作者
Muhammad Umar Nasir, Mohammed Gollapalli, Muhammad Zubair, Muhammad Aamer Saleem, Shahid Mehmood, Muhammad Adnan Khan, Amir Mosavi
发表日期
2022/6/29
期刊
IEEE Access
卷号
10
页码范围
70317-70328
出版商
IEEE
简介
A major and essential issue in biomedical research is to predict genome disorder. Genome disorders cause multivariate diseases like cancer, dementia, diabetes, cystic fibrosis, leigh syndrome, etc. which are causes of high mortality rates around the world. In past, theoretical and explanatory-based approaches were introduced to predict genome disorder. With the development of technology, genetic data were improved to cover almost genome and protein then machine and deep learning-based approaches were introduced to predict genome disorder. Parallel machine and deep learning approaches were introduced. In past, many types of research were conducted on genome disorder prediction using supervised, unsupervised, and semi-supervised learning techniques, most of the approaches using binary problem prediction using genetic sequence data. The prediction results of these approaches were …
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