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Hi
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Most filters quantify the benefit of features in a univariate fashion. If the interactions between features are sufficiently complicated, simple filtering techniques will not work. OTOH, if you tune the filter parameters and pick a model which can handle useless/noisy features well, your tuner will configure the filter to let most features pass. Compared to a full-blown feature selection approach, the performance will be similar, but the set of selected features will be less sparse. So ultimately, it depends on why you want to select/filter features in the first place:
You can find a comparison of filters in our benchmark, and I recommend this article as an introduction to FS. |
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Hi,
It is dfficult to find examples on how tu use mlr3filters with mlr3pipelines. That is, how to incorporate features filtering with other preprocessing and modelling steps.
I have several doubts:
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