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Circuit-Level Design Approaches for Radiation-Hard Digital Electronics

机译:辐射硬数字电子的电路级设计方法

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In this paper, we present a novel circuit design approach for radiation hardened digital electronics. Our approach is based on the use of shadow gates, whose task it is to protect the primary gate in case it is struck by a heavy cosmic ion. We locally duplicate the gate to be protected, and connect a pair of diode-connected transistors (or diodes) between the outputs of the original and shadow gates. These transistors turn on when the voltages of the two gates deviate during a radiation strike. Our experiments show that at the level of a single gate, our circuit structure has a delay overhead about 1.76% on average, and an area overhead of 277%. At the circuit level, however, we do not need to protect all gates. We present a methodology to selectively protect specific gates of the circuit in a manner that guarantees radiation tolerance for the entire circuit. With this methodology, we demonstrate that at the circuit level, the average delay overhead is about 3% and the average placed-and-routed area overhead is 28%, compared to an unprotected circuit (for delay mapped designs). We also propose an improved circuit protection algorithm to reduce the area overhead associated with our approach. With this approach for circuit protection, the area and delay overheads are further lowered.
机译:在本文中,我们提出了一种用于辐射硬化数字电子学的新颖电路设计方法。我们的方法基于阴影门的使用,其目的是在被重宇宙离子撞击时保护主门。我们在本地复制要保护的门,并在原始和阴影门的输出之间连接一对二极管连接的晶体管(或二极管)。当两个门的电压在辐射冲击期间偏离时,这些晶体管导通。我们的实验表明,在单门级的情况下,我们的电路结构的延迟开销平均约为1.76%,面积开销为277%。但是,在电路级别,我们不需要保护所有的门。我们提出一种方法,以保证整个电路的辐射容忍度的方式有选择地保护电路的特定门。使用这种方法,我们证明与无保护电路相比(在延迟映射设计中),在电路级别上,平均延迟开销约为3%,而平均布局布线面积开销约为28%。我们还提出了一种改进的电路保护算法,以减少与我们的方法相关的面积开销。利用这种用于电路保护的方法,面积和延迟开销得以进一步降低。

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