- Describe the concept of transfer learning.
- When can the transfer learning process bring good results?
- What are the differences between transfer learning and fine-tuning?
- If a model has been trained on a small dataset with low variance (similar examples), is it an excellent candidate to be used as a fixed-feature extractor for transfer learning?
- The flower classifier built in the transfer learning section has no performance evaluation on the test dataset: add it.
- Extend the flower classifier source code, making it log the metrics on TensorBoard. Use the summary writers that are already defined.
- Extend the flower classifier to save the training status using a checkpoint (and its checkpoint manager).
- Create a second checkpoint for the model that reached the highest validation accuracy.
- Since the model suffers from overfitting, a good test is to reduce the number of neurons...
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