首页> 外文会议>Applied Imagery Pattern Recognition Workshop (AIPR), 2011 IEEE >Effect of vegetation height and volume scattering on soil moisture classification using synthetic aperture radar (SAR) images
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Effect of vegetation height and volume scattering on soil moisture classification using synthetic aperture radar (SAR) images

机译:利用合成孔径雷达(SAR)图像,植被高度和体积散射对土壤水分分类的影响

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摘要

Soil moisture monitoring around earthen levees can aid in the detection of vulnerability to potential failure of a levee segment. Estimation and classification of soil moisture from SAR is difficult when the surface is covered with significant vegetation. In levees the soil is typically covered with a uniform layer of grass. An increase in the height of grass creates more volume scattering and degrades the relationship between the backscattering and soil moisture. In this work the effect of different heights of grass on the soil moisture classification of earthen levees is studied. To classify the soil moisture a back propagation neural network is used with the following methodology: (1) segmentation of levee and buffer area from the background; (2) extracting the backscatter and texture features such as GLCM (Grey- Level Co-occurrence Matrix) and wavelet features; (3) training the back propagation neural network classier; (4) testing the area of interest and validation of the results using ground truth data. The preliminary results show that the height of grass has a significant impact on soil moisture classification accuracy. The grass height increase from one month's springtime growth caused the accuracy to decrease by around 20%.
机译:监测土堤周围的土壤湿度可以帮助检测对堤段可能发生故障的脆弱性。当地表覆盖着大量植被时,很难通过SAR估算和分类土壤水分。在堤防中,土壤通常覆盖有一层均匀的草。草高的增加会造成更多的体积散射,并降低反向散射与土壤水分之间的关​​系。在这项工作中,研究了不同草高对土堤的土壤水分分类的影响。为了对土壤水分进行分类,使用反向传播神经网络通过以下方法:(1)从背景中分割堤坝和缓冲区。 (2)提取诸如GLCM(灰度共现矩阵)和小波特征之类的反向散射和纹理特征; (3)训练反向传播神经网络分类器; (4)使用地面真实数据测试关注区域并验证结果。初步结果表明,草高对土壤水分分类精度有重要影响。从一个月的春季生长开始,草高增加,导致精度降低了约20%。

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