الباحثون

Sunghwan Hong

المنشورات 3

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DeskForge: Dense Supervision from Desktop Environments for Computer-Use Agents

A. Said Gurbuz, Ahmed Nassar, Sunghwan Hong وآخرون · 2026

Computer-use agents need to reliably ground action targets in complex desktop scenes, where multiple applications, overlapping windows, and visually similar controls compete for attention. Existing training data rarely pair such scenes with dense annotations or vary them in a controlled way. We introduce DeskForge, a c …

نسخة أولية وصول مفتوح

ChronoGraph: Functional 4D Scene Graphs with Vision-Language Models for Interaction Understanding and Grounded Planning

Embodied agents must determine where to act, anticipate the resulting scene changes, and interpret observed outcomes to guide subsequent actions. This requires connecting 4D interaction understanding, which explains how past actions changed the scene, with spatially grounded planning, which determines how and where to …

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