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Distributed dual averaging for convex optimization under communication delays

机译:通信时延下的凸优化的分布式对偶平均

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In this paper we extend and analyze the distributed dual averaging algorithm [1] to handle communication delays and general stochastic consensus protocols. Assuming each network link experiences some fixed bounded delay, we show that distributed dual averaging converges and the error decays at a rate O(T−0.5) where T is the number of iterations. This bound is an improvement over [1] by a logarithmic factor in T for networks of fixed size. Finally, we extend the algorithm to the case of using general non-averaging consensus protocols. We prove that the bias introduced in the optimization can be removed by a simple correction that depends on the stationary distribution of the consensus matrix.
机译:在本文中,我们扩展并分析了分布式双重平均算法[1],以处理通信延迟和一般的随机共识协议。假设每个网络链路都经历了固定的有界延迟,我们证明了分布式对偶平均收敛并且误差以O(T-0.5)的速率衰减,其中T是迭代次数。对于固定大小的网络,此界限是T的对数因子对[1]的改进。最后,我们将算法扩展到使用通用非平均共识协议的情况。我们证明,可以通过简单的校正来消除优化中引入的偏差,该校正取决于共识矩阵的平稳分布。

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  • 来源
    《American Control Conference;ACC》|2012年|p.1067- 1072|共6页
  • 会议地点 Montreal(CA)
  • 作者

    Tsianos, Konstantinos I.;

  • 作者单位

    Department of Electrical and Computer Engineering McGill University Montreal Quebec H3A 2A7 Canada;

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