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Multi-Task Visual Perception Network with LLM Conditioning for Autonomous Navigation

arXiv · AI, language, vision and robotics · article · Sep 13, 2026 · UTC

Long-term navigation for service robots faces crit- ical challenges like the accumulation of odometry drift and sensor error, which progressively degrade 2D maps and renders traditional path planning algorithms (e.g., A*, RRT*, DiPPer, ViT-A*) ineffective over time. To address this, we propose a user-friendly, interactive framework that eliminates the reliance on globally consistent maps. Our approach integrates visual perception with Large Language Models (LLM) to interpret user commands via text or voice. Instead of relying on a drift- prone global map, the system generates a sequential acti

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Evidence & attribution

First collected: 2026-09-20T12:41:04.663Z. This is not the publication date.