首页> 外文会议>IEEE International Solid- State Circuits Conference >6.5 A 6.4-to-32Gb/s 0.96pJ/b Referenceless CDR Employing ML-Inspired Stochastic Phase-Frequency Detection Technique in 40nm CMOS
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6.5 A 6.4-to-32Gb/s 0.96pJ/b Referenceless CDR Employing ML-Inspired Stochastic Phase-Frequency Detection Technique in 40nm CMOS

机译:6.5 A 6.4-to-32Gb / s 0.96pJ / b无参考CDR,采用ML启发式40nm CMOS随机相位频率检测技术

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Continuous-rate referenceless clock and data recovery (CDR) circuits are capable of operating over a wide range of data rates in multiple standards. To achieve wide-range operation without an external reference clock, several frequency detection techniques are presented [1]–[5]. However, most of the previous techniques require considerable hardware and power overhead to obtain information for frequency detection. It leads to a performance tradeoff between capture range, lock time, and power consumption. As well as the performance aspects, they rarely address significant concerns such as compatibility with the conventional CDR architecture, transition from phase locking to frequency locking, and harmonic locking. In this work, a referenceless CDR employing a stochastic phase-frequency detection technique is proposed. While the proposed CDR architecture is almost similar to the conventional bang-bang CDR, it achieves an unlimited frequency detection capability by adopting a machine learning (ML)-inspired design procedure. The design procedure finds optimal weights for both phase and frequency detection utilizing the same information as the bang-bang phase detector (BBPD). As a result, the proposed technique achieves low-power, wide-range operation with minimal hardware overhead while overcoming the conventional logical approaches. Moreover, a robust operation without the transition and harmonic locking issues is obtained.
机译:连续速率无参考时钟和数据恢复(CDR)电路能够在多种标准下以各种数据速率工作。为了在没有外部基准时钟的情况下实现宽范围工作,提出了几种频率检测技术[1] – [5]。然而,大多数先前技术需要相当大的硬件和功率开销才能获得用于频率检测的信息。它导致捕获范围,锁定时间和功耗之间的性能折衷。除了性能方面,它们很少解决重大问题,例如与常规CDR架构的兼容性,从锁相到锁频的过渡以及谐波锁定。在这项工作中,提出了一种采用随机相频检测技术的无参考CDR。尽管建议的CDR架构几乎与传统的bang-bang CDR相似,但它采用了机器学习(ML)启发性的设计程序,实现了无限的频率检测功能。该设计程序利用与爆炸式相位检测器(BBPD)相同的信息来找到用于相位和频率检测的最佳权重。结果,所提出的技术克服了传统的逻辑方法,以最小的硬件开销实现了低功率,宽范围的操作。而且,获得了没有过渡和谐波锁定问题的稳健操作。

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