Author
Listed:
- Daniker Chepashev
- Natalya Denissova
- Olga Petrova
- Gulzhan Daumova
- Gulzhan Daumova
- Aigerim Kalybekova
Abstract
Snow avalanches pose a persistent threat to mountain communities, yet systematic inventories remain scarce where cloud cover and rugged topography limit optical remote sensing. Leveraging the all-weather capability of C-band radar, we design an automated workflow that transforms Sentinel-1 imagery into a season-scale avalanche record for the Zailiysky Alatau range (Northern Tien Shan, Kazakhstan). A dual-polarization Interferometric-Wide pair acquired in March–April 2024 was co-registered in Google Earth Engine, speckle-suppressed with an adaptive Enhanced Lee filter, and converted to a VV–VH polarization-difference layer. Temporal differencing highlighted fresh debris as negative anomalies. Layover, radar shadow, and permanent water were masked using the 30 m SRTM DEM and the JRC Global Surface Water product. Further, decision tree classifiers were used for delineation of avalanche from non-avalanche pixels. Validation against PlanetScope (3 m) and Sentinel-2 (10 m) imagery acquired within ± 2 days returned a detection completeness. Results confirm that Sentinel-1 change detection can retrieve most medium-to-large avalanches even under persistent cloud cover, offering a cost-free complement to sparse field observations in Central Asia. The workflow fully implemented in a cloud platform requires no scene-specific tuning and is transferable to other snow-covered mountain regions for near-real-time hazard assessment.
Suggested Citation
Daniker Chepashev & Natalya Denissova & Olga Petrova & Gulzhan Daumova & Gulzhan Daumova & Aigerim Kalybekova, 2025.
"Snow avalanche mapping using sentinel-1 SAR change detection,"
International Journal of Innovative Research and Scientific Studies, Innovative Research Publishing, vol. 8(6), pages 1478-1488.
Handle:
RePEc:aac:ijirss:v:8:y:2025:i:6:p:1478-1488:id:9947
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