A Monte Carlo Study of Gray-Level—Depth Mapping in Underwater Images

Conventional underwater images offer an accessible means of observing vertical light attenuation, but interpreting their gray-level trends requires a link between optical transport and digital image formation. This study derives conditions under which a log-linear gray-level–depth relationship is retained and evaluates trend preservation using a Monte Carlo model coupling photon transport, camera response, and 8-bit quantization. The framework provides a physical basis for interpreting the empirical gray-level attenuation slope, kG, and identifies low-signal conditions that compromise its interpretation. In the numerical experiment, the mean relative slope difference between the virtual-camera response and an unscattered direct downwelling irradiance reference was 0.5091%, indicating agreement within the model. Field application in the freshwater Danjiangkou Reservoir identified log-linear gray-level–depth trends in four signal-qualified image sequences, whereas low-signal sequences exhibited pronounced compression of the available gray-level range. These findings support conventional cameras as a potentially low-cost complement to radiometric profiling for relative optical-attenuation monitoring.

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Publication Details

Journal
Applied Sciences
Published
2026-09-24
DOI
https://doi.org/10.3390/app16199495
Primary Topic
Image Enhancement Techniques
Type
article
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A Monte Carlo Study of Gray-Level—Depth Mapping in Underwater Images

Mengxue Lin, Jing Cao, Zhengyu Liu, Siguang Zong
Applied Sciences
Image Enhancement Techniques
article

A Monte Carlo Study of Gray-Level—Depth Mapping in Underwater Images

Mengxue Lin, Jing Cao, Zhengyu Liu, Siguang Zong
article en

Abstract

Conventional underwater images offer an accessible means of observing vertical light attenuation, but interpreting their gray-level trends requires a link between optical transport and digital image formation. This study derives conditions under which a log-linear gray-level–depth relationship is retained and evaluates trend preservation using a Monte Carlo model coupling photon transport, camera response, and 8-bit quantization. The framework provides a physical basis for interpreting the empirical gray-level attenuation slope, kG, and identifies low-signal conditions that compromise its interpretation. In the numerical experiment, the mean relative slope difference between the virtual-camera response and an unscattered direct downwelling irradiance reference was 0.5091%, indicating agreement within the model. Field application in the freshwater Danjiangkou Reservoir identified log-linear gray-level–depth trends in four signal-qualified image sequences, whereas low-signal sequences exhibited pronounced compression of the available gray-level range. These findings support conventional cameras as a potentially low-cost complement to radiometric profiling for relative optical-attenuation monitoring.

Applied SciencesVol. 16(19)
Naval University of Engineering (CN)
Life below water
Openalex Percentile: Top 14%
Image Enhancement Techniques
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A Monte Carlo Study of Gray-Level—Depth Mapping in Underwater Images — Mengxue Lin, Jing Cao, et al. · Applied Sciences (2026) | TGRS Research Map | TGRS