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This system aims to predict risk more precisely by monitoring precipitation changes and soil conditions in real time, and prevent damage through early warnings.
Increased localized torrential rains and heavy downpours due to climate change are heightening the risk of landslides. Existing landslide prediction systems assess risk using precipitation and topography data, but struggle to incorporate real-time data, hindering rapid response. This system aims to predict risk more precisely by monitoring precipitation changes and soil conditions in real time, and prevent damage through early warnings.
This program detects precipitation and ground changes and performs functions to assess the risk of landslide occurrence.
This system enables more precise prediction of landslide risks caused by increased rainfall. The early warning system minimizes loss of life and property damage. Furthermore, continuously accumulating data on landslide-prone areas strengthens long-term prevention and response systems.
| Before (AS-IS) | After (TO-BE) |
|---|---|
| Existing landslide prediction information is only used to issue warnings, and alerts to residents in areas at risk of landslides, considering local weather conditions, and as basic preventive data. | Regionally tailored monitoring of potential landslide risk areas, incorporating 9 landslide- triggering factors and regional precipitation data |
Launch year: 2024
Case study courtesy of the National Information Society Agency, Republic of Korea, Apolitical's Content Partner. Sourced from Use Cases of Public AI Service, Vol.1, https://eng.nia.or.kr/site/nia_eng/ex/bbs/View.do?cbIdx=31975&bcIdx=28997&parentSeq=29041
In partnership with
National Information Society Agency (NIA)
In partnership with
National Information Society Agency (NIA)





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