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Implementation of warm-start strategies in interior-point methods for linear programming in fixed dimension

机译:固定维线性规划的内点法中热启动策略的实现

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We implement several warm-start strategies in interior-point methods for linear programming (LP). We study the situation in which both the original LP instance and the perturbed one have exactly the same dimensions. We consider different types of perturbations of data components of the original instance and different sizes of each type of perturbation. We modify the state-of-the-art interior-point solver PCx in our implementation. We evaluate the effectiveness of each warm-start strategy based on the number of iterations and the computation time in comparison with “cold start” on the NETLIB test suite. Our experiments reveal that each of the warm-start strategies leads to a reduction in the number of interior-point iterations especially for smaller perturbations and for perturbations of fewer data components in comparison with cold start. On the other hand, only one of the warm-start strategies exhibits better performance than cold start in terms of computation time. Based on the insight gained from the computational results, we discuss several potential improvements to enhance the performances of such warm-start strategies.
机译:我们在用于线性编程(LP)的内点方法中实现了几种热启动策略。我们研究了原始LP实例和被扰动的实例具有完全相同尺寸的情况。我们考虑原始实例的数据分量的不同类型的扰动,以及每种类型的扰动的大小不同。我们在实现中修改了最新的内点求解器PCx。与NETLIB测试套件上的“冷启动”相比,我们根据迭代次数和计算时间评估每种热启动策略的有效性。我们的实验表明,与冷启动相比,每种热启动策略都会减少内部点迭代的次数,特别是对于较小的扰动和较少数据分量的扰动。另一方面,就计算时间而言,只有一种热启动策略表现出比冷启动更好的性能。基于从计算结果中获得的见解,我们讨论了一些潜在的改进,以增强此类热启动策略的性能。

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