WAM-Cache: Staleness-Bounded KV Reuse for Efficient World Action Models
cs.RO, cs.CV, cs.LG
Submitted: 2026-10-08
Updated: 2026-10-08
Project page: https://dingkai0302.github.io/wam-cache/ABSTRACT
Terminology
Sources
- Flash-WAM: Modality-Aware Distillation for World Action Models
- Gen2Act: Human Video Generation in Novel Scenarios enables Generalizable Robot Manipulation
- Motus: A Unified Latent Action World Model
- $\pi_0$: A Vision-Language-Action Flow Model for General Robot Control
- Token Merging: Your ViT But Faster
- RT-2: Vision-Language-Action Models Transfer Web Knowledge to Robotic Control
- WorldVLA: Towards Autoregressive Action World Model
- GR-2: A Generative Video-Language-Action Model with Web-Scale Knowledge for Robot Manipulation
- LaWAM: Latent World Action Models for Efficient Dynamics-Aware Robot Policies
- An Image is Worth 1/2 Tokens After Layer 2: Plug-and-Play Inference Acceleration for Large Vision-Language Models
- RoboTwin 2.0: A Scalable Data Generator and Benchmark with Strong Domain Randomization for Robust Bimanual Robotic Manipulation
- High-Fidelity One-Step Generative Visuomotor Policy via Recursive Correction, Frequency Consistency, and Contrastive Flow Matching
- From Flow to One Step: Real-Time Multi-Modal Trajectory Policies via Implicit Maximum Likelihood Estimation-based Distribution Distillation
- Learning Universal Policies via Text-Guided Video Generation
- Eventful Transformers: Leveraging Temporal Redundancy in Vision Transformers
- WorldCache: Accelerating World Models for Free via Heterogeneous Token Caching
- Reflex: Real-Time VLA Control through Streaming Inference
- Video Prediction Policy: A Generalist Robot Policy with Predictive Visual Representations
- Long-WAM: Scaling the Context of World-Action Models
- DreamGen: Unlocking Generalization in Robot Learning through Video World Models
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