Mercurial > hg > octave-thorsten
view src/DLD-FUNCTIONS/det.cc @ 5070:1e6f653ef1e3 ss-2-1-61
[project @ 2004-11-06 00:33:38 by jwe]
author | jwe |
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date | Sat, 06 Nov 2004 00:33:38 +0000 |
parents | a6755bc45f15 |
children | 57077d0ddc8e |
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/* Copyright (C) 1996, 1997 John W. Eaton This file is part of Octave. Octave is free software; you can redistribute it and/or modify it under the terms of the GNU General Public License as published by the Free Software Foundation; either version 2, or (at your option) any later version. Octave is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for more details. You should have received a copy of the GNU General Public License along with Octave; see the file COPYING. If not, write to the Free Software Foundation, 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */ #ifdef HAVE_CONFIG_H #include <config.h> #endif #include "CmplxDET.h" #include "dbleDET.h" #include "defun-dld.h" #include "error.h" #include "gripes.h" #include "oct-obj.h" #include "utils.h" DEFUN_DLD (det, args, nargout, "-*- texinfo -*-\n\ @deftypefn {Loadable Function} {[@var{d}, @var{rcond}] = } det (@var{a})\n\ Compute the determinant of @var{a} using @sc{Lapack}. Return an estimate\n\ of the reciprocal condition number if requested.\n\ @end deftypefn") { octave_value_list retval; int nargin = args.length (); if (nargin != 1) { print_usage ("det"); return retval; } octave_value arg = args(0); int nr = arg.rows (); int nc = arg.columns (); if (nr == 0 && nc == 0) { retval(0) = 1.0; return retval; } int arg_is_empty = empty_arg ("det", nr, nc); if (arg_is_empty < 0) return retval; if (arg_is_empty > 0) return octave_value (Matrix (1, 1, 1.0)); if (nr != nc) { gripe_square_matrix_required ("det"); return retval; } if (arg.is_real_type ()) { Matrix m = arg.matrix_value (); if (! error_state) { // Always compute rcond, so we can detect numerically // singular matrices. int info; double rcond = 0.0; DET det = m.determinant (info, rcond); retval(1) = rcond; volatile double xrcond = rcond; xrcond += 1.0; retval(0) = ((info == -1 || xrcond == 1.0) ? 0.0 : det.value ()); } } else if (arg.is_complex_type ()) { ComplexMatrix m = arg.complex_matrix_value (); if (! error_state) { // Always compute rcond, so we can detect numerically // singular matrices. int info; double rcond = 0.0; ComplexDET det = m.determinant (info, rcond); retval(1) = rcond; volatile double xrcond = rcond; xrcond += 1.0; retval(0) = ((info == -1 || xrcond == 1.0) ? Complex (0.0) : det.value ()); } } else { gripe_wrong_type_arg ("det", arg); } return retval; } /* ;;; Local Variables: *** ;;; mode: C++ *** ;;; End: *** */