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Pruning-Based Trace Signal Selection Algorithm for Data Acquisition in Post-Silicon Validation

机译:硅后验证中用于数据采集的基于修剪的跟踪信号选择算法

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摘要

To improve the observability during the post-silicon validation, it is the key to select the limited trace signals effectively for the data acquisition. This paper proposes an automated trace signal selection algorithm, which uses the pruning-based strategy to reduce the exploration space. First, the restoration range is covered for each candidate signals. Second, the constraints are generated based on the conjunctive normal form (CNF) to avoid the conflict. Finally the candidates are selected through pruning-based enumeration. The experimental results indicate that the proposed algorithm can bring higher restoration ratios and is more effective compared to existing methods.
机译:为了提高硅验证后的可观察性,有效选择有限的跟踪信号进行数据采集的关键。本文提出了一种自动跟踪信号选择算法,该算法采用基于修剪的策略来减少探索空间。首先,针对每个候选信号覆盖恢复范围。其次,基于合取范式(CNF)生成约束以避免冲突。最后,通过基于修剪的枚举选择候选人。实验结果表明,与现有方法相比,所提算法具有更高的恢复率,并且更有效。

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