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  5. Data Engineering Techniques for Efficient and Accurate Human Physical Activities Data Collection: a Summary of the State-of-the-art

Data Engineering Techniques for Efficient and Accurate Human Physical Activities Data Collection: a Summary of the State-of-the-art

Author(s)
Abdullayev, Javidan
Zingoni, Andrea  
Date Issued
2023
Type
conferenceObject
Start Page
138
End Page
143
DOI
10.1109/MetroXRAINE58569.2023.10405616
Abstract
This contribution presents an overview of engineering techniques to collect human behavior data, highlighting the main research trends and challenges. From our research it emerged that wearable and smartphone sensors are popular for monitoring movement and vital signs, although accuracy can be influenced by environmental factors. Combining multiple sensors improves data accuracy, while machine learning algorithms enable pattern detection and behavior analysis. Non-invasive techniques, such as video monitoring and speech analysis, offer a comprehensive view of behavior. Despite all the positive advancements, there are still remaining challenges that require further research, including the need to enhance sensor accuracy, develop sensor fusion methods, and refine machine learning algorithms for improved data analysis in human activity monitoring.
Handle
http://hdl.handle.net/2067/53467
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Metrics
Conference(s)
2023 IEEE International Conference on Metrology for eXtended Reality, Artificial Intelligence and Neural Engineering (MetroXRAINE)

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