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# Multi-step forecasting with recurrent neural network that generates vector output
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# Multi-step forecasting with convolutional neural network
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The hyperparameters of recurrent neural network are tuned using Hyperdrive, a feature of Azure Machine Learning (Azure ML) service. To run this code, open and run the [hyperparameter_tuning.ipynb](../hyperparameter_tuning.ipynb) notebook, and specify [rnn_multistep_config.json](../rnn_multistep_config.json) as the configuration file.
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The hyperparameters of convolutional neural network are tuned using Hyperdrive, a feature of Azure Machine Learning (Azure ML) service. To run this code, open and run the [hyperparameter_tuning.ipynb](../hyperparameter_tuning.ipynb) notebook, and specify [cnn_config.json](../cnn_config.json) as the configuration file.
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### Run hyper-parameter tuning notebook
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Hyper-parameter tuning is done in [hyperparameter_tuning.ipynb](./hyperparameter_tuning.ipynb) notebook. This notebook is used to tune several approaches:
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- Feed-forward network multi-step multivariate approach - [ff_multistep_config.json](ff_multistep_config.json)
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- RNN multi-step approach - [rnn_multistep_config.json](rnn_multistep_config.json)
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- RNN teacher forcing approach - [rnn_teacher_forcing_config.json](rnn_teacher_forcing_config.json)
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- RNN encoder decoder approach - [rnn_encoder_decoder_config.json](rnn_encoder_decoder_config.json)
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- Feed-forward network multi-step multivariate - [ff_multistep_config.json](ff_multistep_config.json)
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- RNN multi-step - [rnn_multistep_config.json](rnn_multistep_config.json)
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- RNN teacher forcing - [rnn_teacher_forcing_config.json](rnn_teacher_forcing_config.json)
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- RNN encoder decoder - [rnn_encoder_decoder_config.json](rnn_encoder_decoder_config.json)
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- CNN - [cnn_config.json](cnn_config.json)
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Each of these use cases is defined in a json configuration file listed above alongside each usecase. To run a specific approach, please specify the appropriate configuration file in the hyperparameter_tuning notebook.
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The running time depends on the size of your Azure ML cluster and the method being tuned.
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The running time depends on the size of your Azure ML cluster and the model being tuned.
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"cell_type": "code",
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"execution_count": null,
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"metadata": {
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"scrolled": true,
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"tags": [
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"install"
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]
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@ -17,7 +17,7 @@ dependencies:
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- ipykernel>=4.6.1
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- jupyter>=1.0.0
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- pip:
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- azureml-sdk
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- azureml-sdk==1.0.39
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- azureml-widgets
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- keras
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- numpy==1.16.3
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