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Compressive sensing for stroke detection in microwave-based head imaging

机译:用于基于微波的头部成像中的笔画检测的压缩感测

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The theory of compressive sensing (CS) provides a method to recover an unknown sparse signal (data) from limited measurements by solving a constrained convex optimization problem. This method has been used in far-field radar imaging applications such as SAR imaging. However, for microwave medical imaging (head imaging or breast imaging), CS technique is seldom investigated. In this paper, a microwave-based head imaging method based on compressive sensing is presented. Compared with the traditional microwave head imaging algorithm (in which 16 antennas were used), only 4 antennas are used in the presented method and the results from CS technique are compared with the conventional confocal algorithm for head imaging. The results show that the target inside the head is properly recovered by using CS, with a significant reduction in the number of used antennas.
机译:压缩感测(CS)理论提供了一种通过解决约束凸优化问题从有限的测量中恢复未知稀疏信号(数据)的方法。此方法已用于SAR成像等远场雷达成像应用中。但是,对于微波医学成像(头部成像或乳房成像),很少研究CS技术。本文提出了一种基于微波的基于压缩感知的头部成像方法。与传统的微波头部成像算法(使用16个天线)相比,该方法仅使用4个天线,并将CS技术的结果与传统的共聚焦算法进行头部成像进行比较。结果表明,使用CS可以正确地恢复头部内部的目标,从而大大减少了使用的天线数量。

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