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|a Dataset shift in machine learning /
|c [edited by] Joaquin Quiñonero-Candela [and others].
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|a Cambridge, Mass. :
|b MIT Press,
|c ©2009.
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|a 1 online resource (xv, 229 pages) :
|b illustrations
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|a text
|b txt
|2 rdacontent
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|a computer
|b c
|2 rdamedia
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|a online resource
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|a Neural information processing series
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|a Includes bibliographical references (pages 207-218) and index.
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|a Print version record.
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|3 Use copy
|f Restrictions unspecified
|2 star
|5 MiAaHDL
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|a Electronic reproduction.
|b [Place of publication not identified] :
|c HathiTrust Digital Library,
|d 2010.
|5 MiAaHDL
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|a Master and use copy. Digital master created according to Benchmark for Faithful Digital Reproductions of Monographs and Serials, Version 1. Digital Library Federation, December 2002.
|u http://purl.oclc.org/DLF/benchrepro0212
|5 MiAaHDL
|
583 |
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|a digitized
|c 2010
|h HathiTrust Digital Library
|l committed to preserve
|2 pda
|5 MiAaHDL
|
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|a This work is an overview of recent efforts in the machine learning community to deal with dataset and covariate shift which occurs when test and training inputs and outputs have different distributions.
|
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0 |
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|g I.
|t Introduction to dataset shift --
|g 1.
|t When training and test sets are different: characterizing learning transfer /
|r Amos Storkey --
|g 2.
|t Projection and projectability /
|r David Corfield --
|g II.
|t Theoretical views on dataset and covariate shift --
|g 3.
|t Binary classification under sample selection bias /
|r Matthias Hein --
|g 4.
|t On Bayesian transduction: implications for the covariate shift problem /
|r Lars Kai Hansen --
|g 5.
|t On the training/test distributions gap: a data representation learning framework /
|r Shai Ben-David --
|g III.
|t Algorithms for covariate shift --
|g 6.
|t Geometry of covariate shift with applications to active learning /
|r Takafumi Kanamori and Hidetoshi Shimodaira --
|g 7.
|t A conditional expectation approach to model selection and active learning under covariate shift /
|r Masashi Sugiyama, Neil Rubens and Klaus-Robert Muller --
|g 8.
|t Covariate shift by kernel mean matching /
|r Arthur Grellon, Alex Smola, Jiayuan Huang, Marcel Schmittfull, Karsten Borgwardt and Bernhard Scholkopf --
|g 9.
|t Discriminative learning under covariate shift with a single optimization problem /
|r Steffen Bickel, Michael Bruckner and Tobias Scheffer --
|g 10.
|t An adversarial view of covariate shift and a minimax approach /
|r Amir Globerson, Choon Hui Teo, Alex Smola and Sam Roweis --
|g IV.
|t Discussion --
|g 11.
|t Author comments /
|r Hidetoshi Shimodaira, Masashi Sugiyama, Amos Storkey, Arthur Gretton and Shai-Ben David.
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|a English.
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|a ProQuest Ebook Central
|b Ebook Central Academic Complete
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|a eBooks on EBSCOhost
|b EBSCO eBook Subscription Academic Collection - Worldwide
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|a Machine learning.
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|a Apprentissage automatique.
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|a COMPUTERS
|x Enterprise Applications
|x Business Intelligence Tools.
|2 bisacsh
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|a Machine learning
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|a COMPUTER SCIENCE/Machine Learning & Neural Networks
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|a Quiñonero-Candela, Joaquin.
|
758 |
|
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|i has work:
|a Dataset shift in machine learning (Text)
|1 https://id.oclc.org/worldcat/entity/E39PCGjJCq9gcWkW7tg6gB3TXm
|4 https://id.oclc.org/worldcat/ontology/hasWork
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|i Print version:
|t Dataset shift in machine learning.
|d Cambridge, Mass. : MIT Press, ©2009
|z 9780262170055
|z 0262170051
|w (DLC) 2008020394
|w (OCoLC)227205909
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|a Neural information processing series.
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