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    A Correlated Parts Model for Object Detection in Large 3D Scans

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    v32i2pp205-214.pdf (2.779Mb)
    Date
    2013
    Author
    Sunkel, Martin
    Jansen, Silke
    Wand, Michael
    Seidel, Hans-Peter
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    Abstract
    This paper addresses the problem of detecting objects in 3D scans according to object classes learned from sparse user annotation. We model objects belonging to a class by a set of fully correlated parts, encoding dependencies between local shapes of different parts as well as their relative spatial arrangement. For an efficient and comprehensive retrieval of instances belonging to a class of interest, we introduce a new approximate inference scheme and a corresponding planning procedure. We extend our technique to hierarchical composite structures, reducing training effort and modeling spatial relations between detected instances. We evaluate our method on a number of real-world 3D scans and demonstrate its benefits as well as the performance of the new inference algorithm.
    BibTeX
    @article {10.1111:cgf.12040,
    journal = {Computer Graphics Forum},
    title = {{A Correlated Parts Model for Object Detection in Large 3D Scans}},
    author = {Sunkel, Martin and Jansen, Silke and Wand, Michael and Seidel, Hans-Peter},
    year = {2013},
    publisher = {The Eurographics Association and Blackwell Publishing Ltd.},
    ISSN = {1467-8659},
    DOI = {10.1111/cgf.12040}
    }
    URI
    http://dx.doi.org/10.1111/cgf.12040
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    • 32-Issue 2
    • Full Papers 2013 - CGF 32-Issue 2

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    Eurographics Association copyright © 2013 - 2023 
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    Theme by @mire NV
    System hosted at  Graz University of Technology.
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