Tracking Reflected Objects: A Benchmark
Xiaoyu Guo, Pengzhi Zhong, Lizhi Lin, Hao Zhang, Ling Huang, Shuiwang, Li

TL;DR
This paper introduces TRO, a new benchmark dataset for tracking reflected objects, and proposes HiP-HaTrack, a novel tracker that significantly improves performance on this challenging task, aiming to advance research in specialized object tracking scenarios.
Contribution
The paper presents TRO, a dedicated benchmark for reflected object tracking, and introduces HiP-HaTrack, a hierarchical feature-based tracker that outperforms existing methods on this new dataset.
Findings
Existing trackers struggle with reflections.
HiP-HaTrack significantly outperforms state-of-the-art methods.
TRO dataset enables focused research on reflected object tracking.
Abstract
Visual tracking has advanced significantly in recent years, mainly due to the availability of large-scale training datasets. These datasets have enabled the development of numerous algorithms that can track objects with high accuracy and robustness.However, the majority of current research has been directed towards tracking generic objects, with less emphasis on more specialized and challenging scenarios. One such challenging scenario involves tracking reflected objects. Reflections can significantly distort the appearance of objects, creating ambiguous visual cues that complicate the tracking process. This issue is particularly pertinent in applications such as autonomous driving, security, smart homes, and industrial production, where accurately tracking objects reflected in surfaces like mirrors or glass is crucial. To address this gap, we introduce TRO, a benchmark specifically for…
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Taxonomy
TopicsRobotics and Automated Systems · Augmented Reality Applications
