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Applied biclustering methods for big and high dimensional...

Applied biclustering methods for big and high dimensional data using R

Adetayo Kasim, Ziv Shkedy, Sebastian Kaiser, Sepp Hochreiter, Willem Talloen
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Proven Methods for Big Data Analysis

As big data has become standard in many application areas, challenges have arisen related to methodology and software development, including how to discover meaningful patterns in the vast amounts of data. Addressing these problems, Applied Biclustering Methods for Big and High-Dimensional Data Using R shows how to apply biclustering methods to find local patterns in a big data matrix.

The book presents an overview of data analysis using biclustering methods from a practical point of view. Real case studies in drug discovery, genetics, marketing research, biology, toxicity, and sports illustrate the use of several biclustering methods. References to technical details of the methods are provided for readers who wish to investigate the full theoretical background. All the methods are accompanied with R examples that show how to conduct the analyses. The examples, software, and other materials are available on a supplementary website.

카테고리:
년:
2016
출판사:
Chapman and Hall/CRC
언어:
english
페이지:
433
ISBN 10:
1482208245
ISBN 13:
9781482208245
시리즈:
Chapman & Hall/CRC Biostatistics Series
파일:
PDF, 17.15 MB
IPFS:
CID , CID Blake2b
english, 2016
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