Best Feature Selection for Horizontally Distributed Private Biomedical Data Based on Genetic Algorithms

Author:

Tarik Boudheb1,Zakaria Elberrichi1ORCID

Affiliation:

1. EEDIS Laboratory, Djillali Liabes University, Sidi Bel Abbès, Algeria

Abstract

Due to the growing success of machine learning in the healthcare domain, medical institutions are striving to share their patients' data in the intention to build more accurate models which will be used to make better decisions. However, due to the privacy of the data, they are reluctant. To build the best models, they have to make the best feature selection for horizontally distributed private biomedical data. The previous proposed solutions are based on data perturbation techniques with the loss of performance. In this article, the researchers propose an original solution without perturbation. This is so the data utility is preserved and therefore the performance. The proposed solution uses a genetic algorithm, a distributed Naïve Bayes classifier, and a trusted third-party. The results obtained by the proposed approach surpass those obtained by other researchers, for the same problem.

Publisher

IGI Global

Subject

Computer Networks and Communications,Hardware and Architecture

Reference20 articles.

1. Data Mining Techniques in Medical Informatics

2. Privacy preserving feature selection for distributed data using virtual dimension

3. Brownlee, J. (2014, October 6). An Introduction to Feature Selection. Machine Learning Mastery. Retrieved from https://machinelearningmastery.com/an-introduction-to-feature-selection/

4. Stable Feature Selection with Privacy Preserving Data Mining Algorithm

5. Feature Selection for Medical Data Mining: Comparisons of Expert Judgment and Automatic Approaches

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