Top-k Parametrized Boost

نویسندگان

  • Turki Turki
  • Muhammad Ihsan
  • Nouf Turki
  • Jie Zhang
  • Usman Roshan
  • Zhi Wei
چکیده

Ensemble methods such as AdaBoost are popular machine learning methods that create highly accurate classifier by combining the predictions from several classifiers. We present a parametrized method of AdaBoost that we call Top-k Parametrized Boost. We evaluate our and other popular ensemble methods from a classification perspective on several real datasets. Our empirical study shows that our method gives the minimum average error with statistical significance on the datasets.

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تاریخ انتشار 2014