?? getclassifier.m
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function [CC]=getclassifier(d,c, Mode)
% GETCLASSIFIER yields the classifier from labeled data
% CC = getclassifier(d,c)
% CC = getclassifier(d1,d2)
%
% d DATA
% c CLASSLABEL
% d1 DATA of class 1
% d2 DATA of class 0
% Mode 'LDA' and 'MDA' implemented.
%
% number of rows in d and c must fit, and C must be a column vector,
% OR number of columns in d1 and d2 must fit.
% The functions COVM.M and SUMSKIPNAN.M from the NaN-toolbox are
% required [1] for Mode 'LDA' and 'MDA'.
%
% OUTPUT:
% CC classifier
%
% see also: LDBC, LLBC, MDBC, NaN/COVM
%
% Reference(s):
% [1] A. Schloegl, Missing values and NaN-toolbox for Matlab, 2000-2003.
% http://www.dpmi.tu-graz.ac.at/~schloegl/matlab/NaN/
% $Revision: 1.1 $
% $Id: getclassifier.m,v 1.1 2003/02/07 10:10:52 schloegl Exp $
% Copyright (C) 1999-2003 by Alois Schloegl
% a.schloegl@ieee.org
% This program 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
% of the License, or (at your option) any later version.
%
% This program 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 this program; if not, write to the Free Software
% Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
if nargin<3,
Mode = 'LDA';
end;
if exist('covm')~=2,
fprintf(2,'Error GETCLASSIFIER: COVM.M is not in search path. You need to install the NaN-toolbox./n')
return;
end;
if (size(d,1)==size(c,1)) & size(c,2)==1 & all(c==round(c));
elseif (size(d,2)==size(c,2)) ;
d1 = d; d2 = c;
c = [ones(size(d1,1),1); ones(size(d2,1),1)*2];
d = [d1; d2];
else
fprintf(2,'Error GETCLASSIFIER: incorrect input arguments\n');
return;
end;
CL = sort(unique(c(~isnan(c))));
if strcmp(Mode,'LDA') | strcmp(Mode,'MDA'),
for k = 1:length(CL);
CC{k} = covm(d(c==CL(k),:),'E');
end;
else
fprintf(2,'Error GETCLASSIFIER: classifier %s not implemented.\n');
return;
end;
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