sger.c
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00001 /* sger.f -- translated by f2c (version 20061008).
00002    You must link the resulting object file with libf2c:
00003         on Microsoft Windows system, link with libf2c.lib;
00004         on Linux or Unix systems, link with .../path/to/libf2c.a -lm
00005         or, if you install libf2c.a in a standard place, with -lf2c -lm
00006         -- in that order, at the end of the command line, as in
00007                 cc *.o -lf2c -lm
00008         Source for libf2c is in /netlib/f2c/libf2c.zip, e.g.,
00009 
00010                 http://www.netlib.org/f2c/libf2c.zip
00011 */
00012 
00013 #include "f2c.h"
00014 #include "blaswrap.h"
00015 
00016 /* Subroutine */ int sger_(integer *m, integer *n, real *alpha, real *x, 
00017         integer *incx, real *y, integer *incy, real *a, integer *lda)
00018 {
00019     /* System generated locals */
00020     integer a_dim1, a_offset, i__1, i__2;
00021 
00022     /* Local variables */
00023     integer i__, j, ix, jy, kx, info;
00024     real temp;
00025     extern /* Subroutine */ int xerbla_(char *, integer *);
00026 
00027 /*     .. Scalar Arguments .. */
00028 /*     .. */
00029 /*     .. Array Arguments .. */
00030 /*     .. */
00031 
00032 /*  Purpose */
00033 /*  ======= */
00034 
00035 /*  SGER   performs the rank 1 operation */
00036 
00037 /*     A := alpha*x*y' + A, */
00038 
00039 /*  where alpha is a scalar, x is an m element vector, y is an n element */
00040 /*  vector and A is an m by n matrix. */
00041 
00042 /*  Arguments */
00043 /*  ========== */
00044 
00045 /*  M      - INTEGER. */
00046 /*           On entry, M specifies the number of rows of the matrix A. */
00047 /*           M must be at least zero. */
00048 /*           Unchanged on exit. */
00049 
00050 /*  N      - INTEGER. */
00051 /*           On entry, N specifies the number of columns of the matrix A. */
00052 /*           N must be at least zero. */
00053 /*           Unchanged on exit. */
00054 
00055 /*  ALPHA  - REAL            . */
00056 /*           On entry, ALPHA specifies the scalar alpha. */
00057 /*           Unchanged on exit. */
00058 
00059 /*  X      - REAL             array of dimension at least */
00060 /*           ( 1 + ( m - 1 )*abs( INCX ) ). */
00061 /*           Before entry, the incremented array X must contain the m */
00062 /*           element vector x. */
00063 /*           Unchanged on exit. */
00064 
00065 /*  INCX   - INTEGER. */
00066 /*           On entry, INCX specifies the increment for the elements of */
00067 /*           X. INCX must not be zero. */
00068 /*           Unchanged on exit. */
00069 
00070 /*  Y      - REAL             array of dimension at least */
00071 /*           ( 1 + ( n - 1 )*abs( INCY ) ). */
00072 /*           Before entry, the incremented array Y must contain the n */
00073 /*           element vector y. */
00074 /*           Unchanged on exit. */
00075 
00076 /*  INCY   - INTEGER. */
00077 /*           On entry, INCY specifies the increment for the elements of */
00078 /*           Y. INCY must not be zero. */
00079 /*           Unchanged on exit. */
00080 
00081 /*  A      - REAL             array of DIMENSION ( LDA, n ). */
00082 /*           Before entry, the leading m by n part of the array A must */
00083 /*           contain the matrix of coefficients. On exit, A is */
00084 /*           overwritten by the updated matrix. */
00085 
00086 /*  LDA    - INTEGER. */
00087 /*           On entry, LDA specifies the first dimension of A as declared */
00088 /*           in the calling (sub) program. LDA must be at least */
00089 /*           max( 1, m ). */
00090 /*           Unchanged on exit. */
00091 
00092 
00093 /*  Level 2 Blas routine. */
00094 
00095 /*  -- Written on 22-October-1986. */
00096 /*     Jack Dongarra, Argonne National Lab. */
00097 /*     Jeremy Du Croz, Nag Central Office. */
00098 /*     Sven Hammarling, Nag Central Office. */
00099 /*     Richard Hanson, Sandia National Labs. */
00100 
00101 
00102 /*     .. Parameters .. */
00103 /*     .. */
00104 /*     .. Local Scalars .. */
00105 /*     .. */
00106 /*     .. External Subroutines .. */
00107 /*     .. */
00108 /*     .. Intrinsic Functions .. */
00109 /*     .. */
00110 
00111 /*     Test the input parameters. */
00112 
00113     /* Parameter adjustments */
00114     --x;
00115     --y;
00116     a_dim1 = *lda;
00117     a_offset = 1 + a_dim1;
00118     a -= a_offset;
00119 
00120     /* Function Body */
00121     info = 0;
00122     if (*m < 0) {
00123         info = 1;
00124     } else if (*n < 0) {
00125         info = 2;
00126     } else if (*incx == 0) {
00127         info = 5;
00128     } else if (*incy == 0) {
00129         info = 7;
00130     } else if (*lda < max(1,*m)) {
00131         info = 9;
00132     }
00133     if (info != 0) {
00134         xerbla_("SGER  ", &info);
00135         return 0;
00136     }
00137 
00138 /*     Quick return if possible. */
00139 
00140     if (*m == 0 || *n == 0 || *alpha == 0.f) {
00141         return 0;
00142     }
00143 
00144 /*     Start the operations. In this version the elements of A are */
00145 /*     accessed sequentially with one pass through A. */
00146 
00147     if (*incy > 0) {
00148         jy = 1;
00149     } else {
00150         jy = 1 - (*n - 1) * *incy;
00151     }
00152     if (*incx == 1) {
00153         i__1 = *n;
00154         for (j = 1; j <= i__1; ++j) {
00155             if (y[jy] != 0.f) {
00156                 temp = *alpha * y[jy];
00157                 i__2 = *m;
00158                 for (i__ = 1; i__ <= i__2; ++i__) {
00159                     a[i__ + j * a_dim1] += x[i__] * temp;
00160 /* L10: */
00161                 }
00162             }
00163             jy += *incy;
00164 /* L20: */
00165         }
00166     } else {
00167         if (*incx > 0) {
00168             kx = 1;
00169         } else {
00170             kx = 1 - (*m - 1) * *incx;
00171         }
00172         i__1 = *n;
00173         for (j = 1; j <= i__1; ++j) {
00174             if (y[jy] != 0.f) {
00175                 temp = *alpha * y[jy];
00176                 ix = kx;
00177                 i__2 = *m;
00178                 for (i__ = 1; i__ <= i__2; ++i__) {
00179                     a[i__ + j * a_dim1] += x[ix] * temp;
00180                     ix += *incx;
00181 /* L30: */
00182                 }
00183             }
00184             jy += *incy;
00185 /* L40: */
00186         }
00187     }
00188 
00189     return 0;
00190 
00191 /*     End of SGER  . */
00192 
00193 } /* sger_ */


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autogenerated on Sat Jun 8 2019 18:56:06