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Logic Synthesis of Pass-Gate Logic Circuits With Emerging Ambipolar Technologies

机译:新型Ambolar技术逻辑综合通路逻辑电路

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Emerging devices and new ultrascaled silicon transistors have shown disruptive electrical and functional properties that might bring digital hardware to the next level. The key issue today concerns their integration. Even though the classical complementary logic style is the most intuitive option, other strategies such as pass-transistors that were discarded in the past because they did not fit silicon MOSFETs logic should be reconsidered. Obviously, the assessment of such alternatives requires customized CAD tools and optimization engines. The objective of this paper is to introduce a synthesis and optimization flow for pass-gate logic circuits mapped onto emerging ambipolar technologies. As main contributions we propose: 1) a novel EXNOR-based decomposition technique that fully exploits do not care conditions to generate compact logic function representations and 2) a dedicated one-pass synthesis flow where optimization and technology mapping are concurrently run on a common data structure, the reduced ordered pass-diagram. Experimental results demonstrate that the proposed flow outperforms existing synthesis tools by achieving more compact circuit representations with 8.5x less devices and about 8x shallower structures (on average), while still yielding lower CPU times.
机译:新兴器件和新的丝光硅晶体管已经显示出可破坏的电气和功能性,可能将数字硬件带到一个下一个级别。今天的关键问题涉及他们的整合。尽管古典互补逻辑风格是最直观的选择,但是过去丢弃的传递晶体管等其他策略,因为它们不适合硅MOSFET逻辑应该被重新考虑。显然,评估此类替代品需要定制的CAD工具和优化引擎。本文的目的是引入用于映射到新一体的Ambolar Technologies上的通道逻辑电路的合成和优化流程。作为主要贡献我们提出:1)一种新的EXNOR基分解技术,它充分利用不在乎条件生成紧凑逻辑函数表示,2)一个专用的单通综合流程,其中优化和技术映射在公共数据上同时运行结构,降低的订购通道图。实验结果表明,所提出的流程优于现有的合成工具,通过实现更紧凑的电路表示具有8.5倍的设备和大约8x薄弱的结构(平均),同时仍然屈服于较低的CPU次数。

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