Mercurial > hg > camir-aes2014
view toolboxes/FullBNT-1.0.7/netlab3.3/dem2ddat.m @ 0:e9a9cd732c1e tip
first hg version after svn
author | wolffd |
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date | Tue, 10 Feb 2015 15:05:51 +0000 |
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function [data, c, prior, sd] = dem2ddat(ndata) %DEM2DDAT Generates two dimensional data for demos. % % Description % The data is drawn from three spherical Gaussian distributions with % priors 0.3, 0.5 and 0.2; centres (2, 3.5), (0, 0) and (0,2); and % standard deviations 0.2, 0.5 and 1.0. DATA = DEM2DDAT(NDATA) % generates NDATA points. % % [DATA, C] = DEM2DDAT(NDATA) also returns a matrix containing the % centres of the Gaussian distributions. % % See also % DEMGMM1, DEMKMEAN, DEMKNN1 % % Copyright (c) Ian T Nabney (1996-2001) input_dim = 2; % Fix seed for reproducible results randn('state', 42); % Generate mixture of three Gaussians in two dimensional space data = randn(ndata, input_dim); % Priors for the three clusters prior(1) = 0.3; prior(2) = 0.5; prior(3) = 0.2; % Cluster centres c = [2.0, 3.5; 0.0, 0.0; 0.0, 2.0]; % Cluster standard deviations sd = [0.2 0.5 1.0]; % Put first cluster at (2, 3.5) data(1:prior(1)*ndata, 1) = data(1:prior(1)*ndata, 1) * 0.2 + c(1,1); data(1:prior(1)*ndata, 2) = data(1:prior(1)*ndata, 2) * 0.2 + c(1,2); % Leave second cluster at (0,0) data((prior(1)*ndata + 1):(prior(2)+prior(1))*ndata, :) = ... data((prior(1)*ndata + 1):(prior(2)+prior(1))*ndata, :) * 0.5; % Put third cluster at (0,2) data((prior(1)+prior(2))*ndata +1:ndata, 2) = ... data((prior(1)+prior(2))*ndata+1:ndata, 2) + c(3, 2);