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AprilTag 2: Efficient and robust fiducial detection

机译:APRILTAG 2:高效且坚固的基准检测

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AprilTags and other passive fiducial markers require specialized algorithms to detect markers among other features in a natural scene. The vision processing steps generally dominate the computation time of a tag detection pipeline, so even small improvements in marker detection can translate to a faster tag detection system. We incorporated lessons learned from implementing and supporting the AprilTag system into this improved system. This work describes AprilTag 2, a completely redesigned tag detector that improves robustness and efficiency compared to the original AprilTag system. The tag coding scheme is unchanged, retaining the same robustness to false positives inherent to the coding system. The new detector improves performance with higher detection rates, fewer false positives, and lower computational time. Improved performance on small images allows the use of decimated input images, resulting in dramatic gains in detection speed.
机译:APRIGRAGS和其他被动基准标记需要专门的算法来检测自然场景中其他特征的标记。视觉处理步骤通常主导标签检测管道的计算时间,因此即使在标记检测中的小改进也可以转换为更快的标签检测系统。我们将学习的经验教训纳入了实现和支持AprIltag系统进入这种改进的系统。这项工作描述了APRIGRAG 2,一个完全重新设计的标签检测器,它与原始APRILTAG系统相比提高了鲁棒性和效率。标签编码方案不变,保持与编码系统所固有固有的误报相同的稳健性。新探测器提高了检测率较高,误报和较低的计算时间的性能。在小图像上提高性能允许使用抽取的输入图像,从而导致检测速度的剧烈增益。

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