基于模拟高空间分辨率全光谱遥感图像的矿物信息识别

Na Li, Xinfeng Dong, Fuping Gan, Tongtong Li, Ruoheng Gao, Wei Bai
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摘要

矿物是具有一定化学成分的天然化合物,具有稳定的相界面和结晶习性,对反演成岩、成矿地球化学特征和勘探具有重要意义。利用遥感信息识别矿物类型在地质和矿产资源领域取得了显著的应用成果。本文利用 CASI-SASI-TASI 机载高光谱数据和 USGS 标准光谱库,建立了基于统计模型和高斯函数相结合的遥感影像模拟方法,模拟了光谱范围 425nm~12050nm、空间分辨率 2.25m 的全光谱遥感影像。利用模拟的全光谱数据对甘肃省柳园地区的褐铁矿、角闪石、方解石/白云石、高铝绢云母、中铝绢云母、低铝绢云母、绿泥石/橄榄石和石英 8 种矿物信息进行了识别和提取,并与航空高光谱数据的识别结果进行了对比、这表明本文模拟的全光谱遥感数据在识别典型矿物信息方面具有很强的实用性,可为未来空载全光谱高分辨率传感器及共性关键技术的发展提供重要参考。
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Mineral information recognition based on simulated high spatial resolution full spectrum remote sensing images
Minerals are natural compounds with certain chemical composition, which have stable phase interfaces and crystallization habits, and are of great significance for inversion of diagenetic and metallogenic geochemical characteristics and exploration. The use of remote sensing information to identify mineral types has achieved significant application results in the field of geology and mineral resources. In this paper, CASI-SASI-TASI airborne hyperspectral data and USGS standard spectrum library are used to establish a remote sensing image simulation method based on the combination of statistical model and Gaussian function, and the full spectrum remote sensing image with a spectral range of 425nm~12050nm and a spatial resolution of 2.25m is simulated. The simulated full spectral data were used to identify and extract 8 mineral information of limonite, hornblende, calcite/dolomite, high alumina sericite, medium alumina sericite, low alumina sericite, chlorite/epidote and quartz in Liuyuan area, Gansu Province, compared with the recognition results of airborne hyperspectral data, it was found that the two have strong consistency, this indicates that the simulated full spectrum remote sensing data in this article has strong practicality in identifying typical mineral information, and can provide important reference for the future development of spaceborne full spectrum high-resolution sensors and common key technologies.
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