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Automatic assertion extraction via sequential data mining of simulation traces

机译:通过对模拟迹线进行顺序数据挖掘来自动断言提取

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This paper studies the problem of automatic assertion extraction at the input boundary of a given unit embedded in a system. This paper proposes a data mining approach that analyzes simulation traces to extract the assertions. We borrow two key concepts from the sequential data mining and develop an effective assertion extraction approach specific to our problem. These two concepts are (1) the slide-window-based episode definition that decides the space of all potential assertions and (2) the Support-Confidence framework that evaluates the meaningfulness of potential assertions using a given simulation trace. We implement the approach in a system simulation environment built on the AMBA 2.0 standard. Experimental results demonstrate the feasibility of the proposed approach and validity of extracted assertions are verified by comparing to the transactions defined in the specification.
机译:本文研究了在系统中嵌入的给定单元的输入边界处自动断言提取的问题。本文提出了一种数据挖掘方法,该方法可以分析模拟迹线以提取断言。我们从顺序数据挖掘中借鉴了两个关键概念,并针对我们的问题开发了一种有效的断言提取方法。这两个概念是(1)基于幻灯片窗口的情节定义,用于确定所有潜在断言的空间;(2)支持置信度框架,它使用给定的模拟轨迹评估潜在断言的意义。我们在基于AMBA 2.0标准的系统仿真环境中实施该方法。实验结果证明了该方法的可行性,并且通过与规范中定义的事务进行比较,验证了所提取断言的有效性。

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