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首页> 外文期刊>Applied Superconductivity, IEEE Transactions on >Data-Flow Microarchitecture for Wide Datapath RSFQ Processors: Design Study
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Data-Flow Microarchitecture for Wide Datapath RSFQ Processors: Design Study

机译:宽数据路径RSFQ处理器的数据流微体系结构:设计研究

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Development of an efficient processor architecture with appropriate clocking mechanisms and datapath organization is one of the most challenging design issues for 32-/64-bit RSFQ processors. The cell-level design of a 32-bit RSFQ dual-lane integer processor has been developed at Stony Brook University in an effort to identify and study techniques capable of tolerating significant delay variations in future wide datapath superconductor processor circuits. Several key processor blocks have been designed and quantitatively evaluated at the cell-level, specifically: an instruction buffer, an instruction decoder, a multi-ported register file, a wave-pipelined arithmetic-logic unit, and an intra-processor data routing interconnect. Simulation and analysis of these blocks have been done using a generic VHDL cell library developed at Stony Brook University with cell parameters tuned to Hypres' 1.5 $mu{rm m}$, 4.5 ${rm kA/cm}^{2}$ process. After assembling these blocks together into a 32-bit processor datapath, an iterative approach has been used to optimize the design and reach a 20 GHz processing rate. Overall, the datapath has the total latency of $sim$ 972 ps with the design complexity exceeding 50 K Josephson junctions.
机译:具有适当的时钟机制和数据路径组织的高效处理器体系结构的开发是32/64位RSFQ处理器最具挑战性的设计问题之一。石溪大学已经开发出一种32位RSFQ双通道整数处理器的单元级设计,旨在识别和研究能够容忍未来宽数据路径超导体处理器电路中明显延迟变化的技术。已经设计了几个关键处理器模块,并在单元级别进行了定量评估,特别是:指令缓冲区,指令解码器,多端口寄存器文件,流水线算术逻辑单元和处理器内数据路由互连。这些石块的仿真和分析已使用石溪大学开发的通用VHDL单元库完成,单元参数已调整为Hypres的1.5 $ mu {rm m} $,4.5 $ {rm kA / cm} ^ {2} $工艺。将这些模块组装成32位处理器数据路径后,已使用一种迭代方法来优化设计并达到20 GHz的处理速率。总体而言,数据路径的总延迟为simps 972 ps,设计复杂度超过50 K Josephson结。

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