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Minghua Luo

4 accepted papers

2026

AstraNav-Memory: Contexts Compression for Long Memory

CVPR 2026

Lifelong embodied navigation requires agents to accumulate, retain, and exploit spatial-semantic experience across tasks, enabling efficient exploration in novel environments and rapid goal reaching in familiar ones. While object-centric memory is interpretable, it depends on detection and reconstru

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2026

NavForesee: A Unified Vision-Language World Model for Hierarchical Planning and Dual-Horizon Navigation Prediction

CVPR 2026

Embodied navigation for long-horizon tasks, guided by complex natural language instructions, remains a formidable challenge in artificial intelligence. Existing agents often struggle with robust long-term planning about unseen environments, leading to high failure rates. To address these limitations

Cited by 0SourceScholar
2026

OmniNav: A Unified Framework for Prospective Exploration and Visual-Language Navigation

ICLR 2026poster

Embodied navigation is a foundational challenge for intelligent robots, demanding the ability to comprehend visual environments, follow natural language instructions, and explore autonomously. However, existing models struggle to provide a unified solution across heterogeneous navigation paradigms,…

Cited by 0SourceScholar
2026

SocialNav: Training Human-Inspired Foundation Model for Socially-Aware Embodied Navigation

CVPR 2026

Embodied navigation that adheres to social norms remains an open research challenge. Our SocialNav is a foundational model for socially-aware navigation with a hierarchical "brain-action" architecture, capable of understanding high-level social norms and generating low-level, socially compliant traj

Cited by 0SourcecodeScholar