GeoAgent: Evaluating VLM Geolocalization Through Embodied Navigation

August 30, 2026 ยท Grace Period ยท ๐Ÿ› EMNLP 2026 Findings

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Authors Arka Mukherjee, Soham Roy, Kartikeya Trivedi, Shreya Ghosh arXiv ID 2608.29483 Category cs.CV: Computer Vision Cross-listed cs.CL Citations 0 Venue EMNLP 2026 Findings
Abstract
Modern Vision-Language Models (VLMs) perform well above the human baseline in image geolocalization, a task critically important in disaster response, OSINT verification, and location privacy. However, most efforts to study AI behavior on the task remain limited to static image-based retrieval, classification, and predictions. We argue that faithful recreation of the task should involve embodied navigation, where a multimodal agent autonomously explores its surroundings to gather observations before submitting a prediction. To this end, we introduce \textbf{GeoAgent}, an agentic environment-based benchmark that requires agents to navigate Street View environments to refine their geolocalization through sequential reasoning. Our analysis shows that modern VLMs struggle to discern regional patterns while succeeding at country- and continent-level predictions. When compared to static image-based baselines, agentic navigation significantly improves accuracy across established metrics. We also note severe bias in a developed/developing region context across frontier model architectures and poor self-improvement capabilities given incorrect priors. Overall, our work establishes the challenges of embodied navigation and geospatial reasoning. We publicly release our code and the GeoAgent environment: https://geoagent-benchmark.github.io
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