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Spatial sparsity based direct positioning for IR-UWB in IEEE 802.15.4a channels

机译:基于空间稀疏度的IR-UWB在IEEE 802.15.4a信道中的直接定位

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摘要

In this paper, we focus on the application of Compressive Sensing (CS) techniques to Impulse Radio (IR) Ultra-WideBand (UWB) positioning systems under indoor propagation environments. Direct Position Estimation (DPE) approaches can potentially improve the position estimation accuracy of conventional two-step techniques by directly estimating the position coordinates from the observed signal in a single step. Furthermore, DPE does not require a threshold selection upon which accuracy of two-step approaches depend on. Although in the presence of multipath the actual gains are not straight forward, recent evaluation of DPE positioning in IR-UWB system proved accurate positioning estimate gains. However it comes at a cost of higher computational complexity. This paper exploits the sparseness of the problem to reduce the computational load of the positioning estimation process and relax the requirements of the Analog to Digital Converter (ADC) when sampling UWB signals. Based on the fact that the number of unknown targets is small in the discrete spatial domain, this paper incorporates the multiple location hypotheses into an overcomplete basis, which highlights the sparseness of the spatial domain. This fact motivates the use of CS-based sampling and sparsity-based reconstruction techniques to jointly evaluate all possible hypotheses, thus avoiding the traditional position-by-position scanning where the multiple location hypotheses are evaluated independently. In so doing, we not only achieve a significant reduction in computational time but also we relax the sampling requirements.
机译:在本文中,我们重点研究压缩感知(CS)技术在室内传播环境下在脉冲无线电(IR)超宽带(UWB)定位系统中的应用。直接位置估计(DPE)方法可通过在一个步骤中直接从观测信号中估计位置坐标来潜在地提高常规两步技术的位置估计精度。此外,DPE不需要选择两步方法的精度所依赖的阈值。尽管在存在多路径的情况下,实际增益不是直截了当的,但最近对IR-UWB系统中DPE定位的评估证明了准确的定位估计增益。然而,这以更高的计算复杂度为代价。本文利用问题的稀疏性来减少定位估计过程的计算负担,并放宽对UWB信号采样时模数转换器(ADC)的要求。基于离散空间域中未知目标的数量少这一事实,本文将多个位置假设纳入了一个不完整的基础,这突出了空间域的稀疏性。这一事实促使人们使用基于CS的采样和基于稀疏性的重建技术来联合评估所有可能的假设,从而避免了传统的逐位扫描,即对多个位置假设进行独立评估。这样,我们不仅可以大大减少计算时间,而且还可以放宽采样要求。

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