slaqge.c
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00001 /* slaqge.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 slaqge_(integer *m, integer *n, real *a, integer *lda, 
00017         real *r__, real *c__, real *rowcnd, real *colcnd, real *amax, char *
00018         equed)
00019 {
00020     /* System generated locals */
00021     integer a_dim1, a_offset, i__1, i__2;
00022 
00023     /* Local variables */
00024     integer i__, j;
00025     real cj, large, small;
00026     extern doublereal slamch_(char *);
00027 
00028 
00029 /*  -- LAPACK auxiliary routine (version 3.2) -- */
00030 /*     Univ. of Tennessee, Univ. of California Berkeley and NAG Ltd.. */
00031 /*     November 2006 */
00032 
00033 /*     .. Scalar Arguments .. */
00034 /*     .. */
00035 /*     .. Array Arguments .. */
00036 /*     .. */
00037 
00038 /*  Purpose */
00039 /*  ======= */
00040 
00041 /*  SLAQGE equilibrates a general M by N matrix A using the row and */
00042 /*  column scaling factors in the vectors R and C. */
00043 
00044 /*  Arguments */
00045 /*  ========= */
00046 
00047 /*  M       (input) INTEGER */
00048 /*          The number of rows of the matrix A.  M >= 0. */
00049 
00050 /*  N       (input) INTEGER */
00051 /*          The number of columns of the matrix A.  N >= 0. */
00052 
00053 /*  A       (input/output) REAL array, dimension (LDA,N) */
00054 /*          On entry, the M by N matrix A. */
00055 /*          On exit, the equilibrated matrix.  See EQUED for the form of */
00056 /*          the equilibrated matrix. */
00057 
00058 /*  LDA     (input) INTEGER */
00059 /*          The leading dimension of the array A.  LDA >= max(M,1). */
00060 
00061 /*  R       (input) REAL array, dimension (M) */
00062 /*          The row scale factors for A. */
00063 
00064 /*  C       (input) REAL array, dimension (N) */
00065 /*          The column scale factors for A. */
00066 
00067 /*  ROWCND  (input) REAL */
00068 /*          Ratio of the smallest R(i) to the largest R(i). */
00069 
00070 /*  COLCND  (input) REAL */
00071 /*          Ratio of the smallest C(i) to the largest C(i). */
00072 
00073 /*  AMAX    (input) REAL */
00074 /*          Absolute value of largest matrix entry. */
00075 
00076 /*  EQUED   (output) CHARACTER*1 */
00077 /*          Specifies the form of equilibration that was done. */
00078 /*          = 'N':  No equilibration */
00079 /*          = 'R':  Row equilibration, i.e., A has been premultiplied by */
00080 /*                  diag(R). */
00081 /*          = 'C':  Column equilibration, i.e., A has been postmultiplied */
00082 /*                  by diag(C). */
00083 /*          = 'B':  Both row and column equilibration, i.e., A has been */
00084 /*                  replaced by diag(R) * A * diag(C). */
00085 
00086 /*  Internal Parameters */
00087 /*  =================== */
00088 
00089 /*  THRESH is a threshold value used to decide if row or column scaling */
00090 /*  should be done based on the ratio of the row or column scaling */
00091 /*  factors.  If ROWCND < THRESH, row scaling is done, and if */
00092 /*  COLCND < THRESH, column scaling is done. */
00093 
00094 /*  LARGE and SMALL are threshold values used to decide if row scaling */
00095 /*  should be done based on the absolute size of the largest matrix */
00096 /*  element.  If AMAX > LARGE or AMAX < SMALL, row scaling is done. */
00097 
00098 /*  ===================================================================== */
00099 
00100 /*     .. Parameters .. */
00101 /*     .. */
00102 /*     .. Local Scalars .. */
00103 /*     .. */
00104 /*     .. External Functions .. */
00105 /*     .. */
00106 /*     .. Executable Statements .. */
00107 
00108 /*     Quick return if possible */
00109 
00110     /* Parameter adjustments */
00111     a_dim1 = *lda;
00112     a_offset = 1 + a_dim1;
00113     a -= a_offset;
00114     --r__;
00115     --c__;
00116 
00117     /* Function Body */
00118     if (*m <= 0 || *n <= 0) {
00119         *(unsigned char *)equed = 'N';
00120         return 0;
00121     }
00122 
00123 /*     Initialize LARGE and SMALL. */
00124 
00125     small = slamch_("Safe minimum") / slamch_("Precision");
00126     large = 1.f / small;
00127 
00128     if (*rowcnd >= .1f && *amax >= small && *amax <= large) {
00129 
00130 /*        No row scaling */
00131 
00132         if (*colcnd >= .1f) {
00133 
00134 /*           No column scaling */
00135 
00136             *(unsigned char *)equed = 'N';
00137         } else {
00138 
00139 /*           Column scaling */
00140 
00141             i__1 = *n;
00142             for (j = 1; j <= i__1; ++j) {
00143                 cj = c__[j];
00144                 i__2 = *m;
00145                 for (i__ = 1; i__ <= i__2; ++i__) {
00146                     a[i__ + j * a_dim1] = cj * a[i__ + j * a_dim1];
00147 /* L10: */
00148                 }
00149 /* L20: */
00150             }
00151             *(unsigned char *)equed = 'C';
00152         }
00153     } else if (*colcnd >= .1f) {
00154 
00155 /*        Row scaling, no column scaling */
00156 
00157         i__1 = *n;
00158         for (j = 1; j <= i__1; ++j) {
00159             i__2 = *m;
00160             for (i__ = 1; i__ <= i__2; ++i__) {
00161                 a[i__ + j * a_dim1] = r__[i__] * a[i__ + j * a_dim1];
00162 /* L30: */
00163             }
00164 /* L40: */
00165         }
00166         *(unsigned char *)equed = 'R';
00167     } else {
00168 
00169 /*        Row and column scaling */
00170 
00171         i__1 = *n;
00172         for (j = 1; j <= i__1; ++j) {
00173             cj = c__[j];
00174             i__2 = *m;
00175             for (i__ = 1; i__ <= i__2; ++i__) {
00176                 a[i__ + j * a_dim1] = cj * r__[i__] * a[i__ + j * a_dim1];
00177 /* L50: */
00178             }
00179 /* L60: */
00180         }
00181         *(unsigned char *)equed = 'B';
00182     }
00183 
00184     return 0;
00185 
00186 /*     End of SLAQGE */
00187 
00188 } /* slaqge_ */


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autogenerated on Sat Jun 8 2019 18:56:11