HoDoo: Holistic Design of On-chip Interconnects
HoDoo: Holistic Design of On-chip Interconnects
批准号:
0702617
负责人:
VIJAYKRISHNAN NARAYANAN
金额:
$63.09万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-07-01 至 2012-06-30
中文摘要
在同一芯片上集成多个核心标志着以通信为中心的系统的开始,而不是以计算为中心的系统。此外,技术趋势强调了互连意识设计的重要性,因为在新技术中,全局线延迟不会像门延迟那样迅速缩小。因此,片上网络(ocn),也称为片上网络(noc),预计将成为设计嵌入式片上系统(SoC)架构和高性能多核架构的主要瓶颈。然而,由于严格的资源限制和ocn的技术扩展工件,可扩展,高性能,节能和热效率高且可靠的片上网络的设计本质上更加复杂。提出的研究旨在开发一个整体的设计范式,以探索片上网络设计空间。这项研究涉及三个主要问题。首先,将开发一个仿真平台,以了解应用程序,系统架构和片上互连之间的相互作用。其次,考虑到技术规模的影响,设计和分析高性能,能源和热效率和可靠的片上互连将被调查。第三,将探讨利用新兴的3D芯片技术设计片上互连。这项研究的成功可能会对下一代多核/SoC架构的设计产生重大影响,并在多核计算的几个领域培养新的研究方向,这有望成为未来高性能架构的主要设计范式。
英文摘要
The integration of multiple cores on the same chip has signaled the beginning of communication-centric, rather than computation-centric systems. Further, technology trends have accentuated the importance of interconnect-conscious design as global wire delays do not scale down as fast as gate delays in new technologies. Consequently, on-chip networks (OCNs), also called Networks-on-Chip (NOCs), are predicted to be a major bottleneck in designing embedded System-on-Chip (SoC) architectures and high performance multicore architectures alike. However, the design of scalable, high performance, energy and thermal efficient and reliable on-chip networks is inherently more complex because of the stringent resource constraints and technology scaling artifacts of OCNs. The proposed research is aimed at developing a holistic design paradigm for exploring the on-chip network design space.The research addresses three major issues. First, a simulation platform will be developed to understand the interplay between applications, system architecture and on-chip interconnects. Second, design and analysis of high performance, energy and thermal efficient and reliable on-chip interconnects considering the impacts of technology scaling will be investigated. Third, design of on-chip interconnects using emerging 3D chip technology will be explored. The success of this research is likely to have a significant influence on the design of next generation multicore/SoC architectures and in fostering new research directions in several areas of multicore computing, which is expected to be the predominant design paradigm for future high performance architectures.
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