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    NEAREST-NEIGHBOR METHODS IN LEARNING AND VISION - THEORY AND PRACTICE

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    629530

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    Regression and classification methods based on similarity of the input to stored examples have not been widely used in applications involving very large sets of high-dimensional data. Recent advances in computational geometry and machine learning, however, may alleviate the problems in using these methods on large data sets. This volume presents theoretical and practical discussions of nearest-neighbor (NN) methods in machine learning and examines computer vision as an application domain in which the benefit of these advanced methods is often dramatic. It brings together contributions from researchers in theory of computation, machine learning, and computer vision with the goals of bridging the gaps between disciplines and presenting state-of-the-art methods for emerging applications.

    The contributors focus on the importance of designing algorithms for NN search, and for the related classification, regression, and retrieval tasks, that remain efficient even as the number of points or the dimensionality of the data grows very large. The book begins with two theoretical chapters on computational geometry and then explores ways to make the NN approach practicable in machine learning applications where the dimensionality of the data and the size of the data sets make the naïve methods for NN search prohibitively expensive. The final chapters describe successful applications of an NN algorithm, locality-sensitive hashing (LSH), to vision tasks.
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    ISBN9780262195478
    Pré vendaNão
    Peso293g
    Autor para link
    Livro disponível - pronta entregaNão
    Dimensões23 x 16 x 1
    Tipo itemLivro Importado
    Número de páginas262
    Número da edição1ª EDIÇÃO - 2006
    Código Interno629530
    Código de barras9780262195478
    AcabamentoPAPERBACK
    AutorSHAKHNAROVICH, GREGORY | DARRELL, TREVOR | INDYK, PIOTR
    EditoraMIT PRESS
    Sob encomendaSim
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