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Locating multiple ultrasound targets in chorus

机译:在合唱中定位多个超声目标

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Ranging by Time of Arrival (TOA) of Narrowband ultrasound (NBU) has been widely used by many locating systems for its characteristics of low cost and high accuracy. However, because it is hard to support code division multiple access in narrowband signal, to track multiple targets, existing NBU-based locating systems generally need to assign exclusive time slot to each target to avoid the signal conflicts. Because the propagation speed of ultrasound is slow in air, dividing exclusive time slots on a single channel causes the location updating rate for each target rather low, leading to unsatisfied tracking performances as the number of targets increases. In this paper, we investigated a new multiple target locating method using NBU, called UltraChorus, which is to locate multiple targets while allowing them sending NBU signals simultaneously, i.e., in chorus mode. It can dramatically increase the location updating rate. In particular, we investigated by both experiments and theoretical analysis on the necessary and sufficient conditions for resolving the conflicts of multiple NBU signals on a single channel, which is referred as the conditions for chorus ranging and chorus locating. To tackle the difficulty caused by the anonymity of the measured distances, we further developed consistent position generation algorithm and probabilistic particle filter algorithm to label the distances by sources, to generate reasonable location estimations, and to disambiguate the motion trajectories of the multiple concurrent targets based on the anonymous distance measurements. Extensive evaluations by both simulation and testbed were carried out, which verified the effectiveness of our proposed theories and algorithms.
机译:窄带超声(NBU)的到达时间(TOA)测距以其低成本和高精度的特性已被许多定位系统广泛使用。但是,由于很难在窄带信号中支持码分多址访问以跟踪多个目标,因此现有的基于NBU的定位系统通常需要为每个目标分配专用时隙,以避免信号冲突。由于超声波在空中的传播速度很慢,因此在单个通道上划分专用时隙会导致每个目标的位置更新率相当低,随着目标数量的增加,跟踪性能将无法令人满意。在本文中,我们研究了一种新的使用NBU的多目标定位方法,称为UltraChorus,该方法可以定位多个目标,同时允许它们同时发送NBU信号(即在合唱模式下)。它可以大大提高位置更新率。特别是,我们通过实验和理论分析研究了解决单个通道上多个NBU信号冲突的必要条件和充分条件,这被称为合唱测距和合唱定位的条件。为了解决测量距离匿名性带来的困难,我们进一步开发了一致的位置生成算法和概率粒子滤波算法,以按源标记距离,生成合理的位置估计,并消除基于多个并发目标的运动轨迹的歧义。在匿名距离测量中。通过仿真和测试平台进行了广泛的评估,验证了我们提出的理论和算法的有效性。

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