Message Board

Respected readers, authors and reviewers, you can add comments to this page on any questions about the contribution, review, editing and publication of this journal. We will give you an answer as soon as possible. Thank you for your support!

Full name
E-mail
Phone number
Title
Message
Verification Code
Volume 43 Issue 3
Apr.  2021
Turn off MathJax
Article Contents
Yang Lijun,Zhang Rongchun,Jang Jie, et al. Landsat-5 image extraction method for tidal flat waterline: Take the Chongming Dongtan, Changjiang River Estuary as an example[J]. Haiyang Xuebao,2021, 43(3):146–156 doi: 10.12284/hyxb2021027
Citation: Yang Lijun,Zhang Rongchun,Jang Jie, et al. Landsat-5 image extraction method for tidal flat waterline: Take the Chongming Dongtan, Changjiang River Estuary as an example[J]. Haiyang Xuebao,2021, 43(3):146–156 doi: 10.12284/hyxb2021027

Landsat-5 image extraction method for tidal flat waterline: Take the Chongming Dongtan, Changjiang River Estuary as an example

doi: 10.12284/hyxb2021027
  • Received Date: 2020-02-21
  • Rev Recd Date: 2020-04-09
  • Available Online: 2021-03-09
  • Publish Date: 2021-04-23
  • It is of great significance to quickly acquire spatiotemporal change in the information of waterline of remote sensing image. The extraction of the waterline of tidal flat on the remote sensing image has always been a difficult problem in the application of remote sensing technology. There are unique spatial relationships and spectral characteristics on the remote sensing image of waterline. The research area is the Chongming Dongtan of the Changjiang River Estuary. By integrating methods of color model transformation, information entropy calculation, maximum variance and edge detection, we explored how to enhance the contrast of land and sea on the Landsat-5 satellite image, and the edge extraction at different scales was studied. The calculation method of the spatial and spectral characteristics of the waterline using the thermal infrared band was given. A fast extraction method of waterline of sensory image taking the spatial relationship and spectral characteristics into account under the framework of object-oriented technology was proposed. Results show that: (1) The local threshold segmentation method based on the maximum between-class variance method can automatically extract the waterline of band 6. The waterline is continuous, complete, and rich in spatial information. (2) The combination of the optimum index factor method, the dispersion method and the color model transformation method can effectively enhance the contrast between land and sea. The local adaptive Canny operator based on the maximum between-class variance method can automatically detect the high precision edge of the enhanced remote sensing image. (3) Using the spatial relationship and spectral characteristic of waterline, the computer can recognize and connect waterline automatically. (4) The waterline extraction method proposed in this paper is fast and automated, inheriting strong continuity of the threshold segmentation method and high positioning accuracy and strong ability to present details of Canny operator. The results have significant value for researches on the dynamic changes in the coastal zone, the mechanism of land-sea interaction, the protection and development of coastal zone resources, and offshore engineering management.
  • loading
  • [1]
    申家双, 郭海涛, 李海滨, 等. 基于Canny算子和GAC模型相结合的影像水边线提取方法[J]. 测绘科学技术学报, 2013, 30(3): 264−268. doi: 10.3969/j.issn.1673-6338.2013.03.011

    Shen Jiashuang, Guo Haitao, Li Haibin, et al. A water edge extraction method from images based on Canny operator and GAC model[J]. Journal of Geomatics Science and Technology, 2013, 30(3): 264−268. doi: 10.3969/j.issn.1673-6338.2013.03.011
    [2]
    Boak E H, Turner I L. Shoreline definition and detection: a review[J]. Journal of Coastal Research, 2005, 21(4): 688−703.
    [3]
    Lee J S, Jurkevich I. Coastline detection and tracing in SAR images[J]. IEEE Transactions on Geoscience and Remote Sensing, 1990, 28(4): 662−668. doi: 10.1109/TGRS.1990.572976
    [4]
    Addo K A, Walkden M, Mills J P. Detection, measurement and prediction of shoreline recession in Accra, Ghana[J]. ISPRS Journal of Photogrammetry and Remote Sensing, 2008, 63(5): 543−558. doi: 10.1016/j.isprsjprs.2008.04.001
    [5]
    Liu H, Jezek K C. Automated extraction of coastline from satellite imagery by integrating Canny edge detection and locally adaptive thresholding methods[J]. International Journal of Remote Sensing, 2004, 25(5): 937−958. doi: 10.1080/0143116031000139890
    [6]
    Mason D C, Davenport I J, Flather R A, et al. Cover a digital elevation model of the inter-tidal areas of the Wash, England, produced by the waterline method[J]. International Journal of Remote Sensing, 1998, 19(8): 1455−1460. doi: 10.1080/014311698215289
    [7]
    郑宗生, 周云轩, 蒋雪中, 等. 崇明东滩水边线信息提取与潮滩DEM的建立[J]. 遥感技术与应用, 2007, 22(1): 35−38, 94. doi: 10.3969/j.issn.1004-0323.2007.01.007

    Zheng Zongsheng, Zhou Yunxuan, Jiang Xuezhong, et al. Waterline extraction and DEM reconstruction in Chongming Dongtan[J]. Remote Sensing Technology and Application, 2007, 22(1): 35−38, 94. doi: 10.3969/j.issn.1004-0323.2007.01.007
    [8]
    Niedermeier A, Romaneessen E, Lehner S. Detection of coastlines in SAR images using wavelet methods[J]. IEEE Transactions on Geoscience and Remote Sensing, 2000, 38(5): 2270−2281. doi: 10.1109/36.868884
    [9]
    Li Zhen, Heygster G, Notholt J. Intertidal topographic maps and morphological changes in the German Wadden Sea between 1996−1999 and 2006−2009 from the waterline method and SAR images[J]. IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing, 2014, 7(8): 3210−3224. doi: 10.1109/JSTARS.2014.2313062
    [10]
    盛佳, 洪中华, 张云, 等. 基于TerraSAR-X影像的格陵兰岛海岸水边线提取[J]. 极地研究, 2014, 26(4): 418−424.

    Sheng Jia, Hong Zhonghua, Zhang Yun, et al. Extraction of the Greenland coastline based on TerraSAR-X imagery[J]. Chinese Journal of Polar Research, 2014, 26(4): 418−424.
    [11]
    刘炜, 王聪华, 赵尔平, 等. 基于面向对象分类的细小河流水体提取方法研究[J]. 农业机械学报, 2014, 45(47): 237−244.

    Liu Wei, Wang Conghua, Zhao Erping, et al. Extraction of small river information based on object-oriented classification[J]. Transactions of the Chinese Society for Agricultural Machinery, 2014, 45(47): 237−244.
    [12]
    Zhang Tao, Yang Xiaomei, Hu Shanshan, et al. Extraction of coastline in aquaculture coast from multispectral remote sensing images: object-based region growing integrating edge detection[J]. Remote Sensing, 2013, 5(9): 4470−4487. doi: 10.3390/rs5094470
    [13]
    欧阳越, 种劲松. 基于改进水平截集算法的SAR图像海岸线检测[J]. 遥感技术与应用, 2004, 19(6): 456−460. doi: 10.3969/j.issn.1004-0323.2004.06.005

    Ouyang Yue, Zhong Jinsong. Coastline detection method in SAR images based on an improved level set algorithm[J]. Remote Sensing Technology and Application, 2004, 19(6): 456−460. doi: 10.3969/j.issn.1004-0323.2004.06.005
    [14]
    郭海涛, 孙磊, 申家双, 等. 一种四叉树和测地线活动轮廓模型相结合的海陆影像分割方法[J]. 测绘学报, 2016, 45(1): 65−72.

    Guo Haitao, Sun Lei, Shen Jiashuang, et al. An island and coastal image segmentation method based on Quadtree and GAC model[J]. Acta Geodaetica et Cartographica Sinica, 2016, 45(1): 65−72.
    [15]
    Zhu Ziwei, Tang Yuqi, Hu Jun, et al. Coastline extraction from high-resolution multispectral images by integrating prior edge information with active contour model[J]. IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing, 2019, 12(10): 4099−4109. doi: 10.1109/JSTARS.2019.2939297
    [16]
    Kang Yanyan, Ding Xianrong, Xu Fan, et al. Topographic mapping on large-scale tidal flats with an iterative approach on the waterline method[J]. Estuarine, Coastal & Shelf Science, 2017, 190: 11−22.
    [17]
    郑宗生, 周云轩, 刘志国, 等. 基于水动力模型及遥感水边线方法的潮滩高程反演[J]. 长江流域资源与环境, 2008, 17(5): 756−760. doi: 10.3969/j.issn.1004-8227.2008.05.017

    Zheng Zongsheng, Zhou Yunxuan, Liu Zhiguo, et al. DEM reconstruction based on hydrodynamic model and waterline method[J]. Resources and Environment in the Yangtze Basin, 2008, 17(5): 756−760. doi: 10.3969/j.issn.1004-8227.2008.05.017
    [18]
    Dai Chunli, Howat I M, Larour E, et al. Coastline extraction from repeat high resolution satellite imagery[J]. Remote Sensing of Environment, 2019, 229: 260−270. doi: 10.1016/j.rse.2019.04.010
    [19]
    吴一全, 刘忠林. 遥感影像的海岸线自动提取方法研究进展[J]. 遥感学报, 2019, 23(4): 582−602.

    Wu Yiquan, Liu Zhonglin. Research progress on methods of automatic coastline extraction based on remote sensing images[J]. Journal of Remote Sensing, 2019, 23(4): 582−602.
    [20]
    韩震, 恽才兴. 长江口近岸水域卫星遥感应用技术研究[M]. 北京: 海洋出版社, 2011: 32−48.

    Han Zhen, Yun Caixing. Research on Application Technology of Satellite Remote Sensing in Coastal Waters of Changjiang Estuary[M]. Beijing: China Ocean Press, 2011: 32−48.
    [21]
    邓书斌, 陈秋锦, 杜会建, 等. ENVI遥感图像处理方法[M]. 2版. 北京: 高等教育出版社, 2014: 197−210.

    Deng Shubin, Chen Qiujin, Du Huijian, et al. ENVI Remote Sensing Image Processing Method[M]. 2nd ed. Beijing: Higher Education Press, 2014: 197−210.
    [22]
    Ryu J H, Won J S, Min K D. Waterline extraction from Landsat TM data in a tidal flat: a case study in Gomso Bay, Korea[J]. Remote Sensing of Environment, 2002, 83(3): 442−456. doi: 10.1016/S0034-4257(02)00059-7
    [23]
    Ingle M A, Talmale G R. Respiratory mask selection and leakage detection system based on Canny edge detection operator[J]. Procedia Computer Science, 2016, 78: 323−329. doi: 10.1016/j.procs.2016.02.064
    [24]
    刘丽霞, 李宝文, 王阳萍, 等. 改进Canny边缘检测的遥感影像分割[J]. 计算机工程与应用, 2019, 55(12): 54−58, 180. doi: 10.3778/j.issn.1002-8331.1811-0180

    Liu Lixia, Li Baowen, Wang Yangping, et al. Remote sensing image segmentation based on improved Canny edge detection[J]. Computer Engineering and Applications, 2019, 55(12): 54−58, 180. doi: 10.3778/j.issn.1002-8331.1811-0180
    [25]
    Johnson L F, Billow C R. Spectrometry estimation of total nitrogen concentration in Douglas-fir foliage[J]. International Journal of Remote Sensing, 1996, 17(3): 489−500. doi: 10.1080/01431169608949022
    [26]
    杨立君, 黄婷. 潮滩植被调查最佳波段组合研究[J]. 安徽农业科学, 2012, 40(4): 2514−2516, 2519. doi: 10.3969/j.issn.0517-6611.2012.04.213

    Yang Lijun, Huang Ting. Study on the best band combination for investigation of tidal vegetation[J]. Journal of Anhui Agricultural Sciences, 2012, 40(4): 2514−2516, 2519. doi: 10.3969/j.issn.0517-6611.2012.04.213
    [27]
    刘永学, 李满春, 张忍顺. 江苏辐射沙洲水边线自动提取方法研究[J]. 海洋科学, 2004, 28(6): 42−45. doi: 10.3969/j.issn.1000-3096.2004.06.010

    Liu Yongxue, Li Manchun, Zhang Renshun. Automatic recognition of sandbank shoreline on satellite image[J]. Marine Sciences, 2004, 28(6): 42−45. doi: 10.3969/j.issn.1000-3096.2004.06.010
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Figures(12)  / Tables(1)

    Article views (390) PDF downloads(38) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return