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8
votes
3answers
3k views

training feedforward neural network for OCR

currently im learning about neural networks and im trying to create an application that can be trained to recognize handwritten characters. for this problem i use a feedforward neural network and it ...
3
votes
1answer
1k views

PyBrain how to interpret the results from net.activate?

I've trained a network on PyBrain for purpose of classification and am ready to fire away with specific input. However, when I do classes = ['apple', 'orange', 'peach', 'banana'] data = ...
2
votes
1answer
904 views

Should an input layer include a bias neuron?

I was wondering: in a multi-layer feed-forward neural network should the input layer include a bias neuron, or this is just useful in hidden layers? If so, why? Thank you, Tunnuz
2
votes
1answer
182 views

ANN bypassing hidden layer for an input

I have just been set an assignment to calculate some ANN outputs and write an ANN. Simple stuff, done it before, so I don't need any help with general ANN stuff. However, there is something that is ...
2
votes
1answer
2k views

Pybrain Feedforward neural network training error completely stuck

Hey guys I need a bit of help with my pybrain code. Everything loads fine, but after it trains the first time the training error doesn't go down. In fact, it just stays stuck there at exactly ...
2
votes
2answers
6k views

Implementing a Neural Network in Java: Training and Backpropagation issues

I'm trying to implement a feed-forward neural network in Java. I've created three classes NNeuron, NLayer and NNetwork. The "simple" calculations seem fine (I get correct sums/activations/outputs), ...
2
votes
1answer
79 views

Print Feedforward Loops in python

So, I have a huge input file that looks like this: (you can download here) 1. FLO8;PRI2 2. FLO8;EHD3 3. GRI2;BET2 4. HAL4;AAD3 5. PRI2;EHD3 6. QLN3;FZF1 7. QLN3;ABR5 8. FZF1;ABR5 ... See ...
2
votes
3answers
337 views

Ideal Input for Neural Network For The Game Checkers

I'm new in neural networks and i'm designing a feed forward neural network to learn to play the game checkers. As input, the board has to be given and the output should give a chance to win and lose. ...
2
votes
1answer
824 views

Backpropagation for Neural Network - Python

I am writing a program to do neural network in python I am trying to set up the backpropagation algorithm. The basic idea is that I look through 5,000 training examples and collect the errors and ...
1
vote
1answer
123 views

Matlab newff, trainbr get number of ephocs run before maximum MU has been reached

When training a nn using trainbr like this: net = newff( inputs_train, outputs_train, layers, { 'tansig', 'purelin' }, 'trainbr' ); net.trainParam.goal = 0.0; net.trainParam.show = 1; ...
1
vote
1answer
290 views

Artificial Neural network PSO training

I am working on a FF Neural network (used for classification problems) which I am training using a PSO. I only have one hidden layer and I can vary the amount of neurons in that layer. My problem is ...
1
vote
1answer
84 views

Neural network with 1 hidden layer cannot learn checkerboard function?

I'm just starting to learn neural networks, to see if they could be useful for me. I downloaded this simple python code of 3 layer feed forward neural network and I just modified the learning ...
1
vote
1answer
497 views

My neural net learns sin x but not cos x

I have build my own neural net and I have a weird problem with it. The net is quite a simple feed-forward 1-N-1 net with back propagation learning. Sigmoid is used as activation function. My ...
0
votes
1answer
49 views

What is the syntax of the activate() function in pybrain package?

I have a code which builds a [2,3,1] neural network with some values with full connection. from pybrain.structure import FeedForwardNetwork, LinearLayer, SigmoidLayer, FullConnection from ...
0
votes
2answers
294 views

How to decide activation function in neural network

I am using feedforward, backpropagation, multilayer neural network and I am using sigmoid function as a activation function which is having range of -1 to 1. But the minimum error is not going below ...
0
votes
2answers
79 views

Back-propagation algorithm converging too quickly to poor results

I'm trying to implement the back propagation algorithm for a multi layer feedforward neural network, but I'm having issues getting it to converge to good results. The reason being, the gradient ...
0
votes
1answer
1k views

Creating a feedforwardnet model in Matlab

I'd like to implement a model that works like this: it gets 3 inputs, for example - 1,2,3 and it gives 1 output - a number between 0 to 1 (including 0 and 1). The model is a feedforwardnet- at first, ...
-1
votes
1answer
63 views

The number of outputs in feed forward ANN

The number of outputs (number of neurons in output layer) in feed forward neural network can be more than 2 (such as 3)?