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A Novel Approach of Brain Tumor Detection using Miniaturized High-Fidelity UWB Slot Antenna Array

机译:采用小型高保真UWB槽天线阵列的一种新型脑肿瘤检测方法

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In this paper, a compact multi-static microwave imaging system using a novel design of high-fidelity ultra-wideband (UWB) slot antenna is employed to improve the accuracy of tumor detection inside full head phantom. In order to create a circular array based microwave imaging system 18 elements of the proposed UWB slot antennas are simulated in CST medium around the phantom inside a designed matching medium. The proposed slot antenna consists of a square radiating patch with a microstrip feed-line on one side, a rectangular slot and a defected ground plane by a pair of C-shaped slots on the other side, which provides a wide usable fractional bandwidth of more than 100% (3.19-10.73 GHz). The inserted C-shaped slots on the ground plane's corners can provide an additional current path, hence additional resonance is excited and much wider impedance bandwidth is produced. In order to demonstrate the usefulness of the proposed antenna for microwave imaging system, the fidelity analysis for angles up to 90 away from bore-sight radiated pulses is presented (fidelity factor > 80%). In addition, a novel hierarchical calibration method is employed to improve the accuracy reconstructed image results. This calibration includes all delays of multi-static antenna array to put more energy at coherence reflected signal integration. Hence, stronger signals are available to achieve higher accuracy for precise spatial localization. In the proposed image, reconstruction method a confocal image-reconstructing algorithm based on back-projection method has been employed. Simulated results are presented to validate the effectiveness of the proposed method for precisely localizing small targets.
机译:本文采用了一种紧凑的多静态微波成像系统,采用高保真超宽带(UWB)槽天线设计的新颖设计,以提高全头幻影内肿瘤检测的准确性。为了创建基于圆形的阵列微波成像系统18,所提出的UWB插槽天线的元件在设计匹配介质的虚线周围的CST介质中模拟。所提出的槽天线包括一个方形辐射贴片,在一侧,一侧的微带馈电线,另一侧由一对C形槽的矩形槽和偏向的接地平面提供,这提供了更广泛的分数带宽超过100%(3.19-10.73 GHz)。接地平面的角落上的插入的C形槽可以提供额外的电流路径,因此额外的谐振是激励并且产生的更宽阻抗带宽。为了证明所提出的微波成像系统的天线的有用性,提出了距离钻辐射脉冲的距离的待保真度分析(保真因子> 80%)。另外,采用新的分层校准方法来提高重建图像结果的精度。该校准包括多静态天线阵列的所有延迟,以便在相干反射信号积分处放置更多能量。因此,更强的信号可用于实现精确空间定位的更高精度。在所提出的图像中,重建方法采用基于反投影方法的共聚焦图像重建算法。提出了模拟结果以验证提出的方法精确定位小目标的有效性。

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