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哈密土墩矿区高光谱影像蚀变矿物识别初步研究   总被引:3,自引:0,他引:3  
文章以哈密土墩矿区为例,利用航空高光谱HyMAP数据,从单矿物光谱与混合像元光谱之间的相似概率和模型化参数出发,发展了基于光谱混合组成的极大相关高光谱矿物识别方法,初步识别出该区与成矿关系密切的6种蚀变矿物及其空间分布趋势,并为野外地质工作与薄片鉴定所证实。该研究初步表明,高光谱遥感可为地质学中矿物的空间分布研究提供有用的新技术。  相似文献   
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Recent developments in hyperspectral remote sensing technologies enable acquisition of image with high spectral resolution, which is typical to the laboratory or in situ reflectance measurements. There has been an increasing interest in the utilization of in situ reference reflectance spectra for rapid and repeated mapping of various surface features. Here we examined the prospect of classifying airborne hyperspectral image using field reflectance spectra as the training data for crop mapping. Canopy level field reflectance measurements of some important agricultural crops, i.e. alfalfa, winter barley, winter rape, winter rye, and winter wheat collected during four consecutive growing seasons are used for the classification of a HyMAP image acquired for a separate location by (1) mixture tuned matched filtering (MTMF), (2) spectral feature fitting (SFF), and (3) spectral angle mapper (SAM) methods. In order to answer a general research question “what is the prospect of using independent reference reflectance spectra for image classification”, while focussing on the crop classification, the results indicate distinct aspects. On the one hand, field reflectance spectra of winter rape and alfalfa demonstrate excellent crop discrimination and spectral matching with the image across the growing seasons. On the other hand, significant spectral confusion detected among the winter barley, winter rye, and winter wheat rule out the possibility of existence of a meaningful spectral matching between field reflectance spectra and image. While supporting the current notion of “non-existence of characteristic reflectance spectral signatures for vegetation”, results indicate that there exist some crops whose spectral signatures are similar to characteristic spectral signatures with possibility of using them in image classification.  相似文献   
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