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Statistical Modeling and Machine Learning for Molecular Biology

Part of the Chapman & Hall/CRC Computational Biology Series series
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Molecular biologists are performing increasingly large and complicated experiments, but often have little background in data analysis.

The book is devoted to teaching the statistical and computational techniques molecular biologists need to analyze their data.

It explains the big-picture concepts in data analysis using a wide variety of real-world molecular biological examples such as eQTLs, ortholog identification, motif finding, inference of population structure, protein fold prediction and many more.

The book takes a pragmatic approach, focusing on techniques that are based on elegant mathematics yet are the simplest to explain to scientists with little background in computers and statistics.

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£153.00 Save 15.00%
RRP £180.00
Product Details
CRC Press
1138407216 / 9781138407213
Hardback
572.8
27/07/2017
United Kingdom
280 pages
156 x 234 mm, 453 grams