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Towards Condition Analysis for Machine Vision Based Traffic Sign Inventory

机译:基于机器视觉流量标志库存的条件分析

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Automatic traffic sign inventory and simultaneous condition analysis can be used to improve road maintenance processes, decrease maintenance costs, and produce up-to-date information for future intelligent driving systems. The goal of this research is to combine automatic traffic sign detection and classification with traffic sign inventory and condition analysis. This paper considers the very challenging problem of traffic sign condition analysis which is currently performed manually by experts. The manual evaluation is time-consuming, expensive, and subjective. We propose a machine vision based method to determine the condition category of each detected sign. A new dataset containing close to 400 traffic signs with condition category annotations has been specifically collected for this research since there was no suitable data available. The experimental results indicate that the average performance of the method is close to the human performance.
机译:自动流量标志库存和同时状况分析​​可用于改善道路维护过程,降低维护成本,并为未来的智能驾驶系统产生最新信息。本研究的目标是将自动交通标志检测和分类与交通标志库存和条件分析相结合。本文考虑了交通标志条件分析的极具挑战性问题,目前由专家手动进行。手动评估是耗时,昂贵和主观的。我们提出了一种基于机器视觉的方法来确定每个检测到的标志的条件类别。这项研究已经专门为此研究专门收集了包含带有条件类别注释的400个流量标志的新数据集,因为没有可用的合适数据。实验结果表明该方法的平均性能接近人类性能。

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