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conference paper

Diverse M-Best Solutions by Dynamic Programming

Haubold, C.
•
Uhlmann, V.
•
Unser, M.  
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2017
Proceedings of the Thirty-Ninth German Conference on Pattern Recognition (GCPR'17)

Many computer vision pipelines involve dynamic programming primitives such as finding a shortest path or the minimum energy solution in a tree-shaped probabilistic graphical model. In such cases, extracting not merely the best, but the set of M-best solutions is useful to generate a rich collection of candidate proposals that can be used in downstream processing. In this work, we show how M-best solutions of tree-shaped graphical models can be obtained by dynamic programming on a special graph with M layers. The proposed multi-layer concept is optimal for searching M-best solutions, and so flexible that it can also approximate M-best diverse solutions. We illustrate the usefulness with applications to object detection, panorama stitching and centerline extraction.

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haubold1701p.pdf

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Preprint

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http://purl.org/coar/version/c_71e4c1898caa6e32

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openaccess

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14.47 MB

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Adobe PDF

Checksum (MD5)

c5b9a23229f067c806a9a2fef1c246ee

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