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Planar Object Tracking in the Wild: A Benchmark

机译:野外平面物体跟踪:基准测试

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Planar object tracking is an actively studied problem in vision-based robotic applications. While several benchmarks have been constructed for evaluating state-of-the-art algorithms, there is a lack of video sequences captured in the wild rather than in constrained laboratory environment. In this paper, we present a carefully designed planar object tracking benchmark containing 210 videos of 30 planar objects sampled in the natural environment. In particular, for each object, we shoot seven videos involving various challenging factors, namely scale change, rotation, perspective distortion, motion blur, occlusion, out-of-view, and unconstrained. The ground truth is carefully annotated semi-manually to ensure the quality. Moreover, eleven state-of-the-art algorithms are evaluated on the benchmark using two evaluation metrics, with detailed analysis provided for the evaluation results. We expect the proposed benchmark to benefit future studies on planar object tracking.
机译:平面对象跟踪是基于视觉的机器人应用中的积极研究的问题。虽然已经为评估最先进的算法构建了几个基准,但缺乏在野外捕获的视频序列而不是约束的实验室环境。在本文中,我们介绍了一个精心设计的平面对象跟踪基准,其中包含了在自然环境中采样的30个平面对象的210个视频。特别是,对于每个对象,我们拍摄七个涉及各种具有挑战性因素的视频,即缩放变化,旋转,透视变形,运动模糊,闭塞,视野和无约束。地面真相是半手动注释的,以确保质量。此外,使用两个评估指标对基准进行评估11的最先进的算法,并为评估结果提供了详细的分析。我们预计拟议的基准测试将使未来的平面对象跟踪研究受益。

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