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A Low Power and High Throughput Self Synchronous FPGA Using 65 nm CMOS with Throughput Optimization by Pipeline Alignment

机译:一种采用65 nm CMOS的低功耗高吞吐量自同步FPGA,并通过管线对准优化了吞吐量

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We detail a self synchronous field programmable gate array (SSFPGA) with dual-pipeline (DP) architecture to conceal pre-charge time for dynamic logic, and its throughput optimization by using pipeline alignment implemented on benchmark circuits. A self synchronous LUT (SSLUT) consists of a three input tree-type structure with 8 bits of SRAM for programming. A self synchronous switch box (SSSB) consists of both pass transistors and buffers to route signals, with 12 bits of SRAM. One common block with one SSLUT and one SSSB occupies 2.2Mλ~2 area with 35 bits of SRAM, and the prototype SSFPGA with 34 × 30 (1020) blocks is designed and fabricated using 65 nm CMOS. Measured results show at 1.2 V 430 MHz and 647 MHz operation for a 3 bit ripple carry adder, without and with throughput optimization, respectively. We find that using the proposed pipeline alignment techniques we can perform at maximum throughput of 647 MHz in various benchmarks on the SSFPGA. We demonstrate up to 56.1 times throughput improvement with our pipeline alignment techniques. The pipeline alignment is carried out within the number of logic elements in the array and pipeline buffers in the switching matrix.
机译:我们详细介绍了具有双流水线(DP)架构的自同步现场可编程门阵列(SSFPGA),以隐藏动态逻辑的预充电时间,并通过使用在基准电路上实现的流水线对齐来优化其吞吐量。自同步LUT(SSLUT)由三个输入树型结构和8位SRAM组成,用于编程。一个自同步开关盒(SSSB)由传输晶体管和用于路由信号的缓冲器组成,具有12位SRAM。具有一个SSLUT和一个SSSB的一个公共模块占用35M SRAM的2.2Mλ〜2面积,并使用65 nm CMOS设计和制造具有34×30(1020)个模块的原型SSFPGA。测量结果表明,对于3位纹波进位加法器,分别在1.2 V 430 MHz和647 MHz下工作,而未进行吞吐量优化。我们发现,使用建议的管线对齐技术,可以在SSFPGA的各种基准中以647 MHz的最大吞吐量执行。我们使用流水线对齐技术展示了高达56.1倍的吞吐量提高。流水线对齐是在阵列中的逻辑元素和交换矩阵中的流水线缓冲区内进行的。

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