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Titlebook: Computational Intelligence in Data Mining; Giacomo Riccia,Rudolf Kruse,Hanz-J. Lenz Conference proceedings 2000 Springer-Verlag Wien 2000

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發(fā)表于 2025-3-21 19:43:53 | 只看該作者 |倒序瀏覽 |閱讀模式
書目名稱Computational Intelligence in Data Mining
編輯Giacomo Riccia,Rudolf Kruse,Hanz-J. Lenz
視頻videohttp://file.papertrans.cn/233/232479/232479.mp4
叢書名稱CISM International Centre for Mechanical Sciences
圖書封面Titlebook: Computational Intelligence in Data Mining;  Giacomo Riccia,Rudolf Kruse,Hanz-J. Lenz Conference proceedings 2000 Springer-Verlag Wien 2000
描述The book aims to merge Computational Intelligence with Data Mining, which are both hot topics of current research and industrial development, Computational Intelligence, incorporates techniques like data fusion, uncertain reasoning, heuristic search, learning, and soft computing. Data Mining focuses on unscrambling unknown patterns or structures in very large data sets. Under the headline "Discovering Structures in Large Databases” the book starts with a unified view on ‘Data Mining and Statistics – A System Point of View’. Two special techniques follow: ‘Subgroup Mining’, and ‘Data Mining with Possibilistic Graphical Models’. "Data Fusion and Possibilistic or Fuzzy Data Analysis” is the next area of interest. An overview of possibilistic logic, nonmonotonic reasoning and data fusion is given, the coherence problem between data and non-linear fuzzy models is tackled, and outlier detection based on learning of fuzzy models is studied. In the domain of "Classification and Decomposition” adaptive clustering and visualisation of high dimensional data sets is introduced. Finally, in the section "Learning and Data Fusion” learning of special multi-agents of virtual soccer is considered.
出版日期Conference proceedings 2000
關鍵詞Artificial Intelligence; Informatik; Künstliche Intelligenz / Computer Science; calculus; classification
版次1
doihttps://doi.org/10.1007/978-3-7091-2588-5
isbn_softcover978-3-211-83326-1
isbn_ebook978-3-7091-2588-5Series ISSN 0254-1971 Series E-ISSN 2309-3706
issn_series 0254-1971
copyrightSpringer-Verlag Wien 2000
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Learning Fuzzy Models and Potential Outliers,nting a more general concept. The outlier-model on the other hand may point out potential areas of interest to the user. Preliminary experiments indicate that the two models in fact have lower complexity and sometimes even offer superior performance.
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Possibilistic Graphical Models,n. Imprecision, understood as set-valued data, has often to be considered in situations in which information is obtained from human observers or imprecise measuring instruments. In this paper we provide an overview on the state of the art of possibilistic networks w.r.t. to propagation and learning algorithms.
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Subgroup Mining,form of a verified (alternative) hypothesis on the distribution of a target variable. Search for deviating subgroups is organized in two phases. In a brute force search, alternative search heuristics can be applied to find a set of deviating subgroups. In a second refinement phase, redundancy elimin
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