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Jae K. Lee
人物简介:
Statistical Bioinformatics书籍相关信息
- ISBN:9780471692720
- 作者:Jae K. Lee
- 出版社:Wiley-Blackwell
- 出版时间:2010-03-01
- 页数:370
- 价格:USD 99.95
- 纸张:暂无纸张
- 装帧:Paperback
- 开本:暂无开本
- 语言:暂无语言
- 适合人群:生物信息学研究者, 生物统计学专家, 生物医学研究人员, 数据科学家, 从事数据分析的生物工程师,对生物信息学感兴趣的本科生和研究生,以及需要生物信息学背景的跨学科研究人员
- TAG:统计学 / 数据分析 / 机器学习 / 生物统计学 / 生物信息学 / 计算生物学 / 生物医学研究 / 生物数据 / 机器学习在生物学中的应用
- 豆瓣评分:暂无豆瓣评分
- 更新时间:2025-05-07 14:44:21
内容简介:
This book provides an essential understanding of statistical concepts necessary for the analysis of genomic and proteomic data using computational techniques. The author presents both basic and advanced topics, focusing on those that are relevant to the computational analysis of large data sets in biology. Chapters begin with a description of a statistical concept and a current example from biomedical research, followed by more detailed presentation, discussion of limitations, and problems. The book starts with an introduction to probability and statistics for genome-wide data, and moves into topics such as clustering, classification, multi-dimensional visualization, experimental design, statistical resampling, and statistical network analysis. Clearly explains the use of bioinformatics tools in life sciences research without requiring an advanced background in math/statistics Enables biomedical and life sciences researchers to successfully evaluate the validity of their results and make inferences Enables statistical and quantitative researchers to rapidly learn novel statistical concepts and techniques appropriate for large biological data analysis Carefully revisits frequently used statistical approaches and highlights their limitations in large biological data analysis Offers programming examples and datasets Includes chapter problem sets, a glossary, a list of statistical notations, and appendices with references to background mathematical and technical material Features supplementary materials, including datasets, links, and a statistical package available online Statistical Bioinformatics is an ideal textbook for students in medicine, life sciences, and bioengineering, aimed at researchers who utilize computational tools for the analysis of genomic, proteomic, and many other emerging high-throughput molecular data. It may also serve as a rapid introduction to the bioinformatics science for statistical and computational students and audiences who have not experienced such analysis tasks before.
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