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Inverse Synthetic Aperture Secondary Radar Concept for Precise Wireless Positioning

机译:精确合成无线定位的逆合成孔径次级雷达概念

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In this paper, the novel inverse synthetic aperture secondary radar wireless positioning technique is introduced. The proposed concept allows for a precise spatial localization of a backscatter transponder even in dense multipath environments. A novel secondary radar signal evaluation concept compensates for the unknown modulation phase of the returned signal and thus leads to radar signals comparable to common primary radar. With use of this concept, inverse synthetic aperture radar algorithms can be applied to the signals of backscatter transponder systems. In simulations and first experiments, we used a broadband holographic reconstruction principle to realize the inverse synthetic aperture approach. The movement of the transponder along a short arbitrary aperture path is determined with assisting relative sensors (dead reckoning or inertia sensors). A set of signals measured along the aperture is adaptively focused to the transponder position. By this focusing technique, multipath reflections can be suppressed impressively and a precise indoor positioning becomes feasible. With our technique, completely new and powerful options for integrated navigation and sensor fusion in RF identification systems and wireless local positioning systems are now possible.
机译:本文介绍了一种新型的反向合成孔径二次雷达无线定位技术。所提出的概念允许即使在密集的多径环境中也可以对反向散射应答器进行精确的空间定位。一种新颖的辅助雷达信号评估概念可补偿返回信号的未知调制相位,从而产生与普通主雷达相当的雷达信号。利用这一概念,可以将反向合成孔径雷达算法应用于反向散射应答器系统的信号。在模拟和首次实验中,我们使用宽带全息重建原理来实现逆合成孔径方法。应答器沿着短的任意光圈路径的运动由辅助的相对传感器(航位推算或惯性传感器)确定。沿孔径测量的一组信号被自适应地聚焦到应答器位置。通过这种聚焦技术,可以明显地抑制多径反射,并且可以实现精确的室内定位。利用我们的技术,现在可以在RF识别系统和无线本地定位系统中使用全新的功能强大的集成导航和传感器融合功能。

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