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Realtime Data Mining
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Realtime Data Mining : Self-Learning Techniques for Recommendation Engines

1st ed. 2013. Corr. 2nd printing 2014

Book Details

Format Hardback or Cased Book
ISBN-10 3319013203
ISBN-13 9783319013206
Edition 1st ed. 2013. Corr. 2nd printing 2014
Publisher Birkhauser Verlag AG
Imprint Birkhauser Verlag AG
Country of Manufacture CH
Country of Publication GB
Publication Date Dec 16th, 2013
Print length 313 Pages
Weight 682 grams
Dimensions 24.30 x 15.80 x 2.40 cms
Ksh 16,200.00
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????Describing novel mathematical concepts for recommendation engines, Realtime Data Mining: Self-Learning Techniques for Recommendation Engines features a sound mathematical framework unifying approaches based on control and learning theories, tensor factorization, and hierarchical methods.
????Describing novel mathematical concepts for recommendation engines, Realtime Data Mining: Self-Learning Techniques for Recommendation Engines features a sound mathematical framework unifying approaches based on control and learning theories, tensor factorization, and hierarchical methods. Furthermore, it presents promising results of numerous experiments on real-world data.? The area of realtime data mining is currently developing at an exceptionally dynamic pace, and realtime data mining systems are the counterpart of today's “classic” data mining systems. Whereas the latter learn from historical data and then use it to deduce necessary actions, realtime analytics systems learn and act continuously and autonomously. In the vanguard of these new analytics systems are recommendation engines. They are principally found on the Internet, where all information is available in realtime and an immediate feedback is guaranteed.  This monograph appeals to computer scientists and specialists in machine learning, especially from the area of recommender systems, because it conveys a new way of realtime thinking by considering recommendation tasks as control-theoretic problems. Realtime Data Mining: Self-Learning Techniques for Recommendation Engines will also interest application-oriented mathematicians because it consistently combines some of the most promising mathematical areas, namely control theory, multilevel approximation, and tensor factorization.

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