Techniques for Enabling Highly Efficient Message Passing on Many-Core Architectures

Min Si, P. Balaji, Y. Ishikawa
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Abstract

Many-core architecture provides a massively parallel environment with dozens of cores and hundreds of hardware threads. Scientific application programmers are increasingly looking at ways to utilize such large numbers of lightweight cores for various programming models. Efficiently executing these models on massively parallel many-core environments is not easy, however and performance may be degraded in various ways. The first author's doctoral research focuses on exploiting the capabilities of many-core architectures on widely used MPI implementations. While application programmers have studied several approaches to achieve better parallelism and resource sharing, many of those approaches still face communication problems that degrade performance. In the thesis, we investigate the characteristics of MPI on such massively threaded architectures and propose two efficient strategies -- a multi-threaded MPI approach and a process-based asynchronous model -- to optimize MPI communication for modern scientific applications.
在多核架构上实现高效消息传递的技术
多核体系结构提供了具有数十个核和数百个硬件线程的大规模并行环境。科学应用程序程序员正在越来越多地寻找方法,以便为各种编程模型利用如此大量的轻量级核心。然而,在大规模并行多核环境中有效地执行这些模型并不容易,而且性能可能会以各种方式降低。第一作者的博士研究重点是在广泛使用的MPI实现上开发多核架构的功能。虽然应用程序程序员已经研究了几种方法来实现更好的并行性和资源共享,但其中许多方法仍然面临降低性能的通信问题。在本文中,我们研究了MPI在这种大规模线程架构上的特点,并提出了两种有效的策略——多线程MPI方法和基于进程的异步模型——来优化现代科学应用的MPI通信。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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