A new method for monitoring surface wind speed distribution using GNSS-derived precipitable water vapor during typhoon periods

Surface wind speed (WS) is essential for assessing typhoon intensity and associated impacts. This study develops a GNSS-derived precipitable water vapor (PWV)-based approach for estimating surface WS during typhoons. Forty typhoons affecting Kyushu, Japan, during 2019–2023 were analyzed using PWV derived from 97 GNSS stations. PWV and WS exhibited significant positive correlations (0.6–0.8) during typhoons. Among three developed PWV-WS models, the third-order polynomial model showed favorable regional applicability, with MAE, RMSE and STD of 2.49, 2.95 m/s and 2.15 m/s, respectively. Application to Super Typhoon Khanun further demonstrated the potential of GNSS-derived PWV for supplementary surface wind monitoring during typhoons.

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Publication Details

Journal
Journal of Spatial Science
Published
2026-09-28
DOI
https://doi.org/10.1080/14498596.2026.2734998
Primary Topic
Soil Moisture and Remote Sensing
Type
article
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article

A new method for monitoring surface wind speed distribution using GNSS-derived precipitable water vapor during typhoon periods

Kangming Song, Biqing Gao, Qimin He, Rui Wang
Journal of Spatial Science
Soil Moisture and Remote Sensing
article

A new method for monitoring surface wind speed distribution using GNSS-derived precipitable water vapor during typhoon periods

Kangming Song, Biqing Gao, Qimin He, Rui Wang
article en

Abstract

Surface wind speed (WS) is essential for assessing typhoon intensity and associated impacts. This study develops a GNSS-derived precipitable water vapor (PWV)-based approach for estimating surface WS during typhoons. Forty typhoons affecting Kyushu, Japan, during 2019–2023 were analyzed using PWV derived from 97 GNSS stations. PWV and WS exhibited significant positive correlations (0.6–0.8) during typhoons. Among three developed PWV-WS models, the third-order polynomial model showed favorable regional applicability, with MAE, RMSE and STD of 2.49, 2.95 m/s and 2.15 m/s, respectively. Application to Super Typhoon Khanun further demonstrated the potential of GNSS-derived PWV for supplementary surface wind monitoring during typhoons.

Journal of Spatial Science
Anhui University of Science and Technology (CN), Suzhou University of Science and Technology (CN), Guangzhou Urban Planning Survey & Design Institute (CN), Intelligent Health (United Kingdom) (GB), Gannan University of Science and Technology (CN)
Affordable and clean energy
Openalex Percentile: Top 19%
Soil Moisture and Remote Sensing
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A new method for monitoring surface wind speed distribution using GNSS-derived precipitable water vapor during typhoon periods — Kangming Song, Biqing Gao, et al. · Journal of Spatial Science (2026) | TGRS Research Map | TGRS