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Graph-Based Modeling and Decomposition of Energy Infrastructures ?

机译:基于图的模型和能量基础设施的分解

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Nonlinear optimization problems are found at the heart of real-time operations of critical infrastructures. These problems are computationally challenging because they embed complex physical models that exhibit space-time dynamics. We propose modeling these problems as graph-structured optimization problems, and illustrate how their structure can be exploited at the modeling level (for parallelizing function/derivative computations) and at the solver level (for parallelizing linear algebra operations). Specifically, we present a restricted additive Schwarz scheme that enables flexible decomposition of complex graph structures within an interior-point algorithm. The proposed approach is implemented as a general-purpose nonlinear programming solver that we call MadNLP.jl; this Julia-based solver is interfaced to the graph-based modeling package Plasmo.jl. The efficiency of this framework is demonstrated via problems arising in transient gas network optimization and multi-period AC optimal power flow. We show that our framework accelerates the solution (compared to off-the-shelf tools) by over 300%; specifically, solution times are reduced from 72.36 sec to 23.84 sec for the gas problem and from 515.81 sec to 149.45 sec for the power flow problem.
机译:在关键基础设施的实时操作的核心处找到非线性优化问题。这些问题是在计算上具有挑战性的,因为它们嵌入了具有展示时空动态的复杂物理模型。我们提出将这些问题建立为图形结构化优化问题,并且说明了它们的结构如何在建模级别(用于并行化功能/衍生计算)和求解器电平(用于并行化线性代数操作)。具体地,我们介绍了一种限制的添加剂Schwarz方案,其能够灵活地分解内部点算法内的复杂图形结构。拟议的方法实施为我们称之为Madnlp.jl的通用非线性编程求解器;基于Julia的求解器接口到基于图形的建模包Plasmo.jl。通过瞬态气体网络优化和多时段交流最佳功率流动产生的问题,证明了该框架的效率。我们展示我们的框架将解决方案(与现成工具相比)加速超过300%;具体而言,溶液时间从72.36秒减少到23.84秒,用于气体问题,从515.81秒到149.45秒,对于电力流动问题。

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