Literature DB >> 28987988

Optimal feature selection using a modified differential evolution algorithm and its effectiveness for prediction of heart disease.

T Vivekanandan1, N Ch Sriman Narayana Iyengar2.   

Abstract

Enormous data growth in multiple domains has posed a great challenge for data processing and analysis techniques. In particular, the traditional record maintenance strategy has been replaced in the healthcare system. It is vital to develop a model that is able to handle the huge amount of e-healthcare data efficiently. In this paper, the challenging tasks of selecting critical features from the enormous set of available features and diagnosing heart disease are carried out. Feature selection is one of the most widely used pre-processing steps in classification problems. A modified differential evolution (DE) algorithm is used to perform feature selection for cardiovascular disease and optimization of selected features. Of the 10 available strategies for the traditional DE algorithm, the seventh strategy, which is represented by DE/rand/2/exp, is considered for comparative study. The performance analysis of the developed modified DE strategy is given in this paper. With the selected critical features, prediction of heart disease is carried out using fuzzy AHP and a feed-forward neural network. Various performance measures of integrating the modified differential evolution algorithm with fuzzy AHP and a feed-forward neural network in the prediction of heart disease are evaluated in this paper. The accuracy of the proposed hybrid model is 83%, which is higher than that of some other existing models. In addition, the prediction time of the proposed hybrid model is also evaluated and has shown promising results.
Copyright © 2017 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Big data; Differential evolution; Feature selection; Feed-forward neural network; Fuzzy AHP; Optimization; e-Healthcare

Mesh:

Year:  2017        PMID: 28987988     DOI: 10.1016/j.compbiomed.2017.09.011

Source DB:  PubMed          Journal:  Comput Biol Med        ISSN: 0010-4825            Impact factor:   4.589


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