Isbn: 9789819976560 - dirty data processing for machine learning (18 resultados)

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  • Idioma: Inglés

    Editorial: Springer, 2023

    9819976561 / 9789819976560

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    Librería: StainesBookhub, Weybridge, SURRE, Reino UnidoStainesBookhub

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    Condición: New. A brand new book in pristine condition. Showing zero signs of shelf wear, creases, or damage.

  • Idioma: Inglés

    Editorial: Springer, 2023

    9819976561 / 9789819976560

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    Librería: GreatBookPrices, Columbia, MD, Estados Unidos de AmericaGreatBookPrices

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  • Idioma: Inglés

    Editorial: Springer, 2023

    9819976561 / 9789819976560

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    Librería: GreatBookPricesUK, Woodford Green, Reino UnidoGreatBookPricesUK

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  • Idioma: Inglés

    Editorial: SPRINGER NATURE, 2023

    9819976561 / 9789819976560

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    Librería: Buchpark, Trebbin, AlemaniaBuchpark

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    EUR 75,83

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    Condición: Hervorragend. Zustand: Hervorragend | Sprache: Englisch | Produktart: Bücher | In both the database and machine learning communities, data quality has become a serious issue which cannot be ignored. In this context, we refer to data with quality problems as ¿dirty data.¿ Clearly, for a given data mining or machine learning task, dirty data in both training and test datasets can affect the accuracy of results. Accordingly, this book analyzes the impacts of dirty data and explores effective methods for dirty data processing. Although existing data cleaning methods improve data quality dramatically, the cleaning costs are still high. If we knew how dirty data affected the accuracy of machine learning models, we could clean data selectively according to the accuracy requirements instead of cleaning all dirty data, which entails substantial costs. However, no book to date has studied the impacts of dirty data on machine learning models in terms of data quality. Filling precisely this gap, the book is intended for a broad audience ranging from researchers inthe database and machine learning communities to industry practitioners. Readers will find valuable takeaway suggestions on: model selection and data cleaning; incomplete data classification with view-based decision trees; density-based clustering for incomplete data; the feature selection method, which reduces the time costs and guarantees the accuracy of machine learning models; and cost-sensitive decision tree induction approaches under different scenarios. Further, the book opens many promising avenues for the further study of dirty data processing, such as data cleaning on demand, constructing a model to predict dirty-data impacts, and integrating data quality issues into other machine learning models. Readers will be introduced to state-of-the-art dirty data processing techniques, and the latest research advances, while also finding new inspirations in this field.…

  • Idioma: Inglés

    Editorial: Springer, 2023

    9819976561 / 9789819976560

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    Librería: GreatBookPrices, Columbia, MD, Estados Unidos de AmericaGreatBookPrices

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    EUR 191,55

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  • Idioma: Inglés

    Editorial: Springer, 2023

    9819976561 / 9789819976560

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    Librería: California Books, Miami, FL, Estados Unidos de AmericaCalifornia Books

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    EUR 194,41

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  • Idioma: Inglés

    Editorial: Springer, 2023

    9819976561 / 9789819976560

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    Librería: Ria Christie Collections, Uxbridge, Reino UnidoRia Christie Collections

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    EUR 181,77

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    Condición: New. In English.

  • Idioma: Inglés

    Editorial: Springer, 2023

    9819976561 / 9789819976560

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    Librería: GreatBookPricesUK, Woodford Green, Reino UnidoGreatBookPricesUK

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    EUR 182,49

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    Condición: As New. Unread book in perfect condition.

  • Idioma: Inglés

    Editorial: Springer, 2023

    9819976561 / 9789819976560

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    Librería: AHA-BUCH GmbH, Einbeck, AlemaniaAHA-BUCH GmbH

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    Condición: Nuevo

    EUR 173,47

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    Buch. Condición: Neu. Druck auf Anfrage Neuware - Printed after ordering - In both the database and machine learning communities, data quality has become a serious issue which cannot be ignored. In this context, we refer to data with quality problems as 'dirty data.' Clearly, for a given data mining or machine learning task, dirty data in both training and test datasets can affect the accuracy of results. Accordingly, this book analyzes the impacts of dirty data and explores effective methods for dirty data processing.Although existing data cleaning methods improve data quality dramatically, the cleaning costs are still high. If we knew how dirty data affected the accuracy of machine learning models, we could clean data selectively according to the accuracy requirements instead of cleaning all dirty data, which entails substantial costs. However, no book to date has studied the impacts of dirty data on machine learning models in terms of data quality. Filling precisely this gap, the book is intended for a broad audience ranging from researchers inthe database and machine learning communities to industry practitioners.Readers will find valuable takeaway suggestions on: model selection and data cleaning; incomplete data classification with view-based decision trees; density-based clustering for incomplete data; the feature selection method, which reduces the time costs and guarantees the accuracy of machine learning models; and cost-sensitive decision tree induction approaches under different scenarios. Further, the book opens many promising avenues for the further study of dirty data processing, such as data cleaning on demand, constructing a model to predict dirty-data impacts, and integrating data quality issues into other machine learning models. Readers will be introduced to state-of-the-art dirty data processing techniques, and the latest research advances, while also finding new inspirations in this field.…

  • Idioma: Inglés

    Editorial: Springer, 2023

    9819976561 / 9789819976560

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    Librería: Books Puddle, Woodside, NY, Estados Unidos de AmericaBooks Puddle

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    EUR 211,98

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    Condición: New. 1st ed. 2024 edition NO-PA16APR2015-KAP.

  • Idioma: Inglés

    Editorial: Springer Nature, 2023

    9819976561 / 9789819976560

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    Librería: Revaluation Books, Exeter, Reino UnidoRevaluation Books

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    EUR 237,48

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    Hardcover. Condición: Brand New. 146 pages. 9.26x6.10x0.51 inches. In Stock.

  • Idioma: Inglés

    Editorial: SPRINGER NATURE, 2023

    9819976561 / 9789819976560

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    Librería: BUCHSERVICE / ANTIQUARIAT Lars Lutzer, Wahlstedt, AlemaniaBUCHSERVICE / ANTIQUARIAT Lars Lutzer

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    Condición: Usado - Bueno

    EUR 249,90

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    Hardcover. Condición: gut. 2023. Dirty Data Processing for Machine Learning In deutscher Sprache. pages.

  • Idioma: Inglés

    Editorial: Springer, 2023

    9819976561 / 9789819976560

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    Librería: Brook Bookstore On Demand, Napoli, NA, ItaliaBrook Bookstore On Demand

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    EUR 126,26

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    Condición: new. Questo è un articolo print on demand.

  • Idioma: Inglés

    Editorial: SPRINGER NATURE Jan 2024, 2024

    9819976561 / 9789819976560

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    Librería: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, AlemaniaBuchWeltWeit Ludwig Meier e.K.

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    EUR 160,49

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    Buch. Condición: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -In both the database and machine learning communities, data quality has become a serious issue which cannot be ignored. In this context, we refer to data with quality problems as 'dirty data.' Clearly, for a given data mining or machine learning task, dirty data in both training and test datasets can affect the accuracy of results. Accordingly, this book analyzes the impacts of dirty data and explores effective methods for dirty data processing.Although existing data cleaning methods improve data quality dramatically, the cleaning costs are still high. If we knew how dirty data affected the accuracy of machine learning models, we could clean data selectively according to the accuracy requirements instead of cleaning all dirty data, which entails substantial costs. However, no book to date has studied the impacts of dirty data on machine learning models in terms of data quality. Filling precisely this gap, the book is intended for a broad audience ranging from researchers in the database and machine learning communities to industry practitioners.Readers will find valuable takeaway suggestions on: model selection and data cleaning; incomplete data classification with view-based decision trees; density-based clustering for incomplete data; the feature selection method, which reduces the time costs and guarantees the accuracy of machine learning models; and cost-sensitive decision tree induction approaches under different scenarios. Further, the book opens many promising avenues for the further study of dirty data processing, such as data cleaning on demand, constructing a model to predict dirty-data impacts, and integrating data quality issues into other machine learning models. Readers will be introduced to state-of-the-art dirty data processing techniques, and the latest research advances, while also finding new inspirations in this field. 133 pp. Englisch.…

  • Idioma: Inglés

    Editorial: Springer Nature Singapore, 2023

    9819976561 / 9789819976560

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    Librería: moluna, Greven, Alemaniamoluna

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    EUR 136,16

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    Condición: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. Presents state-of-the-art dirty data processing techniques for use in data pre-processingOpens promising avenues for the further study of dirty data processingOffers valuable take-away suggestions on dirty data processing for machine learni.…

  • Idioma: Inglés

    Editorial: Springer, 2023

    9819976561 / 9789819976560

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    Librería: Majestic Books, Hounslow, Reino UnidoMajestic Books

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    Condición: New. Print on Demand.

  • Idioma: Inglés

    Editorial: Springer, Springer Nov 2023, 2023

    9819976561 / 9789819976560

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    Librería: buchversandmimpf2000, Emtmannsberg, BAYE, Alemaniabuchversandmimpf2000

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    EUR 160,49

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    Buch. Condición: Neu. This item is printed on demand - Print on Demand Titel. Neuware -In both the database and machine learning communities, data quality has become a serious issue which cannot be ignored. In this context, we refer to data with quality problems as ¿dirty data.¿ Clearly, for a given data mining or machine learning task, dirty data in both training and test datasets can affect the accuracy of results. Accordingly, this book analyzes the impacts of dirty data and explores effective methods for dirty data processing.Although existing data cleaning methods improve data quality dramatically, the cleaning costs are still high. If we knew how dirty data affected the accuracy of machine learning models, we could clean data selectively according to the accuracy requirements instead of cleaning all dirty data, which entails substantial costs. However, no book to date has studied the impacts of dirty data on machine learning models in terms of data quality. Filling precisely this gap, the book is intended for a broad audience ranging from researchers inthe database and machine learning communities to industry practitioners.Readers will find valuable takeaway suggestions on: model selection and data cleaning; incomplete data classification with view-based decision trees; density-based clustering for incomplete data; the feature selection method, which reduces the time costs and guarantees the accuracy of machine learning models; and cost-sensitive decision tree induction approaches under different scenarios. Further, the book opens many promising avenues for the further study of dirty data processing, such as data cleaning on demand, constructing a model to predict dirty-data impacts, and integrating data quality issues into other machine learning models. Readers will be introduced to state-of-the-art dirty data processing techniques, and the latest research advances, while also finding new inspirations in this field.Springer-Verlag KG, Sachsenplatz 4-6, 1201 Wien 148 pp. Englisch.…

  • Idioma: Inglés

    Editorial: Springer, 2023

    9819976561 / 9789819976560

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    Librería: Biblios, frankfurt am main, HESSE, AlemaniaBiblios

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    EUR 221,60

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