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A Bayesian Nonparametric Model for Temperature-Emissivity Separation of Long-Wave Hyperspectral Images

机译:长波高光谱图像温度发射率分离的贝叶斯非参数模型

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Long-wave infrared (LWIR) hyperspectral imagers (HSI) image a scene by collecting high-resolution spectra at each pixel. The data are similar to a camera image but have a large number of narrow spectral bands rather than the familiar broad three bands of red-green-blue in a traditional digital camera. Materials in LWIR are emissive (rather than reflective) and have unique spectra that can be used for material detection and identification. The measured spectra are a convolution of the material spectra (emissivity), the black body temperature (Planck curve), other interacting environmental spectral sources, and measurement error. One approach to material identification is temperature-emissivity separation (TES), which separates or deconvolves the material spectra from the temperature curve. To accomplish this task, we develop a unique flexible model which combines the mathematical model of the physical processes within a Bayesian nonparametric framework. In addition to offering interpretable estimates of model parameters, this model is able to identify material emissivity spectra and cluster pixels into appropriate material groups. We demonstrate our method using both a synthetic and measured dataset. The online supplementary material contains an appendix of the details of the sampling algorithm.
机译:长波红外(LWIR)高光谱成像仪(HSI)通过在每个像素处收集高分辨率光谱来对场景成像。数据类似于相机图像,但具有大量的窄光谱带,而不是传统的数码相机中常见的红,绿,蓝三个宽频带。 LWIR中的材料具有发射性(而不是反射性),并具有可用于材料检测和识别的独特光谱。测得的光谱是材料光谱(发射率),黑体温度(普朗克曲线),其他相互作用的环境光谱源和测量误差的卷积。一种材料识别方法是温度-发射率分离(TES),它可以将材料光谱与温度曲线分开或反卷积。为了完成此任务,我们开发了一个独特的灵活模型,该模型结合了贝叶斯非参数框架内物理过程的数学模型。除了提供可解释的模型参数估计值之外,该模型还可以识别材料发射光谱并将像素聚类为适当的材料组。我们使用综合数据集和实测数据集演示了我们的方法。在线补充材料包含采样算法细节的附录。

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