- Why is the prediction on a translated image low when using traditional neural networks?
All images were centered in the original dataset, so the ANN learned the task for only centered images. - How is Convolution done?
Convolution is a multiplication between two matrices. - How are optimal weight values in a filter identified?
Through backpropagation. - How does the combination of convolution and pooling help in addressing the issue of image translation?
While convolution gives important image features, pooling takes the most prominent features in a patch of the image. This makes pooling a robust operation over the vicinity, i.e., even if something is translated by a few pixels, pooling will still return the expected output. - What do the filters in layers closer to the input layer learn?
Low-level features like edges. - What functionality does pooling do that helps in building a model?
It reduces input size by reducing feature map size and...
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