首页> 外文会议>2015 IEEE 21st International Symposium on High Performance Computer Architecture >Understanding idle behavior and power gating mechanisms in the context of modern benchmarks on CPU-GPU Integrated systems
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Understanding idle behavior and power gating mechanisms in the context of modern benchmarks on CPU-GPU Integrated systems

机译:在CPU-GPU集成系统的现代基准测试中了解空闲行为和电源门控机制

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Overall energy consumption In modern computing systems Is significantly Impacted by Idle power. Power gating, also known as C6, Is an effective mechanism to reduce Idle power. However, C6 entry Incurs non-trivial overheads and can cause negative savings If the Idle duration Is short. As CPUs become tightly Integrated with GPUs and other accelerators, the Incidence of short duration Idle events are becoming Increasingly common. Even when Idle durations are long, It may still not be beneficial to power gate because of the overheads of cache flushing, especially with FinFET transistors. This paper presents a comprehensive analysis of idleness behavior of modern CPU workloads, consisting of both consumer and CPU-GPU benchmarks. It proposes techniques to accurately predict idle durations and develops power gating mechanisms that account for dynamic variations in the break-even point caused by varying cache dirtiness. Accounting for variations in the break-even point is even more important for FinFET transistors. In systems with FinFET transistors, the proposed mechanisms provide average energy reduction exceeding 8% and up to 36% over three currently employed schemes.
机译:闲置电源会严重影响现代计算系统中的总体能耗。功率门控,也称为C6,是一种降低空闲功率的有效机制。但是,如果闲置时间短,则C6条目会产生不小的开销,并且可能导致负节省。随着CPU与GPU和其他加速器的紧密集成,短时间空闲事件的发生变得越来越普遍。即使空闲时间很长,由于高速缓存刷新的开销(尤其是使用FinFET晶体管),对功率门可能仍然没有好处。本文对现代CPU工作负载的空闲行为进行了全面的分析,包括消费者基准和CPU-GPU基准。它提出了准确预测空闲时间的技术,并开发了功率门控机制,该机制可解决由变化的缓存脏污导致的损益平衡点的动态变化。对于FinFET晶体管,考虑到收支平衡点的变化更为重要。在具有FinFET晶体管的系统中,所提出的机制在三种当前采用的方案中,平均能耗降低了8%以上,最高降低了36%。

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