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Distributed Control and Coordination for Massively Integrated Multicore Platforms

Distributed Control and Coordination for Massively Integrated Multicore Platforms
大规模集成多核平台的分布式控制和协调
批准号:
1128624
负责人:
Radu Marculescu
金额:
$47.5万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-08-15 至 2016-07-31

项目摘要

项目成果

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中文摘要
翻译
持续的技术扩展允许数十或数百个处理核心集成在同一芯片上;这代表了多核计算范式,它可以在单个芯片上同时运行多个异构应用程序。在这样的多处理器系统中,各个处理节点可以经由片上网络(NoC)进行通信和协调。最近的多核平台(如英特尔单芯片云计算机)受益于支持动态电压和频率缩放(DVFS)的多电压和频率岛(VFI)设计风格。在这样的系统中,每个岛的电压和频率可以独立于所有其他岛来设置,并且响应于应用特性的时间变化而在运行时进行调整。时空工作负载的变化导致各种芯片上的功率和热梯度,这也提出了寿命可靠性的主要问题。因此,从物理设计到微架构和系统级设计,片上电源和热管理已成为多核设计流程中每一步的关键组成部分。本项目从这些总体思想出发,解决了设计基于VFI的多核系统中有效且高度可扩展的电源和热管理控制算法的基本问题。与该领域的许多现有工作不同,本研究的重点是真正可扩展的系统级设计方法,这些方法可以利用电路级的现有旋钮(例如,电压、频率)。同时,所提出的控制技术可以用于调节其他片上共享资源,如网络带宽或片外带宽。这种新的设计方法能够开发各种各样的节能多核应用,从游戏和娱乐平台,到通信系统,数据中心和车辆交通管理。更广泛地说,该项目的结果通过提高对设计和控制复杂系统所需的网络概念的理解水平,对其他研究团体产生了重大影响。
英文摘要
Continuous technology scaling allows tens or hundreds of processing cores integrated on the same chip; this represents the multicore computing paradigm which makes it possible to run multiple heterogeneous applications concurrently on a single chip. In such multiprocessor systems, individual processing nodes can communicate and coordinate via networks-on-chip (NoCs). Therefore, a major challenge is to determine the mathematical techniques for designing and optimizing such on-chip networks in a rigorous manner.Recent multicore platforms (such as Intel Single Chip Cloud Computer) benefit from the multiple voltage and frequency island (VFI) design style with support for dynamic voltage and frequency scaling (DVFS). In such systems, the voltage and frequency of each island can be set independently of all other islands and adapt at run-time in response to temporal variations in application characteristics. Spatio-temporal workload variations result in various on-chip power and thermal gradients, which also raise major concerns for lifetime reliability. On-chip power and thermal management has therefore become a critical component of every step in the multicore design flow, from physical design all the way up to micro-architecture and system-level design.Starting from these overarching ideas, this project addresses the fundamental issue of designing effective and highly scalable control algorithms for power and thermal management in VFI-based multicore systems. Unlike much of the existing work in this area, the focus of this research is on truly scalable system-level design methodologies that can take advantage of the existing knobs at circuit-level (e.g., voltage, frequency) for systems comprised of hundreds or thousands of cores. At the same time, the proposed control techniques may be useful for regulating other on-chip shared resources such as network bandwidth or off-chip bandwidth.This new design methodology enables the development of a wide variety of energy-efficient multicore applications ranging from gaming and entertainment platforms, to communication systems, data centers, and vehicular traffic management. More broadly, the results of this project impact significantly other research communities by improving the level of understanding of networking concepts needed to design and control complex systems.
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  • 批准号:
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  • 项目类别:
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  • 资助金额:
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  • 批准号:
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  • 项目类别:
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  • 资助金额:
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国内基金
海外基金
Cortical control of internal state in the insular cortex-claustrum region