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Dataset shift in machine learning / / [edited by] Joaquin Quinonero-Candela ... [et al.]



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Titolo: Dataset shift in machine learning / / [edited by] Joaquin Quinonero-Candela ... [et al.] Visualizza cluster
Pubblicazione: Cambridge, Mass., : MIT Press, c2009
Edizione: 1st ed.
Descrizione fisica: 1 online resource (246 p.)
Disciplina: 006.3/1
Soggetto topico: Machine learning
Machine learning - Mathematical models
Altri autori: Quinonero-CandelaJoaquin  
Note generali: Description based upon print version of record.
Nota di bibliografia: Includes bibliographical references and index.
Nota di contenuto: Contents; Series Foreword; Preface; I - Introduction to Dataset Shift; 1 - When Training and Test Sets Are Different: Characterizing Learning Transfer; 2 - Projection and Projectability; II - Theoretical Views on Dataset and Covariate Shift; 3 - Binary Classi cation under Sample Selection Bias; 4 - On Bayesian Transduction: Implications for the Covariate Shift Problem; 5 - On the Training/Test Distributions Gap: A Data Representation Learning Framework; III - Algorithms for Covariate Shift; 6 - Geometry of Covariate Shift with Applications to Active Learning
7 - A Conditional Expectation Approach to Model Selection and Active Learning under Covariate Shift 8 - Covariate Shift by Kernel Mean Matching; 9 - Discriminative Learning under Covariate Shift with a Single Optimization Problem; 10 - An Adversarial View of Covariate Shift and a Minimax Approach; IV - Discussion; 11 - Author Comments; References; Notation and Symbols; Contributors; Index
Sommario/riassunto: 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.
Titolo autorizzato: Dataset shift in machine learning  Visualizza cluster
ISBN: 0-262-29253-X
1-282-24038-2
0-262-25510-3
Formato: Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione: Inglese
Record Nr.: 9910812927803321
Lo trovi qui: Univ. Federico II
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Serie: Neural information processing series.