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Impulse radar imaging system for concealed object detection

机译:用于隐藏物体检测的脉冲雷达成像系统

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摘要

Electromagnetic systems for imaging concealed objects at checkpoints typically employ radiation at millimetre and terahertz frequencies. These systems have been shown to be effective and provide a sufficiently high resolution image. However there are difficulties and current electromagnetic systems have limitations particularly in accurately differentiating between threat and innocuous objects based on shape, surface emissivity or reflectivity, which are indicative parameters. In addition, water has a high absorption coefficient at millimetre wavelength and terahertz frequencies, which makes it more difficult for these frequencies to image through thick damp clothing. This paper considers the potential of using ultra wideband (UWB) in the low gigahertz range. The application of this frequency band to security screening appears to be a relatively new field. The business case for implementing the UWB system has been made financially viable by the recent availability of low-cost integrated circuits operating at these frequencies. Although designed for the communication sector, these devices can perform the required UWB radar measurements as well. This paper reports the implementation of a 2 to 5 GHz bandwidth linear array scanner. The paper describes the design and fabrication of transmitter and receiver antenna arrays whose individual elements are a type of antipodal Vivaldi antenna. The antenna's frequency and angular response were simulated in CST Microwave Studio and compared with laboratory measurements. The data pre-processing methods of background subtraction and deconvolution are implemented to improve the image quality. The background subtraction method uses a reference dataset to remove antenna crosstalk and room reflections from the dataset. The deconvolution method uses a Wiener filter to sharpen the returned echoes which improves the resolution of the reconstructed image. The filter uses an impulse response reference dataset and a signal-to-noise parameter to determine how the frequencies contained in the echo dataset are normalised. The chosen image reconstruction algorithm is based on the back-projection method. The algorithm was implemented in MATLAB and uses a pre-calculated sensitivity matrix to increase the computation speed. The results include both 2D and 3D image datasets. The 3D datasets were obtained by scanning the dual sixteen element linear antenna array over the test object. The system has been tested on both humans and mannequin test objects. The front surface of an object placed on the human/mannequin torso is clearly visible, but its presence is also seen from a tell-tale imaging characteristic. This characteristic is caused by a reduction in the wave velocity as the electromagnetic radiation passes through the object, and manifests as an indentation in the reconstructed image that is readily identifiable. The prototype system has been shown to easily detect a 12 mm x 30 mm x70 mm plastic object concealed under clothing. © 2013 SPIE.
机译:用于在检查点对隐蔽物体成像的电磁系统通常采用毫米和太赫兹频率的辐射。这些系统已被证明是有效的并且可以提供足够高分辨率的图像。然而,存在困难并且当前的电磁系统特别是在基于指示性参数的形状,表面发射率或反射率来准确区分威胁对象和无害对象方面具有局限性。另外,水在毫米波波长和太赫兹频率下具有很高的吸收系数,这使得这些频率更难通过厚厚的湿衣服成像。本文考虑了在低千兆赫兹范围内使用超宽带(UWB)的潜力。该频带在安全检查中的应用似乎是一个相对较新的领域。由于最近以这些频率工作的低成本集成电路的可用性,实现UWB系统的商业案例在财务上已经变得可行。尽管这些设备是为通信部门设计的,但它们也可以执行所需的UWB雷达测量。本文报告了2至5 GHz带宽的线性阵列扫描仪的实现。本文描述了发射器和接收器天线阵列的设计和制造,其各个元件都是对立的维瓦尔第天线。在CST Microwave Studio中模拟了天线的频率和角响应,并与实验室测量结果进行了比较。实现了背景减法和反卷积的数据预处理方法,以提高图像质量。背景减法使用参考数据集从数据集中消除天线串扰和房间反射。反卷积方法使用维纳滤波器来锐化返回的回波,从而提高了重建图像的分辨率。该滤波器使用脉冲响应参考数据集和信噪比参数来确定回波数据集中包含的频率如何进行归一化。选择的图像重建算法基于反投影方法。该算法在MATLAB中实现,并使用预先计算的灵敏度矩阵来提高计算速度。结果包括2D和3D图像数据集。通过在测试对象上扫描双16元素线性天线阵列获得3D数据集。该系统已经在人体和人体模型测试对象上进行了测试。放置在人体/人体模型上的物体的前表面清晰可见,但从讲故事的成像特性中也可以看到物体的存在。该特性是由于电磁辐射穿过物体时波速降低而引起的,并表现为易于识别的重建图像中的压痕。原型系统已显示出可以轻松检测出藏在衣服下的12毫米x 30毫米x 70毫米塑料物体。 ©2013 SPIE。

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