📄 glmerr.m
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function [e, edata, eprior, y, a] = glmerr(net, x, t)%GLMERR Evaluate error function for generalized linear model.%% Description% E = GLMERR(NET, X, T) takes a generalized linear model data% structure NET together with a matrix X of input vectors and a matrix% T of target vectors, and evaluates the error function E. The choice% of error function corresponds to the output unit activation function.% Each row of X corresponds to one input vector and each row of T% corresponds to one target vector.%% [E, EDATA, EPRIOR, Y, A] = GLMERR(NET, X, T) also returns the data% and prior components of the total error.%% [E, EDATA, EPRIOR, Y, A] = GLMERR(NET, X) also returns a matrix Y% giving the outputs of the models and a matrix A giving the summed% inputs to each output unit, where each row corresponds to one% pattern.%% See also% GLM, GLMPAK, GLMUNPAK, GLMFWD, GLMGRAD, GLMTRAIN%% Copyright (c) Ian T Nabney (1996-2001)% Check arguments for consistencyerrstring = consist(net, 'glm', x, t);if ~isempty(errstring); error(errstring);end[y, a] = glmfwd(net, x);switch net.outfn case 'linear' % Linear outputs edata = 0.5*sum(sum((y - t).^2)); case 'logistic' % Logistic outputs edata = - sum(sum(t.*log(y) + (1 - t).*log(1 - y))); case 'softmax' % Softmax outputs edata = - sum(sum(t.*log(y))); otherwise error(['Unknown activation function ', net.outfn]);end[e, edata, eprior] = errbayes(net, edata);
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