Identification of Biomarker on Biological and Gene Expression data using Fuzzy Preference Based Rough Set

Author:

Begum Shemim1,Sarkar Ram2,Chakraborty Debasis3,Maulik Ujjwal4

Affiliation:

1. Govt College of Engg. & Textile Technology, Dept. of CSE , Berhampore , Murshidabad, West Bengal , India

2. Jadavpur University Ringgold standard institution – Computer Science and Engineering , Jadavpur India

3. MCET – ECE , Berhampore , West Bengal , India

4. Jadavpur University Ringgold standard institution – CSE , Kolkata , West Bengal , India

Abstract

Abstract Cancer is fast becoming an alarming cause of human death. However, it has been reported that if the disease is detected at an early stage, diagnosed, treated appropriately, the patient has better chances of survival long life. Machine learning technique with feature-selection contributes greatly to the detecting of cancer, because an efficient feature-selection method can remove redundant features. In this paper, a Fuzzy Preference-Based Rough Set (FPRS) blended with Support Vector Machine (SVM) has been applied in order to predict cancer biomarkers for biological and gene expression datasets. Biomarkers are determined by deploying three models of FPRS, namely, Fuzzy Upward Consistency (FUC), Fuzzy Downward Consistency (FLC), and Fuzzy Global Consistency (FGC). The efficiency of the three models with SVM on five datasets is exhibited, and the biomarkers that have been identified from FUC models have been reported.

Publisher

Walter de Gruyter GmbH

Subject

Artificial Intelligence,Information Systems,Software

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