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arxiv:2609.35616

EvolvingAvatar: Interactive 3D Head Generation That Adapts as Conversations Unfold

Published on Sep 28
ยท Submitted by
Junjie Chen
on Sep 29
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Abstract

Interactive 3D head generation requires coordinated speaking and listening motion that responds to an evolving conversation. Existing generators use incoming observations as context but keep their parameters fixed, leaving conversational patterns unused as a learning signal. We introduce EvolvingAvatar, a causal generator that uses test-time training to adapt to user face video and dyadic audio during interaction. Its dyadic context prediction objective provides a self-supervised learning signal from audiovisual context without target motion labels at test time. Persistent fast weights accumulate these updates within each conversation to guide motion generation, while transient jaw adaptation responds to current audiovisual context. Predicted speech activity controls how persistent adaptation guides motion. We also introduce InterHead-Bench, a unified 455.95-hour benchmark built from single-view and dual-view conversation videos. Experiments show improved conversational motion statistics over strong baselines. On the hardest out-of-distribution split, generation improves as conversations unfold, reducing mismatch with recorded user-avatar expression statistics by up to 11.1% from the first interval.

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Paper submitter

๐Ÿš€ EvolvingAvatar enables interactive 3D head generation that learns during conversation. Through test-time training, it continuously adapts to user face video and dyadic audio, combining persistent conversational adaptation with transient audiovisual responses. We also introduce InterHead-Bench, a 455.95-hour benchmark for conversational head generation. On challenging OOD conversations, EvolvingAvatar improves as interactions unfold, reducing expression-statistics mismatch by up to 11.1%. Code and data will be released.

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