We present a robust radiometric calibration framework that capitalizes on the transform invariant low-rank structure in the various types of observations, such as sensor irradiances recorded from a static scene with different exposure times, or linear structure of irradiance color mixtures around edges. We show that various radiometric calibration problems can be treated in a principled framework that uses a rank minimization approach. This framework provides a principled way of solving radiometric calibration problems in various settings. The proposed approach is evaluated using both simulation and real-world datasets and shows superior performance to previous approaches.
Publications
International Journal
Radiometric Calibration by Rank Minimization
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저 자 | Joon-Young Lee, Yasuyuki Matsushita, Boxin Shi, In So Kweon, Katsushi Ikeuchi |
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학 회 | IEEE Transactions on Pattern Analysis and Machine Intelligence (TPAMI) |
논문일시(Year) | 2013 |
논문일시(Month) | 01 |