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A Novel Zero Velocity Interval Detection Algorithm for Self-Contained Pedestrian Navigation System with Inertial Sensors

机译:带有惯性传感器的自足行人导航系统的零速度间隔检测新算法

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摘要

Zero velocity update (ZUPT) plays an important role in pedestrian navigation algorithms with the premise that the zero velocity interval (ZVI) should be detected accurately and effectively. A novel adaptive ZVI detection algorithm based on a smoothed pseudo Wigner–Ville distribution to remove multiple frequencies intelligently (SPWVD-RMFI) is proposed in this paper. The novel algorithm adopts the SPWVD-RMFI method to extract the pedestrian gait frequency and to calculate the optimal ZVI detection threshold in real time by establishing the function relationships between the thresholds and the gait frequency; then, the adaptive adjustment of thresholds with gait frequency is realized and improves the ZVI detection precision. To put it into practice, a ZVI detection experiment is carried out; the result shows that compared with the traditional fixed threshold ZVI detection method, the adaptive ZVI detection algorithm can effectively reduce the false and missed detection rate of ZVI; this indicates that the novel algorithm has high detection precision and good robustness. Furthermore, pedestrian trajectory positioning experiments at different walking speeds are carried out to evaluate the influence of the novel algorithm on positioning precision. The results show that the ZVI detected by the adaptive ZVI detection algorithm for pedestrian trajectory calculation can achieve better performance.
机译:零速度更新(ZUPT)在行人导航算法中起着重要作用,前提是应准确有效地检测零速度间隔(ZVI)。提出了一种基于平滑伪Wigner-Ville分布以智能去除多个频率的自适应ZVI检测算法(SPWVD-RMFI)。该算法采用SPWVD-RMFI方法提取行人步态频率,并通过建立阈值与步态频率之间的函数关系,实时计算出最优的ZVI检测阈值。实现了步态频率阈值的自适应调整,提高了ZVI的检测精度。为了付诸实践,进行了ZVI检测实验。结果表明,与传统的固定阈值ZVI检测方法相比,自适应ZVI检测算法可以有效降低ZVI的漏检率。这表明该算法具有较高的检测精度和良好的鲁棒性。此外,还进行了不同步行速度下的行人轨迹定位实验,以评估新算法对定位精度的影响。结果表明,采用自适应ZVI检测算法对ZVI进行行人轨迹计算可以取得较好的性能。

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