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Road sign detection by clustering the EMD based interest points

机译:通过对基于EMD的兴趣点进行聚类来进行路标检测

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This paper addresses an important issue — automatic road traffic signs detection and recognition in natural scenes, which is accomplished in the three following stages: interest points detection, clustering of those points and similarity search. At the first stage, good discriminative, rotation and scale invariant interest points are selected from the image edges based on the 1-D empirical mode decomposition (EMD). Then stable local features related to the brightness and color are extracted using Gabor filter and the detected points are clustered to find the possible candidate road signs or the region of interests (ROIs). We propose a two-step unsupervised clustering technique, which is adaptive. Finally, a fringe-adjusted joint transform correlation (JTC) technique is used for matching the unknown signs with the existing known reference road signs in the database. The presented framework provides a novel way to retrieve a road sign from the natural scenes.
机译:本文解决了一个重要问题-自然场景中的自动道路交通标志检测和识别,该过程可在以下三个阶段完成:兴趣点检测,这些点的聚类和相似性搜索。在第一阶段,基于一维经验模式分解(EMD)从图像边缘中选择良好的判别,旋转和比例不变兴趣点。然后,使用Gabor滤波器提取与亮度和颜色有关的稳定局部特征,并对检测到的点进行聚类,以找到可能的候选路标或感兴趣区域(ROI)。我们提出了一种自适应的两步无监督聚类技术。最后,使用条纹调整联合变换相关(JTC)技术将未知标志与数据库中现有的已知参考道路标志进行匹配。提出的框架提供了一种从自然场景中检索路标的新颖方法。

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