May 2019
Intermediate to advanced
456 pages
11h 38m
English
We've already seen that we need to tweak the weights and biases, collectively called the parameters, of our model in order to arrive at a closer approximation of our desired function.
In other words, we need to look through the space of possible functions that can be represented by our model in order to find a function,
, that matches our desired function, f, as closely as possible.
But how would we know how close we are? In fact, since we don't know f, we cannot directly know how close our hypothesis,
, is to f. But what ...
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