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Color road segmentation for ALV using pyramid architecture

机译:使用金字塔架构的ALV彩色路段分割

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Abstract: Road segmentation is one of the most preliminary and important tasks for the road following and planning of the Autonomous Land Vehicle (ALV), since the efficiency of road segmentation has direct effect on the reliability of road following and planning, and consequently the speed of ALV. Therefore, road segmentation has been extensively studied, and a variety of methods for color road segmentation have been proposed, since color images contain more information of road than gray level images do. In most of the existing color road segmentation approaches, a best discriminant vector, which is a linear transformation of color vector (r,g,b), was used to project and classify a point in color space, and only one such projection was used in the segmentation, which may lead to instability of segmentation under variant circumstances. This presentation proposed a new color road segmentation method in which a pyramid based data structure and the corresponding region splitting and combination techniques for the classification of sensed areas are adopted. At the same time, two transformations of the (R,G,B) color space, and data fusion technique are used to increase the efficiency of the road segmentation. Experiment results are presented to illustrate the performance of this approach.!5
机译:摘要:道路分割是自动驾驶汽车(ALV)的道路跟踪和规划的最初步,最重要的任务之一,因为道路分段的效率直接影响道路跟踪和规划的可靠性,进而影响速度。 ALV。因此,由于彩色图像比灰度图像包含更多的道路信息,因此已经对道路分割进行了广泛的研究,并且提出了多种用于彩色道路分割的方法。在大多数现有的颜色道路分割方法中,最佳判别向量是颜色向量(r,g,b)的线性变换,用于对颜色空间中的一个点进行投影和分类,并且仅使用一个这样的投影在细分中可能会导致细分情况下的细分不稳定。本演讲提出了一种新的彩色道路分割方法,其中采用了基于金字塔的数据结构以及用于感测区域分类的相应区域分割和组合技术。同时,使用(R,G,B)颜色空间的两次转换以及数据融合技术来提高道路分割的效率。给出实验结果以说明该方法的性能。5

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