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A Personal Thermal Comfort Model Based on Causal Artificial Intelligence: A Physiological Sensor-Enabled Causal
IEEE Journal of Biomedical and Health Informatics
|July 23, 2024
Summary
This study introduces a causal artificial intelligence model to predict and explain personal thermal comfort. The model integrates physiological and physical factors for human-like understanding in intelligent systems.
Area of Science:
- Artificial Intelligence
- Environmental Science
- Human-Computer Interaction
Background:
- Personal thermal comfort significantly impacts health, well-being, and productivity.
- Subjectivity and dynamic environmental factors make understanding thermal comfort challenging.
- Existing models often lack predictive and explanatory power for individual comfort.
Purpose of the Study:
- To develop a personal thermal comfort model using causal artificial intelligence.
- To encode personal thermal comfort satisfaction by connecting human factors and environmental influences.
- To provide a human-intelligent framework for predicting and explaining thermal comfort.
Main Methods:
- Utilized a causal-and-effect framework with random variables and a structural causal model.
- Employed do-calculus (d-separated, d-connected) for causal structure representation and common-sense reasoning.
- Quantified model parameters using a directed acyclic graph and variable elimination with observational data.
Main Results:
- The proposed model effectively encodes physiological and physical factors for predicting thermal comfort satisfaction.
- Demonstrated robust prediction and explanation capabilities, aligning with human-like interpretations.
- Verified causal relationships using causal odd ratio, sensitivity, and impact analyses.
Conclusions:
- The causal AI model offers a novel approach to understanding personal thermal comfort.
- The framework enables intelligent systems to predict and explain individual thermal comfort dynamics.
- This research contributes to improved occupant well-being and productivity through personalized environmental control.
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