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Chun-Mao Lai

4 accepted papers

2024

AV-SUPERB: A Multi-Task Evaluation Benchmark for Audio-Visual Representation Models

ICASSP 2024accepted

Audio-visual representation learning aims to develop systems with human-like perception by utilizing correlation between auditory and visual information. However, current models often focus on a limited set of tasks, and generalization abilities of learned representations are unclear. To this end, w…

Cited by 0SourceScholar
2024

Diffusion Model-Augmented Behavioral Cloning

ICML 2024poster

Imitation learning addresses the challenge of learning by observing an expert’s demonstrations without access to reward signals from environments. Most existing imitation learning methods that do not require interacting with environments either model the expert distribution as the conditional probab…

Cited by 25SourcePDFScholar
2024

Diffusion-Reward Adversarial Imitation Learning

NeurIPS 2024poster

Imitation learning aims to learn a policy from observing expert demonstrations without access to reward signals from environments. Generative adversarial imitation learning (GAIL) formulates imitation learning as adversarial learning, employing a generator policy learning to imitate expert behaviors…