📄 gauss2d.m
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% gauss2d() - generate a 2 dimensional gaussian matrice%% Usage:% >> [ gaussmatrix ] = gauss2d( rows, columns, ...% sigmaR, sigmaC, meanR, meanC, cut)%% Example:% >> gauss2d( 5, 5)%% Inputs:% rows - number of rows % columns - number of columns % sigmaR - standart deviation for rows (default: rows/5)% sigmaC - standart deviation for columns (default: columns/5)% meanR - mean for rows (default: center of the row)% meanC - mean for columns (default: center of the column)% cut - percentage (0->1) of the maximum value for removing % values in the matrix (default: 0)%% Ouput:% gaussmatrix - gaussian matrix%% Author: Arnaud Delorme, CNL / Salk Institute, 2001%123456789012345678901234567890123456789012345678901234567890123456789012% Copyright (C) 2001 Arnaud Delorme, Salk Institute, arno@salk.edu%% 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% $Log: gauss2d.m,v $% Revision 1.1 2002/04/05 17:39:45 jorn% Initial revision%% 01-25-02 reformated help & license -ad function mat = gauss2d( sizeX, sizeY, sigmaX, sigmaY, meanX, meanY, cut);if nargin < 2 help gauss2d return; end;if nargin < 3 sigmaX = sizeX/5;end;if nargin < 4 sigmaY = sizeY/5;end;if nargin < 5 meanX = (sizeX+1)/2;end;if nargin < 6 meanY = (sizeY+1)/2;end;if nargin < 7 cut = 0;end;X = linspace(1, sizeX, sizeX)'* ones(1,sizeY);Y = ones(1,sizeX)' * linspace(1, sizeY, sizeY);%[-sizeX/2:sizeX/2]'*ones(1,sizeX+1);%Y = ones(1,sizeY+1)' *[-sizeY/2:sizeY/2];mat = exp(-0.5*( ((X-meanX)/sigmaX).*((X-meanX)/sigmaX)... +((Y-meanY)/sigmaY).*((Y-meanY)/sigmaY)))... /((sigmaX*sigmaY)^(0.5)*pi); if cut > 0 maximun = max(max(mat))*cut; I = find(mat < maximun); mat(I) = 0;end;return;
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