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Reconfigurable supercomputing

机译:可重新配置的超级计算

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摘要

Summary form only given. The synergistic advances in high-performance computing and in reconfigurable computing, based on field programmable gate arrays (FPGAs), form the basis for a new paradigm in supercomputing, namely reconfigurable supercomputing. This can be achieved through hybrid systems of microprocessors and FPGA modules that can leverage the system level concepts from high-performance computing and extend them to accommodate reconfigurations. Such systems inherently support both fine-grain and coarse-grain parallelism, and can dynamically tune their architecture to fit the applications. Many researchers have recognized this and advances are proceeding at three system levels. At the networked computing level, researchers have extended job management systems to recognize networked reconfigurable resources and exploit their power, in a grid computing fashion. Progress has been also made in programming and managing computer clusters, with reconfigurable co-processors. Finally, steps have been taken towards the development of massively parallel systems of conventional microprocessors and reconfigurable computing capabilities. Programming such systems can be quite challenging as programming FPGA devices can essentially involve hardware design. However, there have been very significant developments in compiler technologies and programming tools for some of these systems. This paper introduces the field of reconfigurable supercomputing and its advances in systems, programming, applications, and compiler technology.
机译:摘要表格仅给出。基于现场可编程门阵列(FPGA)的高性能计算和可重构计算中的协同进步,以超级计算,即可重新配置的超级计算来形成新的范例的基础。这可以通过微处理器和FPGA模块的混合系统来实现,这些模块可以利用来自高性能计算的系统级概念,并将其延伸以适应重新配置。这种系统本身地支持细粒和粗晶的并行性,并且可以动态调整其架构以适应应用。许多研究人员已经认识到这一点,并在三个系统层面进行了进展。在网络计算级别,研究人员具有扩展的作业管理系统,以识别网络化的可重新配置资源并以网格计算方式利用其权力。在编程和管理计算机集群中也取得了进展,具有可重新配置的协处理器。最后,已经采取了跨越传统微处理器的大规模平行系统和可重新配置的计算能力的步骤。编程此类系统可以非常具有挑战性,因为编程FPGA器件可以基本上涉及硬件设计。但是,对于其中一些系统,编译技术和编程工具存在非常重要的发展。本文介绍了可重构超级计算领域及其在系统,编程,应用和编译器技术方面的进步。

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