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A Low-Complexity Noncoherent IR-UWB Transceiver Architecture With TOA Estimation

机译:具有TOA估计的低复杂度非相干IR-UWB收发器架构

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摘要

Impulse-radio (IR)-based ultra-wideband (UWB) technology is a strong candidate for short-range data communication and positioning systems. This paper examines the performance of time-of-arrival (TOA) position estimation techniques as well as the simulated and measured performances of an IR-UWB noncoherent energy-collection receiver. The noncoherent IR-UWB transceiver has been designed for operation over the frequency range 3.1-4.1 GHz and implemented in 0.35-(mu)m SiGe BiCMOS technology. The performance of two different algorithms, namely, the threshold-crossing and the maximum selection (MAX) algorithms, are compared in terms of TOA estimation error in Saleh Valenzuela channel model 3 and channel model 4. The implemented structure of the TOA MAX algorithm suitable for IR-UWB-based noncoherent receivers is presented. A UWB testbed has been constructed in order to test and measure the transmitted waveform as well the receiver performances. The simulated receiver noise figure is 7.3 dB while the receiver gain is 34 dB. The TOA MAX algorithm can achieve +-5-ns positioning accuracy for 95percent of cases. Constant transconductance tuning circuits for improved TOA estimation reliability are also presented.
机译:基于脉冲无线电(IR)的超宽带(UWB)技术非常适合短距离数据通信和定位系统。本文研究了到达时间(TOA)位置估计技术的性能,以及IR-UWB非相干能量收集接收机的仿真和测量性能。非相干IR-UWB收发器设计用于在3.1-4.1 GHz的频率范围内运行,并以0.35-μm的SiGe BiCMOS技术实现。根据Saleh Valenzuela信道模型3和信道模型4中的TOA估计误差,比较了两种不同算法的性能,即阈值穿越算法和最大选择算法(MAX)。TOAMAX算法的实现结构适合介绍了基于IR-UWB的非相干接收机。为了测试和测量发射波形以及接收器性能,已经构建了UWB测试平台。模拟的接收机噪声系数为7.3 dB,而接收机增益为34 dB。 TOA MAX算法可以在95%的情况下实现+ -5-ns的定位精度。还提出了用于提高TOA估计可靠性的恒定跨导调谐电路。

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