Classification error at each epoch
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Hi there, I am performing a classification problem using Neural Network tool. I did the following:
hiddenLayerSize = 10;
net = patternnet(hiddenLayerSize);
net.inputs{1}.processFcns = {'removeconstantrows','mapminmax'};
net.outputs{2}.processFcns = {'removeconstantrows','mapminmax'};
net.divideParam.trainRatio = 70/100; net.divideParam.valRatio = 15/100; net.divideParam.testRatio = 15/100;
net.trainFcn = 'trainscg'; % Scaled conjugate gradient
net.performFcn = 'mse'; % Mean squared error
net.plotFcns = {'plotperform','plottrainstate','ploterrhist', ... 'plotregression', 'plotfit'};
I then trained the network
[net,tr] = train(net,inputs,targets);
and got some results. From tr information, I can extract classification hit/miss for each class, as well as mse at each epoch. However, is it possible to extract, at each epoch, percentage of hit/miss for each sub-class?
How mse is estimated at each time step?
Is hit/miss percentage for each class explicitly computed at each time step?
Best Regards, Alessandro
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