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A Remote Sensing-Based Application of Bayesian Networks for Epithermal Gold Potential Mapping in Ahar-Arasbaran Area, NW Iran

机译:NW伊朗哈拉斯巴兰地区岩体金潜力测绘近视网络的遥感应用

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摘要

Mapping hydrothermal alteration minerals using multispectral remote sensing satellite imagery provides vital information for the exploration of porphyry and epithermal ore mineralizations. The Ahar-Arasbaran region, NW Iran, contains a variety of porphyry, skarn and epithermal ore deposits. Gold mineralization occurs in the form of epithermal veins and veinlets, which is associated with hydrothermal alteration zones. Thus, the identification of hydrothermal alteration zones is one of the key indicators for targeting new prospective zones of epithermal gold mineralization in the Ahar-Arasbaran region. In this study, Landsat Enhanced Thematic Mapper+ (Landsat-7 ETM+), Landsat-8 and Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) multispectral remote sensing datasets were processed to detect hydrothermal alteration zones associated with epithermal gold mineralization in the Ahar-Arasbaran region. Band ratio techniques and principal component analysis (PCA) were applied on Landsat-7 ETM+ and Landsat-8 data to map hydrothermal alteration zones. Advanced argillic, argillic-phyllic, propylitic and hydrous silica alteration zones were detected and discriminated by implementing band ratio, relative absorption band depth (RBD) and selective PCA to ASTER data. Subsequently, the Bayesian network classifier was used to synthesize the thematic layers of hydrothermal alteration zones. A mineral potential map was generated by the Bayesian network classifier, which shows several new prospective zones of epithermal gold mineralization in the Ahar-Arasbaran region. Besides, comprehensive field surveying and laboratory analysis were conducted to verify the remote sensing results and mineral potential map produced by the Bayesian network classifier. A good rate of agreement with field and laboratory data is achieved for remote sensing results and consequential mineral potential map. It is recommended that the Bayesian network classifier can be broadly used as a valuable model for fusing multi-sensor remote sensing results to generate mineral potential map for reconnaissance stages of epithermal gold exploration in the Ahar-Arasbaran region and other analogous metallogenic provinces around the world.
机译:使用多光谱遥感卫星图像映射热液蚀变矿物质提供斑岩和超矿石矿化的勘探的重要信息。该阿哈尔-Arasbaran区域,NW伊朗,含有多种斑岩,矽卡岩和超矿床。金矿化发生在热液脉和细脉的形式,这是与水热蚀变带相关联。因此,水热蚀变带的识别是在阿哈尔-Arasbaran区域靶向热液金矿的新的预期区域中的主要指标之一。在这项研究中,陆地卫星增强型专题制图+(大地卫星7 ETM +),陆地卫星-8和先进星载热发射和反射辐射计多光谱遥感数据集进行处理以检测与在阿哈尔-Arasbaran热液金矿化相关的热液蚀变带地区。带比率技术和主成分分析(PCA)被施加在大地卫星7 ETM +和大地卫星8个数据映射热液蚀变带。先进粘化,粘化-绢英岩,磐和含水二氧化硅蚀变带进行检测,并通过实现带比区分,相对吸收带深度(RBD)和选择性PCA到ASTER数据。随后,贝叶斯网络分类器用于合成热液蚀变区的专题层。由贝叶斯网络分类器,产生的矿物势图,其示出了在阿哈尔-Arasbaran区域热液金矿的几个新的预期区域。此外,全面的现场勘测和实验室分析进行了验证所述远程感测结果和由贝叶斯网络分类器产生的矿物势图。协议与现场和实验室数据良好率遥感结果及相应的矿藏潜力地图来实现的。建议在贝叶斯网络分类器可以被广泛地用作有价值模型用于融合多传感器远程感测结果来产生用于在阿哈尔-Arasbaran区域和世界上其他类似成矿省热液黄金勘探的侦察阶段矿物势图。

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