How can I use transfer learning in matlab for non image data
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I have a non image data and I would like to use transfer learning to predict the response.
I generated 100 1D response data with each column representing a response at a particular gap (d). The generated data for the response is attached.
Gap variation
deld=(80E-9-10E-9)/100;
d=[10E-9:deld:80E-9];
I have tried using transfer learning but I am getting 100% accuracy. So, I am not sure this is right. Also, I could not predict any response from the model.
Please I need help.
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Answers (1)
Udit06
on 25 Nov 2024 at 6:12
Hi Ambali,
You can refer to the following MathWorks documentation the explains how to leverage transfer learning for non-image data:
I hope this helps.
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