EventsInternational Conference on Advanced Remote Sensing (ICARS 2025)
Published
This submission belongs to the session S1. Hyperspectral Remote Sensing and Imaging Spectroscopy of the event International Conference on Advanced Remote Sensing (ICARS 2025)
Published date
25 Mar, 2025
Academic Editor
author-avatarFabio Tosti
Citation
Iskren Ivanov, Lachezar Filchev, Mineralogical mapping of pyroxene and anorthosite in Dryden crater using M3 hyperspectral data, in Proceedings of International Conference on Advanced Remote Sensing (ICARS 2025), Barcelona, 26 March–28 March 2025, MDPI: Basel, Switzerland
Share
Email
Facebook
Twitter
LinkedIn

Mineralogical mapping of pyroxene and anorthosite in Dryden crater using M3 hyperspectral data

image
image
1. Remote sensing and GIS, Space Research and Technology Institute at the Bulgarian Academy of Sciences SRTI-BAS, Bulgaria
Abstract

The Moon continues to engage scientific interest as a critical platform for technological innovation and potential extraterrestrial resource exploration. This research presents a comprehensive mineralogical characterization of the Dryden crater located in the South Pole–Aitken basin (SPA) leveraging state-of-the-art remote sensing and spectral mapping technologies.
Our methodology synthesizes hyperspectral data from NASA's Moon Mineralogy Mapper (M3), integrated with topographical datasets from the Lunar Orbiter Laser Altimeter (LOLA) and SELenological and Engineering Explorer (SELENE) Kaguya digital elevation model (SLDEM2015). By employing sophisticated MoonIndex spectral indices and RGB compositional mapping, we conducted a detailed surface composition investigation.
The resulting mineral map reveals distributions of pyroxene and anorthosite, precisely delineating their spatial boundaries. This detailed mineralogical assessment provides critical insights into the crater's geological evolution, offering valuable contextual information for future lunar exploration strategies.
This work supports strategic mission planning, identifies potential resource locations, and paves the way for future robotic and human lunar exploration, expanding our collective knowledge of planetary scientific frontiers.

Keywords
Mineral mapping
Moon Mineralogy Mapper
M3
Dryden
Impact crater
Cartography
Chandrayaan
Transition Metal Elemental Mapping of Fe, Ti, and Cr in Lunar Dryden Crater Using Moon Mineralogy Mapper Data
Robust U-Net segmentation of tree crown damages in Bavaria, Germany