Analytical Decision Boundary Feature Extraction for Neural Networks

신경망을 위한 해석적 결정경계 특징추출 알고리즘

  • 고진욱 (연세대학교 전기·컴퓨터공학과) ;
  • 이철희 (연세대학교 전기·컴퓨터공학과)
  • Published : 2000.06.01

Abstract

Recently, a feature extraction method based on decision boundary has been proposed for neural networks. The method is based on the fact that all the features necessary to achieve the same classification accuracy as in the original space can be obtained from the vectors normal to decision boundaries. However, the normal vector was estimated numerically. resulting in inaccurate estimation and a long computational time. In this paper. we propose a new method to calculate the normal vector analytically. Experiments show that the proposed method provides a better performance.

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