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Accept non-mlr3 fitted model #9

@jemus42

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@jemus42

Two possible routes:

  1. Official mlr3 machinery to promote a fitted model to the corresponding mlr3 learner
  2. Learner-specific predictor-function wrappers like in iml, mlr3summary etc.

If 1) is an option, it would definitely preferred, but this is unclear for now.

Before this happens we need to address #4, such that infrastructure is in place to use a trained learner and a dedicated test dataset (or still a task uses as full-on test-set?)

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    Prio: LowenhancementExtends package features in some wayquestionUnclear how to proceed without further info / discussion

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