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Research on the base station calibration of multi-station and time-sharing measurement based on hybrid genetic algorithm

机译:基于混合遗传算法的多站基站标定和分时测量研究

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In order to detect the motion error of machine tool quickly and accurately, the multi-station and timesharing measurement by laser tracker is introduced in the paper. Merely distance is involved in the measurement, thus the influence of angle measurement on the whole measuring accuracy of laser tracker can be effectively avoided. With this method, the measurement algorithm mainly relates to base station calibration and measuring point determination. Moreover, how to quickly and accurately calibrate the position of base station is a critical issue, which directly influences measuring accuracy. To solve the problem, the redundant measurement method is adopted. By establishing the mathematical model of detecting the motion error of machine tool with multi-station and time-sharing measurement, the nonlinear redundant equations concerning base station calibration and measuring point determination can be obtained by large amount of measured data based on the GPS principle. To overcome the deficiencies of prematurity and poor local searching ability of standard genetic algorithm in solving nonlinear problem, the simplex method is integrated into the genetic algorithm to constitute a hybrid genetic algorithm, then the deficiencies can be effectively overcome for further improvement of the solving accuracy. The hybrid genetic algorithm derived is used to determine the position of base station and the coordinates of measuring point, and the simulations and experiments are conducted to verify the effectiveness of multi station and time-sharing measurement algorithm deduced on the basis of hybrid genetic algorithm. (C) 2016 Elsevier Ltd. All rights reserved.
机译:为了快速准确地检测出机床的运动误差,本文介绍了利用激光跟踪仪进行多工位分时测量的方法。测量仅涉及距离,因此可以有效避免角度测量对激光跟踪仪整体测量精度的影响。通过这种方法,测量算法主要涉及基站校准和测量点确定。而且,如何快速,准确地校准基站位置是一个关键问题,直接影响到测量精度。为了解决该问题,采用了冗余测量方法。通过建立多站分时测量机床运动误差的数学模型,基于GPS原理,通过大量的测量数据,可以得到涉及基站校准和测量点确定的非线性冗余方程。为克服标准遗传算法在解决非线性问题方面的过早不足和局部搜索能力差的问题,将单纯形法整合到遗传算法中构成了混合遗传算法,可以有效克服这些缺陷,进一步提高求解精度。 。通过推导的混合遗传算法确定基站位置和测量点坐标,并通过仿真和实验验证了基于混合遗传算法的多站分时测量算法的有效性。 (C)2016 Elsevier Ltd.保留所有权利。

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