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- W4308407584 abstract "Human motion monitoring by means of wearable technologies is not uncommon nowadays. This demonstrates the growing awareness of the importance of healthy lifestyle. Human body motion involves the movement of multiple muscles and joints. However, the optimal location of sensor placement on the body to record the motion in daily activities has not been well understood. This study aims to find the best sensor location for this purpose among three locations on the body, that is on the back, shank, or wrist. In addition, this study seeks to find the best classification algorithm for human daily activities. The data recorded at these three locations were analysed using several classification algorithms in both Orange software and MATLAB. The results show that the sensor on the wrist provided the best classification result, thereby suggesting that wrist is the best place on the body to place the sensor for human motion monitoring. With regards to classification algorithm, we found that Neural Network provides the most accurate classification as compared to other algorithms. Future development of wearables should look into integrating classification algorithm in the system, thus the human motion monitoring will provide a richer information and not only limited to number of steps and calories burned." @default.
- W4308407584 created "2022-11-11" @default.
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- W4308407584 date "2022-10-21" @default.
- W4308407584 modified "2023-09-25" @default.
- W4308407584 title "Investigation of the Optimal Sensor Location and Classifier for Human Motion Classification" @default.
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- W4308407584 doi "https://doi.org/10.1109/iccsce54767.2022.9935635" @default.
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