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Global Stress Detection Framework Combining a Reduced Set of HRV Features and Random Forest Model
Kamana Dahal1, Brian Bogue-Jimenez1, Ana Doblas1
1Department of Electrical and Computer Engineering, The University of Memphis, Memphis, TN 38152, USA.
Sensors (Basel, Switzerland)
|June 10, 2023
Summary
This study introduces a global stress detection model using eight heart rate variability (HRV) features and a random forest algorithm. The model achieves over 99% accuracy in identifying individual stress, even with global training.
Area of Science:
- Biomedical Engineering
- Data Science
- Psychophysiology
Background:
- Chronic stress significantly impacts global adult health, contributing to serious conditions like heart disease and anxiety.
- Existing stress detection methods using wearable devices lack standardized feature sets and often rely on person-specific training.
- Wearable wristbands are widely adopted, presenting an opportunity for improved stress monitoring.
Purpose of the Study:
- To develop and validate a global stress detection model using a unified set of features and a machine learning algorithm.
- To investigate the efficacy of combining eight heart rate variability (HRV) features with a random forest (RF) algorithm for stress detection.
- To establish a stress detection model that can be trained globally but evaluated for individual performance.
Main Methods:
- Selected eight optimal HRV features using the minimum redundancy maximum relevance (mRMR) method for efficient model training.
- Implemented a global training framework for the random forest (RF) algorithm, incorporating data from all subjects.
- Validated the proposed global stress model using the WESAD and SWELL open-access databases, individually and combined.
Main Results:
- The global stress monitoring model achieved an accuracy exceeding 99% in identifying person-specific stress events.
- The mRMR method effectively reduced training time by selecting the most informative HRV features.
- The model demonstrated robust performance across different datasets, confirming its generalizability.
Conclusions:
- A global stress detection model trained on diverse data can accurately identify individual stress events.
- The integration of selected HRV features and RF algorithm offers a promising approach for non-invasive, high-accuracy stress monitoring.
- Future research should focus on real-world application testing of this global stress monitoring framework.
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