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Weakly and Self-Supervised Class-Agnostic Motion Prediction for Autonomous Driving.
IEEE Transactions on Pattern Analysis and Machine Intelligence
|August 28, 2025
Summary
This study introduces new weakly and self-supervised methods for class-agnostic motion prediction using LiDAR data. These approaches significantly reduce annotation needs while achieving competitive performance for autonomous driving.
Area of Science:
- Computer Vision
- Robotics
- Machine Learning
Background:
- Autonomous driving requires accurate motion prediction in dynamic environments.
- Class-agnostic motion prediction from LiDAR point clouds is a key research area.
- Current methods often rely on extensive motion annotations.
Purpose of the Study:
- To investigate weakly and self-supervised class-agnostic motion prediction using LiDAR.
- To reduce the reliance on detailed motion annotations by leveraging scene structure.
- To develop robust methods balancing annotation effort and prediction performance.
Main Methods:
- Proposed a weakly supervised paradigm using foreground/background masks for motion prediction.
- Utilized non-ground/ground masks as a less annotation-intensive alternative.
- Developed a self-supervised method requiring no annotations.
- Introduced a Robust Consistency-aware Chamfer Distance loss for outlier suppression.
Main Results:
- Weakly and self-supervised models outperformed existing self-supervised methods.
- Weakly supervised models achieved performance comparable to some supervised methods.
- Demonstrated effective balance between annotation effort and predictive performance.
Conclusions:
- Leveraging scene parsing cues (foreground/background, non-ground/ground) enables effective weakly and self-supervised motion prediction.
- Reduced annotation requirements significantly improve the practicality of motion prediction models.
- The proposed methods offer a promising direction for efficient autonomous driving perception.
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