Mineral mapping of lunar highland region using Moon Mineralogy Mapper (M3) hyperspectral data

被引:5
|
作者
Sivakumar, V. [1 ]
Neelakantan, R. [2 ]
机构
[1] Periyar Univ, Dept Geol, Salem 636011, India
[2] Tamil Univ, Dept Ind & Earth Sci, Tanjore 613010, India
关键词
Chandrayaan-I; Highland; hyperspectral; low-Ca pyroxene; Moon; Moon Mineralogy Mapper; Wegener crater; REFLECTANCE SPECTRA; MIXTURE ANALYSIS; CHANDRAYAAN-1; CONSTRAINTS; PYROXENES; SURFACE;
D O I
10.1007/s12594-015-0341-1
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Mineral mapping of lunar surface is significant to understand the origin, crustal evolution, geological history and stratigraphy of the Moon. Advancements in orbital satellite sensor technology has allowed discriminating the minerals on lunar surface using hyperspectral data. The Moon Mineralogy Mapper (M-3) onboard Chandrayaan-1 provides unprecedented data of lunar surface to study about the Moon. In this paper, the minerals in and around Wegener crater on the lunar highland region was investigated using M-3 data. For this purpose, we used spectral similarity mapping (SSM) and band shape methods to discriminate minerals in this region. In SSM, dimensionality of M-3 data is reduced using Maximum Noise Fraction (MNF) and spectral end-members are extracted through Pixel Purity Index (PPI) algorithm. The mineralogical diversity is classified using Spectral Angle Mapper (SAM) algorithm. In addition, different band shape algorithms such as band curvature (bc), band strength (bs), band tilt (bt) and band ratio (br) at crucial wavelengths are applied to recognise the minerals. Low-Ca pyroxene (LCP) minerals are identified in and around this region. The presence of LCP minerals may be attributed to magmatic differentiation or later stage layered mafic intrusions.
引用
收藏
页码:513 / 518
页数:6
相关论文
共 50 条
  • [1] Mineral mapping of lunar highland region using Moon Mineralogy Mapper (M3) hyperspectral data
    V. Sivakumar
    R. Neelakantan
    Journal of the Geological Society of India, 2015, 86 : 513 - 518
  • [2] Mapping lunar mare basalt units in mare Imbrium as observed with the Moon Mineralogy Mapper (M3)
    Thiessen, F.
    Besse, S.
    Staid, M. I.
    Hiesinger, H.
    PLANETARY AND SPACE SCIENCE, 2014, 104 : 244 - 252
  • [3] Spectral properties of lunar impact melt deposits from Moon Mineralogy Mapper (M3) data
    Neish, C. D.
    Cannon, K. M.
    Tornabene, L. L.
    Flemming, R. L.
    Zanetti, M.
    Pilles, E.
    ICARUS, 2021, 361
  • [4] Estimation of optical maturity parameter for lunar soil characterization using Moon Mineralogy Mapper (M3)
    Kumar, P. Ajith
    Kumar, Shashi
    ADVANCES IN SPACE RESEARCH, 2014, 53 (12) : 1694 - 1719
  • [5] The Moon Mineralogy Mapper (M3) on Chandrayaan-1
    Pieters, Carle M.
    Boardman, Joseph
    Buratti, Bonnie
    Chatterjee, Alok
    Clark, Roger
    Glavich, Tom
    Green, Robert
    Head, James, III
    Isaacson, Peter
    Malaret, Erick
    McCord, Thomas
    Mustard, John
    Petro, Noah
    Runyon, Cassandra
    Staid, Matthew
    Sunshine, Jessica
    Taylor, Lawrence
    Tompkins, Stefanie
    Varanasi, Padma
    White, Mary
    CURRENT SCIENCE, 2009, 96 (04): : 500 - 505
  • [6] NON-LINEAR SPECTRAL UNMIXING OF MOON MINERALOGY MAPPER (M3) DATA
    Singh, Keshav Dev
    Desikan, Ramakrishnan
    2015 7TH WORKSHOP ON HYPERSPECTRAL IMAGE AND SIGNAL PROCESSING: EVOLUTION IN REMOTE SENSING (WHISPERS), 2015,
  • [7] Goldschmidt crater and the Moon's north polar region: Results from the Moon Mineralogy Mapper (M3)
    Cheek, L. C.
    Pieters, C. M.
    Boardman, J. W.
    Clark, R. N.
    Combe, J. P.
    Head, J. W.
    Isaacson, P. J.
    McCord, T. B.
    Moriarty, D.
    Nettles, J. W.
    Petro, N. E.
    Sunshine, J. M.
    Taylor, L. A.
    JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2011, 116
  • [8] The Global Distribution of Water and Hydroxyl on the Moon as Seen by the Moon Mineralogy Mapper (M3)
    Clark, Roger N.
    Pearson, Neil C.
    McCord, Thomas B.
    Domingue, Deborah L.
    Livo, Keith Eric
    Boardman, Joseph W.
    Moriarty, Daniel P.
    Hendrix, Amanda R.
    Kramer, Georgiana
    Banks, Maria E.
    PLANETARY SCIENCE JOURNAL, 2024, 5 (09):
  • [9] Remote compositional analysis of lunar olivine-rich lithologies with Moon Mineralogy Mapper (M3) spectra
    Isaacson, Peter J.
    Pieters, Carle M.
    Besse, Sebastien
    Clark, Roger N.
    Head, James W.
    Klima, Rachel L.
    Mustard, John F.
    Petro, Noah E.
    Staid, Matthew I.
    Sunshine, Jessica M.
    Taylor, Lawrence A.
    Thaisen, Kevin G.
    Tompkins, Stefanie
    JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2011, 116
  • [10] Estimation of lunar Surface maturity and ferrous oxide from Moon mineralogy mapper(M3) data through data interpolation techniques.
    Kumar, Ajith P.
    Kumar, Shashi
    MULTISPECTRAL, HYPERSPECTRAL, AND ULTRASPECTRAL REMOTE SENSING TECHNOLOGY, TECHNIQUES AND APPLICATIONS VI, 2016, 9880