January 2019
Intermediate to advanced
294 pages
6h 43m
English
So far, we have learned that no two models will give the same result. In other words, different combinations of data or algorithms will result in a different outcome. This outcome can be good for a particular combination and not so good for another combination. What if we have a model that tries to take these combinations into account and comes up with a generalized and better result? This is called an ensemble model.
In this chapter, we will be learning about a number of concepts in regard to ensemble modeling, which are as follows:
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