首页> 外文会议>Algorithms and Technologies for Multispectral, Hyperspectral, and Ultraspectral Imagery XXI >Comparative analysis of Airborne Visible/Infrared Imaging Spectrometer (AVIRIS), and Hyperspectral Thermal Emission Spectrometer (HyTES) longwave infrared (LWIR) hyperspectral data for geologic mapping
【24h】

Comparative analysis of Airborne Visible/Infrared Imaging Spectrometer (AVIRIS), and Hyperspectral Thermal Emission Spectrometer (HyTES) longwave infrared (LWIR) hyperspectral data for geologic mapping

机译:机载可见/红外成像光谱仪(AVIRIS)和高光谱热发射光谱仪(HyTES)长波红外(LWIR)高光谱数据的地质分析对比分析

获取原文
获取原文并翻译 | 示例

摘要

Airborne Visible/Infrared Imaging Spectrometer (AVIRIS) and spatially coincident Hyperspectral Thermal Emission Spectrometer (HyTES) data were used to map geology and alteration for a site in northern Death Valley, California and Nevada, USA. AVIRIS, with 224 bands at 10 nm spectral resolution over the range 0.4 - 2.5 μm at 3-meter spatial resolution were converted to reflectance using an atmospheric model. HyTES data with 256 bands at approximately 17 nm spectral resolution covering the 8 - 12 μm range at 4-meter spatial resolution were converted to emissivity using a longwave infrared (LWIR) radiative transfer atmospheric compensation model and a normalized temperature-emissivity separation approach. Key spectral endmembers were separately extracted for each wavelength region and identified, and the predominant material at each pixel was mapped for each range using Mixture-Tuned-Matched Filtering (MTMF), a partial unmixing approach. AVIRIS mapped iron oxides, clays, mica, and silicification (hydrothermal alteration); and the difference between calcite and dolomite. HyTES separated and mapped several igneous phases (not possible using AVIRIS), silicification, and validated separation of calcite from dolomite. Comparison of the material maps from the different modes, however, reveals complex overlap, indicating that multiple materials/processes exist in many areas. Combined and integrated analyses were performed to compare individual results and more completely characterize occurrences of multiple materials. Three approaches were used 1) integrated full-range analysis, 2) combined multi-mode classification, and 3) directed combined analysis in geologic context. Results illustrate that together, these two datasets provide an improved picture of the distribution of geologic units and subsequent alteration.
机译:机载可见/红外成像光谱仪(AVIRIS)和空间重合的高光谱热发射光谱仪(HyTES)数据用于绘制加利福尼亚北部死亡谷和美国内华达州某地的地质图和蚀变图。使用大气模型将AVIRIS(在3米空间分辨率下在0.4-2.5μm范围内,具有10 nm光谱分辨率下的224个波段)转换为反射率。使用长波红外(LWIR)辐射转移大气补偿模型和归一化的温度-发射率分离方法,将在大约17 nm光谱分辨率下具有256条带的HyTES数据转换为4倍空间分辨率的8-12μm范围的发射率。分别提取每个波长区域的关键光谱末端成员并进行识别,并使用部分调整的混合调整-匹配-匹配滤波(MTMF)映射每个范围内每个像素的主要材料。 AVIRIS绘制了氧化铁,粘土,云母和硅化作用(水热蚀变);以及方解石和白云石的区别。 HyTES分离并绘制了多个火成岩相(使用AVIRIS无法实现),硅化作用,并验证了方解石与白云石的分离。然而,对来自不同模式的材料图的比较显示出复杂的重叠,表明在许多区域中存在多种材料/过程。进行了组合和集成分析,以比较单个结果并更完整地表征多种材料的出现。使用了三种方法:1)集成的全范围分析,2)组合的多模式分类和3)地质背景下的定向组合分析。结果表明,这两个数据集一起提供了地质单位分布和后续蚀变的改进图。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号