as-asl: Algorithm Selection with Auto-sklearn

نویسندگان

  • Brandon Malone
  • Kustaa Kangas
  • Matti Järvisalo
  • Mikko Koivisto
  • Marius Lindauer
  • Jan N. van Rijn
  • Lars Kotthoff
چکیده

In this paper, we describe our algorithm selection with Auto-sklearn (as-asl) software as it was entered in the 2017 Open Algorithm Selection Challenge. as-asl first selects informative sets of features and then uses those to predict distributions of algorithm runtimes. A classifier uses those predictions, as well as the informative features, to select an algorithm for each problem instance. Our source code is publicly available with the permissive MIT license.

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تاریخ انتشار 2017