Evaluating Quantum Optimization for Dynamic Self-Reliant Community Detection

IF 9.8 1区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Smart Grid Pub Date : 2024-10-18 DOI:10.1109/TSG.2024.3483657
David Bucher;Daniel Porawski;Benedikt Wimmer;Jonas NüßLein;Corey O’Meara;Naeimeh Mohseni;Giorgio Cortiana;Claudia Linnhoff-Popien
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Abstract

Power grid partitioning is an important requirement for resilient distribution grids. Since electricity production is progressively shifted to the distribution side, dynamic identification of self-reliant grid subsets becomes crucial for operation. This problem can be represented as a modification to the well-known NP-hard Community Detection (CD) problem. We formulate it as a Quadratic Unconstrained Binary Optimization (QUBO) problem suitable for solving using quantum computation, which is expected to find better-quality partitions faster. The formulation aims to find communities with maximal self-sufficiency and minimal power flowing between them. To assess quantum optimization for sizeable problems, we develop a hierarchical divisive method that solves sub-problem QUBOs to perform grid bisections. Furthermore, we propose a customization of the Louvain heuristic that includes self-reliance. In the evaluation, we first demonstrate that this problem examines exponential runtime scaling classically. Then, using different IEEE power system test cases, we benchmark the solution quality for multiple approaches: D-Wave’s hybrid quantum-classical solvers, classical heuristics, and a branch-and-bound solver. As a result, we observe that the hybrid solvers provide very promising results, both with and without the divisive algorithm, regarding solution quality achieved within a given time frame. Directly utilizing D-Wave’s Quantum Annealing (QA) hardware shows inferior partitioning.
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评估用于动态自立群落检测的量子优化技术
电网分区是弹性配电网的重要要求。随着电力生产逐步向配电侧转移,自主电网子集的动态识别对电网运行至关重要。这个问题可以表示为对众所周知的NP-hard社区检测(CD)问题的改进。我们将其表述为适合使用量子计算求解的二次型无约束二进制优化(QUBO)问题,期望能够更快地找到质量更好的分区。这个构想的目的是寻找自给自足程度最高、相互之间流动的电力最少的社区。为了评估大规模问题的量子优化,我们开发了一种分层分裂方法,该方法解决子问题qubo来执行网格平分。此外,我们提出了一个定制的鲁汶启发式,包括自力更生。在评估中,我们首先证明了这个问题经典地检验了指数运行时缩放。然后,使用不同的IEEE电力系统测试用例,我们对多种方法的解决方案质量进行了基准测试:D-Wave的混合量子经典求解器、经典启发式和分支定界求解器。因此,我们观察到混合求解器提供了非常有希望的结果,无论是使用还是不使用分裂算法,关于在给定时间框架内实现的解决质量。直接使用D-Wave的量子退火(QA)硬件显示较差的分区。
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来源期刊
IEEE Transactions on Smart Grid
IEEE Transactions on Smart Grid ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
22.10
自引率
9.40%
发文量
526
审稿时长
6 months
期刊介绍: The IEEE Transactions on Smart Grid is a multidisciplinary journal that focuses on research and development in the field of smart grid technology. It covers various aspects of the smart grid, including energy networks, prosumers (consumers who also produce energy), electric transportation, distributed energy resources, and communications. The journal also addresses the integration of microgrids and active distribution networks with transmission systems. It publishes original research on smart grid theories and principles, including technologies and systems for demand response, Advance Metering Infrastructure, cyber-physical systems, multi-energy systems, transactive energy, data analytics, and electric vehicle integration. Additionally, the journal considers surveys of existing work on the smart grid that propose new perspectives on the history and future of intelligent and active grids.
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