📄 mlpderiv.m
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function g = mlpderiv(net, x)%MLPDERIV Evaluate derivatives of network outputs with respect to weights.%% Description% G = MLPDERIV(NET, X) takes a network data structure NET and a matrix% of input vectors X and returns a three-index matrix G whose I, J, K% element contains the derivative of network output K with respect to% weight or bias parameter J for input pattern I. The ordering of the% weight and bias parameters is defined by MLPUNPAK.%% See also% MLP, MLPPAK, MLPGRAD, MLPBKP%% Copyright (c) Ian T Nabney (1996-2001)% Check arguments for consistencyerrstring = consist(net, 'mlp', x);if ~isempty(errstring); error(errstring);end[y, z] = mlpfwd(net, x);ndata = size(x, 1);if isfield(net, 'mask') nwts = size(find(net.mask), 1); temp = zeros(1, net.nwts);else nwts = net.nwts;endg = zeros(ndata, nwts, net.nout);for k = 1 : net.nout delta = zeros(1, net.nout); delta(1, k) = 1; for n = 1 : ndata if isfield(net, 'mask') temp = mlpbkp(net, x(n, :), z(n, :), delta); g(n, :, k) = temp(logical(net.mask)); else g(n, :, k) = mlpbkp(net, x(n, :), z(n, :),... delta); end endend
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