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[其他] Matrix and Tensor Factorization Techniques for Recommender Systems [推广有奖]

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igs816 在职认证  发表于 2017-3-1 13:53:48 |AI写论文

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Matrix and Tensor Factorization Techniques for Recommender Systems.jpg
English | PDF | 2016 | 101 Pages | ISBN : 3319413562 | 2.79 MB

This book presents the algorithms used to provide recommendations by exploiting matrix factorization and tensor decomposition techniques.
It highlights well-known decomposition methods for recommender systems, such as Singular Value Decomposition (SVD), UV-decomposition, Non-negative Matrix Factorization (NMF), etc. and describes in detail the pros and cons of each method for matrices and tensors. This book provides a detailed theoretical mathematical background of matrix/tensor factorization techniques and a step-by-step analysis of each method on the basis of an integrated toy example that runs throughout all its chapters and helps the reader to understand the key differences among methods. It also contains two chapters, where different matrix and tensor methods are compared experimentally on real data sets, such as Epinions, GeoSocialRec, Last.fm, BibSonomy, etc. and provides further insights into the advantages and disadvantages of each method.
The book offers a rich blend of theory and practice, making it suitable for students, researchers and practitioners interested in both recommenders and factorization methods. Lecturers can also use it for classes on data mining, recommender systems and dimensionality reduction methods.

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关键词:Recommender Techniques Recommend Technique Systems Matrix

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crossbone254(真实交易用户) 发表于 2017-3-1 16:09:26
Matrix and Tensor Factorization Techniques for Recommender Systems

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franky_sas(未真实交易用户) 发表于 2017-3-1 17:29:58

板凳
aggiewe(真实交易用户) 发表于 2017-3-1 17:38:00
see..............

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fengyg(未真实交易用户) 企业认证  发表于 2017-3-1 18:34:13
kankan

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kavakava(真实交易用户) 在职认证  发表于 2017-3-1 21:32:54
thanks

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stormchao(真实交易用户) 在职认证  发表于 2017-3-2 01:09:42
不错的好书

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w-long(真实交易用户) 发表于 2017-3-2 07:22:33 来自手机
thanks

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CRRAO(真实交易用户) 发表于 2017-3-2 08:25:25
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sqy(未真实交易用户) 发表于 2017-3-2 09:01:31
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