首页> 外文会议>European signal processing conference;EUSIPCO 2009 >SUPERVISED CLASSIFICATION OF SCATTERERS ON SAR IMAGING BASED ON INCOHERENT POLARIMETRIC TIME-FREQUENCY SIGNATURES
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SUPERVISED CLASSIFICATION OF SCATTERERS ON SAR IMAGING BASED ON INCOHERENT POLARIMETRIC TIME-FREQUENCY SIGNATURES

机译:基于非相干极化时频信号的SAR图像散射体的监督分类

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This paper deals with the analysis of the non-stationary behavior of scatterers in polarimetric SAR imaging. A method based on continuous wavelet and incoherent polarimetric decompositions is proposed to extract the polarimetric time-frequency signatures of scatterers. These signatures characterize scatterers according to their polarimetric /or energetic behavior versus the emitted frequency and the observation angle. Then, signatures from reference targets are used to train a multi-layer perception (MLP). All in all, SAR imaging data are classified by the MLP. The efficiency of this method is demonstrated, for the deterministic targets (man-made targets). It can be explained by the fact that the man-made targets present a strong non-stationary behavior. But for the vegetation and canopy the results are not convincing. It can be interpreted by the fact that the behavior of vegetation is stationary.
机译:本文分析了极化SAR成像中散射体的非平稳行为。提出了一种基于连续小波和非相干极化分解的方法来提取散射体的极化时频特征。这些签名根据散射体的极化/或高能行为与其发射频率和观察角的关系来表征散射体。然后,来自参考目标的签名用于训练多层感知(MLP)。总而言之,SAR成像数据由MLP进行分类。对于确定性目标(人造目标),证明了该方法的效率。可以解释为,人造目标呈现出很强的非平稳行为。但是对于植被和树冠而言,结果并不令人信服。可以解释为植被的行为是固定的。

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