Robust Representation for Data Analytics Robust Representation for Data Analytics
Advanced Information and Knowledge Processing

Robust Representation for Data Analytics

Models and Applications

    • US$99.99
    • US$99.99

출판사 설명

This book introduces the concepts and models of robust representation learning, and provides a set of solutions to deal with real-world data analytics tasks, such as clustering, classification, time series modeling, outlier detection, collaborative filtering, community detection, etc. Three types of robust feature representations are developed, which extend the understanding of graph, subspace, and dictionary.
Leveraging the theory of low-rank and sparse modeling, the authors develop robust feature representations under various learning paradigms, including unsupervised learning, supervised learning, semi-supervised learning, multi-view learning, transfer learning, and deep learning. Robust Representations for Data Analytics covers a wide range of applications in the research fields of big data, human-centered computing, pattern recognition, digital marketing, web mining, and computer vision.

장르
컴퓨터 및 인터넷
출시일
2017년
8월 9일
언어
EN
영어
길이
235
페이지
출판사
Springer International Publishing
판매자
Springer Nature B.V.
크기
4.5
MB
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