用户名: 密码: 验证码:
植被干扰区蚀变信息遥感提取方法研究
详细信息    本馆镜像全文|  推荐本文 |  |   获取CNKI官网全文
摘要
遥感技术凭借其自身独有的速度快、成本低、省时省力等特点,可以快速的圈定找矿靶区,为常规找矿方法指明方向,缩小工作范围,提高工作效率,大大加快找矿速度,缓解矿产资源紧缺的现状。遥感蚀变信息提取工作能够快速提取与成矿有关的蚀变信息,相对传统遥感地质构造解译工作,更能展现遥感找矿快速的优势。
     尽管遥感蚀变信息提取在矿产勘查及资源潜力评价中的应用已十分广泛,然而,对找矿有指示意义的遥感蚀变信息,常常由于受其它地物(如土壤和植被等)信息的干扰,加之受遥感图像的波谱分辨率和空间分辨率的制约,往往表现很微弱。这些对提取出的遥感蚀变信息的可信度、实际应用效果会产生一些影响,一定程度上限制了遥感技术在地质找矿工作中更好的发挥作用。尤其在像浙江省这样的植被覆盖较多的地区开展遥感蚀变信息提取面临的植被干扰较多,提取效果往往不如岩石裸露干扰较小的地区。
     鉴于此,本研究以如何减轻植被干扰对遥感蚀变信息提取的影响为出发点,在全国矿产资源潜力评价项目的支持下,应用实际遥感找矿工作中常用遥感数据,在浙江省遂昌治岭头银坑山研究区,进行抗植被干扰遥感蚀变信息提取方法研究。在前期开展研究区实地考察大量岩石采样的基础上,通过研究目前常用遥感蚀变信息提取方法和消除植被干扰影响方法,提出一个改进的有效减轻植被干扰影响的遥感蚀变信息提取方法。该方法的核心思想是,影像“纯”植被光谱提取+岩石抗植被干扰能力分析+植被影响消弱+SAM提取蚀变信息。它能较传统植被掩膜法“主动”消弱植被干扰影响,同时又克服了传统混合像元分解补偿置换法操作复杂,不利于在实际工作中开展的缺点。应用提出的方法在研究区开展实验,结果表明本研究提出的方法能够起到减轻植被干扰影响的作用,使得蚀变信息能更好的被提取出来。另外,针对实际工作中,时常面临工作区范围大,涉及遥感影像景数多,时间紧,工作区又存在植被干扰影响的情况,在研究分析和比较常用三大遥感蚀变信息提取方法的基础上,并结合考虑植被干扰对它们的影响,提出了一种适合在植被干扰区快速开展遥感蚀变信息提取的方法。通过研究区实验表明,采用ASTER(5+7)/6或ASTER(7/6)*(4/6)提取羟基蚀变,采用ASTER2/1或ASTER(4/3)+(2/1)提取铁染蚀变,受植被干扰影响相对较小,能够达到既快速又相对准确的提取出植被干扰区遥感蚀变信息的目的。
     本研究的成果能够对今后在全国类似浙江省这样的植被覆盖区域开展矿产调查、资源潜力评价项目的遥感蚀变信息提取工作提供一定的借鉴,为实际找矿工作服务。
Remote sensing technology has the particular characters of rapid speed, low cost, saving time and working, so it can designate target region for exploring mine quickly, show clearly for ordinary exploring mine methods, reduce working scope, raise work efficiency, speed up finding mine speed greatly, relief the current situation of lacking mineral resources. Remote sensing alteration information extracting work can quickly extract alteration information which is related to mine. Compared with traditional remote sensing geology structure interpreting work, remote sensing alteration information extraction can reflect the advantage of high-speed in remote sensing mine exploring.
     Extracting remote sensing alteration information has been used widely in mineral exploration and resources potential evaluation, but the remote sensing alteration information which has the Indicative significance for exploring mine is always disturbed by other ground object information, and is restricted by spectral and spatial resolution of remote sensing image, is always showed faintly. It will produce some affect for extracted remote sensing alteration information's reliability extent and practical application effect, and it will a certain extent astrict remote sensing technology's ability in exploring mine work. Especially, the vegetation disturbance will be more when remote sensing alteration information is extracted in the area of having much vegetation as Zhejiang province, and the extracting result is worse compared with the uncovered area.
     For these reasons, this research made how to ease vegetation disturbance effect for remote sensing alteration information extracting as the purpose, under the support of nationwide project of assessment of mineral resources potential, used the frequently-used remote sensing data in practical remote sensing mine exploring work, and carried out the research of easing vegetation disturbance when remote sensing alteration information is extracted in the research area of Sui Chang Zhejiang. At the beginning of research, I investigated the research area on the spot and gathered many rock samples, and researched frequently-used remote sensing alteration information extracting methods and easing vegetation disturbance methods, on the base, an efficiently easing vegetation disturbance of remote sensing alteration information extracting method was suggested. The process of the method is pure vegetation spectrum extracting from the image, analysing the ability against vegetation disturbance of the rock, easing vegetation disturbance and extracing alteration information by SAM. This method can develop the advantage of existing easing vegetation disturbance method, and it can overcome some problems when used them in reality. The experiment was carried out in the research area by the suggested method, and the result showed that thesuggested method can ease vegetation disturbance effect, it let the alteration information can be extracted much better. In addition, being aimed at the condition in practical work that the working area is big, the remote sensing data's quantity which must be processed is large, the time is limit, and there is vegetation disturbance. On the base of researching frequently-used three kinds of remote sensing alteration information extracting methods, at the same time thought the effect for them produced by vegetation disturbance, a method of remote sensing alteration information extracting was advanced which has relatively high-speed and is suited for using in vegetation disturbance area. The experiment result showed that extracting OH-information by ASTER(5+7)/6or ASTER(7/6)*(4/6), and Fe3+information by ASTER2/1or ASTER(4/3)+(2/1), would be little disturbed by vegetation disturbance, and the method can reach the purpose of quickly and correctly extracting the remote sensing alteration information in vegetation disturbance area.
     The research achievements advanced in this research can provide a certain reference for exploring minerals and resource potential evaluation project in vegetation area as Zhejiang province in nationwide from now on, and can serve practical mine exploring work.
引文
陈赶良,杨柏林.黔桂地区微细浸染型金矿蚀变信息提取机理[J].环境遥感,1996,11(2):88-93.
    陈光火.中等程度植被覆盖区岩石蚀变信息提取技术及其应用[J].国土资源遥感,1992,(3):55-60.
    陈建明,孙卫东,闫柏琨等ASTER多光谱遥感异常提取在新疆天湖铁矿中的应用[J].新疆地质,2009,27(4):368-372.
    陈三明,钱建平,陈宏毅.桂东南植被覆盖区的抗干扰遥感蚀变信息优化提取与找矿预测[J].桂林理工大学学报,2010,30(1):33-40.
    丛丽娟,岑况,朱所等.利用ASTER数据提取蚀变异常方法研究——以内蒙古朱拉扎嘎金矿为例[J].河南理工大学学报(自然科学版),2007,26(6):652-658.
    丛丽娟,胡凤翔,杨俊才等.内蒙古朱拉扎嘎金矿ETM+数据提取蚀变异常方法研究[J].现代地质,2007,21(4):725-732.
    戴昌达,姜小光,唐伶俐.遥感图像应用处理与分析[M].北京:清华大学出版社,2002.
    邓吉秋,谢杨,张宝一等.ETM+图像锰矿化蚀变信息提取与找矿预测[J].国土资源遥感,2011,(1):102-105.
    邓书斌.ENVI遥感图像处理方法[M].北京:科学出版社,2010:96、289、300、336、358.
    段元彬,刘登忠,徐韬等.稻城地区遥感蚀变信息提取研究[J].国土资源遥感,2008,(4):92-95.
    冯聪.内蒙古白乃庙地区矿化蚀变信息提取及成矿预测[D].北京:中国地质大学,2006:14-16、46-52、59.
    傅锦,韩晓青,张杰林等.基于Hyperion数据的岩矿蚀变信息的特征峰提取法[J].世界核地质科学,2008,25(1):40-46.
    傅文杰.遥感矿化蚀变信息提取中两种新方法的应用研究[D].湖南:中南大学,2006:57-58.
    傅文杰.基于光谱相似尺度的遥感矿化蚀变信息提取[J].地质找矿论丛,2008,23(2):161-163.
    傅文杰,洪金益,朱谷昌.基于SVM遥感矿化蚀变信息提取研究[J].国土资源遥感,2006,(2):16-19.
    甘甫平,王润生,郭小方等.利用成像光谱遥感技术识别和提取矿化蚀变信息—以河北赤城一崇礼地区为例[J].现代地质,2000,14(4):465-469.
    甘甫平,王润生,杨苏明.西藏Hyperion数据蚀变矿物识别初步研究[J].国土资源遥感,2002,(4):44-50.
    高景刚,薛春纪,吴淦国等.基于知识的蚀变遥感异常信息快速提取及找矿应用实践[J].遥感学报.2008,12(1):186-191.
    耿新霞,杨建民,姚佛军等.新疆阿勒泰阿巴宫铁矿遥感找矿综合信息研究[J].地质论评,2010,56(3):365-373.
    耿新霞,杨建民,张玉君等.ASTER数据在浅覆盖区蚀变遥感异常信息提取中的应用——以新疆西准噶尔包古图斑岩铜矿岩体为例[J].地质论评,2008,54(2):184-190.
    韩玲,卜晓翠.基于ERDAS的蚀变遥感异常提取方法[J].遥感技术与应用,2007,22(6):696-699.
    何凯涛,甘甫平,王永江.高空间分辨率卫星遥感地质微构造及蚀变信息识别[J].国土资源遥感,2009,(1):97-99.
    胡畔、田庆久、闫柏琨.柴达木盆地烃蚀变矿物高光谱遥感识别研究[J].国土资源遥感,2009,(2):54-61.
    胡受奚,叶瑛,方长泉.交代蚀变岩岩石学及其找矿意义[M].北京:地质出版社,2004:63-66、69、72.
    荆凤,陈建平.矿化蚀变信息的遥感提取方法综述[J].综述,2005:62-65.
    李国志,丛利民,王登科等.光谱角技术在多光谱遥感蚀变异常提取工作中的应用[J].华北国土资源,2009,(4):2.
    李建国,毛德宝.基于ETM+与ASTER数据的矿化蚀变信息提取方法研究—以满都拉地区为例[J].地质调查与研究,2007,30(3):235-240.
    李楠,肖克炎,陈析缪等.基于Hyperion高光谱数据的矿物蚀变提取——以内蒙古西部狼山地区炭窑口矿床为例[J].地质通报,2010,29(10):1558-1563.
    林腾,高光明,刘容秀等ETM+和ASTER数据在遥感信息提取中的对比研究[J].遥感应用,2011:65-69.
    刘成,王丹丽,李笑梅.用混合像元线性模型提取中等植被覆盖区的粘土蚀变信息[J].遥感技术与应用,2003,18(2):95-98.
    刘庆生,燕守勋,马超飞等.内蒙哈达门沟金矿区山前钾化带遥感信息提取[J].遥感技术与应用,1999,14(3):7-11.
    刘素红,马建文,蔺启忠.通过Gram-Schmidt投影方法在高山区提取TM数据中含矿蚀变带信息[J].地质与勘探,2000,36(5):62-65.
    刘衍宏,刘少峰,张川等.基于Hyperion数据的粘土矿物权重信息提取研究——以江西省赣州地区为例[J].国土资源遥感,2010,(3):26-30.
    刘严松,何政伟,龙晓君等.江浪穹隆成矿区遥感蚀变信息提取及找矿远景分析[J].四川师范大学学报(自然科学版),2011,34(2):267-272.
    龙晓君,何政伟,刘严松等.西藏羌多地区遥感蚀变与构造信息提取及成矿预测[J].国土资源遥感,2010,(2):63-67.
    吕凤军,郝跃生,石静等.ASTER遥感数据蚀变遥感异常提取研究[J].地球学报,2009,30(2):271-276.
    吕凤军,邢立新,范继璋等.基于蚀变信息场的遥感蚀变信息提取[J].地质与勘探,2006,42(2):65-68.
    马超飞,蔺启忠,马建文等.定量消除植被影响的补偿置换方法研究[J].中国图象图形学报,1999,4(7):553-556.
    马建文.利用TM数据快速提取含矿蚀变带方法研究[J].遥感学报,1997,1(3):208-213.
    马建文,张齐道.利用TM数据提取含金蚀变带的方法研究一冀北东地区为例[J].国土资源遥感,1994,(2):84-88.
    马跃良.广东省河台金矿生物地球化学特征及遥感找矿意义[J].矿物学报,2000,20(1):80-85.
    毛晓长,刘文灿,杜建国等.ETM+和ASTER数据在遥感矿化蚀变信息提取应用中的比较—以安徽铜陵凤凰山矿田为例[[J].现代地质,2005,19(2):309-314.
    彭中勤,吴虹QuickBird高分辨率遥感技术找矿预测研究[C]//第五届中国矿山地质学术会议暨振兴东北生产矿山资源高层论坛论文集.北京:冶金工业出版社,2005.
    濮为民.治岭头地区金银矿地质特征及矿床成因[J].有色金属,2009,61(3):24-28.
    沈利霞,刘丽萍,苏新旭等.不同植被覆盖率地区遥感矿化蚀变提取研究[J].现代地质,2008,22(2):293-298.
    宋明辉,潘军,邢立新.东昆仑祁漫塔格地区找矿预测遥感研究[J].吉林大学学报(地球科学版),2006,36(增刊):210-213.
    孙卫东,陈建明,王润生等.阿尔金地区高光谱遥感矿物填图方法及应用研究[J].新疆地质,2010,28(2):214-217.
    田丰,董丽娜,杨苏明等.混合矿物组合光谱在蚀变矿物填图中的应用—以云南香格里拉地区Hyperion数据蚀变矿物填图为例[J].地质与勘探,2010,46(2):331-337.
    童庆禧,张兵,郑兰芬.高光谱遥感——原理、技术与应用[M].北京:高等教育出版社,2006:246、251.
    吴德文.遥感与地面观测数据的找矿信息提取和处理技术及应用[D].北京:中国地质大学,2006:50-51.
    吴德文,朱谷昌,张远飞.多元数据分析与遥感矿化蚀变信息提取模型[J].国土资源遥感,2006,(1):22-25.
    王建平.基于遥感的河南卢氏西部地区蚀变信息提取与分析[J].地球信息科学,2007,9(6):111-115.
    王强.Hyperion高光谱数据进行混合像元分解研究[D1.哈尔滨:东北林业大学,2006:17.
    王瑞雪.云南澜沧老厂铅锌矿影像线一环结构矿床定位模式研究[D].昆明:昆明理工大学,2007.
    王润生,丁谦,张幼莹等.遥感异常分析的协同优化策略[J].地球科学(中国地质大学学报),1999, 24(5):498-502.
    肖美英,朱谷昌,杨自安等.青海省野马泉地区遥感找矿预测研究[J].矿产与地质,2007,21(4):468-471.
    徐丽华,朱恺军,陈鹏等.高植被覆盖区遥感找锰矿实验研究——以桂西—滇东南的下雷—大新地区为例[J].地质评论,2011,57(1):133-140.
    薜云.基于蚁群算法和支持向量机的矿化蚀变信息提取研究[D].湖南:中南大学,2007:13-15、26-27、45.
    燕守勋,张兵,赵永超等.矿物与岩石的可见一近红外光谱特性综述[J].遥感技术与应用,2003,18(4):191-201.
    杨波,吴德文,赖健清等.矿化信息提取定量遥感模型的建立—以鹰嘴山硅化蚀变为例[J].遥感学报,2005,9(6):718-724.
    杨长保,姜琦刚.辽东地区矿化蚀变遥感信息提取的研究和应用[J].遥感应用,2007:20-24.
    杨长保,姜琦刚,刘万崧等.基于ASTER数据的内蒙古东乌珠穆沁北部地区遥感蚀变信息提取[J].吉林大学学报(地球科学版),2009,39(6):1163-1166.
    杨长保,姜琦刚,朱群等.浅覆盖区基于ASTER数据的蚀变矿物识别方法[J].地质与勘探,2009,45(6):761-766.
    杨德生,程钢,卢小平.遥感地质解译及矿化蚀变信息提取在矿产资源评价中的应用研究[J].河南理工大学学报(自然科学版),2010,29(2):184-189.
    杨佳佳,姜琦刚,赵静等.基于ASTER和ETM+数据的遥感蚀变信息提取——以内蒙古塔日根敖包地区为例[J].吉林大学学报(地球科学版),2008,38:154-155.
    杨建民,张玉君,陈薇等.ETM+(TM)蚀变遥感异常技术方法在东天山戈壁地区的应用[J].矿床地质,2003,22(3):278-286.
    杨金中.多光谱遥感异常提取技术方法体系研究[J].国土资源遥感,2007,(4):43-46.
    杨旭,刘德长,张杰林.基于高分辨率卫星数据铀矿找矿信息提取——以巴什布拉克地区为例[J].世界核地质科学,2008,25(3):167-171.
    杨自安.西部高寒山区遥感与化探信息综合找矿定位预测研究[D].北京:中国地质大学,2005:53-58.
    叶桂顺,叶有钟,赵关连等.浙江省诸暨璜山地区韧性剪切带中金(银)矿床流体包体特征[J].现代地质,1994,8(3):291-292.
    张国荣,芦青山,费一清.ETM+数据在甘肃省肃北县黑刺沟一带蚀变遥感异常信息提取中的应用[J].大地构造与成矿学,2010,34(3):386-390.
    张晋开,崔承禹,支毅乔.基于主成分分析的植被掩模与模式滤波方法在中等植被区蚀变信息提取中的 应用[J].中国图像图形学报,1996,1(2):108-114.
    张良培,张立福.高光谱遥感[M].武汉:武汉大学出版社,2005.
    张满郎,郑兰芬Landsat TM及JERS-1 SAR数据在金矿探测中的应用研究[J].环境遥感,1996,11(4):260-266.
    张佩民,张建国,杨自安等.滇东罗平县雄武镇地区遥感蚀变信息提取及成矿预测[J].地质通报,2009,28(6):769-775.
    张守林.基于ETM+数据矿化蚀变信息定量提取方法研究[D].北京:中国地质大学,2006:25-32、45.
    张术根,姚翠霞,王超.宁镇中段地区蚀变遥感信息提取研究[J].矿产与地质,2009,23(5):453-461.
    张玉君,杨建民,姚佛军.多光谱遥感技术预测矿产资源的潜能——以蒙古国欧玉陶勒盖铜金矿床为例[J].地学前缘,2007,14(5):63-70.
    张玉君,曾朝铭,陈薇ETM+(TM)蚀变遥感异常提取方法研究与应用——方法选择和技术流程[J].国土资源遥感,2003,(2):44-49.
    张远飞,吴健生.基于遥感图像提取矿化蚀变信息[J].岩土工程界,1999,12(6):604-606.
    张自力,秦其明,曹宝等.高分辨率遥感影像在岩墙地质体信息提取中的应用[J].地理与地理信息科学2007,23(3):15-18.
    赵元洪,张福祥,陈南峰等.波段比值主成份复合在热液蚀变信息提取中的应用[J].国土资源遥感,1991,3:12-18.
    浙江省地质矿产志编纂委员会.浙江省地质矿产志[M].浙江:方志出版社,2003.
    朱嘉伟,张天义,盛吉虎.金矿遥感异常信息自动提取方法研究及其应用[J].国土资源遥感,1996,(4):45-50.
    朱亮璞.遥感地质学[M].北京:地质出版社,1994.
    朱晓颖.内蒙古北山地区成矿信息提取技术及成矿预测研究[D].北京:中国地质科学院,2007:40-42、49、51.
    邹林,杨自安,朱谷昌等.多光谱遥感蚀变信息提取新方法研究[J].地质与勘探,2006,42(6):71-76.
    Abrams M J. Landsat thematic mapper and thematic mapper simulator data for a porphyry copper deposit[J]. Photogrammetric Engineering and Remote Sensing,1984,14:128-136.
    Abrams M J, Ashley R P, Brown L C, et al. Mapping of hydrothermal alteration in the Cuprite mining district, Nevada, using aircraft scanning images for the spectral region 0.46 to 2.36 mm[J]. Geology,1977, (5): 713-718.
    Aleks Kalinowski and Simon Oliver. ASTER Mineral Index Processing Manual[M]. Remote Sensing Applications Geoscience Australia,2004:3、23.
    A.M. Baldridge, S.J. Hook, C.I. Grove, et al. The ASTER spectral library version 2.0[J]. Remote Sensing of Environment,2009,113:711-715.
    A.M. Youssef, A.M. Hassan, and A.A.A. El-Haddad. Mapping of Prerift-Synrift Sedimentary units using Enhanced Thematic Mapper Plus (ETM+):Sidri-Feiran Area, Southwestern Sinai Peninsula, Egypt[J]. Journal of the Indian Society of Remote Sensing,2007:377-393.
    Barnaby W. Rockwell and Albert H. Hofstra. Identifi cation of quartz and carbonate minerals across northern Nevada using ASTER thermal infrared emissivity data-Implications for geologic mapping and mineral resource investigations in well-studied and frontier areas[J]. Geological Society of America,2008,4(1): 218-246.
    Bernard E. Hubbard and James K. Crowley. Mineral mapping on the Chilean-Bolivian Altiplano using co-orbital ALI, ASTER and Hyperion imagery:Data dimensionality issues and solutions[J]. Remote Sensing of Environment,2005:173-186.
    Boardman, J.W.. Leveraging the high dimensionality of AVIRIS data for improved sub pixel target unmixing and rejection of false positives; Mixture Tuned Matched Filtering[J]. In Summaries of the 7th JPL Airborne Earth Science Workshop (Jet Propulsion Laboratory Publication),1998,1:53.
    C. E. Haselwimmer, T. R. Riley and J. G. Liu. Lithologic mapping in the Oscar Ⅱ Coast area, Graham Land, Antarctic Peninsula using ASTER data[J]. International Journal of Remote Sensing,2011,32(7): 2013-2035.
    Chang, C.I. and Heinz, D.C.. Constrained subpixel target detection for remotely sensed imagery. IEEE Transaction on Geosiences and Remote Sensing,2000,38:1144-1159.
    Chang, C.I. and Wang, S.. Constrained band selection for hyperspectral imagery. IEEE Transaction on Geosiences and Remote Sensing,2006,44:1575-1585.
    Charlotte A. Bishop, Jian Guo Liu and Philippa J.Mason. Hyperspectral remote sensing for mineral exploration in Pulang, Yunnan Province, China[J]. International journal of remote sensing,2011,32(9):2409-2426.
    Crosta, A.P., De Souza Filho, C.R., Azevedo, F. et al. Targeting key alteration minerals in epithermal deposits in Patagonia, Argentina using ASTER imagery and Principal Component Analysis[J]. International Journal of Remote Sensing,2003,24:4233-4240.
    Crosta A, A.P. and Filho, C.R.D.S.. Searching for gold with ASTER[J]. Earth Observation Magazine,2003, 12(5):38-41.
    Crosta A. and Moore J M. Enhancement of Landsat Thematic Mapper imagery for residual soil mapping in SW Minas Gerais State, Brazil:a prospecting case history in greenstone belt terrain[C]. Thematic Conference on Remote Sensing for Exploration Geology,1989:1173-1187.
    Crosta, A.P., Sabine, C. and Taranik, J.V.,1998, Hydrothermal alteration mapping at Bodie, California using AVIRIS hyperspectral data. Remote Sensing of Environment,65, pp.309-319.
    Crowley James K., Hubbard Bernard E., and Mars John C.. Hydrothermal Alteration on the cascade stratovolcanoes:A remote sensing survey [J]. Geological Society of America Abstracts with Programs, 2003,35(6):552.
    David W. Leveringtona. Discrimination of sedimentary lithologies using Hyperion and Landsat Thematic Mapper data:a case study at Melville Island, Canadian High Arctic[J]. International Journal of Remote Sensing,2010:233-260.
    Green A A and Craig M D. Analysis of aircraft spectrometer data with logarithmic residuals:in Proceedings, AIS workshop,8-10 April, JPL Publication 85-41, Jet Propulsion Laboratory, Pasadena, California,1985: 111-119.
    Gupta, R.P.. Remote Sensing Geology (Heidelberg:Springer),2003:655.
    Harold Clenet, Georges Ceuleneer, Patrick Pinet and et al. Thick sections of layered ultramafic cumulates in the Oman ophiolite revealed by an airborne hyperspectral survey:Petrogenesis and relationship to mantle diapirism[J]. Lithos,2009:265-281.
    Harsanyi, J.C.. Detection and classification of subpixel spectral signatures in hyperspectral image sequences[J]. Unpublished Ph.D. Thesis, University of Maryland,1993:116.
    H. Ranjbar, F. Masoumi, and E. J. M. Carranza. Evaluation of geophysics and spaceborne multispectral data for alteration mapping in the Sar Cheshmeh mining area, Iran[J]. International Journal of Remote Sensing, 2011,32(12):3309-3327.
    Hunt G.R. and Salisloury J W. Visibal & Near-infrared Spectra of Rocks and Minerals[J]. Modern Geology, 1970,(1):283-300.
    Hunt G. R, Salisbury J W, and Lenhoff G. J. Vsible and near-infrared spectra of minerals and rocks:Ⅲ Oxides and hydroxides[J]. Modern Geology,1978, (2):195-205.
    John C. Mars and Lawrence C. Rowan. Spectral assessment of new ASTER SWIR surface reflectance data products for spectroscopic mapping of rocks and minerals[J]. Remote Sensing of Environment,2010, 114:2011-2025.
    Kruse, F.A., Lefkoff, A.B. and Dietz, J.B.. The Spectral Image Processing System (SIPS)-interaction visualisation and analysis of imaging spectrometer data. Remote Sensing of Environment,1993,44: 145-163.
    Lei Liu, Da-Fang Zhuang, Jun Zhou, et al. Alteration mineral mapping using masking and Crosta technique for mineral exploration in mid-vegetated areas:a case study in Areletuobie, Xinjiang (China)[J]. International Journal of Remote Sensing,2011,32(7):1931-1944.
    Liu Fujiang, Wu Xincai, Sun Huashan, et al. Alteration Information Extraction by Applying Synthesis Processing Techniques to Landsat ETM+Data:Case Study of Zhaoyuan Gold Mines, Shandong Province, China[J]. Journal of China University of Geosciences,2007,18(1):72-76.
    L.Ngcofe, H.Minnaar and L.Chevallier. A Comparative study of hyperspectral versus multispectral images as an aid in geological mapping near Alexander bay, northern cape, south Africa[J]. Geological Society of South Africa,2010:141-154.
    Loughlin W P. Principal component analysis for alteration mapping[J]. Photogrammetric Engineering and Remote Sensing,1991,57:1163-1169.
    Majid M. Oskouei. Integrated use of Hyperion and ASTER data for alteration mapping[C]. Earth Resources and Environmental Remote Sensing/GIS Applications. Toulouse France,2010.
    M.F.Sadek, T.M.Ramadan, S.M.Salem, et al.. Using remote sensing technique in lithological discrimination and detection of gold-bearing alteration zones at Wadi Defeit area, southeastern desert, Egypt[C]. Remote Sensing for Environmental Monitoring, GIS Applications, and Geology VI. Stockholm Sweden,2006.
    Ninomiya, Y.. A stabilized vegetation index and several mineralogic indices defined for ASTER VNIR and SWIR data. Proc[C]. IEEE 2003 International Geoscience and Remote Sensing Symposium (IGARSS'03) v.3, Toulouse, France,2003:1552-1554.
    N. Serkan Oztan and M. Lutfi Suzen. Mapping evaporate minerals by ASTER[J]. International Journal of Remote Sensing,2011,32(6):1651-1673.
    Rokos D. Structural Analysis for Gold mineralization Using Remote Sensing and Geochemical Techniques in a GIS Environment:Island of Lesvos, Hellas[J]. Natural Resources Research,2000,9 (4):101-105.
    Rokos, D., Argialas, D., Mavrantza, R., et al. Structural mapping and analysis for a preliminary investigation of possible gold mineralization by using remote sensing and geochemical techniques in a GIS environment: study area:island of Lesvos, Aegean Sea, Hellas[J]. Natural Resources Research,2000:277-293.
    Rowan L C, Goetz A F H and Ashley R P. Discrimination of hydrothermally altered and unaltered rocks in visible and near infrared multispectral images[J]. Geophysics,1977, (42):522-535.
    Ruiz-Armenta J R and Prol-Ledesma R M. Techniques for enhancing the spectral response of hydrothermal alteration minerals in Thematic Mapping Images of Central Mexico[J]. Int. J. Remote Sensing,1998, 19(10):1981-2000.
    Safwat Gabr, Abduwasit Ghulam, and Timothy Kusky. Detecting areas of high-potential gold mineralization using ASTER data[J]. Ore Geology Reviews,2010:59-69.
    Settle, J.. On constrained energy minimization and the partial unmixing of multispectral images[J]. IEEE Transaction on Geosciences and Remote Sensing,2002,40:718-721.
    Sherrie A. Pena and Mohamed G. Abdelsalam. Orbital remote sensing for geological mapping in southern Tunisia:Implication for oil and gas exploration[J]. Journal of African Earth Sciences,2006,44:203-219.
    S. K. Pal, T. J. Majumdar, Amit k.Bhattacharya, et al. Utilization of Landsat ETM+ data for mineral-occurrences mapping over Dalma and Dhanjori, Jharkhand, India:an Advanced Spectral Analysis Approach[J]. International Journal of Remote Sensing,2011,32(14):4023-4040.
    S. Rajendran, A. Thirunavukkaraasu, B. Poovalinga Ganesh, et al. Discrimination of low-grade magnetite ores using remote sensing techniques[J]. Journal of the Indian Society of Remote Sensing,2007,35(2): 153-162.
    Stephen Grebby, Dickson Cunningham, Jonathan Naden, et al. Lithological mapping of the Troodos ophiolite, Cyprus, using airborne LiDAR topographic data[J]. Remote Sensing of Environment,2009:713-724.
    Sultan, M. and Arvidson, R.E.. Mapping of serpentinites in the Eastern Desert of Egypt by using Landsat Thematic Mapper data[J]. Journal of Geology,1986,14:995-999.
    Tangestanim H and Moore F. Comparison of three principal component analysis techniques to porphyry copper alteration mapping:A case study, Meiduk area, Kerman, Iran[J]. Canadian Journal of remote Sensing, 2001(27):176-181.
    Timothy M. Kusky and Talaat M Ramdadan. Structural controls on Neoprotero zoic mineralization in the South Eastern Desert, Egypt:an integrated field, Landsat-TM, and SIR-C/X SAR approach[J]. Journal integrated field of African Earth Sciences,2002,35:107-121.
    Torres-Vera, M.A. and Prol-Ledesma, R.M.. Spectral enhancement of selected pixels in Thematic Mapper images of the Guanajuato district (Mexico) to identify hydrothermally altered rocks[J]. International Journal of Remote Sensing.2003,24:4357-4373.
    Xianfeng Chen, Timothy A. Warner and David J. Campagna. Integrating visible, near-infrared and short-wave infrared hyperspectral and multispectral thermal imagery for geological mapping at Cuprite, Nevada:a rule-based system[J]. International Journal of Remote Sensing,2010,31(7):1733-1752.
    Xu, Y., Lin, Q., Shao, Y., et al. Extraction mechanism of alteration zones using ASTER imagery[C]. Geoscience and Remote Sensing Symposium,2004. IGARSS'04. Proceedings.2004 IEEE International, 6:4174-4175.
    Yingqian Xiong, Shuhab D. Khan, Khalid Mahmood, et al. Sisson. Lithological mapping of Bela ophiolite with remote-sensing data[J]. International Journal of Remote Sensing,2011,32(16):4641-4658.
    Zhang, X. and Pazner, M.. Preprocessing, Feature Extraction and Litholo Mapping Using EO-1 Hyperion Data[J]. Journal of Image and Graphics,2007,12(6):981-990.
    Zhang, X., Pazner, M. and Duke, N.. Lithologic and mineral information extraction for gold exploration using ASTER data in the south Chocolate Mountains (California)[J]. ISPRS Journal of Photogrammetry & Remote Sensing,2007,62:271-282.
    Zhou, J.. Analyses of the Alteration mineral mapping using Landsat data and relevant applications[C]. In Proceedings of the Third International Symposium on Future Intelligent Earth Observation Satellites, Beijing, China,2006:480-482.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700