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Data Quality and Reliability Assessment of Wearable EMG and IMU Sensor for Construction Activity Recognition

机译:耐磨EMG和IMU传感器的数据质量和可靠性评估用于施工活动识别

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摘要

The workforce shortage is one of the significant problems in the construction industry. To overcome the challenges due to workforce shortage, various researchers have proposed wearable sensor-based systems in the area of construction safety and health. Although sensors provide rich and detailed information, not all sensors can be used for construction applications. This study evaluates the data quality and reliability of forearm electromyography (EMG) and inertial measurement unit (IMU) of armband sensors for construction activity classification. To achieve the proposed objective, the forearm EMG and IMU data collected from eight participants while performing construction activities such as screwing, wrenching, lifting, and carrying on two different days were used to analyze the data quality and reliability for activity recognition through seven different experiments. The results of these experiments show that the armband sensor data quality is comparable to the conventional EMG and IMU sensors with excellent relative and absolute reliability between trials for all the five activities. The activity classification results were highly reliable, with minimal change in classification accuracies for both the days. Moreover, the results conclude that the combined EMG and IMU models classify activities with higher accuracies compared to individual sensor models.
机译:劳动力短缺是建筑业的重大问题之一。为了克服劳动力短缺所造的挑战,各种研究人员在建筑安全性和健康领域提出了基于可穿戴的基于传感器的系统。虽然传感器提供丰富和详细信息,但并非所有传感器都可用于施工应用。本研究评估了用于施工活动分类的臂架传感器的前臂电学(EMG)和惯性测量单元(IMU)的数据质量和可靠性。为了实现拟议的目标,使用八个参与者收集的前臂EMG和IMU数据,同时进行螺纹,扭转,提升和携带两天的施工活动,用于通过七种不同实验分析活动识别的数据质量和可靠性。这些实验的结果表明,臂带传感器数据质量与传统的EMG和IMU传感器相当,在所有五种活动之间的试验之间具有优异的相对和绝对可靠性。活动分类结果非常可靠,两天的分类精度变化最小。此外,结果得出结论,组合的EMG和IMU模型与各个传感器模型相比,将具有更高精度的活动分类。

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