Improved Feature Subset Selection using Hybrid Ant Colony and Perceptron Network

Journal Title: International Journal of Scientific Research and Management - Year 2017, Vol 5, Issue 8

Abstract

As classification accuracy is strongly dependent on the set of features used as input variables. For automatic feature acquisition, the literature provides us with numerous strategies aiming to find a “best” set of feat ures. Thus we need to find a “best” set of features given a constraint on the computational complexity or cost of the feature acquisition, which may dominate the cost of the classifier. In our work we improve on the accuracy of ACO FSS algorithm by incorpo rating the Perceptron Classifier as fitness function of ACO whose classification error is taken as the Cost of Classifier. This method improves on accuracy of selecting minimum number of features with maximum accuracy achieved

Authors and Affiliations

Nidhi Grover

Keywords

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  • EP ID EP314469
  • DOI -
  • Views 95
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How To Cite

Nidhi Grover (2017). Improved Feature Subset Selection using Hybrid Ant Colony and Perceptron Network. International Journal of Scientific Research and Management, 5(8), -. https://europub.co.uk/articles/-A-314469