1324 lines
		
	
	
		
			40 KiB
		
	
	
	
		
			C
		
	
	
	
			
		
		
	
	
			1324 lines
		
	
	
		
			40 KiB
		
	
	
	
		
			C
		
	
	
	
#include <math.h>
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#include <stdlib.h>
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#include <string.h>
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#include <stdio.h>
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#include <complex.h>
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#ifdef complex
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#undef complex
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#endif
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#ifdef I
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#undef I
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#endif
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#if defined(_WIN64)
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typedef long long BLASLONG;
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typedef unsigned long long BLASULONG;
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#else
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typedef long BLASLONG;
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typedef unsigned long BLASULONG;
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#endif
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#ifdef LAPACK_ILP64
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typedef BLASLONG blasint;
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#if defined(_WIN64)
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#define blasabs(x) llabs(x)
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#else
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#define blasabs(x) labs(x)
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#endif
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#else
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typedef int blasint;
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#define blasabs(x) abs(x)
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#endif
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typedef blasint integer;
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typedef unsigned int uinteger;
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typedef char *address;
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typedef short int shortint;
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typedef float real;
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typedef double doublereal;
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typedef struct { real r, i; } complex;
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typedef struct { doublereal r, i; } doublecomplex;
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#ifdef _MSC_VER
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static inline _Fcomplex Cf(complex *z) {_Fcomplex zz={z->r , z->i}; return zz;}
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static inline _Dcomplex Cd(doublecomplex *z) {_Dcomplex zz={z->r , z->i};return zz;}
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static inline _Fcomplex * _pCf(complex *z) {return (_Fcomplex*)z;}
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static inline _Dcomplex * _pCd(doublecomplex *z) {return (_Dcomplex*)z;}
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#else
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static inline _Complex float Cf(complex *z) {return z->r + z->i*_Complex_I;}
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static inline _Complex double Cd(doublecomplex *z) {return z->r + z->i*_Complex_I;}
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static inline _Complex float * _pCf(complex *z) {return (_Complex float*)z;}
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static inline _Complex double * _pCd(doublecomplex *z) {return (_Complex double*)z;}
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#endif
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#define pCf(z) (*_pCf(z))
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#define pCd(z) (*_pCd(z))
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typedef blasint logical;
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typedef char logical1;
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typedef char integer1;
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#define TRUE_ (1)
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#define FALSE_ (0)
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/* Extern is for use with -E */
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#ifndef Extern
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#define Extern extern
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#endif
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/* I/O stuff */
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typedef int flag;
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typedef int ftnlen;
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typedef int ftnint;
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/*external read, write*/
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typedef struct
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{	flag cierr;
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	ftnint ciunit;
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	flag ciend;
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	char *cifmt;
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	ftnint cirec;
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} cilist;
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/*internal read, write*/
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typedef struct
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{	flag icierr;
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	char *iciunit;
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	flag iciend;
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	char *icifmt;
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	ftnint icirlen;
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	ftnint icirnum;
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} icilist;
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/*open*/
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typedef struct
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{	flag oerr;
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	ftnint ounit;
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	char *ofnm;
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	ftnlen ofnmlen;
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	char *osta;
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	char *oacc;
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	char *ofm;
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	ftnint orl;
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	char *oblnk;
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} olist;
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/*close*/
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typedef struct
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{	flag cerr;
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	ftnint cunit;
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	char *csta;
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} cllist;
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 | 
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/*rewind, backspace, endfile*/
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typedef struct
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{	flag aerr;
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	ftnint aunit;
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} alist;
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/* inquire */
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typedef struct
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{	flag inerr;
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	ftnint inunit;
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	char *infile;
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	ftnlen infilen;
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	ftnint	*inex;	/*parameters in standard's order*/
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	ftnint	*inopen;
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	ftnint	*innum;
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	ftnint	*innamed;
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	char	*inname;
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	ftnlen	innamlen;
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	char	*inacc;
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	ftnlen	inacclen;
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	char	*inseq;
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	ftnlen	inseqlen;
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	char 	*indir;
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	ftnlen	indirlen;
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	char	*infmt;
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	ftnlen	infmtlen;
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	char	*inform;
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	ftnint	informlen;
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	char	*inunf;
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	ftnlen	inunflen;
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	ftnint	*inrecl;
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	ftnint	*innrec;
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	char	*inblank;
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	ftnlen	inblanklen;
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} inlist;
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#define VOID void
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union Multitype {	/* for multiple entry points */
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	integer1 g;
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	shortint h;
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	integer i;
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	/* longint j; */
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	real r;
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	doublereal d;
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	complex c;
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	doublecomplex z;
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	};
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typedef union Multitype Multitype;
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struct Vardesc {	/* for Namelist */
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	char *name;
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	char *addr;
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	ftnlen *dims;
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	int  type;
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	};
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typedef struct Vardesc Vardesc;
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struct Namelist {
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	char *name;
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	Vardesc **vars;
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	int nvars;
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	};
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typedef struct Namelist Namelist;
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#define abs(x) ((x) >= 0 ? (x) : -(x))
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#define dabs(x) (fabs(x))
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#define f2cmin(a,b) ((a) <= (b) ? (a) : (b))
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#define f2cmax(a,b) ((a) >= (b) ? (a) : (b))
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#define dmin(a,b) (f2cmin(a,b))
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#define dmax(a,b) (f2cmax(a,b))
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#define bit_test(a,b)	((a) >> (b) & 1)
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#define bit_clear(a,b)	((a) & ~((uinteger)1 << (b)))
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#define bit_set(a,b)	((a) |  ((uinteger)1 << (b)))
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#define abort_() { sig_die("Fortran abort routine called", 1); }
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#define c_abs(z) (cabsf(Cf(z)))
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#define c_cos(R,Z) { pCf(R)=ccos(Cf(Z)); }
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#ifdef _MSC_VER
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#define c_div(c, a, b) {Cf(c)._Val[0] = (Cf(a)._Val[0]/Cf(b)._Val[0]); Cf(c)._Val[1]=(Cf(a)._Val[1]/Cf(b)._Val[1]);}
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#define z_div(c, a, b) {Cd(c)._Val[0] = (Cd(a)._Val[0]/Cd(b)._Val[0]); Cd(c)._Val[1]=(Cd(a)._Val[1]/df(b)._Val[1]);}
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#else
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#define c_div(c, a, b) {pCf(c) = Cf(a)/Cf(b);}
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#define z_div(c, a, b) {pCd(c) = Cd(a)/Cd(b);}
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#endif
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#define c_exp(R, Z) {pCf(R) = cexpf(Cf(Z));}
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#define c_log(R, Z) {pCf(R) = clogf(Cf(Z));}
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#define c_sin(R, Z) {pCf(R) = csinf(Cf(Z));}
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//#define c_sqrt(R, Z) {*(R) = csqrtf(Cf(Z));}
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#define c_sqrt(R, Z) {pCf(R) = csqrtf(Cf(Z));}
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#define d_abs(x) (fabs(*(x)))
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#define d_acos(x) (acos(*(x)))
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#define d_asin(x) (asin(*(x)))
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#define d_atan(x) (atan(*(x)))
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#define d_atn2(x, y) (atan2(*(x),*(y)))
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#define d_cnjg(R, Z) { pCd(R) = conj(Cd(Z)); }
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#define r_cnjg(R, Z) { pCf(R) = conjf(Cf(Z)); }
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#define d_cos(x) (cos(*(x)))
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#define d_cosh(x) (cosh(*(x)))
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#define d_dim(__a, __b) ( *(__a) > *(__b) ? *(__a) - *(__b) : 0.0 )
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#define d_exp(x) (exp(*(x)))
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#define d_imag(z) (cimag(Cd(z)))
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#define r_imag(z) (cimagf(Cf(z)))
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#define d_int(__x) (*(__x)>0 ? floor(*(__x)) : -floor(- *(__x)))
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#define r_int(__x) (*(__x)>0 ? floor(*(__x)) : -floor(- *(__x)))
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#define d_lg10(x) ( 0.43429448190325182765 * log(*(x)) )
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#define r_lg10(x) ( 0.43429448190325182765 * log(*(x)) )
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#define d_log(x) (log(*(x)))
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#define d_mod(x, y) (fmod(*(x), *(y)))
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#define u_nint(__x) ((__x)>=0 ? floor((__x) + .5) : -floor(.5 - (__x)))
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#define d_nint(x) u_nint(*(x))
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#define u_sign(__a,__b) ((__b) >= 0 ? ((__a) >= 0 ? (__a) : -(__a)) : -((__a) >= 0 ? (__a) : -(__a)))
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#define d_sign(a,b) u_sign(*(a),*(b))
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#define r_sign(a,b) u_sign(*(a),*(b))
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#define d_sin(x) (sin(*(x)))
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#define d_sinh(x) (sinh(*(x)))
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#define d_sqrt(x) (sqrt(*(x)))
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#define d_tan(x) (tan(*(x)))
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#define d_tanh(x) (tanh(*(x)))
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#define i_abs(x) abs(*(x))
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#define i_dnnt(x) ((integer)u_nint(*(x)))
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#define i_len(s, n) (n)
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#define i_nint(x) ((integer)u_nint(*(x)))
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#define i_sign(a,b) ((integer)u_sign((integer)*(a),(integer)*(b)))
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#define pow_dd(ap, bp) ( pow(*(ap), *(bp)))
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#define pow_si(B,E) spow_ui(*(B),*(E))
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#define pow_ri(B,E) spow_ui(*(B),*(E))
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#define pow_di(B,E) dpow_ui(*(B),*(E))
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#define pow_zi(p, a, b) {pCd(p) = zpow_ui(Cd(a), *(b));}
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#define pow_ci(p, a, b) {pCf(p) = cpow_ui(Cf(a), *(b));}
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#define pow_zz(R,A,B) {pCd(R) = cpow(Cd(A),*(B));}
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#define s_cat(lpp, rpp, rnp, np, llp) { 	ftnlen i, nc, ll; char *f__rp, *lp; 	ll = (llp); lp = (lpp); 	for(i=0; i < (int)*(np); ++i) {         	nc = ll; 	        if((rnp)[i] < nc) nc = (rnp)[i]; 	        ll -= nc;         	f__rp = (rpp)[i]; 	        while(--nc >= 0) *lp++ = *(f__rp)++;         } 	while(--ll >= 0) *lp++ = ' '; }
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#define s_cmp(a,b,c,d) ((integer)strncmp((a),(b),f2cmin((c),(d))))
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#define s_copy(A,B,C,D) { int __i,__m; for (__i=0, __m=f2cmin((C),(D)); __i<__m && (B)[__i] != 0; ++__i) (A)[__i] = (B)[__i]; }
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#define sig_die(s, kill) { exit(1); }
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#define s_stop(s, n) {exit(0);}
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static char junk[] = "\n@(#)LIBF77 VERSION 19990503\n";
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#define z_abs(z) (cabs(Cd(z)))
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#define z_exp(R, Z) {pCd(R) = cexp(Cd(Z));}
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#define z_sqrt(R, Z) {pCd(R) = csqrt(Cd(Z));}
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#define myexit_() break;
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#define mycycle() continue;
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#define myceiling(w) {ceil(w)}
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#define myhuge(w) {HUGE_VAL}
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//#define mymaxloc_(w,s,e,n) {if (sizeof(*(w)) == sizeof(double)) dmaxloc_((w),*(s),*(e),n); else dmaxloc_((w),*(s),*(e),n);}
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#define mymaxloc(w,s,e,n) {dmaxloc_(w,*(s),*(e),n)}
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/* procedure parameter types for -A and -C++ */
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#ifdef __cplusplus
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typedef logical (*L_fp)(...);
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#else
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typedef logical (*L_fp)();
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#endif
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static float spow_ui(float x, integer n) {
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	float pow=1.0; unsigned long int u;
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	if(n != 0) {
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		if(n < 0) n = -n, x = 1/x;
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		for(u = n; ; ) {
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			if(u & 01) pow *= x;
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			if(u >>= 1) x *= x;
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			else break;
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		}
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	}
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	return pow;
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}
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static double dpow_ui(double x, integer n) {
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	double pow=1.0; unsigned long int u;
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	if(n != 0) {
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		if(n < 0) n = -n, x = 1/x;
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		for(u = n; ; ) {
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			if(u & 01) pow *= x;
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			if(u >>= 1) x *= x;
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			else break;
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		}
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	}
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	return pow;
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}
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#ifdef _MSC_VER
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static _Fcomplex cpow_ui(complex x, integer n) {
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	complex pow={1.0,0.0}; unsigned long int u;
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		if(n != 0) {
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		if(n < 0) n = -n, x.r = 1/x.r, x.i=1/x.i;
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		for(u = n; ; ) {
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			if(u & 01) pow.r *= x.r, pow.i *= x.i;
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			if(u >>= 1) x.r *= x.r, x.i *= x.i;
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			else break;
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						|
		}
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						|
	}
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						|
	_Fcomplex p={pow.r, pow.i};
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	return p;
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}
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#else
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static _Complex float cpow_ui(_Complex float x, integer n) {
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	_Complex float pow=1.0; unsigned long int u;
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						|
	if(n != 0) {
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						|
		if(n < 0) n = -n, x = 1/x;
 | 
						|
		for(u = n; ; ) {
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						|
			if(u & 01) pow *= x;
 | 
						|
			if(u >>= 1) x *= x;
 | 
						|
			else break;
 | 
						|
		}
 | 
						|
	}
 | 
						|
	return pow;
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						|
}
 | 
						|
#endif
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						|
#ifdef _MSC_VER
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						|
static _Dcomplex zpow_ui(_Dcomplex x, integer n) {
 | 
						|
	_Dcomplex pow={1.0,0.0}; unsigned long int u;
 | 
						|
	if(n != 0) {
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						|
		if(n < 0) n = -n, x._Val[0] = 1/x._Val[0], x._Val[1] =1/x._Val[1];
 | 
						|
		for(u = n; ; ) {
 | 
						|
			if(u & 01) pow._Val[0] *= x._Val[0], pow._Val[1] *= x._Val[1];
 | 
						|
			if(u >>= 1) x._Val[0] *= x._Val[0], x._Val[1] *= x._Val[1];
 | 
						|
			else break;
 | 
						|
		}
 | 
						|
	}
 | 
						|
	_Dcomplex p = {pow._Val[0], pow._Val[1]};
 | 
						|
	return p;
 | 
						|
}
 | 
						|
#else
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						|
static _Complex double zpow_ui(_Complex double x, integer n) {
 | 
						|
	_Complex double pow=1.0; unsigned long int u;
 | 
						|
	if(n != 0) {
 | 
						|
		if(n < 0) n = -n, x = 1/x;
 | 
						|
		for(u = n; ; ) {
 | 
						|
			if(u & 01) pow *= x;
 | 
						|
			if(u >>= 1) x *= x;
 | 
						|
			else break;
 | 
						|
		}
 | 
						|
	}
 | 
						|
	return pow;
 | 
						|
}
 | 
						|
#endif
 | 
						|
static integer pow_ii(integer x, integer n) {
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						|
	integer pow; unsigned long int u;
 | 
						|
	if (n <= 0) {
 | 
						|
		if (n == 0 || x == 1) pow = 1;
 | 
						|
		else if (x != -1) pow = x == 0 ? 1/x : 0;
 | 
						|
		else n = -n;
 | 
						|
	}
 | 
						|
	if ((n > 0) || !(n == 0 || x == 1 || x != -1)) {
 | 
						|
		u = n;
 | 
						|
		for(pow = 1; ; ) {
 | 
						|
			if(u & 01) pow *= x;
 | 
						|
			if(u >>= 1) x *= x;
 | 
						|
			else break;
 | 
						|
		}
 | 
						|
	}
 | 
						|
	return pow;
 | 
						|
}
 | 
						|
static integer dmaxloc_(double *w, integer s, integer e, integer *n)
 | 
						|
{
 | 
						|
	double m; integer i, mi;
 | 
						|
	for(m=w[s-1], mi=s, i=s+1; i<=e; i++)
 | 
						|
		if (w[i-1]>m) mi=i ,m=w[i-1];
 | 
						|
	return mi-s+1;
 | 
						|
}
 | 
						|
static integer smaxloc_(float *w, integer s, integer e, integer *n)
 | 
						|
{
 | 
						|
	float m; integer i, mi;
 | 
						|
	for(m=w[s-1], mi=s, i=s+1; i<=e; i++)
 | 
						|
		if (w[i-1]>m) mi=i ,m=w[i-1];
 | 
						|
	return mi-s+1;
 | 
						|
}
 | 
						|
static inline void cdotc_(complex *z, integer *n_, complex *x, integer *incx_, complex *y, integer *incy_) {
 | 
						|
	integer n = *n_, incx = *incx_, incy = *incy_, i;
 | 
						|
#ifdef _MSC_VER
 | 
						|
	_Fcomplex zdotc = {0.0, 0.0};
 | 
						|
	if (incx == 1 && incy == 1) {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc._Val[0] += conjf(Cf(&x[i]))._Val[0] * Cf(&y[i])._Val[0];
 | 
						|
			zdotc._Val[1] += conjf(Cf(&x[i]))._Val[1] * Cf(&y[i])._Val[1];
 | 
						|
		}
 | 
						|
	} else {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc._Val[0] += conjf(Cf(&x[i*incx]))._Val[0] * Cf(&y[i*incy])._Val[0];
 | 
						|
			zdotc._Val[1] += conjf(Cf(&x[i*incx]))._Val[1] * Cf(&y[i*incy])._Val[1];
 | 
						|
		}
 | 
						|
	}
 | 
						|
	pCf(z) = zdotc;
 | 
						|
}
 | 
						|
#else
 | 
						|
	_Complex float zdotc = 0.0;
 | 
						|
	if (incx == 1 && incy == 1) {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc += conjf(Cf(&x[i])) * Cf(&y[i]);
 | 
						|
		}
 | 
						|
	} else {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc += conjf(Cf(&x[i*incx])) * Cf(&y[i*incy]);
 | 
						|
		}
 | 
						|
	}
 | 
						|
	pCf(z) = zdotc;
 | 
						|
}
 | 
						|
#endif
 | 
						|
static inline void zdotc_(doublecomplex *z, integer *n_, doublecomplex *x, integer *incx_, doublecomplex *y, integer *incy_) {
 | 
						|
	integer n = *n_, incx = *incx_, incy = *incy_, i;
 | 
						|
#ifdef _MSC_VER
 | 
						|
	_Dcomplex zdotc = {0.0, 0.0};
 | 
						|
	if (incx == 1 && incy == 1) {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc._Val[0] += conj(Cd(&x[i]))._Val[0] * Cd(&y[i])._Val[0];
 | 
						|
			zdotc._Val[1] += conj(Cd(&x[i]))._Val[1] * Cd(&y[i])._Val[1];
 | 
						|
		}
 | 
						|
	} else {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc._Val[0] += conj(Cd(&x[i*incx]))._Val[0] * Cd(&y[i*incy])._Val[0];
 | 
						|
			zdotc._Val[1] += conj(Cd(&x[i*incx]))._Val[1] * Cd(&y[i*incy])._Val[1];
 | 
						|
		}
 | 
						|
	}
 | 
						|
	pCd(z) = zdotc;
 | 
						|
}
 | 
						|
#else
 | 
						|
	_Complex double zdotc = 0.0;
 | 
						|
	if (incx == 1 && incy == 1) {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc += conj(Cd(&x[i])) * Cd(&y[i]);
 | 
						|
		}
 | 
						|
	} else {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc += conj(Cd(&x[i*incx])) * Cd(&y[i*incy]);
 | 
						|
		}
 | 
						|
	}
 | 
						|
	pCd(z) = zdotc;
 | 
						|
}
 | 
						|
#endif	
 | 
						|
static inline void cdotu_(complex *z, integer *n_, complex *x, integer *incx_, complex *y, integer *incy_) {
 | 
						|
	integer n = *n_, incx = *incx_, incy = *incy_, i;
 | 
						|
#ifdef _MSC_VER
 | 
						|
	_Fcomplex zdotc = {0.0, 0.0};
 | 
						|
	if (incx == 1 && incy == 1) {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc._Val[0] += Cf(&x[i])._Val[0] * Cf(&y[i])._Val[0];
 | 
						|
			zdotc._Val[1] += Cf(&x[i])._Val[1] * Cf(&y[i])._Val[1];
 | 
						|
		}
 | 
						|
	} else {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc._Val[0] += Cf(&x[i*incx])._Val[0] * Cf(&y[i*incy])._Val[0];
 | 
						|
			zdotc._Val[1] += Cf(&x[i*incx])._Val[1] * Cf(&y[i*incy])._Val[1];
 | 
						|
		}
 | 
						|
	}
 | 
						|
	pCf(z) = zdotc;
 | 
						|
}
 | 
						|
#else
 | 
						|
	_Complex float zdotc = 0.0;
 | 
						|
	if (incx == 1 && incy == 1) {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc += Cf(&x[i]) * Cf(&y[i]);
 | 
						|
		}
 | 
						|
	} else {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc += Cf(&x[i*incx]) * Cf(&y[i*incy]);
 | 
						|
		}
 | 
						|
	}
 | 
						|
	pCf(z) = zdotc;
 | 
						|
}
 | 
						|
#endif
 | 
						|
static inline void zdotu_(doublecomplex *z, integer *n_, doublecomplex *x, integer *incx_, doublecomplex *y, integer *incy_) {
 | 
						|
	integer n = *n_, incx = *incx_, incy = *incy_, i;
 | 
						|
#ifdef _MSC_VER
 | 
						|
	_Dcomplex zdotc = {0.0, 0.0};
 | 
						|
	if (incx == 1 && incy == 1) {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc._Val[0] += Cd(&x[i])._Val[0] * Cd(&y[i])._Val[0];
 | 
						|
			zdotc._Val[1] += Cd(&x[i])._Val[1] * Cd(&y[i])._Val[1];
 | 
						|
		}
 | 
						|
	} else {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc._Val[0] += Cd(&x[i*incx])._Val[0] * Cd(&y[i*incy])._Val[0];
 | 
						|
			zdotc._Val[1] += Cd(&x[i*incx])._Val[1] * Cd(&y[i*incy])._Val[1];
 | 
						|
		}
 | 
						|
	}
 | 
						|
	pCd(z) = zdotc;
 | 
						|
}
 | 
						|
#else
 | 
						|
	_Complex double zdotc = 0.0;
 | 
						|
	if (incx == 1 && incy == 1) {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc += Cd(&x[i]) * Cd(&y[i]);
 | 
						|
		}
 | 
						|
	} else {
 | 
						|
		for (i=0;i<n;i++) { /* zdotc = zdotc + dconjg(x(i))* y(i) */
 | 
						|
			zdotc += Cd(&x[i*incx]) * Cd(&y[i*incy]);
 | 
						|
		}
 | 
						|
	}
 | 
						|
	pCd(z) = zdotc;
 | 
						|
}
 | 
						|
#endif
 | 
						|
/*  -- translated by f2c (version 20000121).
 | 
						|
   You must link the resulting object file with the libraries:
 | 
						|
	-lf2c -lm   (in that order)
 | 
						|
*/
 | 
						|
 | 
						|
 | 
						|
 | 
						|
 | 
						|
/* Table of constant values */
 | 
						|
 | 
						|
static doublecomplex c_b1 = {0.,0.};
 | 
						|
static doublecomplex c_b2 = {1.,0.};
 | 
						|
static integer c__1 = 1;
 | 
						|
static integer c__0 = 0;
 | 
						|
static integer c_n1 = -1;
 | 
						|
 | 
						|
/* > \brief <b> ZGGESX computes the eigenvalues, the Schur form, and, optionally, the matrix of Schur vectors 
 | 
						|
for GE matrices</b> */
 | 
						|
 | 
						|
/*  =========== DOCUMENTATION =========== */
 | 
						|
 | 
						|
/* Online html documentation available at */
 | 
						|
/*            http://www.netlib.org/lapack/explore-html/ */
 | 
						|
 | 
						|
/* > \htmlonly */
 | 
						|
/* > Download ZGGESX + dependencies */
 | 
						|
/* > <a href="http://www.netlib.org/cgi-bin/netlibfiles.tgz?format=tgz&filename=/lapack/lapack_routine/zggesx.
 | 
						|
f"> */
 | 
						|
/* > [TGZ]</a> */
 | 
						|
/* > <a href="http://www.netlib.org/cgi-bin/netlibfiles.zip?format=zip&filename=/lapack/lapack_routine/zggesx.
 | 
						|
f"> */
 | 
						|
/* > [ZIP]</a> */
 | 
						|
/* > <a href="http://www.netlib.org/cgi-bin/netlibfiles.txt?format=txt&filename=/lapack/lapack_routine/zggesx.
 | 
						|
f"> */
 | 
						|
/* > [TXT]</a> */
 | 
						|
/* > \endhtmlonly */
 | 
						|
 | 
						|
/*  Definition: */
 | 
						|
/*  =========== */
 | 
						|
 | 
						|
/*       SUBROUTINE ZGGESX( JOBVSL, JOBVSR, SORT, SELCTG, SENSE, N, A, LDA, */
 | 
						|
/*                          B, LDB, SDIM, ALPHA, BETA, VSL, LDVSL, VSR, */
 | 
						|
/*                          LDVSR, RCONDE, RCONDV, WORK, LWORK, RWORK, */
 | 
						|
/*                          IWORK, LIWORK, BWORK, INFO ) */
 | 
						|
 | 
						|
/*       CHARACTER          JOBVSL, JOBVSR, SENSE, SORT */
 | 
						|
/*       INTEGER            INFO, LDA, LDB, LDVSL, LDVSR, LIWORK, LWORK, N, */
 | 
						|
/*      $                   SDIM */
 | 
						|
/*       LOGICAL            BWORK( * ) */
 | 
						|
/*       INTEGER            IWORK( * ) */
 | 
						|
/*       DOUBLE PRECISION   RCONDE( 2 ), RCONDV( 2 ), RWORK( * ) */
 | 
						|
/*       COMPLEX*16         A( LDA, * ), ALPHA( * ), B( LDB, * ), */
 | 
						|
/*      $                   BETA( * ), VSL( LDVSL, * ), VSR( LDVSR, * ), */
 | 
						|
/*      $                   WORK( * ) */
 | 
						|
/*       LOGICAL            SELCTG */
 | 
						|
/*       EXTERNAL           SELCTG */
 | 
						|
 | 
						|
 | 
						|
/* > \par Purpose: */
 | 
						|
/*  ============= */
 | 
						|
/* > */
 | 
						|
/* > \verbatim */
 | 
						|
/* > */
 | 
						|
/* > ZGGESX computes for a pair of N-by-N complex nonsymmetric matrices */
 | 
						|
/* > (A,B), the generalized eigenvalues, the complex Schur form (S,T), */
 | 
						|
/* > and, optionally, the left and/or right matrices of Schur vectors (VSL */
 | 
						|
/* > and VSR).  This gives the generalized Schur factorization */
 | 
						|
/* > */
 | 
						|
/* >      (A,B) = ( (VSL) S (VSR)**H, (VSL) T (VSR)**H ) */
 | 
						|
/* > */
 | 
						|
/* > where (VSR)**H is the conjugate-transpose of VSR. */
 | 
						|
/* > */
 | 
						|
/* > Optionally, it also orders the eigenvalues so that a selected cluster */
 | 
						|
/* > of eigenvalues appears in the leading diagonal blocks of the upper */
 | 
						|
/* > triangular matrix S and the upper triangular matrix T; computes */
 | 
						|
/* > a reciprocal condition number for the average of the selected */
 | 
						|
/* > eigenvalues (RCONDE); and computes a reciprocal condition number for */
 | 
						|
/* > the right and left deflating subspaces corresponding to the selected */
 | 
						|
/* > eigenvalues (RCONDV). The leading columns of VSL and VSR then form */
 | 
						|
/* > an orthonormal basis for the corresponding left and right eigenspaces */
 | 
						|
/* > (deflating subspaces). */
 | 
						|
/* > */
 | 
						|
/* > A generalized eigenvalue for a pair of matrices (A,B) is a scalar w */
 | 
						|
/* > or a ratio alpha/beta = w, such that  A - w*B is singular.  It is */
 | 
						|
/* > usually represented as the pair (alpha,beta), as there is a */
 | 
						|
/* > reasonable interpretation for beta=0 or for both being zero. */
 | 
						|
/* > */
 | 
						|
/* > A pair of matrices (S,T) is in generalized complex Schur form if T is */
 | 
						|
/* > upper triangular with non-negative diagonal and S is upper */
 | 
						|
/* > triangular. */
 | 
						|
/* > \endverbatim */
 | 
						|
 | 
						|
/*  Arguments: */
 | 
						|
/*  ========== */
 | 
						|
 | 
						|
/* > \param[in] JOBVSL */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          JOBVSL is CHARACTER*1 */
 | 
						|
/* >          = 'N':  do not compute the left Schur vectors; */
 | 
						|
/* >          = 'V':  compute the left Schur vectors. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in] JOBVSR */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          JOBVSR is CHARACTER*1 */
 | 
						|
/* >          = 'N':  do not compute the right Schur vectors; */
 | 
						|
/* >          = 'V':  compute the right Schur vectors. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in] SORT */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          SORT is CHARACTER*1 */
 | 
						|
/* >          Specifies whether or not to order the eigenvalues on the */
 | 
						|
/* >          diagonal of the generalized Schur form. */
 | 
						|
/* >          = 'N':  Eigenvalues are not ordered; */
 | 
						|
/* >          = 'S':  Eigenvalues are ordered (see SELCTG). */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in] SELCTG */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          SELCTG is a LOGICAL FUNCTION of two COMPLEX*16 arguments */
 | 
						|
/* >          SELCTG must be declared EXTERNAL in the calling subroutine. */
 | 
						|
/* >          If SORT = 'N', SELCTG is not referenced. */
 | 
						|
/* >          If SORT = 'S', SELCTG is used to select eigenvalues to sort */
 | 
						|
/* >          to the top left of the Schur form. */
 | 
						|
/* >          Note that a selected complex eigenvalue may no longer satisfy */
 | 
						|
/* >          SELCTG(ALPHA(j),BETA(j)) = .TRUE. after ordering, since */
 | 
						|
/* >          ordering may change the value of complex eigenvalues */
 | 
						|
/* >          (especially if the eigenvalue is ill-conditioned), in this */
 | 
						|
/* >          case INFO is set to N+3 see INFO below). */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in] SENSE */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          SENSE is CHARACTER*1 */
 | 
						|
/* >          Determines which reciprocal condition numbers are computed. */
 | 
						|
/* >          = 'N': None are computed; */
 | 
						|
/* >          = 'E': Computed for average of selected eigenvalues only; */
 | 
						|
/* >          = 'V': Computed for selected deflating subspaces only; */
 | 
						|
/* >          = 'B': Computed for both. */
 | 
						|
/* >          If SENSE = 'E', 'V', or 'B', SORT must equal 'S'. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in] N */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          N is INTEGER */
 | 
						|
/* >          The order of the matrices A, B, VSL, and VSR.  N >= 0. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in,out] A */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          A is COMPLEX*16 array, dimension (LDA, N) */
 | 
						|
/* >          On entry, the first of the pair of matrices. */
 | 
						|
/* >          On exit, A has been overwritten by its generalized Schur */
 | 
						|
/* >          form S. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in] LDA */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          LDA is INTEGER */
 | 
						|
/* >          The leading dimension of A.  LDA >= f2cmax(1,N). */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in,out] B */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          B is COMPLEX*16 array, dimension (LDB, N) */
 | 
						|
/* >          On entry, the second of the pair of matrices. */
 | 
						|
/* >          On exit, B has been overwritten by its generalized Schur */
 | 
						|
/* >          form T. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in] LDB */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          LDB is INTEGER */
 | 
						|
/* >          The leading dimension of B.  LDB >= f2cmax(1,N). */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[out] SDIM */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          SDIM is INTEGER */
 | 
						|
/* >          If SORT = 'N', SDIM = 0. */
 | 
						|
/* >          If SORT = 'S', SDIM = number of eigenvalues (after sorting) */
 | 
						|
/* >          for which SELCTG is true. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[out] ALPHA */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          ALPHA is COMPLEX*16 array, dimension (N) */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[out] BETA */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          BETA is COMPLEX*16 array, dimension (N) */
 | 
						|
/* >          On exit, ALPHA(j)/BETA(j), j=1,...,N, will be the */
 | 
						|
/* >          generalized eigenvalues.  ALPHA(j) and BETA(j),j=1,...,N  are */
 | 
						|
/* >          the diagonals of the complex Schur form (S,T).  BETA(j) will */
 | 
						|
/* >          be non-negative real. */
 | 
						|
/* > */
 | 
						|
/* >          Note: the quotients ALPHA(j)/BETA(j) may easily over- or */
 | 
						|
/* >          underflow, and BETA(j) may even be zero.  Thus, the user */
 | 
						|
/* >          should avoid naively computing the ratio alpha/beta. */
 | 
						|
/* >          However, ALPHA will be always less than and usually */
 | 
						|
/* >          comparable with norm(A) in magnitude, and BETA always less */
 | 
						|
/* >          than and usually comparable with norm(B). */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[out] VSL */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          VSL is COMPLEX*16 array, dimension (LDVSL,N) */
 | 
						|
/* >          If JOBVSL = 'V', VSL will contain the left Schur vectors. */
 | 
						|
/* >          Not referenced if JOBVSL = 'N'. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in] LDVSL */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          LDVSL is INTEGER */
 | 
						|
/* >          The leading dimension of the matrix VSL. LDVSL >=1, and */
 | 
						|
/* >          if JOBVSL = 'V', LDVSL >= N. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[out] VSR */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          VSR is COMPLEX*16 array, dimension (LDVSR,N) */
 | 
						|
/* >          If JOBVSR = 'V', VSR will contain the right Schur vectors. */
 | 
						|
/* >          Not referenced if JOBVSR = 'N'. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in] LDVSR */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          LDVSR is INTEGER */
 | 
						|
/* >          The leading dimension of the matrix VSR. LDVSR >= 1, and */
 | 
						|
/* >          if JOBVSR = 'V', LDVSR >= N. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[out] RCONDE */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          RCONDE is DOUBLE PRECISION array, dimension ( 2 ) */
 | 
						|
/* >          If SENSE = 'E' or 'B', RCONDE(1) and RCONDE(2) contain the */
 | 
						|
/* >          reciprocal condition numbers for the average of the selected */
 | 
						|
/* >          eigenvalues. */
 | 
						|
/* >          Not referenced if SENSE = 'N' or 'V'. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[out] RCONDV */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          RCONDV is DOUBLE PRECISION array, dimension ( 2 ) */
 | 
						|
/* >          If SENSE = 'V' or 'B', RCONDV(1) and RCONDV(2) contain the */
 | 
						|
/* >          reciprocal condition number for the selected deflating */
 | 
						|
/* >          subspaces. */
 | 
						|
/* >          Not referenced if SENSE = 'N' or 'E'. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[out] WORK */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          WORK is COMPLEX*16 array, dimension (MAX(1,LWORK)) */
 | 
						|
/* >          On exit, if INFO = 0, WORK(1) returns the optimal LWORK. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in] LWORK */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          LWORK is INTEGER */
 | 
						|
/* >          The dimension of the array WORK. */
 | 
						|
/* >          If N = 0, LWORK >= 1, else if SENSE = 'E', 'V', or 'B', */
 | 
						|
/* >          LWORK >= MAX(1,2*N,2*SDIM*(N-SDIM)), else */
 | 
						|
/* >          LWORK >= MAX(1,2*N).  Note that 2*SDIM*(N-SDIM) <= N*N/2. */
 | 
						|
/* >          Note also that an error is only returned if */
 | 
						|
/* >          LWORK < MAX(1,2*N), but if SENSE = 'E' or 'V' or 'B' this may */
 | 
						|
/* >          not be large enough. */
 | 
						|
/* > */
 | 
						|
/* >          If LWORK = -1, then a workspace query is assumed; the routine */
 | 
						|
/* >          only calculates the bound on the optimal size of the WORK */
 | 
						|
/* >          array and the minimum size of the IWORK array, returns these */
 | 
						|
/* >          values as the first entries of the WORK and IWORK arrays, and */
 | 
						|
/* >          no error message related to LWORK or LIWORK is issued by */
 | 
						|
/* >          XERBLA. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[out] RWORK */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          RWORK is DOUBLE PRECISION array, dimension ( 8*N ) */
 | 
						|
/* >          Real workspace. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[out] IWORK */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          IWORK is INTEGER array, dimension (MAX(1,LIWORK)) */
 | 
						|
/* >          On exit, if INFO = 0, IWORK(1) returns the minimum LIWORK. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[in] LIWORK */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          LIWORK is INTEGER */
 | 
						|
/* >          The dimension of the array IWORK. */
 | 
						|
/* >          If SENSE = 'N' or N = 0, LIWORK >= 1, otherwise */
 | 
						|
/* >          LIWORK >= N+2. */
 | 
						|
/* > */
 | 
						|
/* >          If LIWORK = -1, then a workspace query is assumed; the */
 | 
						|
/* >          routine only calculates the bound on the optimal size of the */
 | 
						|
/* >          WORK array and the minimum size of the IWORK array, returns */
 | 
						|
/* >          these values as the first entries of the WORK and IWORK */
 | 
						|
/* >          arrays, and no error message related to LWORK or LIWORK is */
 | 
						|
/* >          issued by XERBLA. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[out] BWORK */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          BWORK is LOGICAL array, dimension (N) */
 | 
						|
/* >          Not referenced if SORT = 'N'. */
 | 
						|
/* > \endverbatim */
 | 
						|
/* > */
 | 
						|
/* > \param[out] INFO */
 | 
						|
/* > \verbatim */
 | 
						|
/* >          INFO is INTEGER */
 | 
						|
/* >          = 0:  successful exit */
 | 
						|
/* >          < 0:  if INFO = -i, the i-th argument had an illegal value. */
 | 
						|
/* >          = 1,...,N: */
 | 
						|
/* >                The QZ iteration failed.  (A,B) are not in Schur */
 | 
						|
/* >                form, but ALPHA(j) and BETA(j) should be correct for */
 | 
						|
/* >                j=INFO+1,...,N. */
 | 
						|
/* >          > N:  =N+1: other than QZ iteration failed in ZHGEQZ */
 | 
						|
/* >                =N+2: after reordering, roundoff changed values of */
 | 
						|
/* >                      some complex eigenvalues so that leading */
 | 
						|
/* >                      eigenvalues in the Generalized Schur form no */
 | 
						|
/* >                      longer satisfy SELCTG=.TRUE.  This could also */
 | 
						|
/* >                      be caused due to scaling. */
 | 
						|
/* >                =N+3: reordering failed in ZTGSEN. */
 | 
						|
/* > \endverbatim */
 | 
						|
 | 
						|
/*  Authors: */
 | 
						|
/*  ======== */
 | 
						|
 | 
						|
/* > \author Univ. of Tennessee */
 | 
						|
/* > \author Univ. of California Berkeley */
 | 
						|
/* > \author Univ. of Colorado Denver */
 | 
						|
/* > \author NAG Ltd. */
 | 
						|
 | 
						|
/* > \date June 2017 */
 | 
						|
 | 
						|
/* > \ingroup complex16GEeigen */
 | 
						|
 | 
						|
/*  ===================================================================== */
 | 
						|
/* Subroutine */ void zggesx_(char *jobvsl, char *jobvsr, char *sort, L_fp 
 | 
						|
	selctg, char *sense, integer *n, doublecomplex *a, integer *lda, 
 | 
						|
	doublecomplex *b, integer *ldb, integer *sdim, doublecomplex *alpha, 
 | 
						|
	doublecomplex *beta, doublecomplex *vsl, integer *ldvsl, 
 | 
						|
	doublecomplex *vsr, integer *ldvsr, doublereal *rconde, doublereal *
 | 
						|
	rcondv, doublecomplex *work, integer *lwork, doublereal *rwork, 
 | 
						|
	integer *iwork, integer *liwork, logical *bwork, integer *info)
 | 
						|
{
 | 
						|
    /* System generated locals */
 | 
						|
    integer a_dim1, a_offset, b_dim1, b_offset, vsl_dim1, vsl_offset, 
 | 
						|
	    vsr_dim1, vsr_offset, i__1, i__2;
 | 
						|
 | 
						|
    /* Local variables */
 | 
						|
    integer ijob;
 | 
						|
    doublereal anrm, bnrm;
 | 
						|
    integer ierr, itau, iwrk, lwrk, i__;
 | 
						|
    extern logical lsame_(char *, char *);
 | 
						|
    integer ileft, icols;
 | 
						|
    logical cursl, ilvsl, ilvsr;
 | 
						|
    integer irwrk, irows;
 | 
						|
    extern /* Subroutine */ void dlabad_(doublereal *, doublereal *);
 | 
						|
    extern doublereal dlamch_(char *);
 | 
						|
    doublereal pl, pr;
 | 
						|
    extern /* Subroutine */ void zggbak_(char *, char *, integer *, integer *, 
 | 
						|
	    integer *, doublereal *, doublereal *, integer *, doublecomplex *,
 | 
						|
	     integer *, integer *), zggbal_(char *, integer *,
 | 
						|
	     doublecomplex *, integer *, doublecomplex *, integer *, integer *
 | 
						|
	    , integer *, doublereal *, doublereal *, doublereal *, integer *);
 | 
						|
    logical ilascl, ilbscl;
 | 
						|
    extern /* Subroutine */ int xerbla_(char *, integer *, ftnlen);
 | 
						|
    extern integer ilaenv_(integer *, char *, char *, integer *, integer *, 
 | 
						|
	    integer *, integer *, ftnlen, ftnlen);
 | 
						|
    extern doublereal zlange_(char *, integer *, integer *, doublecomplex *, 
 | 
						|
	    integer *, doublereal *);
 | 
						|
    doublereal bignum;
 | 
						|
    integer ijobvl, iright;
 | 
						|
    extern /* Subroutine */ void zgghrd_(char *, char *, integer *, integer *, 
 | 
						|
	    integer *, doublecomplex *, integer *, doublecomplex *, integer *,
 | 
						|
	     doublecomplex *, integer *, doublecomplex *, integer *, integer *
 | 
						|
	    ), zlascl_(char *, integer *, integer *, 
 | 
						|
	    doublereal *, doublereal *, integer *, integer *, doublecomplex *,
 | 
						|
	     integer *, integer *);
 | 
						|
    integer ijobvr;
 | 
						|
    logical wantsb;
 | 
						|
    integer liwmin;
 | 
						|
    logical wantse, lastsl;
 | 
						|
    doublereal anrmto, bnrmto;
 | 
						|
    extern /* Subroutine */ void zgeqrf_(integer *, integer *, doublecomplex *,
 | 
						|
	     integer *, doublecomplex *, doublecomplex *, integer *, integer *
 | 
						|
	    );
 | 
						|
    integer maxwrk;
 | 
						|
    logical wantsn;
 | 
						|
    integer minwrk;
 | 
						|
    doublereal smlnum;
 | 
						|
    extern /* Subroutine */ void zhgeqz_(char *, char *, char *, integer *, 
 | 
						|
	    integer *, integer *, doublecomplex *, integer *, doublecomplex *,
 | 
						|
	     integer *, doublecomplex *, doublecomplex *, doublecomplex *, 
 | 
						|
	    integer *, doublecomplex *, integer *, doublecomplex *, integer *,
 | 
						|
	     doublereal *, integer *), zlacpy_(char *,
 | 
						|
	     integer *, integer *, doublecomplex *, integer *, doublecomplex *
 | 
						|
	    , integer *), zlaset_(char *, integer *, integer *, 
 | 
						|
	    doublecomplex *, doublecomplex *, doublecomplex *, integer *);
 | 
						|
    logical wantst, lquery, wantsv;
 | 
						|
    extern /* Subroutine */ void ztgsen_(integer *, logical *, logical *, 
 | 
						|
	    logical *, integer *, doublecomplex *, integer *, doublecomplex *,
 | 
						|
	     integer *, doublecomplex *, doublecomplex *, doublecomplex *, 
 | 
						|
	    integer *, doublecomplex *, integer *, integer *, doublereal *, 
 | 
						|
	    doublereal *, doublereal *, doublecomplex *, integer *, integer *,
 | 
						|
	     integer *, integer *), zungqr_(integer *, integer *, integer *, 
 | 
						|
	    doublecomplex *, integer *, doublecomplex *, doublecomplex *, 
 | 
						|
	    integer *, integer *), zunmqr_(char *, char *, integer *, integer 
 | 
						|
	    *, integer *, doublecomplex *, integer *, doublecomplex *, 
 | 
						|
	    doublecomplex *, integer *, doublecomplex *, integer *, integer *);
 | 
						|
    doublereal dif[2];
 | 
						|
    integer ihi, ilo;
 | 
						|
    doublereal eps;
 | 
						|
 | 
						|
 | 
						|
/*  -- LAPACK driver routine (version 3.7.1) -- */
 | 
						|
/*  -- LAPACK is a software package provided by Univ. of Tennessee,    -- */
 | 
						|
/*  -- Univ. of California Berkeley, Univ. of Colorado Denver and NAG Ltd..-- */
 | 
						|
/*     June 2017 */
 | 
						|
 | 
						|
 | 
						|
/*  ===================================================================== */
 | 
						|
 | 
						|
 | 
						|
/*     Decode the input arguments */
 | 
						|
 | 
						|
    /* Parameter adjustments */
 | 
						|
    a_dim1 = *lda;
 | 
						|
    a_offset = 1 + a_dim1 * 1;
 | 
						|
    a -= a_offset;
 | 
						|
    b_dim1 = *ldb;
 | 
						|
    b_offset = 1 + b_dim1 * 1;
 | 
						|
    b -= b_offset;
 | 
						|
    --alpha;
 | 
						|
    --beta;
 | 
						|
    vsl_dim1 = *ldvsl;
 | 
						|
    vsl_offset = 1 + vsl_dim1 * 1;
 | 
						|
    vsl -= vsl_offset;
 | 
						|
    vsr_dim1 = *ldvsr;
 | 
						|
    vsr_offset = 1 + vsr_dim1 * 1;
 | 
						|
    vsr -= vsr_offset;
 | 
						|
    --rconde;
 | 
						|
    --rcondv;
 | 
						|
    --work;
 | 
						|
    --rwork;
 | 
						|
    --iwork;
 | 
						|
    --bwork;
 | 
						|
 | 
						|
    /* Function Body */
 | 
						|
    if (lsame_(jobvsl, "N")) {
 | 
						|
	ijobvl = 1;
 | 
						|
	ilvsl = FALSE_;
 | 
						|
    } else if (lsame_(jobvsl, "V")) {
 | 
						|
	ijobvl = 2;
 | 
						|
	ilvsl = TRUE_;
 | 
						|
    } else {
 | 
						|
	ijobvl = -1;
 | 
						|
	ilvsl = FALSE_;
 | 
						|
    }
 | 
						|
 | 
						|
    if (lsame_(jobvsr, "N")) {
 | 
						|
	ijobvr = 1;
 | 
						|
	ilvsr = FALSE_;
 | 
						|
    } else if (lsame_(jobvsr, "V")) {
 | 
						|
	ijobvr = 2;
 | 
						|
	ilvsr = TRUE_;
 | 
						|
    } else {
 | 
						|
	ijobvr = -1;
 | 
						|
	ilvsr = FALSE_;
 | 
						|
    }
 | 
						|
 | 
						|
    wantst = lsame_(sort, "S");
 | 
						|
    wantsn = lsame_(sense, "N");
 | 
						|
    wantse = lsame_(sense, "E");
 | 
						|
    wantsv = lsame_(sense, "V");
 | 
						|
    wantsb = lsame_(sense, "B");
 | 
						|
    lquery = *lwork == -1 || *liwork == -1;
 | 
						|
    if (wantsn) {
 | 
						|
	ijob = 0;
 | 
						|
    } else if (wantse) {
 | 
						|
	ijob = 1;
 | 
						|
    } else if (wantsv) {
 | 
						|
	ijob = 2;
 | 
						|
    } else if (wantsb) {
 | 
						|
	ijob = 4;
 | 
						|
    }
 | 
						|
 | 
						|
/*     Test the input arguments */
 | 
						|
 | 
						|
    *info = 0;
 | 
						|
    if (ijobvl <= 0) {
 | 
						|
	*info = -1;
 | 
						|
    } else if (ijobvr <= 0) {
 | 
						|
	*info = -2;
 | 
						|
    } else if (! wantst && ! lsame_(sort, "N")) {
 | 
						|
	*info = -3;
 | 
						|
    } else if (! (wantsn || wantse || wantsv || wantsb) || ! wantst && ! 
 | 
						|
	    wantsn) {
 | 
						|
	*info = -5;
 | 
						|
    } else if (*n < 0) {
 | 
						|
	*info = -6;
 | 
						|
    } else if (*lda < f2cmax(1,*n)) {
 | 
						|
	*info = -8;
 | 
						|
    } else if (*ldb < f2cmax(1,*n)) {
 | 
						|
	*info = -10;
 | 
						|
    } else if (*ldvsl < 1 || ilvsl && *ldvsl < *n) {
 | 
						|
	*info = -15;
 | 
						|
    } else if (*ldvsr < 1 || ilvsr && *ldvsr < *n) {
 | 
						|
	*info = -17;
 | 
						|
    }
 | 
						|
 | 
						|
/*     Compute workspace */
 | 
						|
/*      (Note: Comments in the code beginning "Workspace:" describe the */
 | 
						|
/*       minimal amount of workspace needed at that point in the code, */
 | 
						|
/*       as well as the preferred amount for good performance. */
 | 
						|
/*       NB refers to the optimal block size for the immediately */
 | 
						|
/*       following subroutine, as returned by ILAENV.) */
 | 
						|
 | 
						|
    if (*info == 0) {
 | 
						|
	if (*n > 0) {
 | 
						|
	    minwrk = *n << 1;
 | 
						|
	    maxwrk = *n * (ilaenv_(&c__1, "ZGEQRF", " ", n, &c__1, n, &c__0, (
 | 
						|
		    ftnlen)6, (ftnlen)1) + 1);
 | 
						|
/* Computing MAX */
 | 
						|
	    i__1 = maxwrk, i__2 = *n * (ilaenv_(&c__1, "ZUNMQR", " ", n, &
 | 
						|
		    c__1, n, &c_n1, (ftnlen)6, (ftnlen)1) + 1);
 | 
						|
	    maxwrk = f2cmax(i__1,i__2);
 | 
						|
	    if (ilvsl) {
 | 
						|
/* Computing MAX */
 | 
						|
		i__1 = maxwrk, i__2 = *n * (ilaenv_(&c__1, "ZUNGQR", " ", n, &
 | 
						|
			c__1, n, &c_n1, (ftnlen)6, (ftnlen)1) + 1);
 | 
						|
		maxwrk = f2cmax(i__1,i__2);
 | 
						|
	    }
 | 
						|
	    lwrk = maxwrk;
 | 
						|
	    if (ijob >= 1) {
 | 
						|
/* Computing MAX */
 | 
						|
		i__1 = lwrk, i__2 = *n * *n / 2;
 | 
						|
		lwrk = f2cmax(i__1,i__2);
 | 
						|
	    }
 | 
						|
	} else {
 | 
						|
	    minwrk = 1;
 | 
						|
	    maxwrk = 1;
 | 
						|
	    lwrk = 1;
 | 
						|
	}
 | 
						|
	work[1].r = (doublereal) lwrk, work[1].i = 0.;
 | 
						|
	if (wantsn || *n == 0) {
 | 
						|
	    liwmin = 1;
 | 
						|
	} else {
 | 
						|
	    liwmin = *n + 2;
 | 
						|
	}
 | 
						|
	iwork[1] = liwmin;
 | 
						|
 | 
						|
	if (*lwork < minwrk && ! lquery) {
 | 
						|
	    *info = -21;
 | 
						|
	} else if (*liwork < liwmin && ! lquery) {
 | 
						|
	    *info = -24;
 | 
						|
	}
 | 
						|
    }
 | 
						|
 | 
						|
    if (*info != 0) {
 | 
						|
	i__1 = -(*info);
 | 
						|
	xerbla_("ZGGESX", &i__1, (ftnlen)6);
 | 
						|
	return;
 | 
						|
    } else if (lquery) {
 | 
						|
	return;
 | 
						|
    }
 | 
						|
 | 
						|
/*     Quick return if possible */
 | 
						|
 | 
						|
    if (*n == 0) {
 | 
						|
	*sdim = 0;
 | 
						|
	return;
 | 
						|
    }
 | 
						|
 | 
						|
/*     Get machine constants */
 | 
						|
 | 
						|
    eps = dlamch_("P");
 | 
						|
    smlnum = dlamch_("S");
 | 
						|
    bignum = 1. / smlnum;
 | 
						|
    dlabad_(&smlnum, &bignum);
 | 
						|
    smlnum = sqrt(smlnum) / eps;
 | 
						|
    bignum = 1. / smlnum;
 | 
						|
 | 
						|
/*     Scale A if f2cmax element outside range [SMLNUM,BIGNUM] */
 | 
						|
 | 
						|
    anrm = zlange_("M", n, n, &a[a_offset], lda, &rwork[1]);
 | 
						|
    ilascl = FALSE_;
 | 
						|
    if (anrm > 0. && anrm < smlnum) {
 | 
						|
	anrmto = smlnum;
 | 
						|
	ilascl = TRUE_;
 | 
						|
    } else if (anrm > bignum) {
 | 
						|
	anrmto = bignum;
 | 
						|
	ilascl = TRUE_;
 | 
						|
    }
 | 
						|
    if (ilascl) {
 | 
						|
	zlascl_("G", &c__0, &c__0, &anrm, &anrmto, n, n, &a[a_offset], lda, &
 | 
						|
		ierr);
 | 
						|
    }
 | 
						|
 | 
						|
/*     Scale B if f2cmax element outside range [SMLNUM,BIGNUM] */
 | 
						|
 | 
						|
    bnrm = zlange_("M", n, n, &b[b_offset], ldb, &rwork[1]);
 | 
						|
    ilbscl = FALSE_;
 | 
						|
    if (bnrm > 0. && bnrm < smlnum) {
 | 
						|
	bnrmto = smlnum;
 | 
						|
	ilbscl = TRUE_;
 | 
						|
    } else if (bnrm > bignum) {
 | 
						|
	bnrmto = bignum;
 | 
						|
	ilbscl = TRUE_;
 | 
						|
    }
 | 
						|
    if (ilbscl) {
 | 
						|
	zlascl_("G", &c__0, &c__0, &bnrm, &bnrmto, n, n, &b[b_offset], ldb, &
 | 
						|
		ierr);
 | 
						|
    }
 | 
						|
 | 
						|
/*     Permute the matrix to make it more nearly triangular */
 | 
						|
/*     (Real Workspace: need 6*N) */
 | 
						|
 | 
						|
    ileft = 1;
 | 
						|
    iright = *n + 1;
 | 
						|
    irwrk = iright + *n;
 | 
						|
    zggbal_("P", n, &a[a_offset], lda, &b[b_offset], ldb, &ilo, &ihi, &rwork[
 | 
						|
	    ileft], &rwork[iright], &rwork[irwrk], &ierr);
 | 
						|
 | 
						|
/*     Reduce B to triangular form (QR decomposition of B) */
 | 
						|
/*     (Complex Workspace: need N, prefer N*NB) */
 | 
						|
 | 
						|
    irows = ihi + 1 - ilo;
 | 
						|
    icols = *n + 1 - ilo;
 | 
						|
    itau = 1;
 | 
						|
    iwrk = itau + irows;
 | 
						|
    i__1 = *lwork + 1 - iwrk;
 | 
						|
    zgeqrf_(&irows, &icols, &b[ilo + ilo * b_dim1], ldb, &work[itau], &work[
 | 
						|
	    iwrk], &i__1, &ierr);
 | 
						|
 | 
						|
/*     Apply the unitary transformation to matrix A */
 | 
						|
/*     (Complex Workspace: need N, prefer N*NB) */
 | 
						|
 | 
						|
    i__1 = *lwork + 1 - iwrk;
 | 
						|
    zunmqr_("L", "C", &irows, &icols, &irows, &b[ilo + ilo * b_dim1], ldb, &
 | 
						|
	    work[itau], &a[ilo + ilo * a_dim1], lda, &work[iwrk], &i__1, &
 | 
						|
	    ierr);
 | 
						|
 | 
						|
/*     Initialize VSL */
 | 
						|
/*     (Complex Workspace: need N, prefer N*NB) */
 | 
						|
 | 
						|
    if (ilvsl) {
 | 
						|
	zlaset_("Full", n, n, &c_b1, &c_b2, &vsl[vsl_offset], ldvsl);
 | 
						|
	if (irows > 1) {
 | 
						|
	    i__1 = irows - 1;
 | 
						|
	    i__2 = irows - 1;
 | 
						|
	    zlacpy_("L", &i__1, &i__2, &b[ilo + 1 + ilo * b_dim1], ldb, &vsl[
 | 
						|
		    ilo + 1 + ilo * vsl_dim1], ldvsl);
 | 
						|
	}
 | 
						|
	i__1 = *lwork + 1 - iwrk;
 | 
						|
	zungqr_(&irows, &irows, &irows, &vsl[ilo + ilo * vsl_dim1], ldvsl, &
 | 
						|
		work[itau], &work[iwrk], &i__1, &ierr);
 | 
						|
    }
 | 
						|
 | 
						|
/*     Initialize VSR */
 | 
						|
 | 
						|
    if (ilvsr) {
 | 
						|
	zlaset_("Full", n, n, &c_b1, &c_b2, &vsr[vsr_offset], ldvsr);
 | 
						|
    }
 | 
						|
 | 
						|
/*     Reduce to generalized Hessenberg form */
 | 
						|
/*     (Workspace: none needed) */
 | 
						|
 | 
						|
    zgghrd_(jobvsl, jobvsr, n, &ilo, &ihi, &a[a_offset], lda, &b[b_offset], 
 | 
						|
	    ldb, &vsl[vsl_offset], ldvsl, &vsr[vsr_offset], ldvsr, &ierr);
 | 
						|
 | 
						|
    *sdim = 0;
 | 
						|
 | 
						|
/*     Perform QZ algorithm, computing Schur vectors if desired */
 | 
						|
/*     (Complex Workspace: need N) */
 | 
						|
/*     (Real Workspace:    need N) */
 | 
						|
 | 
						|
    iwrk = itau;
 | 
						|
    i__1 = *lwork + 1 - iwrk;
 | 
						|
    zhgeqz_("S", jobvsl, jobvsr, n, &ilo, &ihi, &a[a_offset], lda, &b[
 | 
						|
	    b_offset], ldb, &alpha[1], &beta[1], &vsl[vsl_offset], ldvsl, &
 | 
						|
	    vsr[vsr_offset], ldvsr, &work[iwrk], &i__1, &rwork[irwrk], &ierr);
 | 
						|
    if (ierr != 0) {
 | 
						|
	if (ierr > 0 && ierr <= *n) {
 | 
						|
	    *info = ierr;
 | 
						|
	} else if (ierr > *n && ierr <= *n << 1) {
 | 
						|
	    *info = ierr - *n;
 | 
						|
	} else {
 | 
						|
	    *info = *n + 1;
 | 
						|
	}
 | 
						|
	goto L40;
 | 
						|
    }
 | 
						|
 | 
						|
/*     Sort eigenvalues ALPHA/BETA and compute the reciprocal of */
 | 
						|
/*     condition number(s) */
 | 
						|
 | 
						|
    if (wantst) {
 | 
						|
 | 
						|
/*        Undo scaling on eigenvalues before SELCTGing */
 | 
						|
 | 
						|
	if (ilascl) {
 | 
						|
	    zlascl_("G", &c__0, &c__0, &anrmto, &anrm, n, &c__1, &alpha[1], n,
 | 
						|
		     &ierr);
 | 
						|
	}
 | 
						|
	if (ilbscl) {
 | 
						|
	    zlascl_("G", &c__0, &c__0, &bnrmto, &bnrm, n, &c__1, &beta[1], n, 
 | 
						|
		    &ierr);
 | 
						|
	}
 | 
						|
 | 
						|
/*        Select eigenvalues */
 | 
						|
 | 
						|
	i__1 = *n;
 | 
						|
	for (i__ = 1; i__ <= i__1; ++i__) {
 | 
						|
	    bwork[i__] = (*selctg)(&alpha[i__], &beta[i__]);
 | 
						|
/* L10: */
 | 
						|
	}
 | 
						|
 | 
						|
/*        Reorder eigenvalues, transform Generalized Schur vectors, and */
 | 
						|
/*        compute reciprocal condition numbers */
 | 
						|
/*        (Complex Workspace: If IJOB >= 1, need MAX(1, 2*SDIM*(N-SDIM)) */
 | 
						|
/*                            otherwise, need 1 ) */
 | 
						|
 | 
						|
	i__1 = *lwork - iwrk + 1;
 | 
						|
	ztgsen_(&ijob, &ilvsl, &ilvsr, &bwork[1], n, &a[a_offset], lda, &b[
 | 
						|
		b_offset], ldb, &alpha[1], &beta[1], &vsl[vsl_offset], ldvsl, 
 | 
						|
		&vsr[vsr_offset], ldvsr, sdim, &pl, &pr, dif, &work[iwrk], &
 | 
						|
		i__1, &iwork[1], liwork, &ierr);
 | 
						|
 | 
						|
	if (ijob >= 1) {
 | 
						|
/* Computing MAX */
 | 
						|
	    i__1 = maxwrk, i__2 = (*sdim << 1) * (*n - *sdim);
 | 
						|
	    maxwrk = f2cmax(i__1,i__2);
 | 
						|
	}
 | 
						|
	if (ierr == -21) {
 | 
						|
 | 
						|
/*            not enough complex workspace */
 | 
						|
 | 
						|
	    *info = -21;
 | 
						|
	} else {
 | 
						|
	    if (ijob == 1 || ijob == 4) {
 | 
						|
		rconde[1] = pl;
 | 
						|
		rconde[2] = pr;
 | 
						|
	    }
 | 
						|
	    if (ijob == 2 || ijob == 4) {
 | 
						|
		rcondv[1] = dif[0];
 | 
						|
		rcondv[2] = dif[1];
 | 
						|
	    }
 | 
						|
	    if (ierr == 1) {
 | 
						|
		*info = *n + 3;
 | 
						|
	    }
 | 
						|
	}
 | 
						|
 | 
						|
    }
 | 
						|
 | 
						|
/*     Apply permutation to VSL and VSR */
 | 
						|
/*     (Workspace: none needed) */
 | 
						|
 | 
						|
    if (ilvsl) {
 | 
						|
	zggbak_("P", "L", n, &ilo, &ihi, &rwork[ileft], &rwork[iright], n, &
 | 
						|
		vsl[vsl_offset], ldvsl, &ierr);
 | 
						|
    }
 | 
						|
 | 
						|
    if (ilvsr) {
 | 
						|
	zggbak_("P", "R", n, &ilo, &ihi, &rwork[ileft], &rwork[iright], n, &
 | 
						|
		vsr[vsr_offset], ldvsr, &ierr);
 | 
						|
    }
 | 
						|
 | 
						|
/*     Undo scaling */
 | 
						|
 | 
						|
    if (ilascl) {
 | 
						|
	zlascl_("U", &c__0, &c__0, &anrmto, &anrm, n, n, &a[a_offset], lda, &
 | 
						|
		ierr);
 | 
						|
	zlascl_("G", &c__0, &c__0, &anrmto, &anrm, n, &c__1, &alpha[1], n, &
 | 
						|
		ierr);
 | 
						|
    }
 | 
						|
 | 
						|
    if (ilbscl) {
 | 
						|
	zlascl_("U", &c__0, &c__0, &bnrmto, &bnrm, n, n, &b[b_offset], ldb, &
 | 
						|
		ierr);
 | 
						|
	zlascl_("G", &c__0, &c__0, &bnrmto, &bnrm, n, &c__1, &beta[1], n, &
 | 
						|
		ierr);
 | 
						|
    }
 | 
						|
 | 
						|
    if (wantst) {
 | 
						|
 | 
						|
/*        Check if reordering is correct */
 | 
						|
 | 
						|
	lastsl = TRUE_;
 | 
						|
	*sdim = 0;
 | 
						|
	i__1 = *n;
 | 
						|
	for (i__ = 1; i__ <= i__1; ++i__) {
 | 
						|
	    cursl = (*selctg)(&alpha[i__], &beta[i__]);
 | 
						|
	    if (cursl) {
 | 
						|
		++(*sdim);
 | 
						|
	    }
 | 
						|
	    if (cursl && ! lastsl) {
 | 
						|
		*info = *n + 2;
 | 
						|
	    }
 | 
						|
	    lastsl = cursl;
 | 
						|
/* L30: */
 | 
						|
	}
 | 
						|
 | 
						|
    }
 | 
						|
 | 
						|
L40:
 | 
						|
 | 
						|
    work[1].r = (doublereal) maxwrk, work[1].i = 0.;
 | 
						|
    iwork[1] = liwmin;
 | 
						|
 | 
						|
    return;
 | 
						|
 | 
						|
/*     End of ZGGESX */
 | 
						|
 | 
						|
} /* zggesx_ */
 | 
						|
 |