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Kim, Kwang In
Machine Learning and Vision Lab.
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Automatic Noise Modeling for Ghost-free HDR Reconstruction

Author(s)
Granados, MiguelKim, Kwang InTompkin, JamesTheobalt, Christian
Issued Date
2013-11
DOI
10.1145/2508363.2508410
URI
https://scholarworks.unist.ac.kr/handle/201301/26251
Fulltext
https://dl.acm.org/citation.cfm?doid=2508363.2508410
Citation
ACM TRANSACTIONS ON GRAPHICS, v.32, no.6, pp.201
Abstract
High dynamic range reconstruction of dynamic scenes requires careful handling of dynamic objects to prevent ghosting. However, in a recent review, Srikantha et al. [2012] conclude that "there is no single best method and the selection of an approach depends on the user's goal". We attempt to solve this problem with a novel approach that models the noise distribution of color values. We estimate the likelihood that a pair of colors in different images are observations of the same irradiance, and we use a Markov random field prior to reconstruct irradiance from pixels that are likely to correspond to the same static scene object. Dynamic content is handled by selecting a single low dynamic range source image and hand-held capture is supported through homography-based image alignment. Our noise-based reconstruction method achieves better ghost detection and removal than state-of-the-art methods for cluttered scenes with large object displacements. As such, our method is broadly applicable and helps move the field towards a single method for dynamic scene HDR reconstruction.
Publisher
ASSOC COMPUTING MACHINERY
ISSN
0730-0301
Keyword (Author)
HDR deghostingcamera noisemotion detection
Keyword
DYNAMIC SCENESIMAGEENHANCEMENTREMOVALVIDEO

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