An abstraction-guided simulation approach using Markov models for microprocessor verification

Zhang Tao, Tao Lv, Xiaowei Li
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引用次数: 12

Abstract

In order to combine the power of simulation-based and formal techniques, semi-formal methods have been widely explored. Among these methods, abstraction-guided simulation is a quite promising one. In this paper, we propose an abstraction-guided simulation approach aiming to cover hard-to-reach states in functional verification of microprocessors. A Markov model is constructed utilizing the high level functional specification, i.e. ISA. Such model integrates vector correlations. Furthermore, several strategies utilizing abstraction information are proposed as an effective guidance to the test generation. Experimental results on two complex microprocessors show that our approach is more efficient in covering hard-to-reach states than similar methods. Comparing with some work with other intelligent engines, our approach could guarantee higher hit ratio of target states without efficiency loss.
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一种抽象导向的微处理器验证马尔可夫模型仿真方法
为了结合基于仿真和形式化技术的力量,半形式化方法得到了广泛的探索。在这些方法中,抽象引导仿真是一种很有前途的方法。在本文中,我们提出了一种抽象引导的仿真方法,旨在涵盖微处理器功能验证中难以达到的状态。利用高级功能规范(ISA)构造马尔可夫模型。该模型集成了向量相关性。此外,提出了几种利用抽象信息的策略,作为测试生成的有效指导。在两个复杂的微处理器上的实验结果表明,我们的方法比类似的方法更有效地覆盖了难以到达的状态。与其他智能引擎的一些工作相比,我们的方法可以在不损失效率的情况下保证更高的目标状态命中率。
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