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    LEARNING WITH KERNELS - SUPPORT VECTOR

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    135928

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    Sinopse

    In the 1990s, a new type of learning algorithm was developed, based on results from statistical learning theory: the Support Vector Machine (SVM). This gave rise to a new class of theoretically elegant learning machines that use a central concept ofSVMs-kernels—for a number of learning tasks. Kernel machines provide a modular framework that can be adapted to different tasks and domains by the choice of the kernel function and the base algorithm. They are replacing neural networks in a variety of fields, including engineering, information retrieval, and bioinformatics.

    Learning with Kernels provides an introduction to SVMs and related kernel methods. Although the book begins with the basics, it also includes the latest research. It provides all of the concepts necessary to enable a reader equipped with some basic mathematical knowledge to enter the world of machine learning using theoretically well-founded yet easy-to-use kernel algorithms and to understand and apply the powerful algorithms that have been developed over the last few years.
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    ISBN9780262194754
    Pré vendaNão
    Peso719g
    Autor para link
    Livro disponível - pronta entregaNão
    Dimensões23 x 16 x 1
    Tipo itemLivro Importado
    Número de páginas644
    Número da edição1ª EDIÇÃO - 2001
    Código Interno135928
    Código de barras9780262194754
    AcabamentoHARDCOVER
    AutorSCHLKOPF, BERNHARD | SMOLA, ALEXANDER J.
    EditoraMIT PRESS
    Sob encomendaNão
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