newlind() network and adapt() training function
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Is it possible to add another layer of neurons in newlind()? I'm using adapt() function for training the time series problem without any delay.
If its not possible to add! What other network i can use? Feedforward is throwing error as
--Error using + Matrix dimensions must agree.
Error in nn7.grad2 (line 95) gA{i} = gA{i} + LWderivP' * gLWZ{k,i};
6 Comments
Greg Heath
on 10 Jan 2018
Why aren't you using one of the timeseries functions???
timedelaynet, narnet and narxnet
In addition to searching ANSWERS and the NEWSGROUP, you can check out the documentation. For example
help narxnet
doc narxnet
Hope this helps.
Thank you for formally accepting my answer
Greg
Pkm
on 10 Jan 2018
Greg Heath
on 11 Jan 2018
If there is no delay, use FITNET.
Pkm
on 11 Jan 2018
Greg Heath
on 12 Jan 2018
Why are you using adapt? The BEST approach is to FIRST try to use as many DEFAULTS as possible. After all, a group of expert developers carefully chose those values for good reasons.
Hope this helps.
Greg
Pkm
on 15 Jan 2018
Answers (1)
Greg Heath
on 11 Jan 2018
0 votes
Use the fitnet defaults.
adapt is not a default.
Greg
2 Comments
Pkm
on 11 Jan 2018
Greg Heath
on 15 Jan 2018
Yes you can:
By using dimensionality reduction. Do you think that all 960 variables are independent of the others?
The most common technique is PRINCIPAL COMPONENT ANALYSIS (PCA) which uses a smaller number of principal components that are linear combinations of the original inputs.
Another technique is PARTIAL LEAST SQUARES (PLS)which is used infrequently because it is less known ... presumably because it involves transforming both outputs and inputs.
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