JOURNAL ARTICLE

Mapping snow depth within a tundra ecosystem using multiscale observations and Bayesian methods

Abstract

Abstract. This paper compares and integrates different strategies to characterize the variability of end-of-winter snow depth and its relationship to topography in ice-wedge polygon tundra of Arctic Alaska. Snow depth was measured using in situ snow depth probes and estimated using ground-penetrating radar (GPR) surveys and the photogrammetric detection and ranging (phodar) technique with an unmanned aerial system (UAS). We found that GPR data provided high-precision estimates of snow depth (RMSE = 2.9 cm), with a spatial sampling of 10 cm along transects. Phodar-based approaches provided snow depth estimates in a less laborious manner compared to GPR and probing, while yielding a high precision (RMSE = 6.0 cm) and a fine spatial sampling (4 cm × 4 cm). We then investigated the spatial variability of snow depth and its correlation to micro- and macrotopography using the snow-free lidar digital elevation map (DEM) and the wavelet approach. We found that the end-of-winter snow depth was highly variable over short (several meter) distances, and the variability was correlated with microtopography. Microtopographic lows (i.e., troughs and centers of low-centered polygons) were filled in with snow, which resulted in a smooth and even snow surface following macrotopography. We developed and implemented a Bayesian approach to integrate the snow-free lidar DEM and multiscale measurements (probe and GPR) as well as the topographic correlation for estimating snow depth over the landscape. Our approach led to high-precision estimates of snow depth (RMSE = 6.0 cm), at 0.5 m resolution and over the lidar domain (750 m × 700 m).

Keywords:
Snow Transect Lidar Ground-penetrating radar Tundra Geology Remote sensing Digital elevation model Permafrost Sampling (signal processing) Spatial variability Arctic Environmental science Radar Geomorphology

Metrics

44
Cited By
2.94
FWCI (Field Weighted Citation Impact)
73
Refs
0.90
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Climate change and permafrost
Physical Sciences →  Earth and Planetary Sciences →  Atmospheric Science
Cryospheric studies and observations
Physical Sciences →  Earth and Planetary Sciences →  Atmospheric Science
Landslides and related hazards
Physical Sciences →  Environmental Science →  Management, Monitoring, Policy and Law

Related Documents

BOOK-CHAPTER

GNSS Snow Depth Monitoring Using SNR Observations

Fenfen LiLilong LiuLiangke HuangWei ZhouJunyu LiY. Z. YangDonggui Huang

Lecture notes in electrical engineering Year: 2019 Pages: 211-219
JOURNAL ARTICLE

Procedure of snow depth mapping

五百沢 智也

Journal:   Journal of the Japan society of photogrammetry Year: 1963 Vol: 2 (3)Pages: 134-138_1
JOURNAL ARTICLE

Modeling bulk density and snow water equivalent using daily snow depth observations

J. L. McCreightEric E. Small

Journal:   ˜The œcryosphere Year: 2014 Vol: 8 (2)Pages: 521-536
© 2026 ScienceGate Book Chapters — All rights reserved.