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首页> 外文期刊>Journal of Optimization Theory and Applications >An Inertial Parallel and Asynchronous Forward-Backward Iteration for Distributed Convex Optimization
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An Inertial Parallel and Asynchronous Forward-Backward Iteration for Distributed Convex Optimization

机译:分布式凸优化的惯性平行和异步前后向后迭代

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Two characteristics that make convex decomposition algorithms attractive are simplicity of operations and generation of parallelizable structures. In principle, these schemes require that all coordinates update at the same time, i.e., they are synchronous by construction. Introducing asynchronicity in the updates can resolve several issues that appear in the synchronous case, like load imbalances in the computations or failing communication links. However, and to the best of our knowledge, there are no instances of asynchronous versions of commonly known algorithms combined with inertial acceleration techniques. In this work, we propose an inertial asynchronous and parallel fixed-point iteration, from which several new versions of existing convex optimization algorithms emanate. Departing from the norm that the frequency of the coordinates' updates should comply to some prior distribution, we propose a scheme, where the only requirement is that the coordinates update within a bounded interval. We prove convergence of the sequence of iterates generated by the scheme at a linear rate. One instance of the proposed scheme is implemented to solve a distributed optimization load sharing problem in a smart grid setting, and its superiority with respect to the nonaccelerated version is illustrated.
机译:使凸分解算法具有吸引力的两个特性是操作简单性和并行结构的产生。原则上,这些方案要求所有坐标都同时更新,即,它们是通过施工同步的。在更新中引入异步重声器可以解决在同步情况下出现的几个问题,如计算中的负载不平衡或失败的通信链接。然而,据我们所知,常用算法的异步版本没有与惯性加速技术相结合的情况。在这项工作中,我们提出了一种惯性异步和并行定点迭代,从中提出了几种新版本的现有凸优化算法。从坐标更新的频率遵守一些先前分配的规范,我们提出了一个计划,其中唯一的要求是坐标在有界间隔内更新。我们以线性速率证明了方案产生的迭代序列的收敛性。实现了所提出的方案的一个实例以解决智能电网设置中的分布式优化负载共享问题,并且示出了与非基本版本的优势。

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