New initial starting point (input and output) of already trained LSTM Network
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I have input data X and output data Y.
I am training a LSTM network using:
net = trainNetwork(X(1:500), Y(1:500), layers, options);
This trains and initialize the network
However is there a way to initialize the network with for example X(1:600) and Y(1:600), not by retraining but by using the previous trained network ansd start any new predictions from that point on (601 and up)?
Antworten (1)
Hornett
am 19 Sep. 2024
0 Stimmen
Hi Leon,
Yes it is possible to use an already trained network for new predictions, take a look at the following documentation of transfer learning.
- Get started with transfer learning: https://www.mathworks.com/help/deeplearning/gs/get-started-with-transfer-learning.html
Hope it helps!
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