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Bayesian Temperature Emissivity Separation Using Copula Chain Models

delete2024-01-01
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PRE
AI
J
Joshua N. Ash *
J
Jacob Martin
DOI:10.1109/LGRS.2024.3457496delete
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Abstract

Abstract

En 中文
Hyperspectral sensing in the long-wave infrared (LWIR) domain is complicated by the ambiguity between a material's temperature and its emissivity-a problem known as temperature-emissivity separation (TES). In this letter, we develop a Bayesian approach to the TES problem that disambiguates emissivity values through a novel prior that uses a copula-based Markov chain model. While supporting efficient posterior inference through the forward-backward algorithm, the proposed copula chain improves emissivity retrieval performance by enforcing physical $[{0, 1}]$ emissivity bounds and capturing interband correlation. Numerical results demonstrate significant improvement over the existing methods, including a 54% reduction in emissivity estimation error relative to the least-squares TES (LS-TES) algorithm for a 20 microflick noise level. Finally, the posterior uncertainty characterization of the proposed Bayesian algorithm is expected to aid subsequent exploitation tasks, such as material classification and sensor fusion.
Keywords:
Correlation
Temperature measurement
Bayes methods
Temperature sensors
Probability density function
Atmospheric modeling
Wavelength measurement
Bayesian methods
hyperspectral imaging
long-wave infrared (LWIR)

Journal

IEEE Geoscience and Remote Sensing Magazine cover
IEEE Geoscience and Remote Sensing Magazine
IF:
16.4
Papers:
1.0W
Citations:
5.1K

Organization

U
University System of Ohio
Scholars:
15.5W
Papers: 13.0W
Citations: 200
W
wright state university dayton
Scholars:
1.8K
Papers: 1.5K
Citations: 0
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