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Robust pedestrian dead reckoning using anchor point recalibration

机译:使用锚点重新校准来重读强大的行人死亡

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All indoor positioning approaches face the challenge to deal with erroneous input data from sensors. Especially independent systems like dead reckoning rely on highly accurate input data from accelerometers and gyroscopes for an accurate prediction of the user's position. But with the widespread of affordable mobile devices equipped with low-cost sensors, the obtained input data is noisy and of poor quality. Since errors accumulate within a pedestrian dead reckoning (PDR) system, there is an inevitable need for recalibration on a regular basis. We propose a PDR system based on state-of-the-art particle filters, which is recalibrated using both anchor points and a pedestrian movement model. Our evaluation compares standard particle filters with a backtracking particle filter including information from indoor maps and our enhancements. We show that a combination of anchor point recalibration, error calculation of sensor bias, and a fine-tuned movement model can decrease the RMSE by 1.07 m.
机译:所有室内定位方法都面临挑战以处理来自传感器的错误输入数据。尤其是死亡的独立系统,依赖于来自加速度计和陀螺仪的高度准确的输入数据,以准确预测用户的位置。但随着配备低成本传感器的经济实惠的移动设备的广泛,所获得的输入数据是嘈杂的,质量差。由于错误累积在行人死亡(PDR)系统内,因此定期重新校准需要不可避免的需求。我们提出了一种基于最先进的粒子滤波器的PDR系统,其使用锚点和行人运动模型进行重新校准。我们的评估将标准粒子过滤器与回溯粒子过滤器进行比较,包括来自室内地图和我们的增强功能的信息。我们表明,锚点重新校准,传感器偏置误差计算和微调移动模型的组合可以将RMSE减少1.07米。

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