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首页> 外文期刊>Geoscience and Remote Sensing, IEEE Transactions on >Segmentation by Classification for Through-the-Wall Radar Imaging Using Polarization Signatures
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Segmentation by Classification for Through-the-Wall Radar Imaging Using Polarization Signatures

机译:使用极化签名对全程雷达成像进行分类分割

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摘要

A scheme for target detection using segmentation by classification is proposed. The scheme is applied to through-the-wall microwave images obtained using frequency-domain back-projection in a wideband radar. We consider stationary targets where Doppler and change-detection-based techniques are inapplicable. The proposed scheme uses features from polarimetric images to segment and classify the image observations into target, clutter, and noise segments. We map target polarization signatures from copolarized and cross-polarized target returns to a pixel-by-pixel feature space, then oversegment the image to homogeneous regions called superpixels depending on this feature space. The features of each superpixel are used subsequently to group homogeneous superpixels into clusters. The clusters are then classified using decision trees. Real data collected using an indoor radar imaging scanner are used for performance validation.
机译:提出了一种基于分类的目标检测方案。该方案适用于宽带雷达中使用频域反投影获得的穿墙微波图像。我们考虑多普勒和基于变化检测的技术不适用的固定目标。所提出的方案使用来自偏振图像的特征来将图像观察分割和分类为目标,杂波和噪声段。我们将来自同极化和交叉极化目标的目标极化特征映射到逐个像素的特征空间,然后根据此特征空间将图像过度分割到称为超像素的同质区域。每个超像素的特征随后用于将同质超像素分组为群集。然后使用决策树对聚类进行分类。使用室内雷达成像扫描仪收集的真实数据用于性能验证。

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