This highly motivating introduction to statistical learning machines explains underlying principles in nontechnical language, using many examples and figures.
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James D. Malley is a Research Mathematical Statistician in the Mathematical and Statistical Computing Laboratory, Division of Computational Bioscience, Center for Information Technology, at the National Institutes of Health.
Karen G. Malley is president of Malley Research Programming, Inc. in Rockville, Maryland, providing statistical programming services to the pharmaceutical industry and the National Institutes of Health. She also serves on the global council of the Clinical Data Interchange Standards Consortium (CDISC) user network, and the steering committee of the Washington, DC area CDISC user network.
Sinisa Pajevic is a Staff Scientist in the Mathematical and Statistical Computing Laboratory, Division of Computational Bioscience, Center for Information Technology, at the National Institutes of Health.
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Destinos, gastos y plazos de envíoLibrería: AMM Books, Gillingham, KENT, Reino Unido
Paperback. Condición: Very Good. Unread. In stock ready to dispatch from the UK. Nº de ref. del artículo: mon0000198841
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Librería: MusicMagpie, Stockport, Reino Unido
Condición: Very Good. 1747152032. 5/13/2025 4:00:32 PM. Nº de ref. del artículo: U9780521699099
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Librería: Bill & Ben Books, Faringdon, Reino Unido
Paperback. Condición: Very Good. This book is for anyone who has biomedical data and needs to identify variables that predict an outcome, for two-group outcomes such as tumor/not-tumor, survival/death, or response from treatment. Statistical learning machines are ideally suited to these types of prediction problems, especially if the variables being studied may not meet the assumptions of traditional techniques. Learning machines come from the world of probability and computer science but are not yet widely used in biomedical research. This introduction brings learning machine techniques to the biomedical world in an accessible way, explaining the underlying principles in nontechnical language and using extensive examples and figures. The authors connect these new methods to familiar techniques by showing how to use the learning machine models to generate smaller, more easily interpretable traditional models. Coverage includes single decision trees, multiple-tree techniques such as Random Forests (TM), neural nets, support vector machines, nearest neighbors and boosting. Nº de ref. del artículo: 0103749
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Librería: Cotswold Internet Books, Cheltenham, Reino Unido
Condición: Used - Very Good. VG paperback. 1st ed. A bright copy, almost as-new. Nº de ref. del artículo: BOOKS224769I
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Librería: Romtrade Corp., STERLING HEIGHTS, MI, Estados Unidos de America
Condición: New. This is a Brand-new US Edition. This Item may be shipped from US or any other country as we have multiple locations worldwide. Nº de ref. del artículo: ABNR-36537
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Librería: Majestic Books, Hounslow, Reino Unido
Condición: New. pp. 298 47 Illus. Nº de ref. del artículo: 6826261
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Librería: Romtrade Corp., STERLING HEIGHTS, MI, Estados Unidos de America
Condición: New. This is a Brand-new US Edition. This Item may be shipped from US or any other country as we have multiple locations worldwide. Nº de ref. del artículo: ABNR-184944
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Librería: Books Puddle, New York, NY, Estados Unidos de America
Condición: New. pp. 298 Index. Nº de ref. del artículo: 262070218
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Librería: Academybookshop, Long Island City, NY, Estados Unidos de America
Paperback. Condición: Very Good. In fine, clean condition, with a TEAR or a DENT on the cover, clean pages. Nº de ref. del artículo: D-06066
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Librería: Labyrinth Books, Princeton, NJ, Estados Unidos de America
Condición: New. Nº de ref. del artículo: 159042
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