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The QC Relaxation: Theoretical and Computational Results on Optimal Power Flow

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arxiv 1502.07847 v2 pith:KMALMOYS submitted 2015-02-27 cs.CE math.OC

classification cs.CEmath.OC
keywords relaxationrelaxationscomputationalconvexflowpowerconstraintsoptimal
verification ladder T0 review T1 audit T2 compute T3 formal
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Convex relaxations of the power flow equations and, in particular, the Semi-Definite Programming (SDP) and Second-Order Cone (SOC) relaxations, have attracted significant interest in recent years. The Quadratic Convex (QC) relaxation is a departure from these relaxations in the sense that it imposes constraints to preserve stronger links between the voltage variables through convex envelopes of the polar representation. This paper is a systematic study of the QC relaxation for AC Optimal Power Flow with realistic side constraints. The main theoretical result shows that the QC relaxation is stronger than the SOC relaxation and neither dominates nor is dominated by the SDP relaxation. In addition, comprehensive computational results show that the QC relaxation may produce significant improvements in accuracy over the SOC relaxation at a reasonable computational cost, especially for networks with tight bounds on phase angle differences. The QC and SOC relaxations are also shown to be significantly faster and reliable compared to the SDP relaxation given the current state of the respective solvers.

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  1. A Benchmark Library for Distributed Power System Analysis and Optimization

    eess.SY 2025-06 conditional novelty 6.0 of 10

    The paper introduces DPLib, a benchmark library of multi-region power system test cases with a graph partitioning toolkit and distributed OPF solvers for reproducible distributed optimization research.

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