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首页> 外文期刊>Circuits and Systems I: Regular Papers, IEEE Transactions on >An 11b Pipeline ADC With Parallel-Sampling Technique for Converting Multi-Carrier Signals
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An 11b Pipeline ADC With Parallel-Sampling Technique for Converting Multi-Carrier Signals

机译:具有并行采样技术的11b流水线ADC,用于转换多载波信号

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摘要

This paper presents a parallel sampling technique for analog-to-digital converters (ADCs) to convert multi-carrier signals efficiently by exploiting the statistical properties of these signals. With this technique, the input signal power of an ADC can be boosted without getting excessive clipping distortion and the ADC can have a higher resolution over the critical small amplitude region. Hence the overall signal to noise and clipping distortion ratio is improved. This technique allows reducing power dissipation and area in comparison to conventional solutions for converting multi-carrier signals. As an example, an 11b switched-capacitor pipeline ADC with the parallel sampling technique applied to its first stage is implemented in CMOS 65 nm technology. It achieves a full-scale input signal range of 2 V differentially with a 1.2 V supply voltage. Simulations show an improvement of more than 5 dB in signal-to-noise-and-clipping-distortion ratio (SNCDR) and around 8 dB in dynamic range (DR) compared to a conventional 11b ADC for converting multi-carrier signals and achieve a comparable SNCDR and noise power ratio (NPR) as a conventional 12b pipeline for converting multi-carrier signals with less than half the power and area.
机译:本文提出了一种用于模数转换器(ADC)的并行采样技术,以通过利用这些信号的统计特性来有效地转换多载波信号。利用这种技术,可以提高ADC的输入信号功率而不会产生过多的削波失真,并且ADC在临界小幅度区域内可以具有更高的分辨率。因此,改善了整体信噪比和削波失真比。与用于转换多载波信号的常规解决方案相比,该技术可以减少功耗和面积。例如,在CMOS 65 nm技术中实现了将并行采样技术应用于其第一级的11b开关电容器流水线ADC。在1.2 V电源电压下,它可实现2V的满量程输入信号范围。仿真结果表明,与传统的11b ADC相比,其信噪比和削波失真比(SNCDR)改善了5 dB以上,动态范围(DR)改善了8 dB以上,从而实现了多载波信号的转换。 SNCDR和噪声功率比(NPR)可以与传统的12b流水线相比,用于转换功率和面积不到一半的多载波信号。

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