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Wall mitigation techniques for indoor sensing within the compressive sensing framework

机译:压缩感测框架内用于室内感测的墙面缓解技术

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Compressive sensing (CS) for urban operations and through-the-wall radar imaging has been shown to be successful in fast data acquisition and moving target localizations. However, the research work in this area thus far has assumed prior effective wall removal, allowing proper detection of indoor targets. In this paper, we show that wall removal techniques, operating with full data volume and applying backprojection imaging methods, can be equally effective under reduced data volume and within the sparse signal reconstruction framework. Specifically, we demonstrate that the spatial filtering and the singular value decomposition based approaches, which, respectively, exploit the spatial invariance and the strength of the EM wall return, for suppression of the wall reflections, can be employed using few measurements, thus allowing CS to be applied to data with higher target-to-wall-clutter ratio.
机译:在快速数据采集和移动目标定位中,用于城市运营和穿墙雷达成像的压缩传感(CS)已被证明是成功的。但是,到目前为止,在该领域的研究工作已经假定可以先进行有效的墙面去除,从而可以正确检测室内目标。在本文中,我们表明,在数据量减少的情况下以及在稀疏信号重建框架内,具有全部数据量并应用反投影成像方法的壁去除技术可以同样有效。具体而言,我们证明了基于空间滤波和奇异值分解的方法(分别利用EM壁返回的空间不变性和强度来抑制壁反射)可以通过少量测量来使用,从而允许CS应用于具有更高目标与墙壁杂波比的数据。

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