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Concurrent Testing of Digital Microfluidics-Based Biochips

机译:基于数字微流控的生物芯片的并行测试

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摘要

We present a concurrent testing methodology for detecting catastrophic faults in digital microfluidics-based biochips and investigate the related problems of test planning and resource optimization. We first show that an integer linear programming model can be used to minimize testing time for a given hardware overhead, for example, droplet dispensing sources and capacitive sensing circuitry. Due to the NP-complete nature of the problem, we also develop efficient heuristic procedures to solve this optimization problem. We apply the proposed concurrent testing methodology to a droplet-based microfluidic array that was fabricated and used to perform multiplexed glucose and lactate assays. Experimental results show that the proposed test approach interleaves test application with the biomedical assays and prevents resource conflicts. The proposed method is therefore directed at ensuring high reliability and availability of bio-MEMS and lab-on-a-chip systems, as they are increasingly deployed for safety-critical applications.
机译:我们提出了一种并行测试方法,用于检测基于数字微流控的生物芯片中的灾难性故障,并研究测试计划和资源优化的相关问题。我们首先表明,对于给定的硬件开销,例如,液滴分配源和电容传感电路,可以使用整数线性规划模型来最小化测试时间。由于问题的NP完全性质,我们还开发了有效的启发式程序来解决此优化问题。我们将提出的并行测试方法应用于基于液滴的微流控阵列,该阵列被制造并用于执行多重葡萄糖和乳酸测定。实验结果表明,所提出的测试方法将测试应用与生物医学分析相结合,并防止了资源冲突。因此,所提出的方法旨在确保生物MEMS和芯片实验室系统的高度可靠性和可用性,因为它们已越来越多地部署在安全关键型应用中。

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