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Power-Performance Comparison of Single-Task Driven Many-Cores

机译:单任务驱动多核的功率性能比较

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Many-cores, processors with 100s of cores, are becoming increasingly popular in general-purpose computing, yet power is a limiting factor in their performance. In this paper, we compare the power and performance of two design points in the many-core processor domain. The XMT general-purpose processor provides significant runtime advantage on irregular parallel programs (e.g., graph algorithms). This was previously demonstrated and tied to its architecture choices and ease-of-programming. In contrast, current commercial GPUs excel at regular parallel programs that require high processing capability. In this work, we set the power envelope as a constraint and evaluate an envisioned 1024-core XMT processor against an NVIDIA GTX280 GPU considering various scenarios for estimating the power of the XMT chip. Even under worst-case assumptions and scenarios, simulations show that the XMT processor sustains its advantage over the GPU on irregular parallel programs, while not falling significantly behind on regular programs. The total energy spent per benchmark fits a similar pattern. Given that the two architectures target different types of parallelism, a future system can potentially utilize an XMT chip and a GPU chip in complementary roles.
机译:具有100个内核的多核处理器在通用计算中正变得越来越流行,但是功率是其性能的限制因素。在本文中,我们比较了多核处理器领域中两个设计点的功能和性能。 XMT通用处理器在不规则的并行程序(例如图形算法)上提供了显着的运行时优势。先前已对此进行了演示,并将其与体系结构选择和易于编程联系在一起。相反,当前的商用GPU擅长于需要高处理能力的常规并行程序。在这项工作中,我们将功耗包络设置为约束,并针对NVIDIA GTX280 GPU评估了设想的1024核XMT处理器,并考虑了各种估算XMT芯片功耗的方案。即使在最坏的假设和情况下,仿真也表明XMT处理器在不规则的并行程序上仍能保持优于GPU的优势,而在常规程序上却没有明显落后。每个基准测试所花费的总能量符合类似的模式。鉴于两种体系结构针对不同类型的并行性,未来的系统可能会以互补的角色利用XMT芯片和GPU芯片。

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