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Addressing extensibility and fault tolerance in can-based automotive systems: Special session paper

机译:解决基于罐的汽车系统中的可扩展性和容错:特别会议论文

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The design of automotive electronic systems needs to address a variety of important objectives, including safety, performance, fault tolerance, reliability, security, extensibility, etc. To obtain a feasible design, timing constraints must be satisfied and latencies of certain functional paths should not exceed their deadlines. From functionality perspective, soft errors caused by transient or intermittent faults need to be detected and recovered with fault tolerance techniques. Moreover, during the lifetime of a vehicle design or even the same car, updates are often needed to add new features or fix bugs in existing ones. It is therefore critical to improve the design extensibility for accommodating such updates without incurring major redesign and re-verification cost. In this work, we discuss the metrics for measuring latency, fault tolerance and extensibility, and present a simulated annealing based algorithm to search the design space with respect to them. Experimental results on industrial and synthetic examples demonstrate clear trade-offs among these objectives, and hence the importance of quantitatively analyzing such trade-offs and exploring the design space with automation tools.
机译:汽车电子系统的设计需要解决各种重要目标,包括安全性,性能,容错性,可靠性,安全性,可扩展性等。要获得可行的设计,必须满足时序约束,并且某些功能路径的等待时间不应超过了他们的最后期限。从功能的角度来看,需要使用容错技术检测并恢复由瞬时或间歇性故障引起的软错误。此外,在车辆设计甚至同一辆汽车的生命周期内,通常需要进行更新以添加新功能或修复现有功能中的错误。因此,至关重要的是要提高设计的可扩展性以适应此类更新,而又不会招致重大的重新设计和重新验证成本。在这项工作中,我们讨论了用于测量等待时间,容错性和可扩展性的度量,并提出了一种基于模拟退火的算法来针对它们搜索设计空间。工业和合成示例的实验结果证明了这些目标之间的明确权衡,因此,定量分析此类权衡并使用自动化工具探索设计空间的重要性。

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