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A Minimax Probability Machine for Nondecomposable Performance Measures

  • Changzhou University
  • CAS - Institute of Automation
  • University of Chinese Academy of Sciences
  • CAS - Academy of Mathematics and System Sciences

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

Imbalanced classification tasks are widespread in many real-world applications. For such classification tasks, in comparison with the accuracy rate (AR), it is usually much more appropriate to use nondecomposable performance measures such as the area under the receiver operating characteristic curve (AUC) and the Fβ measure as the classification criterion since the label class is imbalanced. On the other hand, the minimax probability machine is a popular method for binary classification problems and aims at learning a linear classifier by maximizing the AR, which makes it unsuitable to deal with imbalanced classification tasks. The purpose of this article is to develop a new minimax probability machine for the Fbeta measure, called minimax probability machine for the Fβ-measures (MPMF), which can be used to deal with imbalanced classification tasks. A brief discussion is also given on how to extend the MPMF model for several other nondecomposable performance measures listed in the article. To solve the MPMF model effectively, we derive its equivalent form which can then be solved by an alternating descent method to learn a linear classifier. Further, the kernel trick is employed to derive a nonlinear MPMF model to learn a nonlinear classifier. Several experiments on real-world benchmark datasets demonstrate the effectiveness of our new model.

Original languageEnglish
Pages (from-to)2353-2365
Number of pages13
JournalIEEE Transactions on Neural Networks and Learning Systems
Volume34
Issue number5
DOIs
StatePublished - 1 May 2023
Externally publishedYes

Keywords

  • Imbalanced classification
  • minimax probability machine
  • nondecomposable performance measures

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