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Inexact convex relaxations for AC optimal power flow: Towards AC feasibility

机译:AC最佳功率流动的不精确凸弛豫:迈向AC可行性

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摘要

Convex relaxations of AC optimal power flow (AC-OPF) problems have attracted significant interest as in several instances they provably yield the global optimum to the original non-convex problem. If, however, the relaxation is inexact, the obtained solution is not AC-feasible. The quality of the obtained solution is essential for several practical applications of AC-OPF, but detailed analyses are lacking in existing literature. This paper aims to cover this gap. We provide an in-depth investigation of the solution characteristics when convex relaxations are inexact, we assess the most promising AC feasibility recovery methods for large-scale systems, and we propose two new metrics that lead to a better understanding of the quality of the identified solutions. We perform a comprehensive assessment on 96 different test cases, ranging from 14 to 3120 buses, and we show the following: (i) Despite an optimality gap of less than 1%, several test cases still exhibit substantial distances to both AC feasibility and local optimality and the newly proposed metrics characterize these deviations. (ii) Penalization methods fail to recover an AC-feasible solution in 15 out of 45 test cases. (iii) The computational benefits of warm-starting non-convex solvers have significant variation, but a computational speedup exists in over 75% of cases.
机译:AC最佳功率流(AC-OPF)问题的凸松弛引起了显着的兴趣,因为在几个情况下,他们可以证明对原始非凸面的全局最优的情况。然而,如果松弛是不精确的,则所得溶液不可行。所得解决方案的质量对于AC-OPF的几种实际应用至关重要,但现有文献缺乏详细分析。本文旨在涵盖这种差距。我们对凸弛豫进行不精确的解决方案特性提供了深入的调查,我们评估了大型系统的最有希望的AC可行性恢复方法,我们提出了两个新的指标,导致更好地了解所识别的质量解决方案。我们对96个不同的测试用例进行了全面的评估,从14到3120公交车程,我们展示了以下内容:(i)尽管最优差距低于1%,但几个测试用例仍然对AC可行性和当地展示了大量距离最优性和新拟议的指标表征了这些偏差。 (ii)惩罚方法未能在45个测试用例中的15个中恢复可行的解决方案。 (iii)热启动非凸溶剂的计算益处具有显着的变化,但在75%的情况下存在计算加速。

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