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Machine Learning in Early Genetic Detection of Multiple Sclerosis Disease: A Survey

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Author :  Nehal M. Ali1 , Mohamed Shaheen2 , Mai S. Mabrouk3 and Mohamed A. AboRezka1

Affiliation :  College of Computing and Information Technology, Arab Academy for Science Technology and Maritime Transport, Cairo, Egypt

Country :  Egypt

Category :  Computer Science & Information Technology

Volume, Issue, Month, Year :  12, 5, October, 2020

Abstract :


Multiple sclerosis disease is a main cause of non-traumatic disabilities and one of the most common neurological disorders in young adults over many countries. In this work, we introduce a survey study of the utilization of machine learning methods in Multiple Sclerosis early genetic disease detection methods incorporating Microarray data analysis and Single Nucleotide Polymorphism data analysis and explains in details the machine learning methods used in literature. In addition, this study demonstrates the future trends of Next Generation Sequencing data analysis in disease detection and sample datasets of each genetic detection method was included .in addition, the challenges facing genetic disease detection were elaborated.

Keyword :  Multiple sclerosis, Machine learning, Microarray, Single Nucleotide Polymorphism, early disease detection, Next Generation Sequencing.

Journal/ Proceedings Name :  International Journal of Computer Science & Information Technology (IJCSIT)

URL :  https://aircconline.com/ijcsit/V12N5/12520ijcsit01.pdf

User Name : Selina
Posted 09-09-2026 on 10:30:31 AEDT



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