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Titlebook: Lazy Learning; David W. Aha Book 1997 Springer Science+Business Media Dordrecht 1997 algorithms.case-based reasoning.classification.cognit

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书目名称Lazy Learning
编辑David W. Aha
视频video
图书封面Titlebook: Lazy Learning;  David W. Aha Book 1997 Springer Science+Business Media Dordrecht 1997 algorithms.case-based reasoning.classification.cognit
描述This edited collection describes recent progress on lazylearning, a branch of machine learning concerning algorithms thatdefer the processing of their inputs, reply to information requests bycombining stored data, and typically discard constructed replies. Itis the first edited volume in AI on this topic, whose many synonymsinclude `instance-based‘, `memory-based‘. `exemplar-based‘, and `locallearning‘, and whose topic intersects case-based reasoning and editedk-nearest neighbor classifiers. It is intended for AI researchers andstudents interested in pursuing recent progress in this branch ofmachine learning, but, due to the breadth of its contributions, itshould also interest researchers and practitioners of data mining,case-based reasoning, statistics, and pattern recognition.
出版日期Book 1997
关键词algorithms; case-based reasoning; classification; cognition; data mining; learning; machine learning
版次1
doihttps://doi.org/10.1007/978-94-017-2053-3
isbn_softcover978-90-481-4860-8
isbn_ebook978-94-017-2053-3
copyrightSpringer Science+Business Media Dordrecht 1997
The information of publication is updating

书目名称Lazy Learning影响因子(影响力)




书目名称Lazy Learning影响因子(影响力)学科排名




书目名称Lazy Learning网络公开度




书目名称Lazy Learning网络公开度学科排名




书目名称Lazy Learning被引频次




书目名称Lazy Learning被引频次学科排名




书目名称Lazy Learning年度引用




书目名称Lazy Learning年度引用学科排名




书目名称Lazy Learning读者反馈




书目名称Lazy Learning读者反馈学科排名




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Locally Weighted Learning for Control,f complex systems. This paper surveys ways in which locally weighted learning, a type of lazy learning, has been applied by us to control tasks. We explain various forms that control tasks can take, and how this affects the choice of learning paradigm. The discussion section explores the interesting
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Voting over Multiple Condensed Nearest Neighbors,condensed nearest neighbor classifier incrementally stores a subset of the sample, thus decreasing storage and computation requirements. We propose to train multiple such subsets and take a vote over them, thus combining predictions from a set of concept descriptions. We investigate two voting schem
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Tolerating Concept and Sampling Shift in Lazy Learning Using Prediction Error Context Switching,at occur in concept shift. Extensions of these algorithms, such as Time-Windowed forgetting (TWF), can permit learning of time-varying mappings by deleting older exemplars, but have decreased classification accuracy when the input-space sampling distribution of the learning set is time-varying. Addi
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