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Endmember Signature Based Detection of Flammable Gases in LWIR Hyperspectral Images

机译:基于EndMember签名的LWIR高光谱图像中的易燃气体检测

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Segmentation and identification of compounds or materials existing in a scene is a crucial process. Hyperspectral sensors operating in different regions of the electromagnetic spectrum are able to quantify spectral characteristics of materials in different states. Due to the fact that some chemical compounds in gas state have insignificant light reflectance characteristics in visible region of the spectrum, imaging sensors operating in infrared regions are needed to sense energy absorbency characteristics of these compositions. The present study proposes a novel method for detection of flammable gases in long-wave infrared hyperspectral images. Proposed method begins with Black-Body radiation curve compensation. Since a priori information regarding the compounds in the scene is not always available, endmember spectral signatures are extracted with VCA hyperspectral unmixing algorithm. Afterwards, endmember signatures are matched with infrared energy absorbance signature of the target gas obtained from NIST (National Institute of Standards and Technology) Material Measurement Laboratory. Finally, concentration of target signature at each image pixel is detected by means of endmember abundance maps. The performance of the approach is compared with that of similarity measure based gas detection methods. It is observed that the proposed technique removes the need for an external threshold setting while providing better resolvability of the gasses.
机译:存在于场景中存在的化合物或材料的分割和鉴定是一个关键的过程。在电磁频谱的不同区域操作的高光谱传感器能够量化不同状态的材料的光谱特性。由于气体状态的一些化学化合物在光谱的可见区域中具有微小的光反射特性,因此需要在红外区域操作的成像传感器来感测这些组合物的能量吸收特性。本研究提出了一种用于检测长波红外高光谱图像中易燃气体的新方法。提出的方法从黑体辐射曲线补偿开始。由于关于场景中的化合物的先验信息并不总是可用的,因此使用VCA超光谱解密算法提取端部谱签名。之后,终点签名与从NIST(国家标准和技术研究所)材料测量实验室获得的目标天然气的红外能量吸光度签名。最后,通过终点映射映射检测每个图像像素处的目标签名的浓度。将该方法的性能与基于相似度量的气体检测方法进行比较。观察到所提出的技术去除外部阈值设置的需要,同时提供了更好的气体可解变性。

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