December 2018
Intermediate to advanced
158 pages
3h 58m
English
In this chapter, we have explored linear models and applied them to the tasks of linear regression, logistic regression, and multi-class classification. We have seen how autograd calculates gradients and how PyTorch works with computational graphs. The multi-class classification model we built did a reasonable job of predicting hand-written digits; however, its performance is far from optimal. The best deep learning models are able to get near 100% accuracy on this dataset.
We will see in Chapter 4, Convolutional Networks, how adding more layers and using convolutional networks can improve performance.
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