• DocumentCode
    1527685
  • Title

    Structure and Motion Recovery Based on Spatial-and-Temporal-Weighted Factorization

  • Author

    Guanghui Wang ; Zelek, John S. ; Wu, Q. M. Jonathan

  • Author_Institution
    Robot. Inst., Nanchang Univ., Nanchang, China
  • Volume
    22
  • Issue
    11
  • fYear
    2012
  • Firstpage
    1590
  • Lastpage
    1603
  • Abstract
    This paper focuses on the problem of structure and motion recovery from uncalibrated image sequences. It has been empirically proven that image measurement uncertainties can be modeled spatially and temporally by virtue of reprojection residuals. Consequently, a spatial-and-temporal-weighted factorization (STWF) algorithm is proposed to handle significant noise contained in the tracking data. This paper presents three novelties and contributions. First, the image reprojection residual of a feature point is demonstrated to be generally proportional to the error magnitude associated with the image point. Second, the error distributions are estimated from a different perspective, that of the reprojection residuals. The image errors are modeled both spatially and temporally to cope with different kinds of uncertainties. Previous studies have considered only the spatial information. Third, based on the estimated error distributions, an STWF algorithm is proposed to improve the overall accuracy and robustness of traditional approaches. Unlike existing approaches, the proposed technique does not require prior information of image measurement and is easy to implement. Extensive experiments on synthetic data and real images validate the proposed method.
  • Keywords
    estimation theory; image motion analysis; image sequences; matrix decomposition; measurement errors; measurement uncertainty; STWF algorithm; data tracking; error distribution estimation; error magnitude; image measurement uncertainty; image reprojection residual; motion recovery; spatial-and-temporal-weighted factorization; structure recovery; uncalibrated image sequence; Algorithm design and analysis; Computer vision; Matrix decomposition; Robustness; Three dimensional displays; Uncertainty; 3-D reconstruction; computer vision; reprojection residual; spatial and temporal errors; structure from motion; weighted factorization;
  • fLanguage
    English
  • Journal_Title
    Circuits and Systems for Video Technology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1051-8215
  • Type

    jour

  • DOI
    10.1109/TCSVT.2012.2201795
  • Filename
    6208849