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Titlebook: New Developments in Unsupervised Outlier Detection; Algorithms and Appli Xiaochun Wang,Xiali Wang,Mitch Wilkes Book 2021 Xi‘a(chǎn)n Jiaotong Uni

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發(fā)表于 2025-3-21 18:38:27 | 只看該作者 |倒序瀏覽 |閱讀模式
書目名稱New Developments in Unsupervised Outlier Detection
副標題Algorithms and Appli
編輯Xiaochun Wang,Xiali Wang,Mitch Wilkes
視頻videohttp://file.papertrans.cn/666/665046/665046.mp4
概述Presents algorithms for unsupervised outlier detection using k-nearest neighbor-based methods.Proposes new global and local outlier factors that offer performance comparable to existing solutions.Chal
圖書封面Titlebook: New Developments in Unsupervised Outlier Detection; Algorithms and Appli Xiaochun Wang,Xiali Wang,Mitch Wilkes Book 2021 Xi‘a(chǎn)n Jiaotong Uni
描述This book enriches unsupervised outlier detection research by proposing several new distance-based and density-based outlier scores in a k-nearest neighbors’ setting. The respective chapters highlight the latest developments in k-nearest neighbor-based outlier detection research and cover such topics as our present understanding of unsupervised outlier detection in general; distance-based and density-based outlier detection in particular; and the applications of the latest findings to boundary point detection and novel object detection. The book also offers a new perspective on bridging the gap between k-nearest neighbor-based outlier detection and clustering-based outlier detection, laying the groundwork for future advances in unsupervised outlier detection research..The authors hope the algorithms and applications proposed here will serve as valuable resources for outlier detection researchers for years to come..
出版日期Book 2021
關鍵詞Unsupervised Outlier Detection; Distance-Based Outlier Detection; Density-Based Outlier Detection; k-Ne
版次1
doihttps://doi.org/10.1007/978-981-15-9519-6
isbn_softcover978-981-15-9521-9
isbn_ebook978-981-15-9519-6
copyrightXi‘a(chǎn)n Jiaotong University Press 2021
The information of publication is updating

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978-981-15-9521-9Xi‘a(chǎn)n Jiaotong University Press 2021
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https://doi.org/10.1007/978-981-15-9519-6Unsupervised Outlier Detection; Distance-Based Outlier Detection; Density-Based Outlier Detection; k-Ne
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A ,-Nearest Neighbour Spectral Clustering-Based Outlier Detection Techniquef .-nearest neighbors and spectral clustering techniques to obtain the abnormal data as outliers by using the information of eigenvalues in the feature space statistically. We compare the performance of the proposed method with state-of-the-art outlier detection methods. Experimental results show th
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