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    Evaluating Deep Learning Methods for Low Resolution Point Cloud Registration in Outdoor Scenarios

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    Date
    2021
    Author
    Siddique, Arslan
    Corsini, Massimiliano ORCID
    Ganovelli, Fabio
    Cignoni, Paolo ORCID
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    Abstract
    Point cloud registration is a fundamental task in 3D reconstruction and environment perception. We explore the performance of modern Deep Learning-based registration techniques, in particular Deep Global Registration (DGR) and Learning Multiview Registration (LMVR), on an outdoor real world data consisting of thousands of range maps of a building acquired by a Velodyne LIDAR mounted on a drone. We used these pairwise registration methods in a sequential pipeline to obtain an initial rough registration. The output of this pipeline can be further globally refined. This simple registration pipeline allow us to assess if these modern methods are able to deal with this low quality data. Our experiments demonstrated that, despite some design choices adopted to take into account the peculiarities of the data, more work is required to improve the results of the registration.
    BibTeX
    @inproceedings {10.2312:stag.20211489,
    booktitle = {Smart Tools and Apps for Graphics - Eurographics Italian Chapter Conference},
    editor = {Frosini, Patrizio and Giorgi, Daniela and Melzi, Simone and Rodolà, Emanuele},
    title = {{Evaluating Deep Learning Methods for Low Resolution Point Cloud Registration in Outdoor Scenarios}},
    author = {Siddique, Arslan and Corsini, Massimiliano and Ganovelli, Fabio and Cignoni, Paolo},
    year = {2021},
    publisher = {The Eurographics Association},
    ISSN = {2617-4855},
    ISBN = {978-3-03868-165-6},
    DOI = {10.2312/stag.20211489}
    }
    URI
    https://doi.org/10.2312/stag.20211489
    https://diglib.eg.org:443/handle/10.2312/stag20211489
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    Eurographics Association copyright © 2013 - 2023 
    Send Feedback | Contact - Imprint | Data Privacy Policy | Disable Google Analytics
    Theme by @mire NV
    System hosted at  Graz University of Technology.
    TUGFhA