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Approach of genetic algorithm for power-aware testing of 3D IC

机译:遗传算法用于3D IC功率检测的方法

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The interconnect between the cores of System-on-Chip (SOC) degrades the circuit performance by contributing to circuit delay and power consumption. To reduce this problem, SOC-based three-dimensional (3D) integrated circuit (IC) technology as a promising solution where multiple layers are stacked together decreasing the length of interconnect. However, 3D IC invites some new problems including more complexity in test generation. Testing of 3D IC requires test access architecture called Test Access Mechanism (TAM) for the purpose of transport of test stimuli to the cores placed in different layers. During testing due to increasing switching activity, any circuit demands higher power consumption and it becomes more acute for 3D IC. Moreover, testing of 3D ICs has other constraints. In this study, the authors address the issue of 3D IC testing using genetic algorithm-based approach to decrease test time. At first, available TAM width is partitioned into some fixed groups and they have to find partitioning of TAM and distribution of cores among layers with a goal to decrease test time. Next, they do the same considering, variable partitions with or without certain power limits. Experimental results establish the efficacy of the authors' method.
机译:片上系统(SOC)的内核之间的互连通过导致电路延迟和功耗降低了电路性能。为了减少此问题,基于SOC的三维(3D)集成电路(IC)技术是一种很有前途的解决方案,其中多层堆叠在一起可减少互连的长度。但是,3D IC带来了一些新问题,包括测试生成的更多复杂性。 3D IC的测试需要一种称为“测试访问机制”(TAM)的测试访问架构,以将测试刺激传输到放置在不同层中的核心。在测试过程中,由于开关活动的增加,任何电路都需要更高的功耗,并且对于3D IC来说变得更加尖锐。此外,对3D IC的测试还有其他限制。在这项研究中,作者解决了使用基于遗传算法的方法来减少测试时间的3D IC测试问题。首先,可用的TAM宽度被划分为一些固定的组,并且他们必须找到TAM的划分和各层之间核心的分布,目的是减少测试时间。接下来,他们进行相同的考虑,在有或没有一定功率限制的情况下进行可变分区。实验结果证明了作者方法的有效性。

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