Noise-Shaping DACs for Delta-Sigma Data Converters
Noise-Shaping DACs for Delta-Sigma Data Converters
批准号:
9711331
负责人:
Ian Galton
金额:
$22.25万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
1997
资助国家:
美国
项目状态:
已结题
起止时间:
1997-07-01 至 2001-06-30
中文摘要
现代CMOS电路技术前所未有的速度、集成密度和经济性推动了计算机行业的快速发展,并有望同样推动个人通信行业的发展。然而,电路技术趋向于高度优化的数字电路,其中精确的模拟性能并不重要。由于通信系统必须传输和接收模拟波形,因此在此类应用中最有效地使用CMOS电路技术需要片上模拟-数字(A/D)和数字-模拟(D/A)转换器,而这些通常是整个系统价格和性能的限制因素。对于电话调制解调器等低速应用,delta-sigma数据转换器已成为实现片上A/D和D/A转换器的首选方法,因为它们特别适合高精度CMOS实现。本研究的目的是消除现有delta-sigma数据转换器的主要限制,以促进其在高速应用(如个人无线通信系统)中的使用。具体来说,研究涉及到用于delta-sigma数据转换器的实用多比特噪声整形dac的开发。这些dac通过一种数字信号处理创新,避免了传统dac对元件匹配的严格要求,该创新使元件不匹配产生的噪声位于信号频带之外。这种dac通过消除对1位量化的需要,有可能显著提高delta-sigma数据转换器目前的性能限制。该研究的主要目标是开发实用的高阶噪声整形dac,以扩展delta-sigma数据转换器目前的性能限制,并从理论上和实验上量化其性能。
英文摘要
The unprecedented speed, integration density, and economy of modern CMOS circuit technology have fueled the rapid evolution of the computer industry, and hold the promise of similarly fueling the personal communications industry. However, the circuit technology tends to be highly optimized for digital circuits wherein precise analog performance is not critical. Since communication systems must transmit and receive analog waveforms, the most effective use of CMOS circuit technology for such applications requires on-chip analog-to-digital (A/D) and digital-to-analog (D/A) converters, and these are often the limiting factors in overall system price and performance. For low speed applications such as telephone modems, delta-sigma data converters have emerged as the method of choice for implementing the on-chip A/D and D/A converters because they are particularly amenable to high-precision CMOS implementation. The purpose of this research is to eliminate a major limitation suffered by existing delta-sigma data converters to facilitate their use in higher-speed applications such as personal wireless communication systems. Specifically, the research involves the development of practical multi-bit noise- shaping DACs to be used in delta-sigma data converters. These DACs avoid the severe component matching requirements of their conventional counterparts through a digital signal processing innovation that causes the noise arising from component mismatches to lie outside the signal band. Such DACs have the potential to significantly increase the present performance limits of delta-sigma data converters by eliminating the need for one-bit quantization. The primary goals of the research are to develop practical high-order noise-shaping DACs that extend the present performance limits of delta-sigma data converters, and to theoretically and experimentally quantify their performance.
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