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Architecting a MOS current mode logic (MCML) processor for fast, low noise and energy-efficient computing in the near-threshold regime

机译:设计MOS电流模式逻辑(MCML)处理器,以便在接近阈值状态下进行快速,低噪声和节能计算

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Near-threshold computing (NTC) is an effective technique for improving the energy efficiency of a CMOS microprocessor, but suffers from a significant performance loss and an increased sensitivity to voltage noise. MOS current-mode logic (MCML), a differential logic family, maintains a low voltage swing and a constant current, making it inherently fast and low-noise. These traits make MCML a natural selection to implement an NTC processor; however, MCML suffers from a high static power regardless of the clock frequency or the level of switching activity, which would result in an inordinate energy consumption in a large scale IC. To address this challenge, this paper explores a single-core microarchitecture for MCML that takes advantage of C-slow retiming technique, and runs at a high frequency with low complexity to save energy. This design principle is opposite to the contemporary multicore design paradigm for static CMOS that relies on a large number of gates running in parallel at modest speeds. When compared to an eight-core static CMOS processor operating in the near-threshold regime, the proposed processor exhibits 3x higher performance, 2x lower energy, and 10 x lower voltage noise, while maintaining a similar level of power dissipation.
机译:近阈值计算(NTC)是一种用于提高CMOS微处理器的能效的有效技术,但会遭受明显的性能损失,并且对电压噪声的敏感度也会增加。 MOS电流模式逻辑(MCML)是一个差分逻辑系列,可保持低电压摆幅和恒定电流,从而使其固有地快速且低噪声。这些特性使MCML成为实现NTC处理器的自然选择。然而,无论时钟频率或开关活动水平如何,MCML都具有较高的静态功耗,这将导致大规模IC的能耗过大。为了应对这一挑战,本文探索了一种利用C慢速重定时技术,以高频率,低复杂度运行以节省能源的MCML单核微体系结构。该设计原理与静态CMOS的现代多核设计范例相反,后者依赖于大量以适度的速度并行运行的门。与在接近阈值状态下运行的八核静态CMOS处理器相比,所建议的处理器在保持相似功耗水平的同时,性能提高了3倍,能耗降低了2倍,电压噪声降低了10倍。

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