Video Stabilization Using Epipolar Geometry

被引:133
|
作者
Goldstein, Amit [1 ]
Fattal, Raanan [1 ]
机构
[1] Hebrew Univ Jerusalem, Dept Comp Sci, IL-91905 Jerusalem, Israel
来源
ACM TRANSACTIONS ON GRAPHICS | 2012年 / 31卷 / 05期
基金
以色列科学基金会;
关键词
Algorithms; Video stabilization; novel view synthesis; image warping; epipolar geometry;
D O I
10.1145/2231816.2231824
中图分类号
TP31 [计算机软件];
学科分类号
081202 ; 0835 ;
摘要
We present a new video stabilization technique that uses projective scene reconstruction to treat jittered video sequences. Unlike methods that recover the full three-dimensional geometry of the scene, this model accounts for simple geometric relations between points and epipolar lines. Using this level of scene understanding, we obtain the physical correctness of 3D stabilization methods yet avoid their lack of robustness and computational costs. Our method consists of tracking feature points in the scene and using them to compute fundamental matrices that model stabilized camera motion. We then project the tracked points onto the novel stabilized frames using epipolar point transfer and synthesize new frames using image-based frame warping. Since this model is only valid for static scenes, we develop a time-view reprojection that accounts for nonstationary points in a principled way. This reprojection is based on modeling the dynamics of smooth inertial object motion in three-dimensional space and allows us to avoid the need to interpolate stabilization for moving objects from their static surrounding. Thus, we achieve an adequate stabilization when both the camera and the objects are moving. We demonstrate the abilities of our approach to stabilize hand-held video shots in various scenarios: scenes with no parallax that challenge 3D approaches, scenes containing nontrivial parallax effects, videos with camera zooming and in-camera stabilization, as well as movies with large moving objects.
引用
收藏
页数:10
相关论文
共 50 条
  • [11] Contour matching by epipolar geometry
    Hu, ML
    Zhang, DM
    Wei, S
    THIRD INTERNATIONAL SYMPOSIUM ON MULTISPECTRAL IMAGE PROCESSING AND PATTERN RECOGNITION, PTS 1 AND 2, 2003, 5286 : 855 - 858
  • [12] Using conic correspondences in two images to estimate the epipolar geometry
    Kahl, F
    Heyden, A
    SIXTH INTERNATIONAL CONFERENCE ON COMPUTER VISION, 1998, : 761 - 766
  • [13] Phase Unwrapping in Fringe Projection Systems Using Epipolar Geometry
    Braeuer-Burchardt, Christian
    Munkelt, Christoph
    Heinze, Matthias
    Kuehmstedt, Peter
    Notni, Gunther
    ADVANCED CONCEPTS FOR INTELLIGENT VISION SYSTEMS, PROCEEDINGS, 2008, 5259 : 422 - 432
  • [14] Robust Optical Flow Estimation Using the Monocular Epipolar Geometry
    Mohamed, Mahmoud A.
    Mertsching, Baerbel
    COMPUTER VISION SYSTEMS (ICVS 2019), 2019, 11754 : 521 - 530
  • [15] Epipolar Geometry Estimation Using Improved LO-RANSAC
    Zhou, Jun
    ADVANCED MATERIALS RESEARCH, 2011, 213 : 255 - 259
  • [16] Robust epipolar geometry estimation using noisy pose priors
    Goldman, Yehonatan
    Rivlin, Ehud
    Shimshoni, Ilan
    IMAGE AND VISION COMPUTING, 2017, 67 : 16 - 28
  • [17] Video Synchronization Using Temporal Signals from Epipolar Lines
    Pundik, Dmitry
    Moses, Yael
    COMPUTER VISION-ECCV 2010, PT III, 2010, 6313 : 15 - 28
  • [18] An epipolar geometry-based fast disparity estimation algorithm for multiview image and video coding
    Lu, Jiangbo
    Cai, Hua
    Lou, Jian-Guang
    Li, Jiang
    IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS FOR VIDEO TECHNOLOGY, 2007, 17 (06) : 737 - 750
  • [19] Epipolar Geometry for Central Catadioptric Cameras
    Tomáš Svoboda
    Tomáš Pajdla
    International Journal of Computer Vision, 2002, 49 : 23 - 37
  • [20] A Dynamic Geometry Reconstruction Technique for Mobile Devices Using Adaptive Checkerboard Recognition and Epipolar Geometry
    Dao, Vinh Ninh
    Sugimoto, Masanori
    IEICE TRANSACTIONS ON INFORMATION AND SYSTEMS, 2011, E94D (02) : 336 - 348