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13 views

LIBSVM performance for training data

How can I get performance or classification accuracy for training dataset (not test data) using svmtrain.c? I'm using MATLAB for doing binary classification with LIBSVM. Is there only way to select ...
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0answers
11 views

Estimate RBF SVM training time in Matlab

I coded a SMO Algorithm in matlab by myself. I would like to evaluate the time it will take to train. My dataset is 7000 samples and 1000 features C = 10, epsilon=0.1, teta(RBF)=0.1 My CPU is i3 ...
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0answers
6 views

multisvm classification on images in matlab with any example

I am new to matlab and i need to know how to do the process of multisvm classification on images? Can anyone help me with the explanation and with an example to classify?
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1answer
356 views

Error in training neural network: Inputs and targets have different numbers of samples

I am trying to code neural network for face detection. I have input as (1372*4096) and target as (1372*1). The inputs are images, each image is represented in a row. Therefore, I have 1372 images. For ...
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1answer
53 views

input size error in neural network programming by MATLAB

This is my code: p = input1; t1 = output1; net = feedforwardnet(10, 'trainrp'); net.trainParam.epochs = 1000; net.trainParam.goal = 0.0005; net = train(net, p, t1); y1 = sim(net, p); p = input2; t2 ...
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1answer
99 views

Iterative Learning with adapt() for Large Scale Files on Matlab

How can I use adapt() function to help me iteratively train my Large data set. For training I try to train it iterativly increasing my data as: P = [P P_train(1:100)]; T = [T T_train(1:100)]; After a ...
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1answer
466 views

How to train neural network incrementally in Matlab? and iteratively combine them

I have very big train set so that Matlab. And I need to do large scale training. Is it possible to split the training set into parts and iteratively train the network and on each iteration update the ...
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83 views

stochastic gradient descent neural network predictions in matlab

Is it possible to train (net) as stochastic gradient descent in matlab. If possible how? I observe that it completely ignores the previous trained data's information update the complete information. ...