A Methodology and System For Big-Thick Data Collection
April 24, 2024 Β· Declared Dead Β· π Jahrestagung der Gesellschaft fΓΌr Informatik
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Authors
Ivan Kayongo, Haonan Zhao, Leonardo Malcotti, Fausto Giunchiglia
arXiv ID
2404.17602
Category
cs.HC: Human-Computer Interaction
Citations
2
Venue
Jahrestagung der Gesellschaft fΓΌr Informatik
Last Checked
4 months ago
Abstract
Pervasive sensors have become essential in research for gathering real-world data. However, current studies often focus solely on objective data, neglecting subjective human contributions. We introduce an approach and system for collecting big-thick data, combining extensive sensor data (big data) with qualitative human feedback (thick data). This fusion enables effective collaboration between humans and machines, allowing machine learning to benefit from human behavior and interpretations. Emphasizing data quality, our system incorporates continuous monitoring and adaptive learning mechanisms to optimize data collection timing and context, ensuring relevance, accuracy, and reliability. The system comprises three key components: a) a tool for collecting sensor data and user feedback, b) components for experiment planning and execution monitoring, and c) a machine-learning component that enhances human-machine interaction.
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