Joint Estimation of Shape and Reflectance using Multiple Images with Known Illumination Conditions

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We propose a generative model based method for recovering both the shape and the reflectance of the surface(s) of a scene from multiple images, assuming that illumination conditions and cameras calibration are known in advance. Based on a variational framework and via gradient descents, the algorithm minimizes simultaneously and consistently a global cost functional with respect to both shape and reflectance. The motivations for our approach are threefold. (1) Contrary to previous works which mainly consider specific individual scenarios, our method applies indiscriminately to a number of classical scenarios; in particular it works for classical stereovision, multiview photometric stereo and multiview shape from shading. It works with changing as well as static illumination. (2) Our approach naturally combines stereo, silhouette and shading cues in a single framework. (3) Moreover, unlike most previous methods dealing with only Lambertian surfaces, the proposed method considers general dichromatic surfaces. We verify the method using various synthetic and real data sets.
Publisher
SPRINGER
Issue Date
2010-01
Language
English
Article Type
Article; Proceedings Paper
Citation

INTERNATIONAL JOURNAL OF COMPUTER VISION, v.86, no.2-3, pp.192 - 210

ISSN
0920-5691
DOI
10.1007/s11263-009-0222-4
URI
http://hdl.handle.net/10203/240844
Appears in Collection
ME-Journal Papers(저널논문)
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