基于改进遗传算法实现柔性三坐标测量机参数标定  被引量:5

Implementation of parameter calibration for flexible coordinate measurement machine based on improving genetic algorithm

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作  者:赵磊[1] 刘书桂[1] 

机构地区:[1]天津大学精密测试技术及仪器国家重点实验室,天津300072

出  处:《光学精密工程》2011年第11期2753-2758,共6页Optics and Precision Engineering

基  金:国家自然科学基金资助项目(No.50475116)

摘  要:针对柔性三坐标测量机测量精度低的弊端,提出了误差修正和参数标定的方法。应用Denavit-Hartenberg(DH)法建立了柔性三坐标测量系统的运动学模型和误差模型,考虑系统结构参数标定问题,提出了一种基于优化最小二乘法的改进遗传算法。首先,在最小二乘法中引入变化因子来衡量收敛速度;其次,当该因子趋于稳定时,将产生的次优解作为遗传算法的初始群体,并对一般遗传算法进行改进;最后,根据改进的遗传算法进行搜索、计算,得到满足要求的最优解,完成系统结构参数的标定。实验表明:该方法具有收敛速度快、鲁棒性好等优点。According to the low measuring accuracy from a flexible coordinate measurement machine,the error correction and parameter calibration methods for the coording measarement machine were researched.An improving genetic algorithm based on optimization least square method was proposed to implement the parameter calibration.The kinematic model and the error model of the flexible coordinate measurement machine were established by Denavit-Hartenberg(DH) method.Firstly,a variable factor was used in least square method to evaluate the convergence speed.Then,the suboptimal parameter was regarded as the initial population of optimized genetic algorithm while the variable factor became steady.Finally,the improving genetic algorithm was used to search and calculate to obtain the optimal parameter and the parameter calibration was finished.The experiment shows that the proposed algorithm has fast convergence speeds and good robustness.

关 键 词:柔性三坐标测量机 参数标定 误差修正 遗传算法 优化 

分 类 号:TH721[机械工程—仪器科学与技术]

 

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