Literature DB >> 17568146

Approximate labeling via graph cuts based on linear programming.

Nikos Komodakis1, Georgios Tziritas.   

Abstract

A new framework is presented for both understanding and developing graph-cut-based combinatorial algorithms suitable for the approximate optimization of a very wide class of Markov Random Fields (MRFs) that are frequently encountered in computer vision. The proposed framework utilizes tools from the duality theory of linear programming in order to provide an alternative and more general view of state-of-the-art techniques like the \alpha-expansion algorithm, which is included merely as a special case. Moreover, contrary to \alpha-expansion, the derived algorithms generate solutions with guaranteed optimality properties for a much wider class of problems, for example, even for MRFs with nonmetric potentials. In addition, they are capable of providing per-instance suboptimality bounds in all occasions, including discrete MRFs with an arbitrary potential function. These bounds prove to be very tight in practice (that is, very close to 1), which means that the resulting solutions are almost optimal. Our algorithms' effectiveness is demonstrated by presenting experimental results on a variety of low-level vision tasks, such as stereo matching, image restoration, image completion, and optical flow estimation, as well as on synthetic problems.

Year:  2007        PMID: 17568146     DOI: 10.1109/TPAMI.2007.1061

Source DB:  PubMed          Journal:  IEEE Trans Pattern Anal Mach Intell        ISSN: 0098-5589            Impact factor:   6.226


  14 in total

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Journal:  IEEE Trans Med Imaging       Date:  2013-05-31       Impact factor: 10.048

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Journal:  Neuroimage       Date:  2014-11-11       Impact factor: 6.556

5.  Segmentation of organs-at-risks in head and neck CT images using convolutional neural networks.

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6.  Combining deep learning with anatomical analysis for segmentation of the portal vein for liver SBRT planning.

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7.  A flexible graphical model for multi-modal parcellation of the cortex.

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8.  Joint sulcal detection on cortical surfaces with graphical models and boosted priors.

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Journal:  IEEE Trans Med Imaging       Date:  2009-03       Impact factor: 10.048

9.  MSM: a new flexible framework for Multimodal Surface Matching.

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Journal:  Neuroimage       Date:  2014-06-02       Impact factor: 6.556

10.  Multimodal surface matching with higher-order smoothness constraints.

Authors:  Emma C Robinson; Kara Garcia; Matthew F Glasser; Zhengdao Chen; Timothy S Coalson; Antonios Makropoulos; Jelena Bozek; Robert Wright; Andreas Schuh; Matthew Webster; Jana Hutter; Anthony Price; Lucilio Cordero Grande; Emer Hughes; Nora Tusor; Philip V Bayly; David C Van Essen; Stephen M Smith; A David Edwards; Joseph Hajnal; Mark Jenkinson; Ben Glocker; Daniel Rueckert
Journal:  Neuroimage       Date:  2017-10-31       Impact factor: 6.556

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