How to take matrices as input to neural network?

I have 5000 matrices of size 20x20. How to take these as input to my neural network? Is making a column vector of size 400x1 the only way? Is there some way I can have 20 input features of size 1x20?

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It depends on your target... what is your target?
the target is a 20x1 vector
5000*20*1 right?
Then you can associate one output to each 1x20 feature right?
For each 20x20 matrix my output will be a 20x1 vector. I have 5000 such matrices.
Yes...you can try for each feature of matrix 1x20 on output ....so each row corresponds to one number of target.

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Answers (1)

Hi Pritam
Yes it is possible and you can try for each feature of matrix to 1x20 on output and that too through various netwroks depending on the nature of your data and what you're trying to achieve.
For instance if:
  • spatial relationships are crucial, consider CNNs.
  • sequential relationships matter, look at RNNs or their variants.
  • you're interested in treating each row/column as a separate entity without focusing on spatial or sequential relationships, the multiple input models or separate input channels approach could work.

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R2020b

Asked:

on 15 Jun 2021

Answered:

on 27 May 2024

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