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RASL: Robust Alignment by Sparse and Low-Rank Decomposition for Linearly Correlated Images

Published: 01 November 2012 Publication History

Abstract

This paper studies the problem of simultaneously aligning a batch of linearly correlated images despite gross corruption (such as occlusion). Our method seeks an optimal set of image domain transformations such that the matrix of transformed images can be decomposed as the sum of a sparse matrix of errors and a low-rank matrix of recovered aligned images. We reduce this extremely challenging optimization problem to a sequence of convex programs that minimize the sum of \ell^1-norm and nuclear norm of the two component matrices, which can be efficiently solved by scalable convex optimization techniques. We verify the efficacy of the proposed robust alignment algorithm with extensive experiments on both controlled and uncontrolled real data, demonstrating higher accuracy and efficiency than existing methods over a wide range of realistic misalignments and corruptions.

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  1. RASL: Robust Alignment by Sparse and Low-Rank Decomposition for Linearly Correlated Images

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    Published In

    cover image IEEE Transactions on Pattern Analysis and Machine Intelligence
    IEEE Transactions on Pattern Analysis and Machine Intelligence  Volume 34, Issue 11
    November 2012
    209 pages

    Publisher

    IEEE Computer Society

    United States

    Publication History

    Published: 01 November 2012

    Author Tags

    1. Algorithm design and analysis
    2. Batch image alignment
    3. Educational institutions
    4. Lighting
    5. Minimization
    6. Optimization
    7. Robustness
    8. Sparse matrices
    9. low-rank matrix
    10. occlusion and corruption
    11. robust principal component analysis
    12. sparse errors

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    • (2024)Light Field Salient Object Detection With Sparse Views via Complementary and Discriminative Interaction NetworkIEEE Transactions on Circuits and Systems for Video Technology10.1109/TCSVT.2023.329060034:2(1070-1085)Online publication date: 1-Feb-2024
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