context_chars int64 100 100 | text stringlengths 152 177k |
|---|---|---|---|
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | s[gr] == 0 ? 0 : ndistinct_fct(px + pst[gr]-1, po, pgs[gr], M, 1, narm);
} else {
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? 0 : ndistinct_int(px + pst[gr]-1, po, pgs[gr], 1, narm);
}
break;
}
case LGLSXP: {
const int *px = LOGI... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | ;
}
break;
}
case LGLSXP: {
const int *px = LOGICAL(x);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? 0 : ndistinct_logi(px + pst[gr]-1, po, pgs[gr], 1, narm);
break;
}
case STRSXP: {
const SEXP *px = SEXPPTR(x);
... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | 1, narm);
break;
}
case STRSXP: {
const SEXP *px = SEXPPTR(x);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? 0 : ndistinct_string(px + pst[gr]-1, po, pgs[gr], 1, narm);
break;
}
default: error("Not Supported SEXP Type!");
}
... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | faster??
switch(TYPEOF(x)) {
case REALSXP: {
const double *px = REAL(x);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? 0 : ndistinct_double(px, po + pst[gr]-1, pgs[gr], 0, narm);
break;
}
case INTSXP: {
const int *px = INTEGER(x);
... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | ER(x);
if(isFactor(x) && nlevels(x) < l / ng * 3) {
int M = nlevels(x);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? 0 : ndistinct_fct(px, po + pst[gr]-1, pgs[gr], M, 0, narm);
} else {
#pragma omp parallel for num_threads(nthreads)
... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | s[gr] == 0 ? 0 : ndistinct_fct(px, po + pst[gr]-1, pgs[gr], M, 0, narm);
} else {
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? 0 : ndistinct_int(px, po + pst[gr]-1, pgs[gr], 0, narm);
}
break;
}
case LGLSXP: {
const int *px = LOGI... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | ;
}
break;
}
case LGLSXP: {
const int *px = LOGICAL(x);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? 0 : ndistinct_logi(px, po + pst[gr]-1, pgs[gr], 0, narm);
break;
}
case STRSXP: {
const SEXP *px = SEXPPTR(x);
... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | 0, narm);
break;
}
case STRSXP: {
const SEXP *px = SEXPPTR(x);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? 0 : ndistinct_string(px, po + pst[gr]-1, pgs[gr], 0, narm);
break;
}
default: error("Not Supported SEXP Type!");
}
... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | pout[j] = ndistinct_impl_int(px[j], narm);
} else {
if(nthreads > l) nthreads = l;
<LOOP-START>for(int j = 0; j < l; ++j) pout[j] = ndistinct_impl_int(px[j], narm);
}
setAttrib(out, R_NamesSymbol, getAttrib(x, R_NamesSymbol));
UNPROTECT(1);
return out;
} else {
SEXP out = PROTECT(... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | out[j] = ndistinct_impl(px[j], narm);
} else {
if(nthreads > l) nthreads = l;
<LOOP-START>for(int j = 0; j < l; ++j) pout[j] = ndistinct_impl(px[j], narm);
}
// Not thread safe and thus taken out
for(int j = 0; j != l; ++j) {
SEXP xj = px[j];
if(OBJECT(xj) == 0) c... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | col) nthreads = col;
switch(tx) {
case REALSXP: {
double *px = REAL(x);
<LOOP-START>for(int j = 0; j < col; ++j)
pres[j] = ndistinct_double(px + j*l, &l, l, 1, narm);
break;
}
case INTSXP: { // Factor matrix not well defined object...
int *px = INTEGER(... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | case INTSXP: { // Factor matrix not well defined object...
int *px = INTEGER(x);
<LOOP-START>for(int j = 0; j < col; ++j)
pres[j] = ndistinct_int(px + j*l, &l, l, 1, narm);
break;
}
case LGLSXP: {
int *px = INTEGER(x);
#pragma omp parallel for num_threads... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | &l, l, 1, narm);
break;
}
case LGLSXP: {
int *px = INTEGER(x);
<LOOP-START>for(int j = 0; j < col; ++j)
pres[j] = ndistinct_logi(px + j*l, &l, l, 1, narm);
break;
}
case STRSXP: {
SEXP *px = SEXPPTR(x);
#pragma omp parallel for num_threa... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | &l, l, 1, narm);
break;
}
case STRSXP: {
SEXP *px = SEXPPTR(x);
<LOOP-START>for(int j = 0; j < col; ++j)
pres[j] = ndistinct_string(px + j*l, &l, l, 1, narm);
break;
}
default: error("Not Supported SEXP Type!");
}
matCopyAttr(res, x, Rdrop, /*ng=... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | Sorted
switch(TYPEOF(x)) {
case REALSXP: {
double *px = REAL(x);
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng;
double *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr)
pres[jng + gr] = pgs[gr] == 0 ? 0 : ndistinct_double... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | ase INTSXP: { // Factor matrix not well defined object...
int *px = INTEGER(x);
<LOOP-START>for(int j = 0; j < col; ++j) {
int *pxj = px + j * l, jng = j * ng;
for(int gr = 0; gr < ng; ++gr)
pres[jng + gr] = pgs[gr] == 0 ? 0 : ndistinct_int(pxj + pst[gr]-1, po, ... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | }
break;
}
case LGLSXP: {
int *px = LOGICAL(x);
<LOOP-START>for(int j = 0; j < col; ++j) {
int *pxj = px + j * l, jng = j * ng;
for(int gr = 0; gr < ng; ++gr)
pres[jng + gr] = pgs[gr] == 0 ? 0 : ndistinct_logi(pxj + pst[gr]-1, po,... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | }
break;
}
case STRSXP: {
SEXP *px = SEXPPTR(x);
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng;
SEXP *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr)
pres[jng + gr] = pgs[gr] == 0 ? 0 : ndistinct_string(p... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | ecks...
switch(TYPEOF(x)) {
case REALSXP: {
double *px = REAL(x);
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng;
double *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr)
pres[jng + gr] = pgs[gr] == 0 ? 0 : ndistinct_double... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | ase INTSXP: { // Factor matrix not well defined object...
int *px = INTEGER(x);
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng, *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr)
pres[jng + gr] = pgs[gr] == 0 ? 0 : ndistinct_int(pxj, po + pst[gr]-1, ... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | }
break;
}
case LGLSXP: {
int *px = LOGICAL(x);
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng, *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr)
pres[jng + gr] = pgs[gr] == 0 ? 0 : ndistinct_logi(pxj, po + pst[gr]-1,... |
SebKrantz/collapse/src/fndistinct.c | #pragma omp parallel for num_threads(nthreads) | 100 | }
break;
}
case STRSXP: {
SEXP *px = SEXPPTR(x);
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng;
SEXP *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr)
pres[jng + gr] = pgs[gr] == 0 ? 0 : ndistinct_string(p... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | &l;
switch(tx) {
case REALSXP: {
double *px = REAL(x), *pres = REAL(res);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_REAL : mode_double(px + pst[gr]-1, po, pgs[gr], 1, narm, ret);
break;
}
case INTSXP: {
int *px = INTEGER(x), *... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | (res);
if(isFactor(x) && nlevels(x) < l / ng * 3) {
int M = nlevels(x);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_INTEGER : mode_fct_logi(px + pst[gr]-1, po, pgs[gr], M, 1, narm, ret);
} else {
#pragma omp parallel for num_threads(n... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | A_INTEGER : mode_fct_logi(px + pst[gr]-1, po, pgs[gr], M, 1, narm, ret);
} else {
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_INTEGER : mode_int(px + pst[gr]-1, po, pgs[gr], 1, narm, ret);
}
break;
}
case LGLSXP: {
int *px = L... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | break;
}
case LGLSXP: {
int *px = LOGICAL(x), *pres = LOGICAL(res);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_LOGICAL : mode_fct_logi(px + pst[gr]-1, po, pgs[gr], 1, 1, narm, ret);
break;
}
case STRSXP: {
SEXP *px = SE... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | break;
}
case STRSXP: {
SEXP *px = SEXPPTR(x), *pres = SEXPPTR(res);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_STRING : mode_string(px + pst[gr]-1, po, pgs[gr], 1, narm, ret);
break;
}
default: error("Not Supported SEXP Type: '%s... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | r??
switch(tx) {
case REALSXP: {
double *px = REAL(x), *pres = REAL(res);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_REAL : mode_double(px, po + pst[gr]-1, pgs[gr], 0, narm, ret);
break;
}
case INTSXP: {
int *px = INTEGER(x), *... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | (res);
if(isFactor(x) && nlevels(x) < l / ng * 3) {
int M = nlevels(x);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_INTEGER : mode_fct_logi(px, po + pst[gr]-1, pgs[gr], M, 0, narm, ret);
} else {
#pragma omp parallel for num_threads(n... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | A_INTEGER : mode_fct_logi(px, po + pst[gr]-1, pgs[gr], M, 0, narm, ret);
} else {
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_INTEGER : mode_int(px, po + pst[gr]-1, pgs[gr], 0, narm, ret);
}
break;
}
case LGLSXP: {
int *px = L... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | break;
}
case LGLSXP: {
int *px = LOGICAL(x), *pres = LOGICAL(res);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_LOGICAL : mode_fct_logi(px, po + pst[gr]-1, pgs[gr], 1, 0, narm, ret);
break;
}
case STRSXP: {
SEXP *px = SEXP... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | break;
}
case STRSXP: {
SEXP *px = SEXPPTR(x), *pres = SEXPPTR(res);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_STRING : mode_string(px, po + pst[gr]-1, pgs[gr], 0, narm, ret);
break;
}
default: error("Not Supported SEXP Type: '%s... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | &l;
switch(tx) {
case REALSXP: {
double *px = REAL(x), *pres = REAL(res);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_REAL : w_mode_double(px + pst[gr]-1, pw + pst[gr]-1, po, pgs[gr], 1, narm, ret);
break;
}
case INTSXP: {
int *... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | (res);
if(isFactor(x) && nlevels(x) < l / ng * 3) {
int M = nlevels(x);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_INTEGER : w_mode_fct_logi(px + pst[gr]-1, pw + pst[gr]-1, po, pgs[gr], M, 1, narm, ret);
} else {
#pragma omp parallel... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | _fct_logi(px + pst[gr]-1, pw + pst[gr]-1, po, pgs[gr], M, 1, narm, ret);
} else {
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_INTEGER : w_mode_int(px + pst[gr]-1, pw + pst[gr]-1, po, pgs[gr], 1, narm, ret);
}
break;
}
case LGLSXP: {
... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | break;
}
case LGLSXP: {
int *px = LOGICAL(x), *pres = LOGICAL(res);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_LOGICAL : w_mode_fct_logi(px + pst[gr]-1, pw + pst[gr]-1, po, pgs[gr], 1, 1, narm, ret);
break;
}
case STRSXP: {
... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | break;
}
case STRSXP: {
SEXP *px = SEXPPTR(x), *pres = SEXPPTR(res);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_STRING : w_mode_string(px + pst[gr]-1, pw + pst[gr]-1, po, pgs[gr], 1, narm, ret);
break;
}
default: error("Not Suppor... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | r??
switch(tx) {
case REALSXP: {
double *px = REAL(x), *pres = REAL(res);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_REAL : w_mode_double(px, pw, po + pst[gr]-1, pgs[gr], 0, narm, ret);
break;
}
case INTSXP: {
int *px = INTEGER... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | (res);
if(isFactor(x) && nlevels(x) < l / ng * 3) {
int M = nlevels(x);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_INTEGER : w_mode_fct_logi(px, pw, po + pst[gr]-1, pgs[gr], M, 0, narm, ret);
} else {
#pragma omp parallel for num_thr... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | GER : w_mode_fct_logi(px, pw, po + pst[gr]-1, pgs[gr], M, 0, narm, ret);
} else {
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_INTEGER : w_mode_int(px, pw, po + pst[gr]-1, pgs[gr], 0, narm, ret);
}
break;
}
case LGLSXP: {
int *... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | break;
}
case LGLSXP: {
int *px = LOGICAL(x), *pres = LOGICAL(res);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_LOGICAL : w_mode_fct_logi(px, pw, po + pst[gr]-1, pgs[gr], 1, 0, narm, ret);
break;
}
case STRSXP: {
SEXP *px ... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | break;
}
case STRSXP: {
SEXP *px = SEXPPTR(x), *pres = SEXPPTR(res);
<LOOP-START>for(int gr = 0; gr < ng; ++gr)
pres[gr] = pgs[gr] == 0 ? NA_STRING : w_mode_string(px, pw, po + pst[gr]-1, pgs[gr], 0, narm, ret);
break;
}
default: error("Not Supported SEXP Typ... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | <= 1) {
for(int j = 0; j != l; ++j) pout[j] = mode_impl(px[j], narm, ret);
} else {
<LOOP-START>for(int j = 0; j < l; ++j) pout[j] = mode_impl_plain(px[j], narm, ret);
for(int j = 0; j != l; ++j) copyMostAttrib(px[j], pout[j]); // Not thread safe and thus taken out...
}
} else {
int nrx ... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | for(int j = 0; j != l; ++j) pout[j] = w_mode_impl(px[j], pw, narm, ret);
} else {
<LOOP-START>for(int j = 0; j < l; ++j) pout[j] = w_mode_impl_plain(px[j], pw, narm, ret);
for(int j = 0; j != l; ++j) copyMostAttrib(px[j], pout[j]); // Not thread safe and thus taken out...
}
} else {
... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | REALSXP: {
double *px = REAL(x), *restrict pres = REAL(res);
if(nullw) {
<LOOP-START>for(int j = 0; j < col; ++j) pres[j] = mode_double(px + j*l, &l, l, 1, narm, ret);
} else {
#pragma omp parallel for num_threads(nthreads)
for(int j = 0; j < col; ++j) pres[j] = w_... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | = 0; j < col; ++j) pres[j] = mode_double(px + j*l, &l, l, 1, narm, ret);
} else {
<LOOP-START>for(int j = 0; j < col; ++j) pres[j] = w_mode_double(px + j*l, pw, &l, l, 1, narm, ret);
}
break;
}
case INTSXP: { // Factor matrix not well defined object...
int *px = IN... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | bject...
int *px = INTEGER(x), *restrict pres = INTEGER(res);
if(nullw) {
<LOOP-START>for(int j = 0; j < col; ++j) pres[j] = mode_int(px + j*l, &l, l, 1, narm, ret);
} else {
#pragma omp parallel for num_threads(nthreads)
for(int j = 0; j < col; ++j) pres[j] = w_mod... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | j = 0; j < col; ++j) pres[j] = mode_int(px + j*l, &l, l, 1, narm, ret);
} else {
<LOOP-START>for(int j = 0; j < col; ++j) pres[j] = w_mode_int(px + j*l, pw, &l, l, 1, narm, ret);
}
break;
}
case LGLSXP: {
int *px = LOGICAL(x), *restrict pres = LOGICAL(res);
... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | GLSXP: {
int *px = LOGICAL(x), *restrict pres = LOGICAL(res);
if(nullw) {
<LOOP-START>for(int j = 0; j < col; ++j) pres[j] = mode_fct_logi(px + j*l, &l, l, 1, 1, narm, ret);
} else {
#pragma omp parallel for num_threads(nthreads)
for(int j = 0; j < col; ++j) pres[j]... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | j < col; ++j) pres[j] = mode_fct_logi(px + j*l, &l, l, 1, 1, narm, ret);
} else {
<LOOP-START>for(int j = 0; j < col; ++j) pres[j] = w_mode_fct_logi(px + j*l, pw, &l, l, 1, 1, narm, ret);
}
break;
}
case STRSXP: {
SEXP *px = SEXPPTR(x), *restrict pres = SEXPPTR(res)... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | RSXP: {
SEXP *px = SEXPPTR(x), *restrict pres = SEXPPTR(res);
if(nullw) {
<LOOP-START>for(int j = 0; j < col; ++j) pres[j] = mode_string(px + j*l, &l, l, 1, narm, ret);
} else {
#pragma omp parallel for num_threads(nthreads)
for(int j = 0; j < col; ++j) pres[j] = w_... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | = 0; j < col; ++j) pres[j] = mode_string(px + j*l, &l, l, 1, narm, ret);
} else {
<LOOP-START>for(int j = 0; j < col; ++j) pres[j] = w_mode_string(px + j*l, pw, &l, l, 1, narm, ret);
}
break;
}
default: error("Not Supported SEXP Type: '%s'", type2char(tx));
}
matCo... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | REALSXP: {
double *px = REAL(x), *restrict pres = REAL(res);
if(nullw) {
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng;
double *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_REAL : mode_double(pxj + pst[gr... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | L : mode_double(pxj + pst[gr]-1, po, pgs[gr], 1, narm, ret);
}
} else {
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng;
double *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_REAL : w_mode_double(pxj + pst[... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | bject...
int *px = INTEGER(x), *restrict pres = INTEGER(res);
if(nullw) {
<LOOP-START>for(int j = 0; j < col; ++j) {
int *pxj = px + j * l, jng = j * ng;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_INTEGER : mode_int(pxj + pst[gr]-1, po, pgs[gr], 1... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | EGER : mode_int(pxj + pst[gr]-1, po, pgs[gr], 1, narm, ret);
}
} else {
<LOOP-START>for(int j = 0; j < col; ++j) {
int *pxj = px + j * l, jng = j * ng;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_INTEGER : w_mode_int(pxj + pst[gr]-1, pw + pst[gr]... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | GLSXP: {
int *px = LOGICAL(x), *restrict pres = LOGICAL(res);
if(nullw) {
<LOOP-START>for(int j = 0; j < col; ++j) {
int *pxj = px + j * l, jng = j * ng;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_LOGICAL : mode_fct_logi(pxj + pst[gr]-1, po, pgs[g... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | ode_fct_logi(pxj + pst[gr]-1, po, pgs[gr], 1, 1, narm, ret);
}
} else {
<LOOP-START>for(int j = 0; j < col; ++j) {
int *pxj = px + j * l, jng = j * ng;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_LOGICAL : w_mode_fct_logi(pxj + pst[gr]-1, pw + ps... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | RSXP: {
SEXP *px = SEXPPTR(x), *restrict pres = SEXPPTR(res);
if(nullw) {
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng;
SEXP *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_STRING : mode_string(pxj + pst[gr... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | G : mode_string(pxj + pst[gr]-1, po, pgs[gr], 1, narm, ret);
}
} else {
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng;
SEXP *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_STRING : w_mode_string(pxj + pst[... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | REALSXP: {
double *px = REAL(x), *restrict pres = REAL(res);
if(nullw) {
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng;
double *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_REAL : mode_double(pxj, po + ps... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | L : mode_double(pxj, po + pst[gr]-1, pgs[gr], 0, narm, ret);
}
} else {
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng;
double *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_REAL : w_mode_double(pxj, pw, p... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | NTSXP: {
int *px = INTEGER(x), *restrict pres = INTEGER(res);
if(nullw) {
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng, *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_INTEGER : mode_int(pxj, po + pst[gr]-1, pgs[gr], 0... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | EGER : mode_int(pxj, po + pst[gr]-1, pgs[gr], 0, narm, ret);
}
} else {
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng, *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_INTEGER : w_mode_int(pxj, pw, po + pst[gr]-1, pgs[... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | GLSXP: {
int *px = LOGICAL(x), *restrict pres = LOGICAL(res);
if(nullw) {
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng, *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_LOGICAL : mode_fct_logi(pxj, po + pst[gr]-1, pgs[g... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | ode_fct_logi(pxj, po + pst[gr]-1, pgs[gr], 1, 0, narm, ret);
}
} else {
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng, *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_LOGICAL : w_mode_fct_logi(pxj, pw, po + pst[gr]-1,... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | RSXP: {
SEXP *px = SEXPPTR(x), *restrict pres = SEXPPTR(res);
if(nullw) {
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng;
SEXP *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_STRING : mode_string(pxj, po + ps... |
SebKrantz/collapse/src/fmode.c | #pragma omp parallel for num_threads(nthreads) | 100 | G : mode_string(pxj, po + pst[gr]-1, pgs[gr], 0, narm, ret);
}
} else {
<LOOP-START>for(int j = 0; j < col; ++j) {
int jng = j * ng;
SEXP *pxj = px + j * l;
for(int gr = 0; gr < ng; ++gr) pres[jng + gr] = pgs[gr] == 0 ? NA_STRING : w_mode_string(pxj, pw, p... |
dssgabriel/lattice-boltzmann-method/v5-openmp_parallel/src/lbm_comm.c | #pragma omp parallel for schedule(guided) | 100 | return;
}
MPI_Status status;
switch (comm_type) {
case COMM_SEND:
<LOOP-START>for (size_t x = 1; x < mesh_to_process->width - 2; x++) {
for (size_t k = 0; k < DIRECTIONS; k++) {
mesh->buffer[(x - 1) * DIRECTIONS + k] =
Mesh_ge... |
dssgabriel/lattice-boltzmann-method/v5-openmp_parallel/src/lbm_comm.c | #pragma omp parallel for schedule(guided) | 100 | >width - 2),
MPI_DOUBLE, target_rank, 0, MPI_COMM_WORLD, &status);
<LOOP-START>for (size_t x = 1; x < mesh_to_process->width - 2; x++) {
for (size_t k = 0; k < DIRECTIONS; k++) {
Mesh_get_cell(mesh_to_process, x, y)[k] =
mesh->... |
dssgabriel/lattice-boltzmann-method/v5-openmp_parallel/src/lbm_phys.c | #pragma omp parallel for collapse(2) schedule(static) | 100 | h_out->width);
assert(mesh_in->height == mesh_out->height);
// Loop on all inner cells
<LOOP-START>for (size_t j = 1; j < mesh_in->height - 1; j++) {
for (size_t i = 1; i < mesh_in->width - 1; i++) {
compute_cell_collision(Mesh_get_cell(mesh_out, i, j), Mesh_get_cell(mesh_in, i, j));
... |
dssgabriel/lattice-boltzmann-method/v5-openmp_parallel/src/lbm_phys.c | #pragma omp parallel for collapse(3) schedule(static) | 100 | }
}
}
void propagation(Mesh* mesh_out, Mesh const* mesh_in)
{
// Loop on all cells
<LOOP-START>for (size_t j = 0; j < mesh_out->height; j++) {
for (size_t i = 0; i < mesh_out->width; i++) {
// For all direction
for (size_t k = 0; k < DIRECTIONS; k++) {
//... |
dssgabriel/lattice-boltzmann-method/v6-fine_tuning/src/lbm_comm.c | #pragma omp parallel for schedule(guided) | 100 | eturn;
}
MPI_Status status;
switch (comm_type) {
case COMM_SEND:
//<LOOP-START>for (size_t x = 1; x < mesh_to_process->width - 2; x++) {
for (size_t k = 0; k < DIRECTIONS; k++) {
mesh->buffer[(x - 1) * DIRECTIONS + k] =
Mesh_ge... |
dssgabriel/lattice-boltzmann-method/v6-fine_tuning/src/lbm_comm.c | #pragma omp parallel for schedule(guided) | 100 | idth - 2),
MPI_DOUBLE, target_rank, 0, MPI_COMM_WORLD, &status);
//<LOOP-START>for (size_t x = 1; x < mesh_to_process->width - 2; x++) {
for (size_t k = 0; k < DIRECTIONS; k++) {
Mesh_get_cell(mesh_to_process, x, y)[k] =
mesh->... |
arneish/parallel-PCA-openmp/lab2_omp.c | #pragma omp parallel for num_threads(1) private(i, j) collapse(2) schedule(static) | 100 | l2_diff);
return l2_diff;
}
void transpose(float *M, int m, int n, float *M_T)
{
int i, j;
<LOOP-START>for (i = 0; i < m; i++)
{
for (j = 0; j < n; j++)
{
M_T[j * m + i] = M[i * n + j];
}
}<LOOP-END> <OMP-START>#pragma omp parallel for num_threads(1) private(i, j) co... |
arneish/parallel-PCA-openmp/lab2_omp.c | #pragma omp parallel for private(i, j, k, sum, temp1, temp2) schedule(static) | 100 | t *) malloc(sizeof(float)*n2*m2);
transpose(M_2, m2, n2, M_2_T);
int i, j, k, temp1, temp2;
<LOOP-START>for (i = 0; i < m1; i++)
{
temp1 = i*n1;
for (j = 0; j < n2; j++)
{
sum = 0.0;
temp2 = j*m2;
for (k = 0; k < n1; k++)
{
... |
arneish/parallel-PCA-openmp/lab2_omp.c | #pragma omp parallel for private(i, j) reduction(+: sum_sq) | 100 | + i] - A_current[i * P + i]);
}
if (sum_sq>TOLERANCE)
return norm = sqrtf(sum_sq);
<LOOP-START>for (i=0; i<P; i++)
{
for (j=0; j<P; j++)
{
//sum_sq+=fabs(E_next[i*P+j]-E_current[i*P+j]);
sum_sq+=(E_next[i*P+j]-E_current[i*P+j])*(E_next[i*P+j]-E_current[i*P+j]... |
arneish/parallel-PCA-openmp/lab2_omp.c | #pragma omp parallel for private(i, j) collapse(2) schedule(static) | 100 | float *D_T = (float *)malloc(sizeof(float) * P * N);
transpose(D, N, P, D_T);
int i, j;
<LOOP-START>for (i = 0; i < N; i++)
{
for (j = 0; j < P; j++)
{
D_T[j * N + i] = D[i * P + j];
}
}<LOOP-END> <OMP-START>#pragma omp parallel for private(i, j) collapse(2) sched... |
arneish/parallel-PCA-openmp/lab2_omp.c | #pragma omp parallel for private(i, j, k, sum, temp1, temp2) schedule(static) | 100 | K: %d, retention_: %f\n", *K, retention_);
*D_HAT = (float *)malloc(sizeof(float) * N * (*K));
<LOOP-START>for (i=0; i<N; i++)
{
temp1 = i*P;
for (j=0; j<(*K); j++)
{
sum = 0.0;
for (k=0; k<P; k++)
{
sum += D[temp1+k]*U[k*P+j];
... |
kianenigma/pmms-heat-dissipation/assignment_2/vecsort/vecsort.c | #pragma omp parallel for num_threads(DATA_THREADS) | 100 | ow], length * sizeof(int));
}
/* start sorting one by one */
gettimeofday(&tv1, NULL);
<LOOP-START>for (row = 0; row < rows; row++) {
long length = row_lengths[row];
split_seq(b[row], 0, length, vector[row]);
}<LOOP-END> <OMP-START>#pragma omp parallel for num_threads(DATA_THREADS)<OMP-... |
kianenigma/pmms-heat-dissipation/assignment_2/heat_omp/compute.c | #pragma omp parallel for \ | 100 | tmp; }
/* initialize halo on source */
do_copy(h, w, src);
/* compute */
<LOOP-START>private(i, j)\
schedule(static)\
reduction(max: maxdiff)\
num_threads(p->nthreads)
for (i = 1; i < h - 1; ++i) {
for (j = 1; j < w - 1; ++j)
{
... |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/random.c | #pragma omp parallel for num_threads(t) | 100 | umber of threads: ");
scanf("%d", &t);
double r[n];
double p[n];
double px[n];
<LOOP-START>for( int i = 0 ; i<n ; i++)
{
x[i] = 0;
p[i] = b[i];
r[i] = b[i];
px[i] = 0;
}<LOOP-END> <OMP-START>#pragma omp parallel for num_threads(t)<OMP-END> |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/random.c | #pragma omp parallel for num_threads(t) | 100 | < n ; i++)
{
sum = r[i]*r[i] + sum;
}
double temp[n];
<LOOP-START>for( int i = 0; i<n ; i++ )
{
temp[i] = 0;
}<LOOP-END> <OMP-START>#pragma omp parallel for num_threads(t)<OMP-END> |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/random.c | #pragma omp parallel for num_threads(t) | 100 | nt i = 0; i<n ; i++ )
{
temp[i] = 0;
}
double num = 0;
<LOOP-START>for(int i = 0 ; i < n ; i++)
{
#pragma omp parallel for reduction(+ : temp[i])
for(int j = 0 ; j < n ; j++ )
{
temp[i] = A[i*n+j]*p[j] + temp[i];
... |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/random.c | #pragma omp parallel for reduction(+ : temp[i]) | 100 | #pragma omp parallel for num_threads(t)
for(int i = 0 ; i < n ; i++)
{
<LOOP-START>for(int j = 0 ; j < n ; j++ )
{
temp[i] = A[i*n+j]*p[j] + temp[i];
}<LOOP-END> <OMP-START>#pragma omp parallel for reduction(+ : temp[i])<OMP-END> |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/random.c | #pragma omp parallel for num_threads(t) reduction(+ : num) | 100 | )
{
temp[i] = A[i*n+j]*p[j] + temp[i];
}
}
<LOOP-START>for(int j = 0 ; j < n ; j++)
{
num = num + temp[j]*p[j];
}<LOOP-END> <OMP-START>#pragma omp parallel for num_threads(t) reduction(+ : num)<OMP-END> |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/random.c | #pragma omp parallel for num_threads(t) | 100 | j++)
{
num = num + temp[j]*p[j];
}
alpha = sum / num;
<LOOP-START>for(int i = 0; i < n ; i++ )
{
px[i] = x[i];
x[i] = x[i] + alpha*p[i];
r[i] = r[i] - alpha*temp[i];
}<LOOP-END> <OMP-START>#pragma omp parallel for num_thre... |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/random.c | #pragma omp parallel for num_threads(t) reduction(+ : beta) | 100 | + alpha*p[i];
r[i] = r[i] - alpha*temp[i];
}
double beta = 0;
<LOOP-START>for(int i = 0 ; i < n ; i++)
{
beta = beta + r[i]*r[i];
}<LOOP-END> <OMP-START>#pragma omp parallel for num_threads(t) reduction(+ : beta)<OMP-END> |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/random.c | #pragma omp parallel for num_threads(t) | 100 | i++)
{
beta = beta + r[i]*r[i];
}
beta = beta / sum;
<LOOP-START>for (int i = 0 ; i < n ; i++ )
{
p[i] = r[i] + beta*p[i];
}<LOOP-END> <OMP-START>#pragma omp parallel for num_threads(t)<OMP-END> |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/random.c | #pragma omp parallel for num_threads(p) schedule(static, n) reduction(+:dxi) | 100 | ;
for(k=0; k<maxit; k++)
{
printf("\n%d th iteration => \n", k+1);
<LOOP-START>for(int i=0; i<n; i++)
{
dxi = b[i];
for(int j=0; j<n; j++)
{
if(j!=i)
{
... |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/required.c | #pragma omp parallel for num_threads(t) | 100 | mber of threads: ");
scanf("%d", &t);
double r[n];
double p[n];
double px[n];
<LOOP-START>for( int i = 0 ; i<n ; i++)
{
x[i] = 0;
p[i] = b[i];
r[i] = b[i];
px[i] = 0;
}<LOOP-END> <OMP-START>#pragma omp parallel for num_threads(t)<OMP-END> |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/required.c | #pragma omp parallel for num_threads(t) | 100 | < n ; i++)
{
sum = r[i]*r[i] + sum;
}
double temp[n];
<LOOP-START>for( int i = 0; i<n ; i++ )
{
temp[i] = 0;
}<LOOP-END> <OMP-START>#pragma omp parallel for num_threads(t)<OMP-END> |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/required.c | #pragma omp parallel for num_threads(t) | 100 | nt i = 0; i<n ; i++ )
{
temp[i] = 0;
}
double num = 0;
<LOOP-START>for(int i = 0 ; i < n ; i++)
{
#pragma omp parallel for reduction(+ : temp[i])
for(int j = 0 ; j < n ; j++ )
{
temp[i] = A[i*n+j]*p[j] + temp[i];
... |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/required.c | #pragma omp parallel for reduction(+ : temp[i]) | 100 | #pragma omp parallel for num_threads(t)
for(int i = 0 ; i < n ; i++)
{
<LOOP-START>for(int j = 0 ; j < n ; j++ )
{
temp[i] = A[i*n+j]*p[j] + temp[i];
}<LOOP-END> <OMP-START>#pragma omp parallel for reduction(+ : temp[i])<OMP-END> |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/required.c | #pragma omp parallel for num_threads(t) reduction(+ : num) | 100 | )
{
temp[i] = A[i*n+j]*p[j] + temp[i];
}
}
<LOOP-START>for(int j = 0 ; j < n ; j++)
{
num = num + temp[j]*p[j];
}<LOOP-END> <OMP-START>#pragma omp parallel for num_threads(t) reduction(+ : num)<OMP-END> |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/required.c | #pragma omp parallel for num_threads(t) | 100 | j++)
{
num = num + temp[j]*p[j];
}
alpha = sum / num;
<LOOP-START>for(int i = 0; i < n ; i++ )
{
px[i] = x[i];
x[i] = x[i] + alpha*p[i];
r[i] = r[i] - alpha*temp[i];
}<LOOP-END> <OMP-START>#pragma omp parallel for num_thre... |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/required.c | #pragma omp parallel for num_threads(t) reduction(+ : beta) | 100 | + alpha*p[i];
r[i] = r[i] - alpha*temp[i];
}
double beta = 0;
<LOOP-START>for(int i = 0 ; i < n ; i++)
{
beta = beta + r[i]*r[i];
}<LOOP-END> <OMP-START>#pragma omp parallel for num_threads(t) reduction(+ : beta)<OMP-END> |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/required.c | #pragma omp parallel for num_threads(t) | 100 | i++)
{
beta = beta + r[i]*r[i];
}
beta = beta / sum;
<LOOP-START>for (int i = 0 ; i < n ; i++ )
{
p[i] = r[i] + beta*p[i];
}<LOOP-END> <OMP-START>#pragma omp parallel for num_threads(t)<OMP-END> |
maitreyeepaliwal/Solving-System-of-linear-equations-in-parallel-and-serial/required.c | #pragma omp parallel for num_threads(p) schedule(static, n) reduction(+:dxi) | 100 | ;
for(k=0; k<maxit; k++)
{
printf("\n%d th iteration => \n", k+1);
<LOOP-START>for(int i=0; i<n; i++)
{
dxi = b[i];
for(int j=0; j<n; j++)
{
if(j!=i)
{
... |
Sitaras/Parallel-Systems-Project/HybridMPI/jacobi_hybrid.c | #pragma omp parallel for collapse(2) shared(size,src,dst,xStart,yStart,deltaX,deltaY,alpha,omega,cx,cy,cc),private(y,x,updateVal),reduction(+:temp_error) schedule(static) | 100 | double fx2,fy2;
double temp_error = 0.0;
double updateVal;
double f;
<LOOP-START>for (x = 2; x < (size-2); x++){
for (y = 2; y < (size-2); y++){
updateVal = ((SRC(x-1,y) + SRC(x+1,y))*cx + (SRC(x,y-1) + SRC(x,y+1))*cy + SRC(x,y)*cc - F(x,y))/cc;
DST(x... |
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