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Distributed optimization with arbitrary local solvers

机译:使用任意局部求解器的分布式优化

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摘要

With the growth of data and necessity for distributed optimization methods, solvers that work well on a single machine must be re-designed to leverage distributed computation. Recent work in this area has been limited by focusing heavily on developing highly specific methods for the distributed environment. These special-purpose methods are often unable to fully leverage the competitive performance of their well-tuned and customized single machine counterparts. Further, they are unable to easily integrate improvements that continue to be made to single machine methods. To this end, we present a framework for distributed optimization that both allows the flexibility of arbitrary solvers to be used on each (single) machine locally and yet maintains competitive performance against other state-of-the-art special-purpose distributed methods. We give strong primal–dual convergence rate guarantees for our framework that hold for arbitrary local solvers. We demonstrate the impact of local solver selection both theoretically and in an extensive experimental comparison. Finally, we provide thorough implementation details for our framework, highlighting areas for practical performance gains.
机译:随着数据的增长以及分布式优化方法的必要性,必须重新设计在单台计算机上运行良好的求解器以利用分布式计算。通过集中精力为分布式环境开发高度特定的方法,该领域的最新工作受到了限制。这些特殊用途的方法通常无法充分利用其经过良好调整和定制的单机同类产品的竞争性能。此外,他们无法轻松地集成继续对单机方法进行的改进。为此,我们提出了一种分布式优化框架,该框架既允许在每个(单台)机器上本地使用任意求解器的灵活性,又可以保持与其他最新的特殊用途分布式方法的竞争性能。我们为适用于任意局部求解器的框架提供了强大的原始-对偶收敛速率保证。我们在理论上和广泛的实验比较中证明了局部求解器选择的影响。最后,我们为我们的框架提供了详尽的实施细节,重点介绍了可实现的实际性能提升领域。

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