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UncerTrans: uncertainty-aware temporal transformer for early action prediction.
Xianfeng Zhai1,2, Yaxiong Liu3
1Guangxi Science & Technology Normal University, Guangxi, 546199, China.
This study introduces UncerTrans for trustworthy early action prediction, combining Temporal Transformer and Monte Carlo Dropout. It accurately predicts actions from minimal data while quantifying uncertainty, crucial for safety-critical AI applications.
Area of Science:
- Artificial Intelligence
- Computer Vision
- Machine Learning
Background:
- Early action prediction is vital for safety-critical systems like human-robot collaboration.
- Current methods often overlook prediction uncertainty, limiting trust and reliability.
- Distinguishing confident predictions from uncertain guesses remains a challenge.
Purpose of the Study:
- To develop a framework for accurate and trustworthy early action prediction.
- To quantify and manage the uncertainty inherent in predicting actions from limited initial observations.
- To enhance the practical deployment of action prediction systems in real-world scenarios.
Main Methods:
- Proposed the UncerTrans framework integrating Temporal Transformer and Monte Carlo Dropout.
- Temporal Transformer utilized hierarchical temporal attention and decay positional encoding for feature extraction from short sequences.
- Monte Carlo Dropout quantified epistemic uncertainty via multiple inference passes; adaptive sampling optimized efficiency.
Main Results:
- UncerTrans achieved 65.5% accuracy with only 10% observation data on EPIC-KITCHENS-100.
- Demonstrated low Expected Calibration Error (0.089), indicating reliable uncertainty quantification.
- Selective rejection of uncertain predictions improved accuracy to 84.2%.
Conclusions:
- Effective uncertainty quantification necessitates high-quality feature extraction.
- Combining robust feature extraction with uncertainty estimation enables confidence-based differentiated strategies.
- The UncerTrans framework provides a foundation for deploying reliable early action prediction systems.
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