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Feature Selection and Ensemble Methods for Bioinformatics: Algorithmic Classification and Implementations PDF

460 Pages·2011·4.754 MB·English
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by Oleg Okun, Lambros Skarlas| 2011| 460 pages| 4.754| English

About Feature Selection and Ensemble Methods for Bioinformatics: Algorithmic Classification and Implementations

Machine learning is the branch of artificial intelligence whose goal is to develop algorithms that add learning capabilities to computers. Ensembles are an integral part of machine learning. A typical ensemble includes several algorithms performing the task of prediction of the class label or the degree of class membership for a given input presented as a set of measurable characteristics, often called features. Feature Selection and Ensemble Methods for Bioinformatics: Algorithmic Classification and Implementations offers a unique perspective on machine learning aspects of microarray gene expression based cancer classification. This multidisciplinary text is at the intersection of computer science and biology and, as a result, can be used as a reference book by researchers and students from both fields. Each chapter describes the process of algorithm design from beginning to end and aims to inform readers of best practices for use in their own research.

Detailed Information

Author:Oleg Okun, Lambros Skarlas
Publication Year:2011
ISBN:9781609605582
Pages:460
Language:English
File Size:4.754
Format:PDF
Price:FREE
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Most books are stored in the elastic cloud where traffic is expensive. For this reason, we have a limit on daily download.