Tidal flats extraction in the coastal zone based on time-series Sentinel-2 imagery and near-infrared tidal flats indices
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Affiliation:

1.The School of Traffic and Transportation Engineering, Changsha University of Science and Technology, Changsha 410114, China;2.School of Water Conservancy, Yunnan Agricultural University, Kunming 650201, China

Clc Number:

P237

Fund Project:

Supported by the National Natural Science Foundation of China (42101356), Open Fund of Engineering Laboratory of Spatial Information Technology of Highway Geological Disaster Early Warning in Hunan Province (Changsha University of Science & Technology) (KFJ210601), the Scientific Research Foundation of Hunan Education Department (23B0327), the Youth Project of the Hunan Provincial Department of Education(24B0331)

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    Abstract:

    When extracting coastal zone tidal flats using remote sensing transient images, the influence of tides greatly limits the accuracy of tidal flat spatial distribution extraction. With the purpose of weakening the influence of tides, a method of extracting coastal zone tidal flats by combining time-series Sentinel-2 images and tidal flat index was proposed. First, based on the Sentinel-2 time-series image data, we us the quantize synthesis method to generate high- and low-tide images, and then analyz the spectral reluctance characteristics of different land classes on the high- and low-tide images. A NIR-band tidal flat extraction index that excludes the interference of the tidal transient was constructed. Secondly, the image spectral information and the tidal flat extraction index were input into a machine learning algorithm to realize fast and efficient extraction of the tidal flat. In addition, the study discussed the separability of the tidal flats index and the generalizability of the methodology. The results show that the tidal flat''s extraction index constructed in this research had a good separability for tidal flats, the overall accuracy of tidal flats extraction was 93.02%, the Kappa coefficient was 0.86, and the proposed method had good applicability to remote sensing images containing near-infrared bands. This method can realize automatic and rapid tidal flat extraction, and provide data support for the sustainable management and protection of coastal zone resources.

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ZHOU Ru-Jia, XIA Qing, ZHENG Qiong, ZHU Li-Hong, LI Jian-Hua, LI Bin, SONG Jia. Tidal flats extraction in the coastal zone based on time-series Sentinel-2 imagery and near-infrared tidal flats indices[J]. Journal of Infrared and Millimeter Waves,2025,44(2):189~196

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History
  • Received:August 10,2024
  • Revised:February 10,2025
  • Adopted:September 09,2024
  • Online: February 08,2025
  • Published: April 25,2025
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