M. Emre Celebi 
Partitional Clustering Algorithms [PDF ebook] 

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This book focuses on partitional clustering algorithms, which are commonly used in engineering and computer scientific applications. The goal of this volume is to summarize the state-of-the-art in partitional clustering. The book includes such topics as center-based clustering, competitive learning clustering and density-based clustering. Each chapter is contributed by a leading expert in the field.

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表中的内容

Recent developments in model-based clustering with applications.- Accelerating Lloyd’s algorithm for k-means clustering.- Linear, Deterministic, and Order-Invariant Initialization Methods for the K-Means Clustering Algorithm.- Nonsmooth optimization based algorithms in cluster analysis.- Fuzzy Clustering Algorithms and Validity Indices for Distributed Data.- Density Based Clustering: Alternatives to DBSCAN.- Nonnegative matrix factorization for interactive topic modeling and document clustering.- Overview of overlapping partitional clustering methods.- On Semi-Supervised Clustering.- Consensus of Clusterings based on High-order Dissimilarities.- Hubness-Based Clustering of High-Dimensional Data.- Clustering for Monitoring Distributed Data Streams.

关于作者

Dr. Emre Celebi is an Associate Professor with the Department of Computer Science, at Louisiana State University in Shreveport.

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语言 英语 ● 格式 PDF ● 网页 415 ● ISBN 9783319092591 ● 文件大小 8.5 MB ● 编辑 M. Emre Celebi ● 出版者 Springer International Publishing ● 市 Cham ● 国家 CH ● 发布时间 2014 ● 下载 24 个月 ● 货币 EUR ● ID 3534480 ● 复制保护 社会DRM

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