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Wenchao Ma

5 accepted papers

2025

AAAR-1.0: Assessing AI’s Potential to Assist Research

ICML 2025poster

Numerous studies have assessed the proficiency of AI systems, particularly large language models (LLMs), in facilitating everyday tasks such as email writing, question answering, and creative content generation. However, researchers face unique challenges and opportunities in leveraging LLMs for the…

Cited by 0SourcePDFScholar
2025

KALAHash: Knowledge-Anchored Low-Resource Adaptation for Deep Hashing

AAAI 2025technical

Deep hashing has been widely used for large-scale approximate nearest neighbor search due to its storage and search efficiency. However, existing deep hashing methods predominantly rely on abundant training data, leaving the more challenging scenario of low-resource adaptation for deep hashing relat…

2025

Learning Conditional Space-Time Prompt Distributions for Video Class-Incremental Learning

CVPR 2025highlight

Recent advancements in prompt-based learning have significantly advanced image and video class-incremental learning. However, the prompts learned by these methods often fail to capture the diverse and informative characteristics of videos, and struggle to generalize effectively to future tasks and c…

Cited by 0SourcePDFScholar
2025

RigAnyFace: Scaling Neural Facial Mesh Auto-Rigging with Unlabeled Data

NeurIPS 2025poster

In this paper, we present RigAnyFace (RAF), a scalable neural auto-rigging framework for facial meshes of diverse topologies, including those with multiple disconnected components. RAF deforms a static neutral facial mesh into industry-standard FACS poses to form an expressive blendshape rig. Deform…

Cited by 0SourceScholar
2024

Stratified Avatar Generation from Sparse Observations

CVPR 2024poster

Estimating 3D full-body avatars from AR/VR devices is essential for creating immersive experiences in AR/VR applications. This task is challenging due to the limited input from Head Mounted Devices which capture only sparse observations from the head and hands. Predicting the full-body avatars parti…

Cited by 4SourcePDFScholar