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From corners to rectangles — Directional road sign detection using learned corner representations

机译:从拐角到矩形-使用学习的拐角表示进行方向性路标检测

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In this work we adopt a novel approach for the detection of rectangular directional road signs in single frames captured from a moving car. These signs exhibit wide variations in sizes and aspect ratios and may contain arbitrary information, thus making their detection a challenging task with applications in traffic sign recognition systems and vision-based localization. Our proposed approach was originally presented for additional traffic sign detection in small image regions and is generalized to full image frames in this work. Sign corner areas are detected by four ACF-detectors (Aggregated Channel Features) on a single scale. The resulting corner detections are subsequently used to generate quadrangle hypotheses, followed by an aggressive pruning strategy. A comparative evaluation on a database of 1500 German road signs shows that our proposed detector outperforms other methods significantly at close to real-time runtimes and yields thrice the very low error-rate of the recent MS-CNN framework while being two orders of magnitude faster.
机译:在这项工作中,我们采用一种新颖的方法来检测从行驶中的汽车捕获的单个帧中的矩形方向路标。这些标志在大小和纵横比方面表现出很大的差异,并且可能包含任意信息,因此在交通标志识别系统和基于视觉的定位中的应用使它们的检测成为一项具有挑战性的任务。我们提出的方法最初是为在小图像区域中进行其他交通标志检测而提出的,并且在这项工作中被推广到完整的图像帧。信号拐角区域由四个ACF检测器(聚合通道特征)以单个比例检测。随后将所得的角检测结果用于生成四边形假设,然后采用积极的修剪策略。在1500个德国道路标志的数据库上进行的比较评估表明,我们提出的检测器在接近实时运行时的性能明显优于其他方法,并且产生的错误率是最近MS-CNN框架的非常低的三倍,而速度却快了两个数量级。 。

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