Microarray Image and Data Analysis: Digital Imaging and Computer Vision
Editat de Luis Ruedaen Limba Engleză Paperback – 12 iun 2019
- Describes the key stages of image processing, gridding, segmentation, compression, quantification, and normalization
- Features cutting-edge approaches to clustering, biclustering, and the reconstruction of regulatory networks
- Covers different types of microarrays such as DNA, protein, tissue, and low- and high-density oligonucleotide arrays
- Examines the current state of various microarray technologies, including their availability and affordability
- Explains how data generated by microarray experiments are analyzed to obtain meaningful biological conclusions
| Toate formatele și edițiile | Preț | Express |
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| Paperback (1) | 490.61 lei 6-8 săpt. | |
| Taylor & Francis Ltd (Sales) – 12 iun 2019 | 490.61 lei 6-8 săpt. | |
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| CRC Press – 6 mar 2014 | 708.85 lei 6-8 săpt. |
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Specificații
ISBN-13: 9781138374805
ISBN-10: 1138374806
Pagini: 520
Ilustrații: 51 Tables, black and white; 137 Illustrations, black and white
Dimensiuni: 156 x 234 x 27 mm
Greutate: 0.72 kg
Editura: Taylor & Francis Ltd (Sales)
Seria Digital Imaging and Computer Vision
ISBN-10: 1138374806
Pagini: 520
Ilustrații: 51 Tables, black and white; 137 Illustrations, black and white
Dimensiuni: 156 x 234 x 27 mm
Greutate: 0.72 kg
Editura: Taylor & Francis Ltd (Sales)
Seria Digital Imaging and Computer Vision
Cuprins
Introduction to Microarrays. Biological Aspects: Types and Applications of Microarrays. Gridding Methods for DNA Microarray Images. Machine Learning-Based DNA Microarray Image Gridding. Non-Statistical Segmentation Methods for DNA Microarray Images. Statistical Segmentation Methods for DNA Microarray Images. Microarray Image Restoration and Noise Filtering. Compression of DNA Microarray Images. Image Processing of Affymetrix Microarrays. Treatment of Noise and Artifacts in Affymetrix Arrays. Quality Control and Analysis Algorithms for Tissue Microarrays. CNV-Interactome-Transcriptome Integration. Mining Gene-Sample-Time Microarray Data. Systematic and Stochastic Biclustering Algorithms for Microarray Data Analysis. Reconstruction of Regulatory Networks from Microarray Data. Multidimensional Visualization of Microarray Data. Bioconductor Tools for Microarray Data Analysis.
Notă biografică
Luis Rueda is professor for the School of Computer Science, University of Windsor, Ontario, Canada. Before joining the University of Windsor, he earned a Ph.D from Carleton University, Ottawa, Ontario, Canada and spent two years at the University of Concepción, Chile. A member of IEEE, the Association for Computing Machinery, and the International Society for Computational Biology, he holds three patents on data encryption, secrecy, and stealth; has published over 100 journal and conference papers; and has participated in numerous editorial and technical committees. His research is primarily focused on machine learning and pattern recognition in transcriptomics, interactomics, and genomics.
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This book is a compilation of the latest microarray image and data analysis methods from the multidisciplinary international research community. Delivering a detailed discussion of the biological aspects and applications of different types of microarrays, it examines the current state of microarray technology and describes the key stages of image processing, gridding, segmentation, compression, quantification, and normalization. Featuring cutting-edge approaches to clustering and the reconstruction of regulatory networks, the book explains how data generated by microarray experiments are analyzed to obtain meaningful biological conclusions.
This book is a compilation of the latest microarray image and data analysis methods from the multidisciplinary international research community. Delivering a detailed discussion of the biological aspects and applications of different types of microarrays, it examines the current state of microarray technology and describes the key stages of image processing, gridding, segmentation, compression, quantification, and normalization. Featuring cutting-edge approaches to clustering and the reconstruction of regulatory networks, the book explains how data generated by microarray experiments are analyzed to obtain meaningful biological conclusions.