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Multiple Access Chirp-Based Ultrasonic Positioning

机译:基于多路访问线性调频的超声波定位

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摘要

Distance-based ultrasonic positioning systems (UPSs) using trilateration have been adopted in various types of applications across a wide variety of fields. Recently, the use of a chirp signal in conjunction with cross correlation has drawn a considerable amount of attention for UPSs. However, when a chirp signal is used for positioning, these algorithms suffer from problems due to signal interference. In this paper, to solve this problem, we propose using four sets of orthogonal chirps, each of which contains three waveforms. The first three sets use chirp rates as a mechanism for assigning uniquely modulated chirp signals to transmitters while the basic idea behind the last one is to exploit the orthogonality of the subcarriers of a chirp waveform, i.e., the discrete frequency components of a chirp waveform. All the waveforms contained in each set have good orthogonality (i.e., the waveforms contained in sets 1 to 3 and set 4 are, respectively, quasi-orthogonal and perfectly orthogonal) and also have all the advantages of a classic chirp waveform. First, the performance of the waveforms is investigated through correlation analysis and then, in an indoor environment, evaluated through simulations and experiments for ultrasonic positioning. For sets 1 to 4, for an operational range of approximately 1000 mm, the positioning root-mean-square-errors & 90% error were 6.20 & 9.13 mm, 6.05 & 8.90 mm, 7.38 & 10.85 mm, and 4.54 & 6.68 mm, respectively.
机译:使用三边测量的基于距离的超声定位系统(UPS)已被广泛应用于各种领域。近来,线性调频信号与互相关的结合已经引起了UPS的广泛关注。然而,当线性调频信号用于定位时,这些算法由于信号干扰而遭受问题。在本文中,为解决此问题,我们建议使用四组正交chi,每组包含三个波形。前三组使用线性调频率作为向发射机分配唯一调制的线性调频信号的机制,而最后一组的基本思想是利用线性调频波形的子载波的正交性,即线性调频波形的离散频率分量。每组中包含的所有波形均具有良好的正交性(即,组1至3和组4中包含的波形分别为准正交和完全正交),并且还具有经典线性调频波形的所有优点。首先,通过相关性分析研究波形的性能,然后在室内环境中通过仿真和超声波定位实验评估波形的性能。对于第1到第4组,在大约1000毫米的工作范围内,定位均方根误差和90%误差为6.20和9.13毫米,6.05和8.90毫米,7.38和10.85毫米以及4.54和6.68毫米,分别。

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