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Hi I've developed an Artificial Neural Network in C++ for an assignment and I was wondering if anyone knew of any multiple output data sets that I could use to test my network? I'm trying to prove that a modification I've done causes the network to perform better with a wide range of data sets.

I've tried a few sites but none of them state the number of outputs leading me to assume that they all have one output.

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2 Answers 2

up vote 1 down vote accepted

UCI machine learning repository currently maintain 235 data sets as a service to the machine learning community.

A large percentage of them contains multiple types of labels, e.g.,

WALKING, WALKING_UPSTAIRS, WALKING_DOWNSTAIRS, SITTING, STANDING, LAYING
unacc, acc, good, vgood
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These are just one output column though aren't they? They don't seem to be multiple outputs? What I'm looking for is more like (to use an abstract example) a data set for food were it outputs what food group it is and how healthy it is (so more than one neuron on the output layer) –  user1646196 Jan 22 '13 at 11:56
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You are right. Usually those datasets have only one output column which could be multi-valued. However, you are not limited to only use their class variable. Say, the current system is (x1,x2,x3)-> y, where xi are attributes and y is the label, you can just treat it as (x1,x2)->(x3,y). In the Car evaluation dataset, price of maintenance could be a possible output, right? –  greeness Jan 22 '13 at 19:23
    
True I didn't think of that, answer accepted :) –  user1646196 Jan 23 '13 at 21:32

MNIST is a standard 10-class dataset of 20x20 pixel images of handwritten digits (0 - 9). You can find the dataset (along with performance results from various classifiers, including neural nets) at http://yann.lecun.com/exdb/mnist/

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