Model testing - Deepstash

Model testing

While the model is trained and tuned using the training and validation data set, the model will behave differently when used in the real world, which is fine.

The main objective is to minimise the change in model behaviour when it is deployed. Three data sets are used when experiments are carried out: training, validation, and testing.

  • If the model performs poorly on the training data, select a better algorithm, increase data quality, or feed more data into the model.
  • If the model does not perform well on testing data, the model may not extend the algorithm, and more data needs to be added.

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