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Energy-efficient analog-to-digital conversion for ultra-wideband radio

机译:用于超宽带无线电的节能模数转换

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摘要

In energy constrained signal processing and communication systems, a focus on the analog or digital circuits in isolation cannot achieve the minimum power consumption. Furthermore, in advanced technologies with significant variation, yield is traditionally achieved only through conservative design and a sacrifice of energy efficiency. In this thesis, these limitations are addressed with both a comprehensive mixed-signal design methodology and new circuits and architectures, as presented in the context of an analog-to-digital converter (ADC) for ultra-wideband (UWB) radio. UWB is an emerging technology capable of high-data-rate wireless communication and precise locationing, and it requires high-speed (>500MS/s), low-resolution ADCs. The successive approximation register (SAR) topology exhibits significantly reduced complexity compared to the traditional flash architecture. Three time-interleaved SAR ADCs have been implemented. At the mixed-signal optimum energy point, parallelism and reduced voltage supplies provide more than 3x energy savings. Custom control logic, a new capacitive DAC, and a hierarchical sampling network enable the high-speed operation. Finally, only a small amount of redundancy, with negligible power penalty, dramatically improves the yield of the highly parallel ADC in deep sub-micron CMOS.
机译:在能量受限的信号处理和通信系统中,孤立地关注模拟或数字电路无法实现最低功耗。此外,在变化显着的先进技术中,传统上只能通过保守设计和牺牲能源效率来实现产量。在本文中,这些局限性既可以通过综合的混合信号设计方法来解决,也可以通过新的电路和体系结构来解决,如在超宽带(UWB)无线电的模数转换器(ADC)的背景下所提出的。 UWB是一种新兴技术,能够实现高数据速率无线通信和精确定位,并且需要高速(> 500MS / s),低分辨率ADC。与传统的闪存架构相比,逐次逼近寄存器(SAR)拓扑显示出显着降低的复杂性。已经实现了三个时间交错的SAR ADC。在混合信号的最佳能量点,并行性和降低的电源电压可节省3倍以上的能量。定制控制逻辑,新的电容DAC和分层采样网络可实现高速操作。最后,只有很少的冗余,功耗可以忽略不计,极大地提高了深亚微米CMOS中高度并行ADC的产量。

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