Multimodal Data Fusion for Bioinformatics by Umesh Kumar Lilhore(.PDF)

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Multimodal Data Fusion for Bioinformatics Artificial Intelligence by Umesh Kumar Lilhore, Abhishek Kumar, Narayan Vyas, Sarita Simaiya
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Overview: Multimodal Data Fusion for Bioinformatics Artificial Intelligence is a must-have for anyone interested in the intersection of AI and bioinformatics, as it delves into innovative data fusion methods and their applications in ‘omics’ research while addressing the ethical implications and future developments shaping the field today. Multimodal Data Fusion for Bioinformatics Artificial Intelligence is an indispensable resource for those exploring how cutting-edge data fusion methods interact with the rapidly developing field of bioinformatics. Beginning with the basics of integrating different data types, this book delves into the use of AI for processing and understanding complex “omics” data, ranging from genomics to metabolomics. The revolutionary potential of AI techniques in bioinformatics is thoroughly explored, including the use of neural networks, graph-based algorithms, single-cell RNA sequencing, and other cutting-edge topics. The second half of the book focuses on the ethical and practical implications of using AI in bioinformatics. The applications of Machine Learning are gaining popularity in various fields day by day. Bioinformatics is one of the fields in which automated Machine Learning, AutoML, has great potential in the future. AutoML can be used to create the predictive models and find certain patterns in biological data.
Genre: Non-Fiction > Tech & Devices

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