Khalid Raza Raza Machine Learning in Single-Cell RNA-seq Data Analysis

Machine Learning in Single-Cell RNA-seq Data Analysis

von Khalid Raza

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Beschreibung

This book provides a concise guide tailored for researchers, bioinformaticians, and enthusiasts eager to unravel the mysteries hidden within single-cell RNA sequencing (scRNA-seq) data using cutting-edge machine learning techniques. The advent of scRNA-seq technology has revolutionized our understanding of cellular diversity and function, offering unprecedented insights into the intricate tapestry of gene expression at the single-cell level. However, the deluge of data generated by these experiments presents a formidable challenge, demanding advanced analytical tools, methodologies, and skills for meaningful interpretation. This book bridges the gap between traditional bioinformatics and the evolving landscape of machine learning. Authored by seasoned experts at the intersection of genomics and artificial intelligence, this book serves as a roadmap for leveraging machine learning algorithms to extract meaningful patterns and uncover hidden biological insights within scRNA-seq datasets. 


This book provides a concise guide tailored for researchers, bioinformaticians, and enthusiasts eager to unravel the mysteries hidden within single-cell RNA sequencing (scRNA-seq) data using cutting-edge machine learning techniques. The advent of scRNA-seq technology has revolutionized our understanding of cellular diversity and function, offering unprecedented insights into the intricate tapestry of gene expression at the single-cell level. However, the deluge of data generated by these experiments presents a formidable challenge, demanding advanced analytical tools, methodologies, and skills for meaningful interpretation. This book bridges the gap between traditional bioinformatics and the evolving landscape of machine learning. Authored by seasoned experts at the intersection of genomics and artificial intelligence, this book serves as a roadmap for leveraging machine learning algorithms to extract meaningful patterns and uncover hidden biological insights within scRNA-seq datasets. 


Covers basic concepts of single cell RNA-seq Discusses integration of ML and scRNA-seq Presents hands-on examples and case studies

Autor*in

Khalid Raza

Themen in »Machine Learning in Single-Cell RNA-seq Data Analysis«

Single Cell Data Analysis Machine Learning in Genomics Single Cell RNA-seq Machine Learning in Single Cell Analysis Gene Expression Analysis Clustering in Single Cell Dimension Reduction in Single Cell Cell Fate Prediction Trajectory Inference Single Cell Multi-Omics Integration PCA in Single Cell TSNE in Single Cell

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Details

ISBN: 9789819767038
Verlag: Springer Singapore
Erscheinung: 02.09.2024

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