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基于遥感影像光谱分析的蓝藻水华识别方法

Recognition of Cyanobacteria Bloom Based on Spectral Analysis of Remote Sensing Imagery

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【作者】 林怡潘琛陈映鹰任文伟

【Author】 LIN Yi1,2,3,PAN Chen1,2,CHEN Yingying1,2,REN Wenwei3,4(1.Research Center of Remote Sensing and Spatial Information Technology,Tongji University,Shanghai 200092,China;2.Department of Surveying and Geoinformatics,Tongji University,Shanghai 200092,China;3.Sino-Canada Centre for Environment and Sustainable Development,Shanghai 200433,China;4.School of Life Sciences,Fudan University,Shanghai 200433,China)

【机构】 同济大学遥感与空间信息技术研究中心同济大学测量与国土信息工程系中国-加拿大环境与可持续发展中心复旦大学生命科学学院

【摘要】 利用Landsat-7 ETM+遥感影像数据,以淀山湖为例,在分析蓝藻和其他典型地物影像光谱曲线及其特征的基础上,构建归一化蓝藻指数(NDI_CB),有效地从浑浊水体中提取蓝藻信息.通过k-均值非监督分类结果可以发现,构建的归一化蓝藻指数较传统的归一化差值植被指数(NDVI)和比值植被指数(RVI)更加适用于提取低密度蓝藻空间分布信息.在此基础上,基于遥感影像光谱特征和归一化蓝藻指数,采用了支持向量机的分类识别模型,最终得到淀山湖区域蓝藻的空间分布范围与面积,通过发现在某一特定时间蓝藻分布的规律,为蓝藻预警和治理的生态学分析提供了及时、有效和客观的依据.

【Abstract】 Based on the analysis of spectral curve and features of cyanobacteria bloom and other typical ground object,the normalized difference cyanobacteria bloom index(NDI_CB)was constructed to distinguish between cyanobacteria bloom and turbid water with the Landsat-7 ETM+ image in Lake Dianshan.In this study two other different vegetation indexes,normalized difference vegetation index(NDVI)and ratio vegetation index(RVI),together with NDI_CB,were applied to extracting the cyanobacteria bloom information from the same image via unsupervised classification method(k-means).The results show that NDI_CB is the best one for low-density cyanobacteria bloom extraction.In order to recognize the cyanobacteria bloom better,support vector machine(SVM)classification method was used to classify the image based on spectral features and NDI_CB,and to obtain the spatial distribution and the area of cyanobacteria bloom in Lake Dianshan.Through studying the laws of the cyanobacteria bloom distribution at a particular time,a sound,efficient and objective basis has been achieved for the ecological analysis of the prevention and the treatment of cyanobacteria bloom.

【基金】 科技部国际科技合作计划(2009DFA92310)
  • 【文献出处】 同济大学学报(自然科学版) ,Journal of Tongji University(Natural Science) , 编辑部邮箱 ,2011年08期
  • 【分类号】X524;X87;TP751.1
  • 【被引频次】27
  • 【下载频次】810
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