Working with LSTM and Bayes Optimization
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CHRISTOPHER MILLAR
2020 年 2 月 25 日
コメント済み: CHRISTOPHER MILLAR
2021 年 10 月 5 日
I am trying to use bayesoptimization to tune the parameters
optimvars = [
optimizableVariable('InitialLearnRate',[1e-2 1],'Transform','log')
optimizableVariable('L2Regularization',[1e-10 1e-2],'Transform','log')];
layers = [ ...
sequenceInputLayer(inputSize,'Normalization','zscore')
bilstmLayer(numHiddenUnits,'OutputMode','last')
fullyConnectedLayer(numClasses)
softmaxLayer
classificationLayer];
maxEpochs =25;
options = trainingOptions('adam',...
'ExecutionEnvironment','cpu',...
'GradientThreshold',1,...
'MaxEpochs',maxEpochs,...
'MiniBatchSize',miniBatchSize, ...
'SequenceLength', 'longest', ...
'Shuffle','every-epoch', ...
'Verbose', 1, ...
'InitialLearnRate',optimvars.InitialLearnRate,...
'L2Regularization',optimvars.L2Regularization,...
'Plots','training-progress');
objFcn = makeObj(Xtrain,YTrain);
bayesObj = bayesopt(objFcn,optimvars, ...
'MaxTime', 14*60*60, ...
'IsObjectiveDeterministic',false,...
'UseParallel',false);
Where am i going wrong as i get the following error:
Unrecognized method, property, or field 'InitialLearnRate' for class 'optimizableVariable'.
Error in AllVsIndx (line 236)
'InitialLearnRate',optimvars.InitialLearnRate,...
The documentation regarding bayesian optimization is very vague especially when it comes to implementation with LSTM networks
Any help would be appreciated
Thanks
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採用された回答
Jorge Calvo
2021 年 5 月 27 日
If you have R2020b or later, you can use the Experiment Manager app to run Bayesian optimization to determine the best combination of hyperparameters. For more information, see https://www.mathworks.com/help/deeplearning/ug/experiment-using-bayesian-optimization.html.
その他の回答 (2 件)
Don Mathis
2020 年 2 月 25 日
You might find this similar example useful: https://www.mathworks.com/matlabcentral/answers/457788-lstm-time-series-hyperparameter-optimization-using-bayesian-optimization?s_tid=answers_rc1-2_p2_MLT
0 件のコメント
Jorge Calvo
2021 年 10 月 5 日
I thought you would like to know that, in R2021b, we are included an example for training long short-term memory (LSTM) networks using Bayesian optimization in Experiment Manager:
I hope you find it helpful!
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