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LSTM for time series forcasting

Data Science Asked by El abassi Rida on September 5, 2021

I manipulate the time series using the different structures of the neural networks in order to make a prediction, and I wonder if there is a way to choose the parameters of the networks intelligently? from the characteristics of the signal, namely (trend, seasonality …) can we choose these parameters that will make learning better?

One Answer

Indeed you can introduce some "unvariant" features to your LSTM network using Conditional RNN that use these features to create the initial hidden state:
https://github.com/philipperemy/cond_rnn

I hope this is what you are looking for.

Answered by mirimo on September 5, 2021

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