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Optimal adiabatic scaling and the processor-in-memory-and-storage architecture (OAS+PIMS)

机译:最佳绝热缩放和内存中存储处理器架构(OAS + PIMS)

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We discuss a new approach to computing that retains the possibility of exponential growth while making substantial use of the existing technology. The exponential improvement path of Moore's Law has been the driver behind the computing approach of Turing, von Neumann, and FORTRAN-like languages. Performance growth is slowing at the system level, even though further exponential growth should be possible. We propose two technology shifts as a remedy, the first being the formulation of a scaling rule for scaling into the third dimension. This involves use of circuit-level energy efficiency increases using adiabatic circuits to avoid overheating. However, this scaling rule is incompatible with the von Neumann architecture. The second technology shift is a computer architecture and programming change to an extremely aggressive form of Processor-In-Memory (PIM) architecture, which we call Processor-In-Memory-and-Storage (PIMS). Theoretical analysis shows that the PIMS architecture is compatible with the 3D scaling rule, suggesting both immediate benefit and a long-term improvement path.
机译:我们讨论一种新的计算方法,该方法在充分利用现有技术的同时保留了指数增长的可能性。摩尔定律的指数式改进路径一直是图灵,冯·诺依曼和FORTRAN之类的语言的计算方法的推动力。尽管应该可以进一步实现指数级增长,但系统级的性能增长却正在放缓。我们提出了两种技术转移作为补救措施,第一种是制定用于扩展到第三维的缩放规则。这涉及使用绝热电路来避免过热而提高电路级能效。但是,此缩放规则与冯·诺依曼体系结构不兼容。第二个技术转变是计算机架构和编程更改,以一种极为激进的形式存在于内存中处理器(PIM)体系结构,我们将其称为“内存中处理器和存储(PIMS)”。理论分析表明,PIMS体系结构与3D缩放规则兼容,这表明了立竿见影的好处和长期的改进途径。

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