基于时序Sentinel-2影像和近红外潮滩指数的海岸带潮滩提取方法
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作者单位:

1.长沙理工大学 交通运输与工程学院,湖南 长沙 410114;2.云南农业大学 水利学院,云南 昆明 650201

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基金项目:

国家自然科学基金(42101356);湖南省自然科学基金项目(2022JJ40473)


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

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

Fund Project:

National Natural Science Foundation of China(42101356),Hunan Provincial Natural Science Foundation Fund Project (2022JJ40473)

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    摘要:

    利用遥感瞬时影像提取海岸带潮滩时,受潮汐影响导致空间分布提取准确性低。以削弱潮汐影响为目的,提出一种联合时序Sentinel-2影像与潮滩指数的海岸带潮滩提取方法。首先,基于Sentinel-2时间序列影像,利用分位数合成法生成高、低潮影像,分析不同地类在高、低潮影像上的光谱反射率特征,构建一种可排除潮汐瞬时干扰的近红外波段潮滩提取指数;将影像光谱与潮滩提取指数输入到机器学习算法中,实现潮滩的快速、高效提取。此外,研究讨论了潮滩指数的可分离性及方法的普适性。结果表明:构建的潮滩提取指数对潮滩具有较好的可分离性,潮滩提取总体精度为93.02%,Kappa系数为0.86,提出的方法对含有近红外波段的遥感影像均具有良好的适用性,能够实现自动、快速地潮滩提取,为海岸带资源的可持续管理和保护提供数据支持。

    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 is proposed. First, based on the Sentinel-2 time-series image data, we use the quantize synthesis method to generate high- and low-tide images, and then analyze 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 is constructed. Secondly, the image spectral information and the tidal flat extraction index are input into a machine learning algorithm to realize fast and efficient extraction of the tidal flat. In addition, the study discusses 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 has 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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  • 收稿日期:2024-08-10
  • 最后修改日期:2024-12-11
  • 录用日期:2024-09-09
  • 在线发布日期: 2024-12-05
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