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Benchmarks for Robotic Soccer Vision

机译:机器人足球视觉基准

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摘要

Robotic soccer vision has been a major research problem in RoboCup and, even though many progresses have been made so that, for example, games now can run without many constraints on the lighting conditions, the problem has not been completely solved and on-site camera calibration is always a major activity for RoboCup soccer teams. While different robotic soccer vision and object perception techniques continue to appear in the RoboCup Soccer League, there is a lack of quantitative evaluation of existing methods. Since we believe that a quantitative evaluation of soccer vision algorithms will led to significant advances in the performance on perception and on the entire soccer task, in this paper we propose a benchmarking methodology for evaluating robotic soccer vision systems. We discuss the main issues of a successful benchmarking methodology: (i) a large and complete data base or data sets with ground truth; (ii) a public repository with data sets, algorithms and implementations that can be dynamically updated and (iii) evaluation metrics, error functions and comparison results.
机译:机器人足球视觉一直是RoboCup的一个主要研究问题,尽管已经取得了很多进展,例如,现在可以在不受光照条件限制的情况下运行游戏,但该问题尚未得到完全解决,现场摄像头也没有得到解决。校准始终是RoboCup足球队的一项主要活动。尽管机器人足球视觉和对象感知技术继续出现在RoboCup足球联赛中,但缺乏对现有方法的定量评估。由于我们认为对足球视觉算法的定量评估将导致感知和整个足球任务性能的显着提高,因此在本文中,我们提出了一种用于评估机器人足球视觉系统的基准测试方法。我们讨论了一种成功的基准测试方法的主要问题:(i)庞大而完整的数据库或具有事实依据的数据集; (ii)具有可动态更新的数据集,算法和实现的公共存储库,以及(iii)评估指标,误差函数和比较结果。

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