LAPACK  3.10.0
LAPACK: Linear Algebra PACKage

◆ LAPACKE_zggsvd3_work()

lapack_int LAPACKE_zggsvd3_work ( int  matrix_layout,
char  jobu,
char  jobv,
char  jobq,
lapack_int  m,
lapack_int  n,
lapack_int  p,
lapack_int k,
lapack_int l,
lapack_complex_double a,
lapack_int  lda,
lapack_complex_double b,
lapack_int  ldb,
double *  alpha,
double *  beta,
lapack_complex_double u,
lapack_int  ldu,
lapack_complex_double v,
lapack_int  ldv,
lapack_complex_double q,
lapack_int  ldq,
lapack_complex_double work,
lapack_int  lwork,
double *  rwork,
lapack_int iwork 
)

Definition at line 35 of file lapacke_zggsvd3_work.c.

46 {
47  lapack_int info = 0;
48  if( matrix_layout == LAPACK_COL_MAJOR ) {
49  /* Call LAPACK function and adjust info */
50  LAPACK_zggsvd3( &jobu, &jobv, &jobq, &m, &n, &p, k, l, a, &lda, b, &ldb,
51  alpha, beta, u, &ldu, v, &ldv, q, &ldq, work, &lwork,
52  rwork, iwork, &info );
53  if( info < 0 ) {
54  info = info - 1;
55  }
56  } else if( matrix_layout == LAPACK_ROW_MAJOR ) {
57  lapack_int lda_t = MAX(1,m);
58  lapack_int ldb_t = MAX(1,p);
59  lapack_int ldq_t = MAX(1,n);
60  lapack_int ldu_t = MAX(1,m);
61  lapack_int ldv_t = MAX(1,p);
62  lapack_complex_double* a_t = NULL;
63  lapack_complex_double* b_t = NULL;
64  lapack_complex_double* u_t = NULL;
65  lapack_complex_double* v_t = NULL;
66  lapack_complex_double* q_t = NULL;
67  /* Check leading dimension(s) */
68  if( lda < n ) {
69  info = -11;
70  LAPACKE_xerbla( "LAPACKE_zggsvd3_work", info );
71  return info;
72  }
73  if( ldb < n ) {
74  info = -13;
75  LAPACKE_xerbla( "LAPACKE_zggsvd3_work", info );
76  return info;
77  }
78  if( ldq < n ) {
79  info = -21;
80  LAPACKE_xerbla( "LAPACKE_zggsvd3_work", info );
81  return info;
82  }
83  if( ldu < m ) {
84  info = -17;
85  LAPACKE_xerbla( "LAPACKE_zggsvd3_work", info );
86  return info;
87  }
88  if( ldv < p ) {
89  info = -19;
90  LAPACKE_xerbla( "LAPACKE_zggsvd3_work", info );
91  return info;
92  }
93  /* Query optimal working array(s) size if requested */
94  if( lwork == -1 ) {
95  LAPACK_zggsvd3( &jobu, &jobv, &jobq, &m, &n, &p, k, l, a, &lda_t,
96  b, &ldb_t, alpha, beta, u, &ldu_t, v, &ldv_t,
97  q, &ldq_t, work, &lwork, rwork, iwork, &info );
98  return (info < 0) ? (info - 1) : info;
99  }
100  /* Allocate memory for temporary array(s) */
101  a_t = (lapack_complex_double*)
102  LAPACKE_malloc( sizeof(lapack_complex_double) * lda_t * MAX(1,n) );
103  if( a_t == NULL ) {
105  goto exit_level_0;
106  }
107  b_t = (lapack_complex_double*)
108  LAPACKE_malloc( sizeof(lapack_complex_double) * ldb_t * MAX(1,n) );
109  if( b_t == NULL ) {
111  goto exit_level_1;
112  }
113  if( LAPACKE_lsame( jobu, 'u' ) ) {
114  u_t = (lapack_complex_double*)
116  ldu_t * MAX(1,m) );
117  if( u_t == NULL ) {
119  goto exit_level_2;
120  }
121  }
122  if( LAPACKE_lsame( jobv, 'v' ) ) {
123  v_t = (lapack_complex_double*)
125  ldv_t * MAX(1,p) );
126  if( v_t == NULL ) {
128  goto exit_level_3;
129  }
130  }
131  if( LAPACKE_lsame( jobq, 'q' ) ) {
132  q_t = (lapack_complex_double*)
134  ldq_t * MAX(1,n) );
135  if( q_t == NULL ) {
137  goto exit_level_4;
138  }
139  }
140  /* Transpose input matrices */
141  LAPACKE_zge_trans( matrix_layout, m, n, a, lda, a_t, lda_t );
142  LAPACKE_zge_trans( matrix_layout, p, n, b, ldb, b_t, ldb_t );
143  /* Call LAPACK function and adjust info */
144  LAPACK_zggsvd3( &jobu, &jobv, &jobq, &m, &n, &p, k, l, a_t, &lda_t, b_t,
145  &ldb_t, alpha, beta, u_t, &ldu_t, v_t, &ldv_t, q_t,
146  &ldq_t, work, &lwork, rwork, iwork, &info );
147  if( info < 0 ) {
148  info = info - 1;
149  }
150  /* Transpose output matrices */
151  LAPACKE_zge_trans( LAPACK_COL_MAJOR, m, n, a_t, lda_t, a, lda );
152  LAPACKE_zge_trans( LAPACK_COL_MAJOR, p, n, b_t, ldb_t, b, ldb );
153  if( LAPACKE_lsame( jobu, 'u' ) ) {
154  LAPACKE_zge_trans( LAPACK_COL_MAJOR, m, m, u_t, ldu_t, u, ldu );
155  }
156  if( LAPACKE_lsame( jobv, 'v' ) ) {
157  LAPACKE_zge_trans( LAPACK_COL_MAJOR, p, p, v_t, ldv_t, v, ldv );
158  }
159  if( LAPACKE_lsame( jobq, 'q' ) ) {
160  LAPACKE_zge_trans( LAPACK_COL_MAJOR, n, n, q_t, ldq_t, q, ldq );
161  }
162  /* Release memory and exit */
163  if( LAPACKE_lsame( jobq, 'q' ) ) {
164  LAPACKE_free( q_t );
165  }
166 exit_level_4:
167  if( LAPACKE_lsame( jobv, 'v' ) ) {
168  LAPACKE_free( v_t );
169  }
170 exit_level_3:
171  if( LAPACKE_lsame( jobu, 'u' ) ) {
172  LAPACKE_free( u_t );
173  }
174 exit_level_2:
175  LAPACKE_free( b_t );
176 exit_level_1:
177  LAPACKE_free( a_t );
178 exit_level_0:
179  if( info == LAPACK_TRANSPOSE_MEMORY_ERROR ) {
180  LAPACKE_xerbla( "LAPACKE_zggsvd3_work", info );
181  }
182  } else {
183  info = -1;
184  LAPACKE_xerbla( "LAPACKE_zggsvd3_work", info );
185  }
186  return info;
187 }
#define LAPACK_zggsvd3(...)
Definition: lapack.h:5453
#define lapack_int
Definition: lapack.h:83
#define lapack_complex_double
Definition: lapack.h:63
#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)
Definition: lapacke_lsame.c:35
void LAPACKE_xerbla(const char *name, lapack_int info)
void LAPACKE_zge_trans(int matrix_layout, lapack_int m, lapack_int n, const lapack_complex_double *in, lapack_int ldin, lapack_complex_double *out, lapack_int ldout)
#define MAX(x, y)
Definition: lapacke_utils.h:46
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