- What happens if the input values are not scaled in the input dataset?
- What could happen if the background has a white pixel color while the content has a black pixel color when you're training a neural network?
- What impact does the batch size have on the model's training time, as well as its accuracy over a given number of epochs?
- What impact does the input value range have on the weight distribution at the end of the training?
- How does batch normalization help improve accuracy?
- How do we know if a model has overfitted on training data?
- How does regularization help in avoiding overfitting?
- How do L1 and L2 regularization differ?
- How does dropout help in reducing overfitting?
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