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  1. 防災科研関係論文

A Study on the Performance Comparison of Sediment Movement Detectors Using Unet-Based Models and the Sliding Partitioning Method

https://nied-repo.bosai.go.jp/records/7596
https://nied-repo.bosai.go.jp/records/7596
00629566-bac2-4c99-b1c1-18a9e2ebd5a2
Item type researchmap(1)
公開日 2026-08-03
タイトル
言語 en
タイトル A Study on the Performance Comparison of Sediment Movement Detectors Using Unet-Based Models and the Sliding Partitioning Method
言語
言語 eng
著者 Xiaosong Liu

× Xiaosong Liu

en Xiaosong Liu

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Makoto Oda

× Makoto Oda

en Makoto Oda

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Kei Kawamura

× Kei Kawamura

en Kei Kawamura

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Tsuyoshi Wakatsuki

× Tsuyoshi Wakatsuki

en Tsuyoshi Wakatsuki

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抄録
内容記述タイプ Other
内容記述 Japan is covered by mountainous and hilly terrain and thus is prone to disasters such as landslides caused by earthquakes and heavy rainfall. Currently, the identification of sediment disaster areas is conducted through visual interpretation of aerial photographs taken after these disasters. To improve the efficiency of this process, research has been advancing in the automatic detection of sediment movement areas using deep learning techniques applied to aerial photographs. In this study, we compare the performance of sediment movement detectors using Unet and Unet++, in order to investigate the impact of changes in the loss function parameters during training on detection performance. Additionally, we evaluate the performance improvement when the sliding partitioning method is used for input images to the detectors. Results show that using sliding partitioning and adjusting the value of the loss function coefficient β can improve detection performance.
言語 en
書誌情報 en : Kalpa Publications in Computing

巻 22, p. 247-234, 発行日 2025-08
出版者
言語 en
出版者 EasyChair
ISSN
収録物識別子タイプ ISSN
収録物識別子 2515-1762
DOI
関連識別子 10.29007/3kz8
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