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Flip Flop Weighting: A technique for estimation of safety metrics in Automotive Designs

机译:触发器加权:汽车设计中安全指标估算技术

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The requirements of ISO26262 for the development of safety-critical Integrated Circuits (IC) demand substantial efforts on fault analysis for safety metrics evaluation. Failing to achieve the required conditions entails modifications to the circuit, additional iterations through critical design phases, and consequently extra costs and delays. For that reason, providing accurate methods to estimate safety metrics is of great importance. This paper proposes a methodology that can efficiently and precisely estimate the safety metrics of Automotive designs. The technique is based on the characterization of a netlist to determine how hardware components contribute to fault propagation. Also, by examining the test stimuli applied during simulation, we can rank Workloads/Testbenches according to their fault detection coverage. The approach was verified running fault injection campaigns on distinct gate-level hardware designs, including an Automotive CPU. Our results show that the fault detection coverage can be estimated with an average error rate of 3% at up to 20X faster execution times when compared to the traditional campaigns. Hence the methodology provides an efficient and cost-effective mechanism to support engineers in a confident design space exploration.
机译:ISO26262对安全关键综合电路(IC)的要求进行了实质性努力对安全指标评估的故障分析。未能达到所需条件,需要修改电路,通过关键设计阶段进行额外的迭代,从而提高成本和延迟。因此,提供准确的方法来估计安全指标具有重要意义。本文提出了一种能够有效,精确地估计汽车设计安全指标的方法。该技术基于网表的表征,以确定硬件组件如何有助于故障传播。此外,通过检查在模拟期间应用的测试刺激,我们可以根据其故障检测覆盖范围对工作负载/试验台进行排名。该方法是在不同的门级硬件设计上运行的运行故障注入运动,包括汽车CPU。我们的研究结果表明,与传统广告系列相比,可以估计故障检测覆盖率,平均误差率高达20倍,更快的执行时间。因此,该方法提供了一种高效且具有成本效益的机制,可以在自信的设计空间探索中支持工程师。

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