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Article

Improved Stereophotogrammetric and Multi-View Shape-from-Shading DTMs of Occator Crater and Its Interior Cryovolcanism-Related Bright Spots

by
Alicia Neesemann
1,*,
Stephan van Gasselt
2,
Ralf Jaumann
1,
Julie C. Castillo-Rogez
3,
Carol A. Raymond
3,
Sebastian H. G. Walter
1 and
Frank Postberg
1
1
Institute of Geological Sciences, Planetary Sciences and Remote Sensing, Freie Universität Berlin, Malteserstr. 74-100, 12249 Berlin, Germany
2
Geomatics Group, Department of Land Economics, National Chengchi University, No 64, Sec 2, ZhiNan Rd., Wenshan District, Taipei 11605, Taiwan
3
Jet Propulsion Laboratory, California Institute of Technology, Pasadena, CA 91109, USA
*
Author to whom correspondence should be addressed.
Remote Sens. 2025, 17(3), 437; https://doi.org/10.3390/rs17030437
Submission received: 12 November 2024 / Revised: 24 December 2024 / Accepted: 2 January 2025 / Published: 27 January 2025

Abstract

Over the course of NASA’s Dawn Discovery mission, the onboard framing camera mapped Ceres across a wide wavelength spectrum at varying polar science orbits and altitudes. With increasing resolution, the uniqueness of the 92 km wide, young Occator crater became evident. Its central cryovolcanic dome, Cerealia Tholus, and especially the associated bright carbonate and ammonium chloride deposits—named Cerealia Facula and the thinner, more dispersed Vinalia Faculae—are the surface expressions of a deep brine reservoir beneath Occator. Understandably, this made this crater the target for future sample return mission studies. The planning and preparation for this kind of mission require the characterization of potential landing sites based on the most accurate topography and orthorectified image data. In this work, we demonstrate the capabilities of the freely available and open-source USGS Integrated Software for Imagers and Spectrometers (ISIS 3) and Ames Stereo Pipeline (ASP 2.7) in creating high-quality image data products as well as stereophotogrammetric (SPG) and multi-view shape-from-shading (SfS) digital terrain models (DTMs) of the aforementioned spectroscopically challenging features. The main data products of our work are four new DTMs, including one SPG and one SfS DTM based on High-Altitude Mapping Orbit (HAMO) (CSH/CXJ) and one SPG and one SfS DTM based on Low-Altitude Mapping Orbit (LAMO) (CSL/CXL), along with selected Extended Mission Orbit 7 (XMO7) framing camera (FC) data. The SPG and SfS DTMs were calculated to a GSD of 1 and 0.5 px, corresponding to 136 m (HAMO SPG), 68 m (HAMO SfS), 34 m (LAMO SPG), and 17 m (LAMO SfS). Finally, we show that the SPG and SfS approaches we used yield consistent results even in the presence of high albedo differences and highlight how our new DTMs differ from those previously created and published by the German Aerospace Center (DLR) and the Jet Propulsion Laboratory (JPL).
Keywords: Ceres; Dawn; dwarf planets; asteroids; habitable worlds; satellite imagery; digital terrain model; stereophotogrammetry; stereophotoclinometry; shape from shading; Ames Stereo Pipeline Ceres; Dawn; dwarf planets; asteroids; habitable worlds; satellite imagery; digital terrain model; stereophotogrammetry; stereophotoclinometry; shape from shading; Ames Stereo Pipeline

Share and Cite

MDPI and ACS Style

Neesemann, A.; van Gasselt, S.; Jaumann, R.; Castillo-Rogez, J.C.; Raymond, C.A.; Walter, S.H.G.; Postberg, F. Improved Stereophotogrammetric and Multi-View Shape-from-Shading DTMs of Occator Crater and Its Interior Cryovolcanism-Related Bright Spots. Remote Sens. 2025, 17, 437. https://doi.org/10.3390/rs17030437

AMA Style

Neesemann A, van Gasselt S, Jaumann R, Castillo-Rogez JC, Raymond CA, Walter SHG, Postberg F. Improved Stereophotogrammetric and Multi-View Shape-from-Shading DTMs of Occator Crater and Its Interior Cryovolcanism-Related Bright Spots. Remote Sensing. 2025; 17(3):437. https://doi.org/10.3390/rs17030437

Chicago/Turabian Style

Neesemann, Alicia, Stephan van Gasselt, Ralf Jaumann, Julie C. Castillo-Rogez, Carol A. Raymond, Sebastian H. G. Walter, and Frank Postberg. 2025. "Improved Stereophotogrammetric and Multi-View Shape-from-Shading DTMs of Occator Crater and Its Interior Cryovolcanism-Related Bright Spots" Remote Sensing 17, no. 3: 437. https://doi.org/10.3390/rs17030437

APA Style

Neesemann, A., van Gasselt, S., Jaumann, R., Castillo-Rogez, J. C., Raymond, C. A., Walter, S. H. G., & Postberg, F. (2025). Improved Stereophotogrammetric and Multi-View Shape-from-Shading DTMs of Occator Crater and Its Interior Cryovolcanism-Related Bright Spots. Remote Sensing, 17(3), 437. https://doi.org/10.3390/rs17030437

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