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Statistical Data Analytics: Foundations for Data Mining, Informatics, and Knowledge Discovery [Hardcover]

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  • Category: Books (Mathematics)
  • Author:  Piegorsch, Walter W.
  • Author:  Piegorsch, Walter W.
  • ISBN-10:  111861965X
  • ISBN-10:  111861965X
  • ISBN-13:  9781118619650
  • ISBN-13:  9781118619650
  • Publisher:  Wiley
  • Publisher:  Wiley
  • Pages:  488
  • Pages:  488
  • Binding:  Hardcover
  • Binding:  Hardcover
  • Pub Date:  01-May-2015
  • Pub Date:  01-May-2015
  • SKU:  111861965X-11-SPLV
  • SKU:  111861965X-11-SPLV
  • Item ID: 105337828
  • List Price: $131.95
  • Seller: ShopSpell
  • Ships in: 2 business days
  • Transit time: Up to 5 business days
  • Delivery by: Oct 07 to Oct 09
  • Notes: Brand New Item. Not shipped to AK, HI, APO, FPO, AE.
Statistical Data Analytics

Statistical Data Analytics

Foundations for Data Mining, Informatics, and Knowledge Discovery

A comprehensive introduction to statistical methods for data mining and knowledge discovery

Applications of data mining and big data increasingly take center stage in our modern, knowledge-driven society, supported by advances in computing power, automated data acquisition, social media development and interactive, linkable internet software. This book presents a coherent, technical introduction to modern statistical learning and analytics, starting from the core foundations of statistics and probability. It includes an overview of probability and statistical distributions, basics of data manipulation and visualization, and the central components of standard statistical inferences. The majority of the text extends beyond these introductory topics, however, to supervised learning in linear regression, generalized linear models, and classification analytics. Finally, unsupervised learning via dimension reduction, cluster analysis, and market basket analysis are introduced.

Extensive examples using actual data (with sample R programming code) are provided, illustrating diverse informatic sources in genomics, biomedicine, ecological remote sensing, astronomy, socioeconomics, marketing, advertising and finance, among many others.

Statistical Data Analytics:

  • Focuses on methods critically used in data mining and statistical informatics. Coherently describes the methods at an introductory level, with extensions to selected intermediate and advanced techniques.
  • Provides informative, technical details for the highlighted methods.
  • Employs the open-source R language as the computational vehicle  along with its burgeoning collection of online packages  to illustrate mală&
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