CSR-PSCE, SM: Automatic Multithreaded and Transactional Memory Workload Synthesis for Efficient Multi-core Design Space Evaluation
CSR-PSCE, SM: Automatic Multithreaded and Transactional Memory Workload Synthesis for Efficient Multi-core Design Space Evaluation
批准号:
0834288
负责人:
Tao Li
金额:
$0.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-09-01 至 2011-08-31
中文摘要
多核系统已经成为从服务器到嵌入式计算市场的主流。由于硬件和软件设计人员采用事务存储器作为具有成本效益的多核编程范例,因此使用广泛的事务应用程序评估TM/多核设计对于量化不同设计标准之间的权衡至关重要。TM/多核研究和设计社区面临的一个障碍是缺乏代表性的事务内存基准。该项目旨在开发创新的技术,方法和新工具,以实现准确,有效和自动的事务内存工作负载合成,以应对这些挑战。这可能对多核架构研究和设计社区非常有益。合成TM基准测试保留了原始多线程工作负载的行为,而参数化事务合成器可以生成具有广泛不同行为的事务代码,从而可以有效地在不同维度上对TM设计施加压力。此外,参数化的合成工作负载将大大减少运行时间,这使得架构师和设计人员能够快速探索大型TM/多核协同设计空间,在该空间中需要评估许多设计权衡。创新的事务内存工作负载合成技术、方法和工具的成功开发将对未来基于多核系统的设计、评估和优化产生重大影响。具体而言,它将:(1)显著提高多核处理器和系统设计和研究的生产力;(2)在很大程度上确保设计真正有利于面向多核的应用。该项目的综合教育和外联计划将有助于教育广大公民和学生。这包括用先进的建模和评估方法扩展计算机架构课程,招募少数民族和本科生进行研究,并与计算行业合作,将开发的技术集成到现实世界的多核处理器设计流程中。
英文摘要
Multi-core systems have become mainstream in everything from server to embedded computing markets. As hardware and software designers adopt transactional memory as a cost-effective multi-core programming paradigm, evaluating TM/multi-core design, using a wide spectrum of transactional applications, is crucial to quantify the trade-offs among different design criteria. One roadblock that the TM/multi-core research and design community faces is the lack of representative transactional memory benchmarks. This project aims to develop innovative techniques, methods, and new tools for accurate, effective, and automatic transactional memory workload synthesis to address these challenges. This may be significantly beneficial to the multi-core architecture research and design community. The synthetic TM benchmarks preserve the behavior of original multithreaded workloads while the parameterized transaction synthesizer can produce transactional code with widely varied behavior that can effectively stress the TM design in different dimensions. Moreover, the parameterized synthetic workloads will have significantly reduced runtime, which allows architects and designers to quickly explore the large TM/multi-core co-design space within which numerous design tradeoffs need to be evaluated. The successful development of innovative transactional memory workload synthesis techniques, methods and tools will have significant impact on the design, evaluation and optimization of future multi-core based systems. Specifically, it will: (1) significantly improve multi-core processor and system design and research productivity; and (2) largely ensure that the design is really beneficial to multi-core oriented applications. This project's integrated education and outreach plan will help to educate a broad spectrum of citizens and students. This includes expanding computer architecture curriculum with advanced modeling and evaluation methods, recruiting minorities and undergraduate students into research, and collaborating with the computing industry to integrate the developed technologies into real-world multi-core processor design flow.
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