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Stacking

Stacking in machine learning is a similar to boosting: you also apply several models to your original data.

The difference here is, however, that you don't have just an empirical formula for your weight function, rather you introduce a meta-level and use another model/approach to estimate the input together with outputs of every model to estimate the weights or, in other words, to determine what models perform well and what badly given these input data.



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