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首页> 外文期刊>Intelligent Transportation Systems, IEEE Transactions on >Traffic Sign Detection Using a Cascade Method With Fast Feature Extraction and Saliency Test
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Traffic Sign Detection Using a Cascade Method With Fast Feature Extraction and Saliency Test

机译:使用具有快速特征提取和显着性测试的级联方法进行交通标志检测

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摘要

Automatic traffic sign detection is challenging due to the complexity of scene images, and fast detection is required in real applications such as driver assistance systems. In this paper, we propose a fast traffic sign detection method based on a cascade method with saliency test and neighboring scale awareness. In the cascade method, feature maps of several channels are extracted efficiently using approximation techniques. Sliding windows are pruned hierarchically using coarse-to-fine classifiers and the correlation between neighboring scales. The cascade system has only one free parameter, while the multiple thresholds are selected by a data-driven approach. To further increase speed, we also use a novel saliency test based on mid-level features to pre-prune background windows. Experiments on two public traffic sign data sets show that the proposed method achieves competing performance and runs 2~7 times as fast as most of the state-of-the-art methods.
机译:由于场景图像的复杂性,自动交通标志检测具有挑战性,并且在诸如驾驶员辅助系统的实际应用中需要快速检测。本文提出一种基于显着性检验和邻近尺度感知的级联方法的快速交通标志检测方法。在级联方法中,使用近似技术有效地提取了几个通道的特征图。滑动窗口使用粗到精分类器以及相邻比例之间的相关性进行层次修剪。级联系统只有一个自由参数,而多个阈值是通过数据驱动的方法选择的。为了进一步提高速度,我们还使用了基于中级功能的新颖性显着性测试来预修剪背景窗口。在两个公共交通标志数据集上的实验表明,该方法达到了竞争性能,并且运行速度是大多数最新方法的2到7倍。

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