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    Knowledge Transfer between Computer Vision and Text Mining: Similarity-based Learning Approaches (Advances in Computer Vision and Pattern Recognition)

    By Radu Tudor Ionescu

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    This ground-breaking text/reference diverges
    from the traditional view that computer vision (for image analysis) and string
    processing (for text mining) are separate and unrelated fields of study,
    propounding that images and text can be treated in a similar manner for the
    purposes of information retrieval, extraction and classification. Highlighting
    the benefits of knowledge transfer between the two disciplines, the text
    presents a range of novel similarity-based learning (SBL) techniques founded on
    this approach. Topics and features: describes a variety of SBL approaches,
    including nearest neighbor models, local learning, kernel methods, and
    clustering algorithms; presents a nearest neighbor model based on a novel
    dissimilarity for images; discusses a novel kernel for (visual) word
    histograms, as well as several kernels based on a pyramid representation; introduces
    an approach based on string kernels for native language identification; contains
    links for downloading relevant open source code.
    Download eBook Link updated in 2017
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