World2Act: Latent Action Post-Training from World Model Dynamics 事件
PRODUCT_LAUNCH2026-06-01影响: MEDIUM
World2Act: Latent Action Post-Training from World Model Dynamics arXiv:2603.10422v2 Announce Type: replace Abstract: World Models (WMs) offer a promising mechanism for post-training Vision-Language-Action (VLA) policies by providing dynamics priors that improve generalization under task and scene variation. However, most WM-based post-training methods rely on pixel-space supervision, making policies sensitive to visual artifacts introduced by imperfect WM rollouts. We present World2Act, a laten
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World2Act: Latent Action Post-Training from World Model Dynamics
ArXiv CS.CV2026-06-01