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dc.contributor.authorGrahn, Jakob
dc.contributor.authorBianchi, Filippo Maria
dc.contributor.authorMüller, Karsten
dc.contributor.authorMalnes, Eirik
dc.date.accessioned2025-03-19T12:35:53Z
dc.date.available2025-03-19T12:35:53Z
dc.date.issued2024-09-23
dc.description.abstractAvalanche forecasting is essential for safety in mountainous regions where avalanches threaten human life and infrastructure. Traditional methods for assessing avalanche risk, such as snow pit analysis, are challenging to apply over extensive areas due to their intensive labor and resource requirements. In this study, we explore the potential of satellite-based data for avalanche forecasting by leveraging a dataset of nearly half a million avalanche detections in Norway from 2016 to 2020. This dataset enables a data-driven approach to identifying meteorological precursors to avalanches. We present the methodology for integrating time series of avalanche activity with numerical weather prediction (NWP) data using spatio-temporal deep learning models. We introduce a prototype model and discuss the primary challenges in training this architecture. This framework lays the foundation for improved avalanche forecasting over large regions where in-situ measurements are sparse or unavailable.en_US
dc.descriptionSource at <a href=https://arc.lib.montana.edu/snow-science/item.php?id=3109>https://arc.lib.montana.edu/snow-science/item.php?id=3109</a>.en_US
dc.identifier.citationGrahn, Bianchi, Müller, Malnes. Data-driven avalanche forecasting using weather and satellite data. International Snow Science Workshops (ISSW) Proceedings. 2024en_US
dc.identifier.cristinIDFRIDAID 2367652
dc.identifier.urihttps://hdl.handle.net/10037/36727
dc.language.isoengen_US
dc.publisherMontana State Universityen_US
dc.relation.journalInternational Snow Science Workshops (ISSW) Proceedings
dc.rights.accessRightsopenAccessen_US
dc.rights.holderCopyright 2024 The Author(s)en_US
dc.titleData-driven avalanche forecasting using weather and satellite dataen_US
dc.type.versionpublishedVersionen_US
dc.typeJournal articleen_US
dc.typeTidsskriftartikkelen_US
dc.typePeer revieweden_US


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