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Reflectance Spectroscopy in Geology and Soil Sciences: Literature Review


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Abrams M.J., Ashley R.P., Rowan L.C., Goetz A.F.H., Kahle A.B., 1977. Mapping of hydrothermal alteration in the cuprite mining district, Nevada, using aircraft scanner images for the spectral region 0.46 to 2.36 μm. Geology 5(12): 713–718. AbramsM.J. AshleyR.P. RowanL.C. GoetzA.F.H. KahleA.B. 1977 Mapping of hydrothermal alteration in the cuprite mining district, Nevada, using aircraft scanner images for the spectral region 0.46 to 2.36 μm Geology 5 12 713 718 10.1130/0091-7613(1977)5<713:MOHAIT>2.0.CO;2 Search in Google Scholar

Andongma W.T., Gajere J.N., Amuda A.K., Edmond R.R.D., Faisal M., Yusuf Y.D., 2021. Mapping of hydrothermal alterations related to gold mineralization within parts of the Malumfashi schist belt, North-Western Nigeria, The Egyptian Journal of Remote Sensing and Space Science 24(3): 401–417. AndongmaW.T. GajereJ.N. AmudaA.K. EdmondR.R.D. FaisalM. YusufY.D. 2021 Mapping of hydrothermal alterations related to gold mineralization within parts of the Malumfashi schist belt, North-Western Nigeria The Egyptian Journal of Remote Sensing and Space Science 24 3 401 417 10.1016/j.ejrs.2020.11.001 Search in Google Scholar

Baldridge A.M., Hook S.J., Grove C.I., Rivera G., 2009. The ASTER spectral library version 2.0. Remote Sensing of Environment 113(4): 711–715. BaldridgeA.M. HookS.J. GroveC.I. RiveraG. 2009 The ASTER spectral library version 2.0 Remote Sensing of Environment 113 4 711 715 10.1016/j.rse.2008.11.007 Search in Google Scholar

Baptista G.M.M., Corrêa R.S., dos Santos P.F., Madeira Netto J.S., Meneses P.R., 2011. Use of imaging spectroscopy for mapping and quantifying the weathering degree of tropical soils in Central Brazil. Applied and Environmental Soil Science 641328. DOI 10.1155/2011/641328. BaptistaG.M.M. CorrêaR.S. dos SantosP.F. Madeira NettoJ.S. MenesesP.R. 2011 Use of imaging spectroscopy for mapping and quantifying the weathering degree of tropical soils in Central Brazil Applied and Environmental Soil Science 641328. 10.1155/2011/641328 Open DOISearch in Google Scholar

Bedini E., 2009. Mapping lithology of the Sarfartoq carbonatite complex, southern West Greenland, using HyMap imaging spectrometer data. Remote Sensing of Environment 113(6): 1208–1219. BediniE. 2009 Mapping lithology of the Sarfartoq carbonatite complex, southern West Greenland, using HyMap imaging spectrometer data Remote Sensing of Environment 113 6 1208 1219 10.1016/j.rse.2009.02.007 Search in Google Scholar

Chang C., Lin F., Zhou X., Zhao G., 2020. Hyper-spectral response and estimation model of soil degradation in Kenli County, the Yellow River Delta. PLoS One 15(1): e0227594. ChangC. LinF. ZhouX. ZhaoG. 2020 Hyper-spectral response and estimation model of soil degradation in Kenli County, the Yellow River Delta PLoS One 15 1 e0227594 10.1371/journal.pone.0227594 Search in Google Scholar

Clark R.N., 1993. SPECtrum Processing Routines user's manual version 3 (program SPECPR) (No. 93-595). US Geological Survey, Reston. ClarkR.N. 1993 SPECtrum Processing Routines user's manual version 3 (program SPECPR) (No. 93-595) US Geological Survey Reston 10.3133/ofr93595 Search in Google Scholar

Clark R.N., 1999. Spectroscopy of rocks and minerals, and principles of spectroscopy. Manual of Remote Sensing 3(11): 3–58. ClarkR.N. 1999 Spectroscopy of rocks and minerals, and principles of spectroscopy Manual of Remote Sensing 3 11 3 58 Search in Google Scholar

Clark R.N., King T.V., Klejwa M., Swayze G.A., Vergo N., 1990. High spectral resolution reflectance spectroscopy of minerals. Journal of Geophysical Research: Solid Earth 95(B8): 12653–12680. ClarkR.N. KingT.V. KlejwaM. SwayzeG.A. VergoN. 1990 High spectral resolution reflectance spectroscopy of minerals Journal of Geophysical Research: Solid Earth 95 B8 12653 12680 10.1029/JB095iB08p12653 Search in Google Scholar

Clark R.N., Roush T.L., 1984. Reflectance spectroscopy: Quantitative analysis techniques for remote sensing applications. Journal of Geophysical Research: Solid Earth 89(B7): 6329–6340. ClarkR.N. RoushT.L. 1984 Reflectance spectroscopy: Quantitative analysis techniques for remote sensing applications Journal of Geophysical Research: Solid Earth 89 B7 6329 6340 10.1029/JB089iB07p06329 Search in Google Scholar

Clark R.N., Swayze G.A., Gallagher A., King T.V.V., Calvin W.M., 1993. The U.S. Geological Survey digital spectral library, version 1: 0.2 to 3.0 um. U.S. Geological Survey Open-File Report 93–592. ClarkR.N. SwayzeG.A. GallagherA. KingT.V.V. CalvinW.M. 1993 The U.S. Geological Survey digital spectral library, version 1: 0.2 to 3.0 um U.S. Geological Survey Open-File Report 93 592 10.3133/ofr93592 Search in Google Scholar

de Jong S.M., 1994. Applications of reflective remote sensing for land degradation studies in a Mediterranean environment. The Royal Dutch Geographical Society, Utrecht University. de JongS.M. 1994 Applications of reflective remote sensing for land degradation studies in a Mediterranean environment The Royal Dutch Geographical Society, Utrecht University Search in Google Scholar

Demattê J.A.M., Garcia G.J., 1999. Alteration of soil properties through a weathering sequence as evaluated by spectral reflectance. Soil Science Society of America Journal 63(2): 327–342. DemattêJ.A.M. GarciaG.J. 1999 Alteration of soil properties through a weathering sequence as evaluated by spectral reflectance Soil Science Society of America Journal 63 2 327 342 10.2136/sssaj1999.03615995006300020010x Search in Google Scholar

El-Desoky H.M., Tende A.W., Abdel-Rahman A.M., Ene A., Awad H.A., Fahmy W., El-Awny H., Zakaly H.M.H., 2022. Hydrothermal alteration mapping using landsat 8 and ASTER data and geochemical characteristics of Precambrian rocks in the Egyptian shield: A Case Study from Abu Ghalaga, Southeastern Desert, Egypt. Remote Sensing 14(14): 3456. El-DesokyH.M. TendeA.W. Abdel-RahmanA.M. EneA. AwadH.A. FahmyW. El-AwnyH. ZakalyH.M.H. 2022 Hydrothermal alteration mapping using landsat 8 and ASTER data and geochemical characteristics of Precambrian rocks in the Egyptian shield: A Case Study from Abu Ghalaga, Southeastern Desert, Egypt Remote Sensing 14 14 3456 10.3390/rs14143456 Search in Google Scholar

Gaffey M.J., 1976. Spectral reflectance characteristics of the meteorite classe. Journal of Geophysical Research 81(5): 905–920. GaffeyM.J. 1976 Spectral reflectance characteristics of the meteorite classe Journal of Geophysical Research 81 5 905 920 10.1029/JB081i005p00905 Search in Google Scholar

Goetz A.F., Srivastava V.I.N.A.Y., 1985. Mineralogical mapping in the Cuprite mining district, Nevada. In: Proceedings of the airborne imaging spectrometer data analysis Workshop. NASA Jet Propulsion Laboratory, California Institute of Technology, Pasadena, April 8–10, 1985. GoetzA.F. SrivastavaV.I.N.A.Y. 1985 Mineralogical mapping in the Cuprite mining district, Nevada In: Proceedings of the airborne imaging spectrometer data analysis Workshop NASA Jet Propulsion Laboratory, California Institute of Technology, Pasadena April 8–10, 1985 Search in Google Scholar

Goetz A.F., Vane G., Solomon J.E., Rock B.N., 1985. Imaging spectrometry for earth remote sensing. Science 228(4704): 1147–1153. GoetzA.F. VaneG. SolomonJ.E. RockB.N. 1985 Imaging spectrometry for earth remote sensing Science 228 4704 1147 1153 10.1126/science.228.4704.114717735325 Search in Google Scholar

Grove C.I., Hook S.J., Paylorll E.D., 1992. Compilation of laboratory reflectance spectra of 160 minerals, 0.4 to 2.5 micrometers. NASA Jet Propulsion Laboratory, California Institute of Technology, Pasadena. GroveC.I. HookS.J. PaylorllE.D. 1992 Compilation of laboratory reflectance spectra of 160 minerals, 0.4 to 2.5 micrometers NASA Jet Propulsion Laboratory, California Institute of Technology Pasadena Search in Google Scholar

Gupta R.P., 2018. Geobotanical guides. In: Gupta R.P. (ed) Remote Sensing Geology. 3rdEdn. Springer-Verlag, Berlin: 347–348. GuptaR.P. 2018 Geobotanical guides In: GuptaR.P. (ed) Remote Sensing Geology 3rdEdn. Springer-Verlag Berlin 347 348 Search in Google Scholar

Heincke B., Jackisch R., Saartenoja A., Salmirinne H., Rapp S., Zimmermann R., Pirttijärvi M., Vest Sörensen E., Gloaguen R., Ek L., Bergström J., Karinen A., Salehi S., Middleton M., 2019. Developing multi-sensor drones for geological mapping and mineral exploration: Setup and first results from the MULSEDRO project. Geological Survey of Denmark and Greenland Bulletin 43: e20194303302. HeinckeB. JackischR. SaartenojaA. SalmirinneH. RappS. ZimmermannR. PirttijärviM. Vest SörensenE. GloaguenR. EkL. BergströmJ. KarinenA. SalehiS. MiddletonM. 2019 Developing multi-sensor drones for geological mapping and mineral exploration: Setup and first results from the MULSEDRO project Geological Survey of Denmark and Greenland Bulletin 43 e20194303302 10.34194/GEUSB-201943-03-02 Search in Google Scholar

Hellman M.J., Ramsey M.S., 2004. Analysis of hot springs and associated deposits in Yellowstone National Park using ASTER and AVIRIS remote sensing. Journal of Volcanology and Geothermal Research 135: 195–219. HellmanM.J. RamseyM.S. 2004 Analysis of hot springs and associated deposits in Yellowstone National Park using ASTER and AVIRIS remote sensing Journal of Volcanology and Geothermal Research 135 195 219 10.1016/j.jvolgeores.2003.12.012 Search in Google Scholar

Hunt G.R., 1970. Visible and near-infrared spectra of minerals and rocks: I silicate minerals. Modern Geology 1: 283–300. HuntG.R. 1970 Visible and near-infrared spectra of minerals and rocks: I silicate minerals Modern Geology 1 283 300 Search in Google Scholar

Hunt G.R., 1977. Spectral signatures of particulate minerals in the visible and near-infrared. Geophysics 42(3): 501–513. HuntG.R. 1977 Spectral signatures of particulate minerals in the visible and near-infrared Geophysics 42 3 501 513 10.1190/1.1440721 Search in Google Scholar

Hunt G.R., Salisbury J.W., 1971. Visible and near infra-red spectra of minerals and rocks, II – Carbonates. Modern Geology 2: 23–30. HuntG.R. SalisburyJ.W. 1971 Visible and near infra-red spectra of minerals and rocks, II – Carbonates Modern Geology 2 23 30 Search in Google Scholar

Hunt G.R., Salisbury J.W., Lenhoff C.J., 1971a. Visible and near infrared spectra of minerals and rocks, III – Oxides and hydroxides. Modern Geology 2: 195–205. HuntG.R. SalisburyJ.W. LenhoffC.J. 1971a Visible and near infrared spectra of minerals and rocks, III – Oxides and hydroxides Modern Geology 2 195 205 Search in Google Scholar

Hunt G.R., Salisbury J.W., Lenhoff C.J., 1971b. Visible and near infrared spectra of minerals and rocks, IV – Sulphides and sulphates. Modern Geology 3: 1–14. HuntG.R. SalisburyJ.W. LenhoffC.J. 1971b Visible and near infrared spectra of minerals and rocks, IV – Sulphides and sulphates Modern Geology 3 1 14 Search in Google Scholar

Hunt G.R., Salisbury J.W., Lenhoff C.J., 1972. Visible and near infrared spectra of minerals and rocks, V – Halides, arsenates, vanadates, and borates. Modern Geology 3: 121–132. HuntG.R. SalisburyJ.W. LenhoffC.J. 1972 Visible and near infrared spectra of minerals and rocks, V – Halides, arsenates, vanadates, and borates Modern Geology 3 121 132 Search in Google Scholar

Hunt G.R., Salisbury J.W., Lenhoff C.J., 1973. Visible and near infrared spectra of minerals and rocks, VI – Additional silicates. Modern Geology 4: 85–106. HuntG.R. SalisburyJ.W. LenhoffC.J. 1973 Visible and near infrared spectra of minerals and rocks, VI – Additional silicates Modern Geology 4 85 106 Search in Google Scholar

Johnson J.R., Lucey P.G., Horton K.A., Winter E.M., 1998. Infrared measurements of pristine and disturbed soils 1. Spectral contrast differences between field and laboratory data. Remote Sensing of Environments 64: 34–46. JohnsonJ.R. LuceyP.G. HortonK.A. WinterE.M. 1998 Infrared measurements of pristine and disturbed soils 1. Spectral contrast differences between field and laboratory data Remote Sensing of Environments 64 34 46 10.1016/S0034-4257(97)00166-1 Search in Google Scholar

Kokaly R.F., Clark R.N., Swayze G.A., Livo K.E., Hoefen T.M., Pearson N.C., Wise R.A., Benzel W.M., Lowers H.A., Driscoll R.L., Klein A.J., 2017. USGS spectral library version 7. U.S. Geological Survey Data Series 1035. KokalyR.F. ClarkR.N. SwayzeG.A. LivoK.E. HoefenT.M. PearsonN.C. WiseR.A. BenzelW.M. LowersH.A. DriscollR.L. KleinA.J. 2017 USGS spectral library version 7 U.S. Geological Survey Data Series 1035 10.3133/ds1035 Search in Google Scholar

Kortüm G., 1969. Reflectance spectroscopy: Principles, methods, applications. Springer Science & Business Media, Verlag New Your. KortümG. 1969 Reflectance spectroscopy: Principles, methods, applications Springer Science & Business Media Verlag New Your 10.1007/978-3-642-88071-1 Search in Google Scholar

Kruse F.A., Lefkoff A.B., 1994. Knowledge-based geologic mapping with imaging spectrometers. Remote Sensing Reviews 8(1–3): 3–28. KruseF.A. LefkoffA.B. 1994 Knowledge-based geologic mapping with imaging spectrometers Remote Sensing Reviews 8 1–3 3 28 10.1080/02757259309532188 Search in Google Scholar

Kumar C., Chatterjee S., Oommen T., Guha A., 2020. Automated lithological mapping by integrating spectral enhancement techniques and machine learning algorithms using AVIRIS-NG hyperspectral data in gold-bearing granite-greenstone rocks in Hutti, India. International Journal of Applied Earth Observation and Geoinformation 86: 102006. KumarC. ChatterjeeS. OommenT. GuhaA. 2020 Automated lithological mapping by integrating spectral enhancement techniques and machine learning algorithms using AVIRIS-NG hyperspectral data in gold-bearing granite-greenstone rocks in Hutti, India International Journal of Applied Earth Observation and Geoinformation 86 102006 10.1016/j.jag.2019.102006 Search in Google Scholar

Leone A.P., Sommer S., 2000. Multivariate analysis of laboratory spectra for the assessment of soil development and soil degradation in the southern Apennines (Italy). Remote Sensing of Environment 72(3): 346–359. LeoneA.P. SommerS. 2000 Multivariate analysis of laboratory spectra for the assessment of soil development and soil degradation in the southern Apennines (Italy) Remote Sensing of Environment 72 3 346 359 10.1016/S0034-4257(99)00110-8 Search in Google Scholar

Liaghat S., Balasundram S.K., 2010. A review: The role of remote sensing in precision agriculture. American Journal of Agricultural and Biological Sciences 5(1): 50–55. LiaghatS. BalasundramS.K. 2010 A review: The role of remote sensing in precision agriculture American Journal of Agricultural and Biological Sciences 5 1 50 55 10.3844/ajabssp.2010.50.55 Search in Google Scholar

Martelet G., Gloaguen E., Døssing A., Silva E.L.S.D., Linde J., Rasmussen T.M., 2021. Airborne/UAV multisensor surveys enhance the geological mapping and 3D model of a pseudo-skarn deposit in Ploumanac’h, French Brittany. Minerals 11: 1259. MarteletG. GloaguenE. DøssingA. SilvaE.L.S.D. LindeJ. RasmussenT.M. 2021 Airborne/UAV multisensor surveys enhance the geological mapping and 3D model of a pseudo-skarn deposit in Ploumanac’h, French Brittany Minerals 11 1259 10.3390/min11111259 Search in Google Scholar

Michalski J.R., Kraft M.D., Sharp T.G., Christensen P.R., 2006. Effects of chemical weathering on infrared spectra of Columbia River Basalt and spectral interpretations of martian alteration. Earth and Planetary Science Letters 248(3–4): 822–829. MichalskiJ.R. KraftM.D. SharpT.G. ChristensenP.R. 2006 Effects of chemical weathering on infrared spectra of Columbia River Basalt and spectral interpretations of martian alteration Earth and Planetary Science Letters 248 3–4 822 829 10.1016/j.epsl.2006.06.034 Search in Google Scholar

Mierczyk M., Zagajewski B., Jarocińska A., Knapik R., 2016. Assessment of imaging spectroscopy for rock identification in the Karkonosze Mountains, Poland. Miscellanea Geographica 20(1): 34–40. MierczykM. ZagajewskiB. JarocińskaA. KnapikR. 2016 Assessment of imaging spectroscopy for rock identification in the Karkonosze Mountains, Poland Miscellanea Geographica 20 1 34 40 10.1515/mgrsd-2015-0016 Search in Google Scholar

Mohanty B., Gupta A., Das B.S., 2016. Estimation of weathering indices using spectral reflectance over visible to mid-infrared region. Geoderma 266: 111–119. MohantyB. GuptaA. DasB.S. 2016 Estimation of weathering indices using spectral reflectance over visible to mid-infrared region Geoderma 266 111 119 10.1016/j.geoderma.2015.11.030 Search in Google Scholar

Mulder V.L., Plötze M., de Bruin S., Schaepman M.E., Mavris C., Kokaly R.F., Egli M., 2013. Quantifying mineral abundances of complex mixtures by coupling spectral deconvolution of SWIR spectra (2.1–2.4 μm) and regression tree analysis. Geoderma 207: 279–290. MulderV.L. PlötzeM. de BruinS. SchaepmanM.E. MavrisC. KokalyR.F. EgliM. 2013 Quantifying mineral abundances of complex mixtures by coupling spectral deconvolution of SWIR spectra (2.1–2.4 μm) and regression tree analysis Geoderma 207 279 290 10.1016/j.geoderma.2013.05.011 Search in Google Scholar

Nagano T., Nakashima S., 1989. Study of colors and degrees of weathering of granitic by visible diffuse reflectance spectroscopy. Geochemical Journal 23: 75–83. NaganoT. NakashimaS. 1989 Study of colors and degrees of weathering of granitic by visible diffuse reflectance spectroscopy Geochemical Journal 23 75 83 10.2343/geochemj.23.75 Search in Google Scholar

Pal M., Rasmussen T., Porwal A., 2020. Optimized lithological mapping from multispectral and hyperspectral remote sensing images using fused multi-classifiers. Remote Sensing 12(1): 177. PalM. RasmussenT. PorwalA. 2020 Optimized lithological mapping from multispectral and hyperspectral remote sensing images using fused multi-classifiers Remote Sensing 12 1 177 10.3390/rs12010177 Search in Google Scholar

Parish R.M., 2016. Reflectance spectroscopy as a chert sourcing method. Archaeologia Polona 54: 115–128. ParishR.M. 2016 Reflectance spectroscopy as a chert sourcing method Archaeologia Polona 54 115 128 Search in Google Scholar

Park J., Kim K., 2019. Quantification of rock mass weathering using spectral imaging. The Southern African Institute of Mining and Metallurgy 119(12): 1039–1046. ParkJ. KimK. 2019 Quantification of rock mass weathering using spectral imaging The Southern African Institute of Mining and Metallurgy 119 12 1039 1046 Search in Google Scholar

Peyghambari S., Zhang Y., 2021. Hyperspectral remote sensing in lithological mapping, mineral exploration, and environmental geology: An updated review. Journal of Applied Remote Sensing 15(3): 031501. PeyghambariS. ZhangY. 2021 Hyperspectral remote sensing in lithological mapping, mineral exploration, and environmental geology: An updated review Journal of Applied Remote Sensing 15 3 031501 10.1117/1.JRS.15.031501 Search in Google Scholar

Riaza A., Strobl P., Beisl U., Hausold A., Müller A., 1997. Spectral mapping of rock weathering degrees on granite using hyperspectral DAIS 7915 spectrometer data. International Journal of Applied Earth Observation and Geoinformation 3(4): 345–354. RiazaA. StroblP. BeislU. HausoldA. MüllerA. 1997 Spectral mapping of rock weathering degrees on granite using hyperspectral DAIS 7915 spectrometer data International Journal of Applied Earth Observation and Geoinformation 3 4 345 354 10.1016/S0303-2434(01)85042-X Search in Google Scholar

Rockwell B.W., Hofstra A.H., 2008. Identification 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. Geosphere 4(1): 218–246. RockwellB.W. HofstraA.H. 2008 Identification 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 Geosphere 4 1 218 246 10.1130/GES00126.1 Search in Google Scholar

Rogge D.M., Rivard B., Zhang J., Sanchez A., Harris J., Feng J., 2007. Integration of spatial–spectral information for the improved extraction of endmembers. Remote Sensing of Environment 110(3): 287–303. RoggeD.M. RivardB. ZhangJ. SanchezA. HarrisJ. FengJ. 2007 Integration of spatial–spectral information for the improved extraction of endmembers Remote Sensing of Environment 110 3 287 303 10.1016/j.rse.2007.02.019 Search in Google Scholar

Salehi S., 2018. Hyperspectral analysis of lithologies in the Arctic in areas with abundant lichen cover. Geological Survey of Denmark and Greenland Bulletin 41: 51–55. SalehiS. 2018 Hyperspectral analysis of lithologies in the Arctic in areas with abundant lichen cover Geological Survey of Denmark and Greenland Bulletin 41 51 55 10.34194/geusb.v41.4341 Search in Google Scholar

Salehi S., Karami M., Fensholt R., 2016. Identification of a robust lichen index for the deconvolution of lichen and rock mixtures using pattern search algorithm (case study: Greenland). International archives of the photogrammetry. Remote Sensing & Spatial Information Sciences XLI-B7: 973–979. SalehiS. KaramiM. FensholtR. 2016 Identification of a robust lichen index for the deconvolution of lichen and rock mixtures using pattern search algorithm (case study: Greenland). International archives of the photogrammetry Remote Sensing & Spatial Information Sciences XLI-B7 973 979 10.5194/isprs-archives-XLI-B7-973-2016 Search in Google Scholar

Salehi S., Mielke C., Pedersen C.B., Olsen S.D., 2019. Comparison of ASTER and Sentinel-2 spaceborne datasets for geological mapping: A case study from North-East Greenland. Geological Survey of Denmark and Greenland Bulletin 43: e2019430205. SalehiS. MielkeC. PedersenC.B. OlsenS.D. 2019 Comparison of ASTER and Sentinel-2 spaceborne datasets for geological mapping: A case study from North-East Greenland Geological Survey of Denmark and Greenland Bulletin 43 e2019430205 10.34194/GEUSB-201943-02-05 Search in Google Scholar

Salehi S., Mielke C., Rogass C., 2020. Mapping ultramafic complexes using airborne imaging spectroscopy and spaceborne data in Arctic regions with abundant lichen cover, a case study from the Niaqornarssuit complex in South West Greenland. European Journal of Remote Sensing 53(1): 156–175. SalehiS. MielkeC. RogassC. 2020 Mapping ultramafic complexes using airborne imaging spectroscopy and spaceborne data in Arctic regions with abundant lichen cover, a case study from the Niaqornarssuit complex in South West Greenland European Journal of Remote Sensing 53 1 156 175 10.1080/22797254.2020.1760733 Search in Google Scholar

Salehi S., Rogge D., Rivard B., Heincke B.H., Fensholt R., 2017. Modeling and assessment of wavelength displacements of characteristic absorption features of common rock forming minerals encrusted by lichens. Remote Sensing of Environment 199: 78–92. SalehiS. RoggeD. RivardB. HeinckeB.H. FensholtR. 2017 Modeling and assessment of wavelength displacements of characteristic absorption features of common rock forming minerals encrusted by lichens Remote Sensing of Environment 199 78 92 10.1016/j.rse.2017.06.044 Search in Google Scholar

Salisbury J.W., Hunt G.R., 1974. Meteorite spectra and weathering. Journal of Geophysical Research 79(29): 4439–4441. SalisburyJ.W. HuntG.R. 1974 Meteorite spectra and weathering Journal of Geophysical Research 79 29 4439 4441 10.1029/JB079i029p04439 Search in Google Scholar

Schaefer L.N., Kereszturi G., Villeneuve M., Kennedy B., 2021. Determining physical and mechanical volcanic rock properties via reflectance spectroscopy. Journal of Volcanology and Geothermal Research 420: 107393. SchaeferL.N. KereszturiG. VilleneuveM. KennedyB. 2021 Determining physical and mechanical volcanic rock properties via reflectance spectroscopy Journal of Volcanology and Geothermal Research 420 107393 10.1016/j.jvolgeores.2021.107393 Search in Google Scholar

Tong Q., Zheng L., Xue Y., 1998. Development and application of hyperspectral remote sensing in China. In: K.T. Tsen, H.R. Fetterman (eds.) Proceedings of SPIE, the International Society for Optical Engineering, San Jose, January 28 – 29, 1998 TongQ. ZhengL. XueY. 1998 Development and application of hyperspectral remote sensing in China In: TsenK.T. FettermanH.R. (eds.) Proceedings of SPIE, the International Society for Optical Engineering San Jose January 28 – 29, 1998 10.1117/12.577938 Search in Google Scholar

Traore M., Wambo J.D.T., Ndepete C.P., Tekin S., Pour A.B., Muslim A.M., 2020. Lithological and alteration mineral mapping for alluvial gold exploration in the south east of Birao area, Central African Republic using Landsat-8 operational land imager (OLI) data. Journal of African Earth Sciences 170: 103933. TraoreM. WamboJ.D.T. NdepeteC.P. TekinS. PourA.B. MuslimA.M. 2020 Lithological and alteration mineral mapping for alluvial gold exploration in the south east of Birao area, Central African Republic using Landsat-8 operational land imager (OLI) data Journal of African Earth Sciences 170 103933 10.1016/j.jafrearsci.2020.103933 Search in Google Scholar

Van der Meer F., Kopačková V., Koucká L., van der Werff H.M., Van Ruitenbeek F.J., Bakker W.H., 2018. Wavelength feature mapping as a proxy to mineral chemistry for investigating geologic systems: An example from the Rodalquilar epithermal system. International Journal of Applied Earth Observation and Geoinformation 64: 237–248. Van der MeerF. KopačkováV. KouckáL. van der WerffH.M. Van RuitenbeekF.J. BakkerW.H. 2018 Wavelength feature mapping as a proxy to mineral chemistry for investigating geologic systems: An example from the Rodalquilar epithermal system International Journal of Applied Earth Observation and Geoinformation 64 237 248 10.1016/j.jag.2017.09.008 Search in Google Scholar

Varshney P.K., Arora M.K., 2004. Advanced image processing techniques for remotely sensed hyperspectral data. Springer Science & Business Media, Berlin, Heidelberg: 38–39. VarshneyP.K. AroraM.K. 2004 Advanced image processing techniques for remotely sensed hyperspectral data Springer Science & Business Media Berlin, Heidelberg 38 39 10.1007/978-3-662-05605-9 Search in Google Scholar

Xie B.S., Zhou S.Y., Wu L.X., 2020. An integrated mineral spectral library using shared data for hyperspectral remote sensing and geological mapping. The International Archives of Photogrammetry, Remote Sensing and Spatial Information Sciences 43: 69–75. XieB.S. ZhouS.Y. WuL.X. 2020 An integrated mineral spectral library using shared data for hyperspectral remote sensing and geological mapping The International Archives of Photogrammetry, Remote Sensing and Spatial Information Sciences 43 69 75 10.5194/isprs-archives-XLIII-B5-2020-69-2020 Search in Google Scholar

Younis M.T., Gilabert M.A., Melia J., Bastida J., 1997. Weathering process effects on spectral reflectance of rocks in a semi-arid environment. International Journal of Remote Sensing 18(16): 3361–3377. YounisM.T. GilabertM.A. MeliaJ. BastidaJ. 1997 Weathering process effects on spectral reflectance of rocks in a semi-arid environment International Journal of Remote Sensing 18 16 3361 3377 10.1080/014311697216928 Search in Google Scholar

Zhang X., Pazner M., Duke N., 2007. Lithologic and mineral information extraction for gold explorationusing ASTER data in the south Chocolate Mountains (California). ISPRS Journal of Potogrammetry and Remote Sensing 62(4): 271–282. ZhangX. PaznerM. DukeN. 2007 Lithologic and mineral information extraction for gold explorationusing ASTER data in the south Chocolate Mountains (California) ISPRS Journal of Potogrammetry and Remote Sensing 62 4 271 282 10.1016/j.isprsjprs.2007.04.004 Search in Google Scholar

Zheng G., Ryu D., Jiao C., Xie X., Cui X., Shang G., 2019. Visible and near-infrared reflectance spectroscopy analysis of a coastal soil Chronosequence Guanghui. Remote Sensing 11: 2336. ZhengG. RyuD. JiaoC. XieX. CuiX. ShangG. 2019 Visible and near-infrared reflectance spectroscopy analysis of a coastal soil Chronosequence Guanghui Remote Sensing 11 2336 10.3390/rs11202336 Search in Google Scholar

Zhou K.F., Wang S.S., 2017. Spectral properties of weathered and fresh rock surfaces in the Xiemisitai metallogenic belt, NWXinjiang, China. Open Geosciences 9: 322–339. ZhouK.F. WangS.S. 2017 Spectral properties of weathered and fresh rock surfaces in the Xiemisitai metallogenic belt, NWXinjiang, China Open Geosciences 9 322 339 10.1515/geo-2017-0027 Search in Google Scholar

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