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Testing microfluidic Fully Programmable Valve Arrays (FPVAs)

机译:测试微流体完全可编程阀阵列(FPVA)

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Fully Programmable Valve Array (FPVA) has emerged as a new architecture for the next-generation flow-based microfluidic biochips. This 2D-array consists of regularly-arranged valves, which can be dynamically configured by users to realize microfluidic devices of different shapes and sizes as well as interconnections. Additionally, the regularity of the underlying structure renders FPVAs easier to integrate on a tiny chip. However, these arrays may suffer from various manufacturing defects such as blockage and leakage in control and flow channels. Unfortunately, no efficient method is yet known for testing such a general-purpose architecture. In this paper, we present a novel formulation using the concept of flow paths and cut-sets, and describe an ILP-based hierarchical strategy for generating compact test sets that can detect multiple faults in FPVAs. Simulation results demonstrate the efficacy of the proposed method in detecting manufacturing faults with only a small number of test vectors.
机译:完全可编程阀阵列(FPVA)已经成为下一代基于流量的微流控生物芯片的新架构。该二维阵列由规则排列的阀门组成,用户可以对其进行动态配置,以实现不同形状和大小以及相互连接的微流体设备。此外,底层结构的规则性使FPVA易于集成在微型芯片上。然而,这些阵列可能遭受各种制造缺陷,例如控制和流动通道中的阻塞和泄漏。不幸的是,尚无有效的方法来测试这种通用体系结构。在本文中,我们提出了一种使用流径和割集概念的新颖公式,并描述了一种基于ILP的分层策略,用于生成可检测FPVA中多个故障的紧凑测试集。仿真结果证明了该方法在仅使用少量测试向量的情况下检测制造故障的有效性。

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