OpenRadioss 2025.1.11
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lapacke_clarfb_work.c File Reference
#include "lapacke_utils.h"

Go to the source code of this file.

Functions

lapack_int LAPACKE_clarfb_work (int matrix_layout, char side, char trans, char direct, char storev, lapack_int m, lapack_int n, lapack_int k, const lapack_complex_float *v, lapack_int ldv, const lapack_complex_float *t, lapack_int ldt, lapack_complex_float *c, lapack_int ldc, lapack_complex_float *work, lapack_int ldwork)

Function Documentation

◆ LAPACKE_clarfb_work()

lapack_int LAPACKE_clarfb_work ( int matrix_layout,
char side,
char trans,
char direct,
char storev,
lapack_int m,
lapack_int n,
lapack_int k,
const lapack_complex_float * v,
lapack_int ldv,
const lapack_complex_float * t,
lapack_int ldt,
lapack_complex_float * c,
lapack_int ldc,
lapack_complex_float * work,
lapack_int ldwork )

Definition at line 35 of file lapacke_clarfb_work.c.

42{
43 lapack_int info = 0;
44 lapack_int nrows_v, ncols_v;
45 lapack_int ldc_t, ldt_t, ldv_t;
46 lapack_complex_float *v_t = NULL, *t_t = NULL, *c_t = NULL;
47 if( matrix_layout == LAPACK_COL_MAJOR ) {
48 /* Call LAPACK function and adjust info */
49 LAPACK_clarfb( &side, &trans, &direct, &storev, &m, &n, &k, v, &ldv, t,
50 &ldt, c, &ldc, work, &ldwork );
51 if( info < 0 ) {
52 info = info - 1;
53 }
54 } else if( matrix_layout == LAPACK_ROW_MAJOR ) {
55 nrows_v = ( LAPACKE_lsame( storev, 'c' ) &&
56 LAPACKE_lsame( side, 'l' ) ) ? m :
57 ( ( LAPACKE_lsame( storev, 'c' ) &&
58 LAPACKE_lsame( side, 'r' ) ) ? n :
59 ( LAPACKE_lsame( storev, 'r' ) ? k : 1) );
60 ncols_v = LAPACKE_lsame( storev, 'c' ) ? k :
61 ( ( LAPACKE_lsame( storev, 'r' ) &&
62 LAPACKE_lsame( side, 'l' ) ) ? m :
63 ( ( LAPACKE_lsame( storev, 'r' ) &&
64 LAPACKE_lsame( side, 'r' ) ) ? n : 1) );
65 ldc_t = MAX(1,m);
66 ldt_t = MAX(1,k);
67 ldv_t = MAX(1,nrows_v);
68 /* Check leading dimension(s) */
69 if( ldc < n ) {
70 info = -14;
71 LAPACKE_xerbla( "LAPACKE_clarfb_work", info );
72 return info;
73 }
74 if( ldt < k ) {
75 info = -12;
76 LAPACKE_xerbla( "LAPACKE_clarfb_work", info );
77 return info;
78 }
79 if( ldv < ncols_v ) {
80 info = -10;
81 LAPACKE_xerbla( "LAPACKE_clarfb_work", info );
82 return info;
83 }
84 /* Allocate memory for temporary array(s) */
87 ldv_t * MAX(1,ncols_v) );
88 if( v_t == NULL ) {
90 goto exit_level_0;
91 }
93 LAPACKE_malloc( sizeof(lapack_complex_float) * ldt_t * MAX(1,k) );
94 if( t_t == NULL ) {
96 goto exit_level_1;
97 }
99 LAPACKE_malloc( sizeof(lapack_complex_float) * ldc_t * MAX(1,n) );
100 if( c_t == NULL ) {
102 goto exit_level_2;
103 }
104 /* Transpose input matrices */
105 if( LAPACKE_lsame( storev, 'c' ) && LAPACKE_lsame( direct, 'f' ) ) {
106 LAPACKE_ctr_trans( matrix_layout, 'l', 'u', k, v, ldv, v_t, ldv_t );
107 LAPACKE_cge_trans( matrix_layout, nrows_v-k, ncols_v, &v[k*ldv], ldv,
108 &v_t[k], ldv_t );
109 } else if( LAPACKE_lsame( storev, 'c' ) &&
110 LAPACKE_lsame( direct, 'b' ) ) {
111 if( k > nrows_v ) {
112 LAPACKE_xerbla( "LAPACKE_clarfb_work", -8 );
113 return -8;
114 }
115 LAPACKE_ctr_trans( matrix_layout, 'u', 'u', k, &v[(nrows_v-k)*ldv],
116 ldv, &v_t[nrows_v-k], ldv_t );
117 LAPACKE_cge_trans( matrix_layout, nrows_v-k, ncols_v, v, ldv, v_t,
118 ldv_t );
119 } else if( LAPACKE_lsame( storev, 'r' ) &&
120 LAPACKE_lsame( direct, 'f' ) ) {
121 LAPACKE_ctr_trans( matrix_layout, 'u', 'u', k, v, ldv, v_t, ldv_t );
122 LAPACKE_cge_trans( matrix_layout, nrows_v, ncols_v-k, &v[k], ldv,
123 &v_t[k*ldv_t], ldv_t );
124 } else if( LAPACKE_lsame( storev, 'r' ) &&
125 LAPACKE_lsame( direct, 'b' ) ) {
126 if( k > ncols_v ) {
127 LAPACKE_xerbla( "LAPACKE_clarfb_work", -8 );
128 return -8;
129 }
130 LAPACKE_ctr_trans( matrix_layout, 'l', 'u', k, &v[ncols_v-k], ldv,
131 &v_t[(ncols_v-k)*ldv_t], ldv_t );
132 LAPACKE_cge_trans( matrix_layout, nrows_v, ncols_v-k, v, ldv, v_t,
133 ldv_t );
134 }
135 LAPACKE_cge_trans( matrix_layout, k, k, t, ldt, t_t, ldt_t );
136 LAPACKE_cge_trans( matrix_layout, m, n, c, ldc, c_t, ldc_t );
137 /* Call LAPACK function and adjust info */
138 LAPACK_clarfb( &side, &trans, &direct, &storev, &m, &n, &k, v_t, &ldv_t,
139 t_t, &ldt_t, c_t, &ldc_t, work, &ldwork );
140 info = 0; /* LAPACK call is ok! */
141 /* Transpose output matrices */
142 LAPACKE_cge_trans( LAPACK_COL_MAJOR, m, n, c_t, ldc_t, c, ldc );
143 /* Release memory and exit */
144 LAPACKE_free( c_t );
145exit_level_2:
146 LAPACKE_free( t_t );
147exit_level_1:
148 LAPACKE_free( v_t );
149exit_level_0:
150 if( info == LAPACK_TRANSPOSE_MEMORY_ERROR ) {
151 LAPACKE_xerbla( "LAPACKE_clarfb_work", info );
152 }
153 } else {
154 info = -1;
155 LAPACKE_xerbla( "LAPACKE_clarfb_work", info );
156 }
157 return info;
158}
#define lapack_int
Definition lapack.h:83
#define LAPACK_clarfb(...)
Definition lapack.h:10449
#define lapack_complex_float
Definition lapack.h:45
#define LAPACK_COL_MAJOR
Definition lapacke.h:53
#define LAPACKE_free(p)
Definition lapacke.h:46
#define LAPACK_ROW_MAJOR
Definition lapacke.h:52
#define LAPACKE_malloc(size)
Definition lapacke.h:43
#define LAPACK_TRANSPOSE_MEMORY_ERROR
Definition lapacke.h:56
lapack_logical LAPACKE_lsame(char ca, char cb)
void LAPACKE_xerbla(const char *name, lapack_int info)
#define MAX(x, y)
void LAPACKE_ctr_trans(int matrix_layout, char uplo, char diag, lapack_int n, const lapack_complex_float *in, lapack_int ldin, lapack_complex_float *out, lapack_int ldout)
void LAPACKE_cge_trans(int matrix_layout, lapack_int m, lapack_int n, const lapack_complex_float *in, lapack_int ldin, lapack_complex_float *out, lapack_int ldout)
n