Bulletin of Surveying and Mapping ›› 2026, Vol. 0 ›› Issue (8): 59-66.doi: 10.13474/j.cnki.11-2246.2026.0809
Previous Articles Next Articles
Zhang Xue1, Zhang Shuyuan1, Zhang Zhijie2, He Junliang1, Song Kunlun1, Qi Qing1, Zhang Miaomiao1, Zhang Xiao1
Received:2025-11-19
Published:2026-09-12
CLC Number:
Zhang Xue, Zhang Shuyuan, Zhang Zhijie, He Junliang, Song Kunlun, Qi Qing, Zhang Miaomiao, Zhang Xiao. An automatic tidal flat extraction algorithm for the Bohai Bay incorporating irregular hexagonal grid[J]. Bulletin of Surveying and Mapping, 2026, 0(8): 59-66.
| [1] Tang Pengfei,Guo Shanchuan,Zhang Peng,et al.A highly efficient index for robust mapping of tidal flats from Sentinel-2 images directly[J].ISPRS Journal of Photogrammetry and Remote Sensing,2024,218:742-760. [2] Zhang Kangyong,Dong Xuanyan,Liu Zhigang,et al.Mapping tidal flats with landsat 8 images and Google earth engine:a case study of the China's eastern coastal zone circa 2015[J].Remote Sensing,2019,11(8):924. [3] Xu Nan,Gong Peng.Significant coastline changes in China during 1991—2015 tracked by Landsat data[J].Science Bulletin,2018,63(14):883-886. [4] Mao Dehua,Wang Zongming,Wu Jianguo,et al.China's wetlands loss to urban expansion[J].Land Degradation & Development,2018,29(8):2644-2657. [5] 程丽娜,钟才荣,李晓燕,等.Sentinel-2密集时间序列数据和Google Earth Engine的潮间带湿地快速自动分类[J].遥感学报,2022,26(2):348-357. [6] 智超,吴文挺,苏华.潮汐和植被物候影响下的潮间带湿地遥感提取[J].遥感学报,2022,26(2):373-385. [7] Zhang Zhen,Xu Nan,Li Yangfan,et al.Sub-continental-scale mapping of tidal wetland composition for East Asia:a novel algorithm integrating satellite tide-level and phenological features[J].Remote Sensing of Environment,2022,269:112799. [8] He Tingting,Xia Qing,Zhang Han,et al.Development of a tidal flat recognition index based on multispectral images for mapping tidal flats[J].Ecological Indicators,2023,157:111218. [9] 赵士祺,魏潇,孙伟,等.基于GEE的山东靖海湾岸线和潮滩逐年提取与形态变化分析[J].海洋环境科学,2025,44(3):443-451,480. [10] Jia Mingming,Wang Zongming,Mao Dehua,et al.Rapid,robust,and automated mapping of tidal flats in China using time series Sentinel-2 images and Google Earth Engine[J].Remote Sensing of Environment,2021,255:112285. [11] 李毅,程丽娜,鲁莹莹,等.基于最大值合成和最大类间方差法莱州湾滨海滩涂变化研究[J].自然资源遥感,2022,34(4):68-75. [12] 陈慧欣,陈超,张自力,等.一种基于Google Earth Engine云平台的潮间带遥感信息提取方法[J].自然资源遥感,2022,34(4):60-67. [13] 王秋璐,杨潇,许艳,等.基于指标体系法的渤海湾生境状况评价[J].水生态学杂志,2023,44(6):19-26. [14] 付梦娣,贾强,任月恒,等.环渤海滨海湿地鸻鹬类水鸟多样性及其环境影响因子[J].生态学报,2021,41(22):8882-8891. [15] 蔡新立.基于高分一号遥感卫星的渤海湾悬浮泥沙时空分布反演[J].大气与环境光学学报,2020,15(2):134-142. [16] 魏帆,韩广轩,张金萍,等.1985—2015年围填海活动影响下的环渤海滨海湿地演变特征[J].生态学杂志,2018,37(5):1527-1537. [17] Birch C P D,Oom S P,Beecham J A.Rectangular and hexagonal grids used for observation,experiment and simulation in ecology[J].Ecological Modelling,2007,206(3/4):347-359. [18] Liu Qi,Qiao Jiajun,Li Mengjuan,et al.Spatiotemporal heterogeneity of ecosystem service interactions and their drivers at different spatial scales in the Yellow River Basin[J].Science of the Total Environment,2024,908:168486. [19] 陈占龙,吴贝贝,王润,等.面向越野路径规划的多层次六角格网通行模型[J].测绘学报,2023,52(9):1562-1573. [20] Luo Wei,Liu Huan,Zhao Haiyang,et al.Remote sensing analysis of tidal flat evolution in the Yangtze River Estuary over the past 50 years:dynamics,patterns,and driving factors[J].Ecological Indicators,2025,179:114253. [21] Xu Haijue,Jia Ao,Song Xiaolong,et al.Extraction and spatiotemporal evolution analysis of tidal flats in the Bohai Rim during 1984—2019 based on remote sensing[J].Journal of Geographical Sciences,2023,33(1):76-98. [22] 代硕,夏清,张涵,等.利用Sentinel-2多光谱影像构建一种潮滩提取指数[J].光谱学与光谱分析,2023,43(6):1888-1894. |
| [1] | Liu Yao, Huang He, Ma Yanjie, Ma Chaowei, Ren Boyang, Yang Junxing. Lightweight monocular depth estimation model based on multi-kernel grouped convolution and adaptive feature fusion [J]. Bulletin of Surveying and Mapping, 2026, 0(8): 67-73,81. |
| [2] | Wei Pengcheng, Wang Xiulong, Wang Yuyang, Huang Haifeng, Guo Ruolan, Guo Fei, Liu Yi, Zhao Binbin, Wen Qingfeng, An Yang, Guo Wei. Transmission line tower tilt detection under flooding conditions based on UAV LiDAR [J]. Bulletin of Surveying and Mapping, 2026, 0(8): 74-81. |
| [3] | Yin Yuting, Wang Ruiqing, Wei Zhanying, Zhang Weihong. Calibration method for hyperspectral line-scan camera mounting parameters based on integrated registration of high-precision point clouds and image-based point clouds under the same viewing geometry [J]. Bulletin of Surveying and Mapping, 2026, 0(8): 112-116. |
| [4] | Xu Hongxin, Yu Yao. Hyperspectral image classification algorithm based on multi-feature dynamic ensemble [J]. Bulletin of Surveying and Mapping, 2026, 0(8): 117-124,136. |
| [5] | Wang Tian, Li Qianli, Wang Xiping, Zhang Ningli, Wu Yanping. Classification optimization algorithm for airborne LiDAR point cloud in complex terrain [J]. Bulletin of Surveying and Mapping, 2026, 0(8): 125-129. |
| [6] | Long Fei, Wang Wenhui, Shi Yifan, Lin Siqun, Liu Wenzhuang, Shao Lin. A water body segmentation algorithm integrating global-local contextual information [J]. Bulletin of Surveying and Mapping, 2026, 0(8): 130-136. |
| [7] | Zhou Hong, Zhang Guohe, You Siqi, Wang Ran, Ding Pengfei. Intelligent cultivated land extraction from ZY1E imagery via dual-backbone deep learning network [J]. Bulletin of Surveying and Mapping, 2026, 0(8): 137-144. |
| [8] | Gao Shuhan, Zhou Chao, Shen Hao, Jia Ran, Liu Hui, Liu Chuanbin, Liu Rong. LDN-DETR:lightweight denoising DETR for efficient foreign object detection on power transmission lines [J]. Bulletin of Surveying and Mapping, 2026, 0(8): 145-153. |
| [9] | Huang Bin, Shi Guojie, Du Li, Wang Linke, Han Muyang, Peng Hongwei, Li Kefan, Li Jiaxi, Wang Jinguo, Hou Zhaoyang. Intelligent detection of subsurface defects in ground penetrating radar images based on an improved YOLO11 network [J]. Bulletin of Surveying and Mapping, 2026, 0(8): 154-160,173. |
| [10] | Liang Jinbao, Chen Jiai. Improved large-scale real-scene 3D reconstruction method for coastal ancient villages based on CityGaussianV2 [J]. Bulletin of Surveying and Mapping, 2026, 0(8): 174-179. |
| [11] | Deng Yuxin, Chen Guojun, Chen Jiai, Kong Qiuping, Nie Wen. A rainfall-induced landslide early warning system integrating 3D monitoring and multi-model analysis [J]. Bulletin of Surveying and Mapping, 2026, 0(8): 180-186. |
| [12] | YU Shihui, HU Jianliang, MA Xiaobo, HAN Wenqiang, GAO Sha, CHEN Jie, ZHOU Hanwang, ZHANG Ji. 3D modeling and precision control of plateau mountain photovoltaic field areas based on UAV-SLAM air-ground synergy [J]. Bulletin of Surveying and Mapping, 2026, 0(5): 136-142. |
| [13] | BAI Shuying, ZHU Yanggui, XIE Tao, ZHANG Hui, PENG Da. Spatio-temporal variation of snow depth and its influencing factors based on microwave remote sensing: a case study of the Brahmaputra River basin [J]. Bulletin of Surveying and Mapping, 2026, 0(3): 26-31. |
| [14] | YIN Wanling, ZHANG Zhijun, ZHANG Yin, YUAN Shuai, HU Qingwu, XU Wenting, LI Zhijun. Study on the spatio-temporal distribution of Cladophora in the Shaliu River estuary of Qinghai Lake and its response to the lake area and meteorological elements [J]. Bulletin of Surveying and Mapping, 2026, 0(3): 51-56. |
| [15] | WANG Ye, ZHANG Xinchang, JIANG Ming, RUAN Yongjian. CSG-Net: a method for building footprint extraction from remote sensing images by integrating domain adaptation and the visual foundation model SAM [J]. Bulletin of Surveying and Mapping, 2026, 0(3): 57-61. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||