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Path-following interior point algorithms for the Cartesian P_*(κ)-LCP over symmetric cones 被引量:5
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作者 LUO ZiYan XIU NaiHua 《Science China Mathematics》 SCIE 2009年第8期1769-1784,共16页
In this paper, we establish a theoretical framework of path-following interior point al- gorithms for the linear complementarity problems over symmetric cones (SCLCP) with the Cartesian P*(κ)-property, a weaker condi... In this paper, we establish a theoretical framework of path-following interior point al- gorithms for the linear complementarity problems over symmetric cones (SCLCP) with the Cartesian P*(κ)-property, a weaker condition than the monotonicity. Based on the Nesterov-Todd, xy and yx directions employed as commutative search directions for semidefinite programming, we extend the variants of the short-, semilong-, and long-step path-following algorithms for symmetric conic linear programming proposed by Schmieta and Alizadeh to the Cartesian P*(κ)-SCLCP, and particularly show the global convergence and the iteration complexities of the proposed algorithms. 展开更多
关键词 CARTESIAN P*(κ)-property symmetric CONE linear complementarity problem path- following interior point algorithm global convergence complexity
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AN INFEASIBLE-INTERIOR-POINT PREDICTOR-CORRECTOR ALGORITHM FOR THE SECOND-ORDER CONE PROGRAM 被引量:11
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作者 迟晓妮 刘三阳 《Acta Mathematica Scientia》 SCIE CSCD 2008年第3期551-559,共9页
A globally convergent infeasible-interior-point predictor-corrector algorithm is presented for the second-order cone programming (SOCP) by using the Alizadeh- Haeberly-Overton (AHO) search direction. This algorith... A globally convergent infeasible-interior-point predictor-corrector algorithm is presented for the second-order cone programming (SOCP) by using the Alizadeh- Haeberly-Overton (AHO) search direction. This algorithm does not require the feasibility of the initial points and iteration points. Under suitable assumptions, it is shown that the algorithm can find an -approximate solution of an SOCP in at most O(√n ln(ε0/ε)) iterations. The iteration-complexity bound of our algorithm is almost the same as the best known bound of feasible interior point algorithms for the SOCP. 展开更多
关键词 Second-order cone programming infeasible-interior-point algorithm predictor-corrector algorithm global convergence
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A POLYNOMIAL PREDICTOR-CORRECTOR INTERIOR-POINT ALGORITHM FOR CONVEX QUADRATIC PROGRAMMING 被引量:4
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作者 余谦 黄崇超 江燕 《Acta Mathematica Scientia》 SCIE CSCD 2006年第2期265-270,共6页
This article presents a polynomial predictor-corrector interior-point algorithm for convex quadratic programming based on a modified predictor-corrector interior-point algorithm. In this algorithm, there is only one c... This article presents a polynomial predictor-corrector interior-point algorithm for convex quadratic programming based on a modified predictor-corrector interior-point algorithm. In this algorithm, there is only one corrector step after each predictor step, where Step 2 is a predictor step and Step 4 is a corrector step in the algorithm. In the algorithm, the predictor step decreases the dual gap as much as possible in a wider neighborhood of the central path and the corrector step draws iteration points back to a narrower neighborhood and make a reduction for the dual gap. It is shown that the algorithm has O(√nL) iteration complexity which is the best result for convex quadratic programming so far. 展开更多
关键词 Convex quadratic programming PREDICTOR-CORRECTOR interior-point algorithm
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An Improved Affine-Scaling Interior Point Algorithm for Linear Programming 被引量:1
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作者 Douglas Kwasi Boah Stephen Boakye Twum 《Journal of Applied Mathematics and Physics》 2019年第10期2531-2536,共6页
In this paper, an Improved Affine-Scaling Interior Point Algorithm for Linear Programming has been proposed. Computational results of selected practical problems affirming the proposed algorithm have been provided. Th... In this paper, an Improved Affine-Scaling Interior Point Algorithm for Linear Programming has been proposed. Computational results of selected practical problems affirming the proposed algorithm have been provided. The proposed algorithm is accurate, faster and therefore reduces the number of iterations required to obtain an optimal solution of a given Linear Programming problem as compared to the already existing Affine-Scaling Interior Point Algorithm. The algorithm can be very useful for development of faster software packages for solving linear programming problems using the interior-point methods. 展开更多
关键词 interior-point Methods Affine-Scaling interior point algorithm Optimal SOLUTION Linear Programming Initial Feasible TRIAL SOLUTION
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Complexity analysis of interior-point algorithm based on a new kernel function for semidefinite optimization 被引量:3
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作者 钱忠根 白延琴 王国强 《Journal of Shanghai University(English Edition)》 CAS 2008年第5期388-394,共7页
Interior-point methods (IPMs) for linear optimization (LO) and semidefinite optimization (SDO) have become a hot area in mathematical programming in the last decades. In this paper, a new kernel function with si... Interior-point methods (IPMs) for linear optimization (LO) and semidefinite optimization (SDO) have become a hot area in mathematical programming in the last decades. In this paper, a new kernel function with simple algebraic expression is proposed. Based on this kernel function, a primal-dual interior-point methods (IPMs) for semidefinite optimization (SDO) is designed. And the iteration complexity of the algorithm as O(n^3/4 log n/ε) with large-updates is established. The resulting bound is better than the classical kernel function, with its iteration complexity O(n log n/ε) in large-updates case. 展开更多
关键词 interior-point algorithm primal-dual method semidefinite optimization (SDO) polynomial complexity
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Primal-Dual Interior-Point Algorithms with Dynamic Step-Size Based on Kernel Functions for Linear Programming 被引量:3
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作者 钱忠根 白延琴 《Journal of Shanghai University(English Edition)》 CAS 2005年第5期391-396,共6页
In this paper, primal-dual interior-point algorithm with dynamic step size is implemented for linear programming (LP) problems. The algorithms are based on a few kernel functions, including both serf-regular functio... In this paper, primal-dual interior-point algorithm with dynamic step size is implemented for linear programming (LP) problems. The algorithms are based on a few kernel functions, including both serf-regular functions and non-serf-regular ones. The dynamic step size is compared with fixed step size for the algorithms in inner iteration of Newton step. Numerical tests show that the algorithms with dynaraic step size are more efficient than those with fixed step size. 展开更多
关键词 linear programming (LP) interior-point algorithm small-update method large-update method.
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A predictor-corrector interior-point algorithmfor monotone variational inequality problems 被引量:2
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作者 梁昔明 钱积新 《Journal of Zhejiang University Science》 CSCD 2002年第3期321-325,共5页
Mehrotra' s recent suggestion of a predictor-eorrector variant of primal-dual interior-point method for linear programming is currently the interior-point method of choice for linear programming.In this work the a... Mehrotra' s recent suggestion of a predictor-eorrector variant of primal-dual interior-point method for linear programming is currently the interior-point method of choice for linear programming.In this work the authors give a predictor-corrector interior-point algorithm for monotone variational inequality problems. The algorithm was proved to be equivalent to a level-1 perturbed composite Newton method. Computations in the algorithm do not require the initial iteration to be feasible. Numerical results of experiments are presented. 展开更多
关键词 线性规划 预测校正内点算法 单调变分不等式 数值实验
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Power System Reactive Power Optimization Based on Fuzzy Formulation and Interior Point Filter Algorithm 被引量:1
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作者 Zheng Fan Wei Wang +3 位作者 Tian-jiao Pu Guang-yi Liu Zhi Cai Ning Yang 《Energy and Power Engineering》 2013年第4期693-697,共5页
Considering the soft constraint characteristics of voltage constraints, the Interior-Point Filter Algorithm is applied to solve the formulation of fuzzy model for the power system reactive power optimization with a la... Considering the soft constraint characteristics of voltage constraints, the Interior-Point Filter Algorithm is applied to solve the formulation of fuzzy model for the power system reactive power optimization with a large number of equality and inequality constraints. Based on the primal-dual interior-point algorithm, the algorithm maintains an updating “filter” at each iteration in order to decide whether to admit correction of iteration point which can avoid effectively oscillation due to the conflict between the decrease of objective function and the satisfaction of constraints and ensure the global convergence. Moreover, the “filter” improves computational efficiency because it filters the unnecessary iteration points. The calculation results of a practical power system indicate that the algorithm can effectively deal with the large number of inequality constraints of the fuzzy model of reactive power optimization and satisfy the requirement of online calculation which realizes to decrease the network loss and maintain specified margins of voltage. 展开更多
关键词 POWER System REACTIVE POWER Optimization FUZZY Filter interior-point algorithm Online Calculation
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A Primal-Dual Infeasible-Interior-Point Algorithm for Multiple Objective Linear Programming Problems
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作者 HUANGHui FEIPu-sheng YUANYuan 《Wuhan University Journal of Natural Sciences》 CAS 2005年第2期351-354,共4页
A primal-dual infeasible interior point algorithm for multiple objective linear programming (MOLP) problems was presented. In contrast to the current MOLP algorithm. moving through the interior of polytope but not con... A primal-dual infeasible interior point algorithm for multiple objective linear programming (MOLP) problems was presented. In contrast to the current MOLP algorithm. moving through the interior of polytope but not confining the iterates within the feasible region in our proposed algorithm result in a solution approach that is quite different and less sensitive to problem size, so providing the potential to dramatically improve the practical computation effectiveness. 展开更多
关键词 Key words multiple objective linear programming primal dual infeasible interior point algorithm
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Optimal Adjustment Algorithm for <i>p</i>Coordinates and The Starting Point in Interior Point Methods
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作者 Carla T. L. S. Ghidini Aurelio R. L. Oliveira Jair Silva 《American Journal of Operations Research》 2011年第4期191-202,共12页
Optimal adjustment algorithm for p coordinates is a generalization of the optimal pair adjustment algorithm for linear programming, which in turn is based on von Neumann’s algorithm. Its main advantages are simplicit... Optimal adjustment algorithm for p coordinates is a generalization of the optimal pair adjustment algorithm for linear programming, which in turn is based on von Neumann’s algorithm. Its main advantages are simplicity and quick progress in the early iterations. In this work, to accelerate the convergence of the interior point method, few iterations of this generalized algorithm are applied to the Mehrotra’s heuristic, which determines the starting point for the interior point method in the PCx software. Computational experiments in a set of linear programming problems have shown that this approach reduces the total number of iterations and the running time for many of them, including large-scale ones. 展开更多
关键词 Von Neumann’s algorithm Mehrotra’s HEURISTIC interior point Methods Linear Programming
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A PREDICTOR-CORRECTOR INTERIOR-POINT ALGORITHM FOR CONVEX QUADRATIC PROGRAMMING
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作者 Liang Ximing(梁昔明) +1 位作者 Qian Jixin(钱积新) 《Numerical Mathematics A Journal of Chinese Universities(English Series)》 SCIE 2002年第1期52-62,共11页
The simplified Newton method, at the expense of fast convergence, reduces the work required by Newton method by reusing the initial Jacobian matrix. The composite Newton method attempts to balance the trade-off betwee... The simplified Newton method, at the expense of fast convergence, reduces the work required by Newton method by reusing the initial Jacobian matrix. The composite Newton method attempts to balance the trade-off between expense and fast convergence by composing one Newton step with one simplified Newton step. Recently, Mehrotra suggested a predictor-corrector variant of primal-dual interior point method for linear programming. It is currently the interiorpoint method of the choice for linear programming. In this work we propose a predictor-corrector interior-point algorithm for convex quadratic programming. It is proved that the algorithm is equivalent to a level-1 perturbed composite Newton method. Computations in the algorithm do not require that the initial primal and dual points be feasible. Numerical experiments are made. 展开更多
关键词 CONVEX QUADRATIC programming interior-point methods PREDICTOR-CORRECTOR algorithms numerical experiments.
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Predictor-corrector interior-point algorithm for linearly constrained convex programming
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作者 LIANG Xi-ming (College of Information Science & Engineering, Central South University, Changsh a 410083, China) 《Journal of Central South University》 SCIE EI CAS 2001年第3期208-212,共5页
Active set method and gradient projection method are curre nt ly the main approaches for linearly constrained convex programming. Interior-po int method is one of the most effective choices for linear programming. In ... Active set method and gradient projection method are curre nt ly the main approaches for linearly constrained convex programming. Interior-po int method is one of the most effective choices for linear programming. In the p aper a predictor-corrector interior-point algorithm for linearly constrained c onvex programming under the predictor-corrector motivation was proposed. In eac h iteration, the algorithm first performs a predictor-step to reduce the dualit y gap and then a corrector-step to keep the points close to the central traject ory. Computations in the algorithm only require that the initial iterate be nonn egative while feasibility or strict feasibility is not required. It is proved th at the algorithm is equivalent to a level-1 perturbed composite Newton method. Numerical experiments on twenty-six standard test problems are made. The result s show that the proposed algorithm is stable and robust. 展开更多
关键词 LINEARLY CONSTRAINED convex programming predictor-correct or interior-point algorithm numerical experiment
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A POSITIVE INTERIOR-POINT ALGORITHM FOR NONLINEAR COMPLEMENTARITY PROBLEMS
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作者 马昌凤 梁国平 陈新美 《Applied Mathematics and Mechanics(English Edition)》 SCIE EI 2003年第3期355-362,共8页
A new iterative method,which is called positive interior-point algorithm,is presented for solving the nonlinear complementarity problems.This method is of the desirable feature of robustness.And the convergence theore... A new iterative method,which is called positive interior-point algorithm,is presented for solving the nonlinear complementarity problems.This method is of the desirable feature of robustness.And the convergence theorems of the algorithm is established.In addition,some numerical results are reported. 展开更多
关键词 nonlinear complementarity problems positive interior-point algorithm non-smooth equations
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A Primal-dual Interior Point Method for Nonlinear Programming
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作者 张珊 姜志侠 《Northeastern Mathematical Journal》 CSCD 2008年第3期275-282,共8页
In this paper, we propose a primal-dual interior point method for solving general constrained nonlinear programming problems. To avoid the situation that the algorithm we use may converge to a saddle point or a local ... In this paper, we propose a primal-dual interior point method for solving general constrained nonlinear programming problems. To avoid the situation that the algorithm we use may converge to a saddle point or a local maximum, we utilize a merit function to guide the iterates toward a local minimum. Especially, we add the parameter ε to the Newton system when calculating the decrease directions. The global convergence is achieved by the decrease of a merit function. Furthermore, the numerical results confirm that the algorithm can solve this kind of problems in an efficient way. 展开更多
关键词 primal-dual interior point algorithm merit function global convergence nonlinear programming
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Two new predictor-corrector algorithms for second-order cone programming 被引量:1
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作者 曾友芳 白延琴 +1 位作者 简金宝 唐春明 《Applied Mathematics and Mechanics(English Edition)》 SCIE EI 2011年第4期521-532,共12页
Based on the ideas of infeasible interior-point methods and predictor-corrector algorithms, two interior-point predictor-corrector algorithms for the second-order cone programming (SOCP) are presented. The two algor... Based on the ideas of infeasible interior-point methods and predictor-corrector algorithms, two interior-point predictor-corrector algorithms for the second-order cone programming (SOCP) are presented. The two algorithms use the Newton direction and the Euler direction as the predictor directions, respectively. The corrector directions belong to the category of the Alizadeh-Haeberly-Overton (AHO) directions. These algorithms are suitable to the cases of feasible and infeasible interior iterative points. A simpler neighborhood of the central path for the SOCP is proposed, which is the pivotal difference from other interior-point predictor-corrector algorithms. Under some assumptions, the algorithms possess the global, linear, and quadratic convergence. The complexity bound O(rln(εo/ε)) is obtained, where r denotes the number of the second-order cones in the SOCP problem. The numerical results show that the proposed algorithms are effective. 展开更多
关键词 second-order cone programming infeasible interior-point algorithm predictor-corrector algorithm global convergence complexity analysis
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P∗(κ)-线性权互补问题的一种全牛顿步可行内点算法
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作者 迟晓妮 张璐 +1 位作者 刘三阳 张所滨 《应用数学》 北大核心 2023年第2期540-549,共10页
本文提出一种求解P∗(κ)-线性权互补问题(LWCP)的新全牛顿步可行内点算法.首先基于一个连续可微的核函数,构造新代数等价变换,得到光滑中心路径的等价形式.然后沿着搜索方向使用全牛顿步,无需进行线搜索,节省运行内存.最后分析算法的可... 本文提出一种求解P∗(κ)-线性权互补问题(LWCP)的新全牛顿步可行内点算法.首先基于一个连续可微的核函数,构造新代数等价变换,得到光滑中心路径的等价形式.然后沿着搜索方向使用全牛顿步,无需进行线搜索,节省运行内存.最后分析算法的可行性及收敛性,并通过数值算例验证算法的有效性. 展开更多
关键词 P∗(κ)-线性权互补问题 全牛顿步 可行内点算法 代数等价变换
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非线性方程组的仿射尺度内点信赖域算法
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作者 唐江花 《咸阳师范学院学报》 2023年第2期5-9,共5页
很多领域研究寻优问题时,所采用的寻优算法普遍存在全局搜索能力差、收敛速度慢的问题,导致求出的解无法达到最优。针对上述问题,研究了一种非线性方程组的仿射尺度内点信赖域算法。构建目标最小化或者目标最大化非线性方程组,并针对方... 很多领域研究寻优问题时,所采用的寻优算法普遍存在全局搜索能力差、收敛速度慢的问题,导致求出的解无法达到最优。针对上述问题,研究了一种非线性方程组的仿射尺度内点信赖域算法。构建目标最小化或者目标最大化非线性方程组,并针对方程组设置等式或者不等式约束条件;在约束条件下,利用仿射尺度内点信赖域算法求取非线性方程组最优解;将所研究算法应用到有功优化当中,以线损最小化和电压偏差最小化构建非线性方程组,并为其设置四个约束条件,利用仿射尺度内点信赖域算法求取最优解。实验结果表明:与自适应粒子群算法、樽海鞘群算法以及改进差分灰狼算法相比,所研究算法应用下,线损以及电压偏差均要更小,说明仿射尺度内点信赖域算法的求解结果更优,算法的寻优能力更强。 展开更多
关键词 非线性方程组 约束条件 仿射尺度内点信赖域算法 无功优化应用
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一种基于凸优化理论的多无人机避障控制算法
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作者 徐胜 周灿辉 王洪雷 《信息化研究》 2023年第2期11-16,共6页
无人机编队在飞行过程中由于地形障碍和任务航线的约束,需要对特定区域进行规避,可能导致无人机编队无法保持设定队形执行飞行任务。为保持无人机编队构型的稳定性,需要无人机编队在完成避障飞行后,尽快恢复到原有编队状态。针对这一问... 无人机编队在飞行过程中由于地形障碍和任务航线的约束,需要对特定区域进行规避,可能导致无人机编队无法保持设定队形执行飞行任务。为保持无人机编队构型的稳定性,需要无人机编队在完成避障飞行后,尽快恢复到原有编队状态。针对这一问题,本文基于凸优化理论研究了一种最短时间避障控制算法,基于势函数理论设计了无人机飞行中的控制参数,建立了避障稳定时间与控制增益之间的关系,通过内点算法优化控制器增益,从而保证无人机完成避障飞行后能够以最短时间恢复原有队形。仿真表明,本文所提出的控制算法在完成避障飞行后能够以较短的时间恢复原有队形。 展开更多
关键词 无人机 凸优化理论 避障控制 内点算法
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带有顶点权重约束的图划分问题研究
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作者 丁玉婉 刘红卫 +2 位作者 王婷 王晓瑜 游海龙 《哈尔滨师范大学自然科学学报》 CAS 2023年第1期35-42,共8页
研究了带有顶点权重约束的图划分问题.首先基于矩阵的提升将原问题转化为半定规划松弛模型,利用半定规划内点法求解该模型,并在求解过程中给出了具体的初始点选取策略和步长选取策略.随后利用改进的随机超平面舍入算法和2opt启发式算法... 研究了带有顶点权重约束的图划分问题.首先基于矩阵的提升将原问题转化为半定规划松弛模型,利用半定规划内点法求解该模型,并在求解过程中给出了具体的初始点选取策略和步长选取策略.随后利用改进的随机超平面舍入算法和2opt启发式算法求得原问题的近似最优解.数值实验表明该文的算法可有效求解带有顶点权重约束的图划分问题,且对于稀疏图的求解表现出了良好的性能. 展开更多
关键词 图划分 半定规划 内点法 随机超平面舍入算法 组合优化
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小螺距滚柱牙型非接触式检测与偏差评价方法
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作者 徐洪伟 魏沛堂 +1 位作者 周鹏亮 杜雪松 《重庆大学学报》 CAS CSCD 北大核心 2023年第3期45-57,共13页
行星滚柱丝杠副(planetary roller screw mechanism, PRSM)是旋转运动与直线运动相互转化的新型重载精密传动装置,螺纹牙型加工质量直接决定其传动精度和承载性能。针对小螺距PRSM滚柱牙型非完整短圆弧检测评价的难题,利用高精度三坐标... 行星滚柱丝杠副(planetary roller screw mechanism, PRSM)是旋转运动与直线运动相互转化的新型重载精密传动装置,螺纹牙型加工质量直接决定其传动精度和承载性能。针对小螺距PRSM滚柱牙型非完整短圆弧检测评价的难题,利用高精度三坐标测量机对滚柱轴向截面牙型非接触式检测,提出了基于非线性内点算法的滚柱牙型曲线拟合方法,验证了滚柱牙型曲线的拟合精度;建立了滚柱螺纹牙型偏差评价模型和偏差评价方法,绘制了基于本偏差模型的牙型偏差评价图,分析并总结了滚柱牙型偏差分布规律。提出的小螺距PRSM滚柱牙型检测评价方法,拟合残差平方和达到1.5×10~(-4)数级,牙型半径拟合精度控制在6μm,牙型圆心z_0坐标拟合精度控制在9.8μm,能够定量评判滚柱牙型形状精度和位置精度,在工程实际中具有可行性。 展开更多
关键词 行星滚柱丝杠副 非接触式检测 非线性内点算法 拟合精度 滚柱牙型偏差
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