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Fault-sensitivity analysis and reliability enhancement of analog-to-digital converters

机译:模数转换器的故障敏感性分析和可靠性增强

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Reliability of systems used in space, avionic, and biomedical applications is highly critical. Such systems consist of an analog front-end to collect data, an analog-to-digital converter (ADC) to convert the collected data to digital form, and a digital unit to process it. Though a considerable amount of research has been performed to increase the reliability of digital blocks, the same cannot be claimed for mixed-signal blocks. The reliability enhancement that we employ begins with fault-sensitivity analysis followed by redesign. The data obtained from the sensitivity analysis is used to grade blocks based on their sensitivity to faults. The highly sensitive blocks can then be replaced by more reliable alternatives. The improvement gained by opting for more robust implementations might be limited due to the number of possible implementations. In these cases, alternative reliability enhancement techniques such as adding redundancy may provide further improvements. The steps involved in the reliability enhancement of ADCs are illustrated in this paper by first proposing a sensitivity analysis methodology for /spl alpha/-particle induced transients and then suggesting redesign techniques to improve the reliability of the ADC. A novel concept of node weights specific to /spl alpha/-particle transients is introduced, which improves the accuracy of the sensitivity analysis. The fault simulations show that, using techniques such as alternative robust implementations, adding redundancy, pattern detection, and transistor sizing, considerable improvements in reliability can be attained.
机译:在太空,航空电子和生物医学应用中使用的系统的可靠性至关重要。这种系统包括一个用于收集数据的模拟前端,一个用于将收集的数据转换为数字形式的模数转换器(ADC)和一个用于处理它的数字单元。尽管已经进行了大量的研究来提高数字模块的可靠性,但是对于混合信号模块却不能主张如此。我们采用的可靠性增强方法是从故障敏感性分析开始,然后进行重新设计。从敏感性分析中获得的数据将根据块对故障的敏感性来对块进行分级。然后可以使用更可靠的替代方法来替换高度敏感的模块。由于可能的实现数量众多,因此选择更可靠的实现所获得的改进可能会受到限制。在这些情况下,替代的可靠性增强技术(例如添加冗余)可以提供进一步的改进。本文首先通过提出针对/ splα/粒子引起的瞬态的灵敏度分析方法,然后提出重新设计技术以提高ADC可靠性的ADC可靠性增强步骤。引入了特定于/ spl alpha /粒子瞬态的节点权重的新概念,从而提高了灵敏度分析的准确性。故障仿真表明,使用诸如可选的可靠实施方案,添加冗余,模式检测和晶体管尺寸确定等技术,可以实现可靠性的显着提高。

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