HVG-3D: Bridging Real and Simulation Domains for 3D-Conditional Hand-Object Interaction Video Synthesis

arXiv cs.CV / 4/7/2026

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Key Points

  • HVG-3Dは、手-物体相互作用(HOI)のビデオ合成において、従来の2D条件信号では不足していた空間表現力を補うため、明示的な3D表現で制御する枠組みを提案しています。
  • 拡散ベースのアーキテクチャに3D ControlNetを組み込み、幾何学的・運動学的な手がかりを3D入力から符号化して、動画生成中に3D推論を行えるようにしています。
  • 学習・推論の両方で柔軟かつ精密な制御を可能にするため、入力および条件信号を構築するハイブリッドなパイプラインも設計されています。
  • 推論では「実画像1枚+3Dコントロール信号(シミュレーションまたは実データ由来)」を用いて、高品質かつ時間的に一貫した動画を生成し、空間・時間の制御性を高めています。
  • TASTE-Robデータセットで、空間忠実度・時間的コヒーレンス・制御性の面で最先端性能(state-of-the-art)を示し、実データとシミュレーションデータの両方を効果的に活用できると報告されています。

Abstract

Recent methods have made notable progress in the visual quality of hand-object interaction video synthesis. However, most approaches rely on 2D control signals that lack spatial expressiveness and limit the utilization of synthetic 3D conditional data. To address these limitations, we propose HVG-3D, a unified framework for 3D-aware hand-object interaction (HOI) video synthesis conditioned on explicit 3D representations. Specifically, we develop a diffusion-based architecture augmented with a 3D ControlNet, which encodes geometric and motion cues from 3D inputs to enable explicit 3D reasoning during video synthesis. To achieve high-quality synthesis, HVG-3D is designed with two core components: (i) a 3D-aware HOI video generation diffusion architecture that encodes geometric and motion cues from 3D inputs for explicit 3D reasoning; and (ii) a hybrid pipeline for constructing input and condition signals, enabling flexible and precise control during both training and inference. During inference, given a single real image and a 3D control signal from either simulation or real data, HVG-3D generates high-fidelity, temporally consistent videos with precise spatial and temporal control. Experiments on the TASTE-Rob dataset demonstrate that HVG-3D achieves state-of-the-art spatial fidelity, temporal coherence, and controllability, while enabling effective utilization of both real and simulated data.

HVG-3D: Bridging Real and Simulation Domains for 3D-Conditional Hand-Object Interaction Video Synthesis | AI Navigate