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simmediumvision-robotmetric · varies

Heuristic-inspired Reasoning Priors Facilitate Data-Efficient Referring Object Detection

Description

Most referring object detection (ROD) models, especially the modern grounding detectors, are designed for data-rich conditions, yet many practical deployments, such as robotics, augmented reality, and other specialized domains, would face severe label scarcity. In such regimes, end-to-end grounding detectors need to learn spatial and semantic structure from scratch, wasting precious samples. We ask a simple question: Can explicit reasoning priors help models learn more efficiently when data is s

Source

http://arxiv.org/abs/2603.24166v1