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Evolution of Thread-Level Parallelism in Desktop Applications

机译:桌面应用中线程并行性的演变

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As the effective limits of frequency and instruction level parallelism have been reached, the strategy of microprocessor vendors has changed to increase the number of processing cores on a single chip each generation. The implicit expectation is that software developers will write their applications with concurrency in mind to take advantage of this sudden change in direction. In this study we analyze whether software developers for laptop/desktop machines have followed the recent hardware trends by creating software for chip multi-processing. We conduct a study of a wide range of applications on Microsoft Windows 7 and Apple's OS X Snow Leopard, measuring Thread Level Parallelism on a high performance workstation and a low power desktop. In addition, we explore graphics processing units (GPUs) and their impact on chip multi-processing. We compare our findings to a study done 10 years ago which concluded that a second core was sufficient to improve system responsiveness. Our results on today's machines show that, 10 years later, surprisingly 2-3 cores are more than adequate for most applications and that the GPU often remains under-utilized. However, in some application specific domains an 8 core SMT system with a 240 core GPU can be effectively utilized. Overall these studies suggest that many-core architectures are not a natural fit for current desktop/laptop applications.
机译:由于已经达到了频率和指令水平并行性的有效限制,微处理器供应商的策略已经改变,以增加每个一代芯片上的加工核的数量。隐含的期望是,软件开发人员将以同意写作他们的应用程序,以利用这种突然的方向变化。在本研究中,我们分析了笔记本电脑/桌面机器的软件开发人员是否通过创建芯片多处理的软件遵循最近的硬件趋势。我们对Microsoft Windows 7和Apple OS X Snow Leopard进行了广泛的应用,测量高性能工作站和低功耗桌面上的螺纹水平并行性。此外,我们探索了图形处理单元(GPU)及其对芯片多处理的影响。我们将我们的研究结果与10年前的研究进行了比较,这结论是第二核足以提高系统响应性。我们今天的机器上的结果表明,10年后,令人惊讶的是,对于大多数应用而言,令人惊讶的是2-3个核心,而GPU经常仍然不足。然而,在一些应用程序中,可以有效地利用具有240核心GPU的8个核心SMT系统。总体而言,这些研究表明,许多核心架构对当前的桌面/笔记本电脑应用程序不是自然的。

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