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Detection of concealed objects in passive millimeter wave imaging based on CS theory

机译:基于CS理论的被动毫米波成像中隐蔽物体的检测

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This paper reports development of a passive millimeter wave imaging system for detection of concealed objects using sparse characterization and reconstruction algorithm based on CS theory. By measuring the radiometric temperatures of different objects, passive millimeter wave imaging can acquire images of objects concealed underneath clothing. In this system a millimeter wave antenna controlled by revolving table receives the passive millimeter signal from target object. As passive millimeter wave images have poor contrast and low signal to noise ratio, traditional segmentation algorithms are unable to detect concealed objects, so this system uses a method which transforms the image signal by a non-adaptive base matrix. The high-dimensional signal will be transformed to a lower dimensional space, and then solve an optimization problem for the highest sparsity of the signal through the gradient projection. We present experimental results of 94GHz passive millimeter wave images.
机译:本文报道了基于CS理论的稀疏特征和重建算法用于隐藏物体检测的无源毫米波成像系统的开发。通过测量不同物体的辐射温度,被动毫米波成像可以获取隐藏在衣服下面的物体的图像。在该系统中,由旋转台控制的毫米波天线接收来自目标物体的无源毫米波信号。由于无源毫米波图像对比度差且信噪比低,传统的分割算法无法检测隐藏的物体,因此该系统使用了一种通过非自适应基本矩阵对图像信号进行转换的方法。高维信号将被转换到低维空间,然后通过梯度投影解决信号最高稀疏度的优化问题。我们介绍了94GHz无源毫米波图像的实验结果。

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