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Toward scalable stochastic unit commitment Part 2: solver configuration and performance assessment

机译:迈向可扩展的随机单元承诺,第2部分:求解器配置和性能评估

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摘要

In this second portion of a two-part analysis of a scalable computational approach to stochastic unit commitment (SUC), we focus on solving stochastic mixed-integer programs in tractable run-times. Our solution technique is based on Rockafellar and Wets' progressive hedging algorithm, a scenario-based decomposition strategy for solving stochastic programs. To achieve high-quality solutions in tractable run-times, we describe critical, novel customizations of the progressive hedging algorithm for SUC. Using a variant of the WECC-240 test case with 85 thermal generation units, we demonstrate the ability of our approach to solve realistic, moderate-scale SUC problems with reasonable numbers of scenarios in no more than 15 min of wall clock time on commodity compute platforms. Further, we demonstrate that the resulting solutions are high-quality, with costs typically within 1-2.5 % of optimal. For larger test cases with 170 and 340 thermal generators, we are able to obtain solutions of similar quality in no more than 25 min of wall clock time. A major component of our contribution is the public release of the optimization model, associated test cases, and algorithm results, in order to establish a rigorous baseline for both solution quality and run times of SUC solvers.
机译:在对随机单位承诺(SUC)的可伸缩计算方法的两部分分析的第二部分中,我们着重于在可处理的运行时间中解决随机混合整数程序。我们的解决方案技术基于Rockafellar和Wets的渐进对冲算法,这是一种基于场景的分解策略,用于解决随机程序。为了在可操作的运行时间中实现高质量的解决方案,我们描述了SUC渐进式套期保值算法的关键,新颖的自定义设置。使用带有85个热力发电机的WECC-240测试用例的变体,我们证明了我们的方法能够在不超过15分钟的商品计算时间的情况下,以合理数量的场景解决现实,中等规模的SUC问题的能力平台。此外,我们证明了所得解决方案是高质量的,成本通常在最佳值的1-2.5%之内。对于带有170和340热力发生器的大型测试案例,我们能够在不超过25分钟的挂钟时间内获得质量相似的解决方案。我们所做贡献的主要组成部分是公开发布优化模型,相关的测试用例和算法结果,以便为SUC求解器的求解质量和运行时间建立严格的基准。

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  • 来源
    《Energy systems》 |2015年第3期|417-438|共22页
  • 作者单位

    Alstom Grid, Redmond, WA, USA;

    Sabre Holdings, Southlake, TX, USA;

    Electric Power Systems Research Department, Sandia National Laboratories, Albuquerque, NM, USA;

    Department of Industrial and Manufacturing Systems Engineering, Iowa State University, Ames, IA, USA;

    Analytics Department, Sandia National Laboratories, Albuquerque, NM, USA;

    Department of Mathematics, University of California Davis, Davis, CA, USA;

    Graduate School of Management, University of California Davis, Davis, CA, USA;

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