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Lili Su

8 accepted papers

2026

Den-TP: A Density-Balanced Data Curation and Evaluation Framework for Trajectory Prediction

CVPR 2026

Trajectory prediction in autonomous driving has traditionally been studied from a model-centric perspective. However, existing datasets exhibit a strong long-tail distribution in scenario density, where common low-density cases dominate and safety-critical high-density cases are severely underrepres

Cited by 4SourcecodeScholar
2024

Efficient Federated Learning against Heterogeneous and Non-stationary Client Unavailability

NeurIPS 2024poster

Addressing intermittent client availability is critical for the real-world deployment of federated learning algorithms. Most prior work either overlooks the potential non-stationarity in the dynamics of client unavailability or requires substantial memory/computation overhead. We study federated lea…

2023

Privacy-Preserving and Uncertainty-Aware Federated Trajectory Prediction for Connected Autonomous Vehicles

IROS 2023poster

Deep learning is the method of choice for trajectory prediction for autonomous vehicles. Unfortunately, its data-hungry nature implicitly requires the availability of sufficiently rich and high-quality centralized datasets, which easily leads to privacy leakage. Besides, uncertainty-awareness become…

Cited by 4SourceScholar