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Improving Electro-Magnetic Interference of Embedded Systems Through Jittered-Delay Desynchronization

机译:通过抖动延迟去同步改善嵌入式系统的电磁干扰

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摘要

ICs are required to satisfy always increasing performance needs for modern electronic applications. This results in higher operating frequencies for digital circuits, thus increasing the generated Electro-Magnetic Interference (EMI). International standards and industrial regulations, in domains such as automotive applications, enforce strict rules about the EMI behavior of electronic systems. Thus, EMI is becoming a major concern for designers, with direct implications on the commercial viability of a product. In this paper, we apply the desynchronization methodology, down to the physical layout level, to an industrial microprocessor used in automotive applications. The results show that we can both use the advantages from desynchronization, i.e., average case performance and better variability tolerance, and achieve significant EMI reductions, without excessive costs in area or power consumption. While our paper confirms earlier claims that indeed asynchronous circuits reduce EMI, it also shows clearly that by far the largest EMI gain can be obtained by adding dynamically varying delays (which in turn cause local clock jittering) on top of desynchronization.
机译:需要IC来满足现代电子应用中不断增长的性能需求。这导致数字电路的工作频率更高,从而增加了产生的电磁干扰(EMI)。在诸如汽车应用之类的领域中,国际标准和工业法规对电子系统的EMI行为执行严格的规则。因此,EMI成为设计人员的主要关注点,直接影响到产品的商业可行性。在本文中,我们将去同步方法应用于物理布局级别,应用于汽车应用中的工业微处理器。结果表明,我们都可以利用不同步带来的优势(即平均情况下的性能和更好的可变性容限),并且可以显着降低EMI,而不会在面积或功耗上增加成本。尽管我们的论文证实了先前的说法,即异步电路确实可以降低EMI,但它也清楚地表明,到目前为止,最大的EMI增益可以通过在不同步的基础上增加动态变化的延迟(进而引起本地时钟抖动)来获得。

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