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Autofocus for Enhanced Measurement Accuracy of a Machine Vision System for Robotic Drilling

机译:自动对焦,用于增强机器视觉系统的测量精度,用于机器人钻孔系统

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Erroneous object distance often causes significant errors in vision-based measurement. In this paper, we propose to apply autofocus to control object distance in order to enhance the measurement accuracy of a machine vision system for robotic drilling. First, the influence of the variation of object distance on the measurement accuracy of the vision system is theoretically analyzed. Then, a Two Dimensional Entropy Sharpness (TDES) function is proposed for autofocus after a brief introduction to various traditional sharpness functions. Performance indices of sharpness functions including reproducibility and computation efficiency are also presented. A coarse-to-fine autofocus algorithm is developed to shorten the time cost of autofocus without sacrificing its reproducibility. Finally, six major sharpness functions (including the TDES) are compared with experiments, which indicate that the proposed TDES function surpasses other sharpness functions in terms of reproducibility and computational efficiency. Experiments performed on the machine vision system for robotic drilling verify that object distance control is accurate and efficient using the proposed TDES function and coarse-to-fine autofocus algorithm. With the object distance control, the measurement accuracy related to object distance is improved by about 87 %.
机译:错误的物体距离通常会导致基于视觉的测量中的显着误差。在本文中,我们建议应用自动对焦以控制对象距离,以提高机器人钻孔机器视觉系统的测量精度。首先,理论上分析了物体距离对视觉系统测量精度的影响。然后,在简要介绍各种传统清晰度函数之后,提出了二维熵锐度(TDES)功能。还提出了锐度函数的性能指标,包括再现性和计算效率。开发了一种粗细到精细的自动对焦算法,以缩短自动对焦的时间成本,而不会牺牲其再现性。最后,将六个主要锐度函数(包括TDES)与实验进行比较,表明所提出的TDES功能在再现性和计算效率方面超越了其他清晰度函数。在机器人钻探机器视觉系统上执行的实验验证了对象距离控制是否使用所提出的TDES功能和粗细的自动对焦算法进行准确且有效。通过对象距离控制,与对象距离相关的测量精度提高了约87%。

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