As could cross validation in a neural network NarX?
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I would like to know how to raise the cross-validation for NarX neural network, in this way, not destroy correlations. I have a set of 1136 data and 1136 data input targets.
thank you very much
Antworten (1)
Shashank Prasanna
am 14 Feb. 2013
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You may want to use DIVIDEBLOCK instead of the default dividerand. DIVIDEBLOCK will maintain correlation since it doesn't shuffle the data but takes block of it for crossvalidation:
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