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    Improved feature extraction and matching in urban environments based on 3D viewpoint normalization


    Cao, Yanpeng and McDonald, John (2012) Improved feature extraction and matching in urban environments based on 3D viewpoint normalization. Computer Vision and Image Understanding, 116 (1). pp. 86-101. ISSN 1077-3142

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    Abstract

    In this paper we present a novel approach for generating viewpoint invariant features from single images and demonstrate its application to robust matching over widely separated views in urban environments. Our approach exploits the fact that many man-made environments contain a large number of parallel linear features along several principal directions. We identify the projections of these parallel lines to recover a number of dominant scene planes and subsequently compute viewpoint invariant features within the rectified views of these planes. We present a set of comprehensive experiments to evaluate the performance of the proposed viewpoint invariant features. It is demonstrated that: (1) the resulting feature descriptors become more distinctive and more robust to camera viewpoint changes after the procedure of 3D viewpoint normalization; and (2) the features provide robust local feature information including patch scale and dominant orientation which can be effectively used to provide geometric constraints between views. Targeted at applications in urban environments, where many repetitive structures exist, we further propose an effective framework to use this novel feature for the challenging wide baseline matching tasks.
    Item Type: Article
    Keywords: Feature extraction; Wide baseline matching; 3D viewpoint normalization; Monocular 3D reconstruction; Urban navigation;
    Academic Unit: Faculty of Science and Engineering > Computer Science
    Item ID: 8285
    Identification Number: 10.1016/j.cviu.2011.09.002
    Depositing User: John McDonald
    Date Deposited: 08 Jun 2017 14:28
    Journal or Publication Title: Computer Vision and Image Understanding
    Publisher: Elsevier
    Refereed: Yes
    Funders: Science Foundation Ireland
    Related URLs:
    URI: https://mural.maynoothuniversity.ie/id/eprint/8285
    Use Licence: This item is available under a Creative Commons Attribution Non Commercial Share Alike Licence (CC BY-NC-SA). Details of this licence are available here

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