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Assessment Method of Lake's Water Quality based on Remote-Sensed Image and Support Vector Machine

机译:基于遥感图像和支持向量机的湖泊水质评价方法

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This paper introduces a data fusion processing method based on remote-sensed image data and the algorithm of Support Vector Machine, and analyzes an experiment on the water quality monitoring data of Taihu Lake. This method builds a SVM model to map remote sensing image into dispersed water quality classifications of lake's water quality monitoring spots, then, it distinguishes the whole lake's water quality condition combining with this model. By comparing with the results, the experiment shows that the results of the identifications of water quality of Taihu Lake match the practical water quality conditions well by using such method, and it provides a convenient and effective technical mean for monitoring and assessment of large catchments, as well, it has a good applied value on other fields.
机译:介绍了一种基于遥感图像数据和支持向量机算法的数据融合处理方法,并分析了太湖水质监测数据的实验。该方法建立了一个支持向量机模型,将遥感图像映射到湖泊水质监测点的分散水质分类中,然后结合该模型对整个湖泊的水质状况进行区分。通过与实验结果的比较,表明该方法对太湖水质的识别结果与实际水质条件吻合得很好,为大流域的监测与评估提供了方便有效的技术手段,在其他领域也有很好的应用价值。

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