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Subsurface water ice mapping on Mars: A probabilistic approach

Abstract

Subsurface water ice deposits on Mars are an important resource for potential future human exploration. They are also an indicator of the planet’s past climate. However, the distribution of subsurface water ice in Mars’s midlatitudes is uncertain because spacecraft imagery cannot directly observe subsurface ice in most cases. Various spacecraft remote sensing instruments are sensitive to subsurface water ice, including thermal imaging spectrometers, radar sounders, and neutron spectrometers. Geomorphic analyses of images can also implicate subsurface ice. Building upon the data products from the Mars Subsurface Water Ice Mapping project, we provide a probabilistic framework to jointly interpret existing data and estimate the likelihood of subsurface water ice in the Martian midlatitudes between 60 ∘ S and 60 ∘ N with uncertainty. Broadly, we find that near-surface ice is likely present poleward of ∼45 ∘ in both the northern and southern hemispheres. However, closer to the equator, existing remote sensing data cannot uniquely constrain the presence of subsurface water ice. Our probabilistic results provide a framework for quantifying the abundance of ice on Mars, and our uncertainty estimates allow future analysis and exploration to target regions of high uncertainty.

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BibTeXRIS

Samuel W Courville, Nathaniel E Putzig, Gareth A Morgan, Asmin Pathare, Colin M. Dundas, David M. H. Baker, Ali Bramson, Rachael H. Hoover, Stefano Nerozzi, Matthew R. Perry, Megan Russell, Hanna G. Sizemore. 2026-07-31. Subsurface water ice mapping on Mars: A probabilistic approach. https://doi.org/10.3847/psj/ae8904

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