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Robust and Energy-Efficient Trajectory Tracking for Mobile Devices

机译:移动设备的鲁棒且节能的轨迹跟踪

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摘要

Many mobile location-aware applications require the sampling of trajectory data accurately over an extended period of time. However, continuous trajectory tracking poses new challenges to the overall battery life of the device, and thus novel energy-efficient sensor management strategies are necessary for improving the lifetime of such applications. Additionally, such sensor management strategies are required to provide a high and application-adjustable level of robustness regardless of the user’s transportation mode. In this article, we extend and further analyze the sensor management strategies of the EnTracked system that intelligently determines when to sample different on-device sensors (e.g., accelerometer, compass and GPS) for trajectory tracking. Specifically, we propose the concept of situational bounding to improve and parameterize the robustness of sensor management strategies for trajectory tracking. We demonstrate the effectiveness of our proposed approach by performing a series of emulation experiments on real world data sets collected from different modes of transportation (including walking, running, biking and commuting by car) on mobile devices from two different platforms. Thorough experimental analyses indicate that our system can save significant amounts of battery power compared to the state-of-the-art position tracking systems, while simultaneously maintaining robustness and accuracy bounds as required by diverse location-aware applications.
机译:许多移动位置感知应用程序需要在较长的时间内准确地对轨迹数据进行采样。然而,连续的轨迹跟踪对设备的整体电池寿命提出了新的挑战,因此,新颖的节能传感器管理策略对于改善此类应用的寿命是必需的。此外,无论用户的运输方式如何,都需要这种传感器管理策略来提供高水平和应用程序可调整的鲁棒性。在本文中,我们扩展并进一步分析了EnTracked系统的传感器管理策略,该系统可以智能地确定何时采样不同的设备上传感器(例如,加速度计,指南针和GPS)以进行轨迹跟踪。具体来说,我们提出情境边界的概念,以改善和参数化轨迹跟踪传感器管理策略的鲁棒性。我们通过对来自两个不同平台的移动设备上从不同交通方式(包括汽车的步行,跑步,骑自行车和通勤)收集的现实世界数据集进行一系列仿真实验,来证明我们提出的方法的有效性。全面的实验分析表明,与最新的位置跟踪系统相比,我们的系统可以节省大量电池电量,同时可以保持各种位置感知应用程序所要求的鲁棒性和精度范围。

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