硬件事务性存储系统能耗表征

Epifanio Gaona-Ramírez, J. Gil, Juan Fernández, M. Acacio
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引用次数: 19

摘要

事务性内存目前被认为是基于锁的同步的一种很有前途的替代方案,因为它简化了多线程编程。这样,未来的多核CMP架构可能需要为事务性内存提供硬件支持。另一方面,功耗是多核处理器设计的首要考虑因素。在这项工作中,我们描述了两个众所周知的硬件事务性内存系统的性能和能耗,这两个系统在数据版本控制和冲突管理方面采用了相反的策略。更具体地说,我们比较了Log TM-SE Eager-Eager系统和一个支持并行提交的Scalable TCC Lazy-Lazy系统。据我们所知,这是硬件事务性内存系统能耗方面的第一个特征描述。为此,我们扩展了GEMS模拟器,根据CACTI来估计片上缓存消耗的能量,并使用了Orion 2给出的互连网络能量模型。结果表明,Eager-Eager系统的能耗平均比Lazy-Lazy高60%,而两种系统的性能差异平均为42%。最后,我们发现,尽管平均而言Lazy-Lazy优于Eager-Eager,但根据每个应用程序的特定特征,在性能上存在相当大的差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterizing Energy Consumption in Hardware Transactional Memory Systems
Transactional Memory is currently being advocated as a promising alternative to lock-based synchronization because it simplifies multithreaded programming. In this way, future many-core CMP architectures may need to provide hardware support for transactional memory. On the other hand, power dissipation constitutes a first class consideration in multicore processor design. In this work, we characterize the performance and energy consumption of two well-known Hardware Transactional Memory systems that employ opposite policies for data versioning and conflict management. More specifically, we compare the Log TM-SE Eager-Eager system and a version of the Scalable TCC Lazy-Lazy system that enables parallel commits. To the best of our knowledge, this is the first characterization in terms of energy consumption of hardware transactional memory systems. To do that, we extended the GEMS simulator to estimate the energy consumed in the on-chip caches according to CACTI, and used the interconnection network energy model given by Orion 2. Results show that the energy consumption of the Eager-Eager system is 60% higher on average than in the Lazy-Lazy case, whereas performance differences between the two systems are 42% on average. Finally, we found that although on average Lazy-Lazy beats Eager-Eager there are considerable deviations in performance depending on the particular characteristics of each application.
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