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Accuracy Limits of Embedded Smart Device Accelerometer Sensors

机译:嵌入式智能设备加速度计传感器的精度限制

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摘要

Smartphones are an indispensable tool in modern day-to-day life. Their widespread use has spawned numerous applications targeting diverse domains, such as biomedical, environment sensing, and infrastructure monitoring. In such applications, the accuracy of the sensors at the core of the system is still questionable since these devices are not originally designed for high-accuracy sensing purposes. In this article, we investigate the accuracy limits of one of the commonly used sensors, namely, smartphone accelerometer. We focus on the efficacy of a smartphone as an acceleration measuring device, rather than focusing only on the accuracy of its internal accelerometer chip. This holistic approach includes additional errors that arise from the device operating system, such as sampling time uncertainty. Hence, we propose a novel smart device accelerometer error model that includes the traditional additive noise as well as sampling time uncertainty errors represented by a white Gaussian process. The model is validated experimentally using shake table experiments, and the maximum likelihood estimation (MLE) is used to estimate the sampling time uncertainty standard deviation. Moreover, we derive the Cramer-Rao lower bound (CRLB) of acceleration estimation based on the proposed model.
机译:智能手机是现代日常生活中不可或缺的工具。他们广泛的用途已经产生了众多应用程序,这些应用程序瞄准不同域,例如生物医学,环境传感和基础设施监控。在这种应用中,系统的核心处的传感器的准确性仍然是可疑的,因为这些设备最初不用于高精度感测目的。在本文中,我们研究了一个常用的传感器的精度限制,即智能手机加速度计。我们专注于智能手机作为加速测量装置的功效,而不是仅关注其内部加速度计芯片的精度。这种整体方法包括从设备操作系统出现的附加错误,例如采样时间不确定。因此,我们提出了一种新颖的智能设备加速度计错误模型,包括传统的添加剂噪声以及由白色高斯过程表示的采样时间不确定误差。使用摇动台实验实验验证该模型,并且使用最大似然估计(MLE)来估计采样时间不确定度标准偏差。此外,我们基于所提出的模型导出加速估计的Cramer-Rao下限(CRLB)。

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