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An Optimal Pin-Count Design With Logic Optimization for Digital Microfluidic Biochips

机译:逻辑优化的数字微流控生物芯片的最佳引脚数设计

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Digital microfluidic biochips have become one of the most promising technologies for biomedical experiments. In modern microfluidic technology, reducing the number of independent control pins that reflects most of the fabrication cost, power consumption, and reliability of a microfluidic system, is a key challenge for every digital microfluidic biochip design. However, all the previous chip designs sacrifice the optimality of the problem, and only limited reduction on the number of control pins is observed. Moreover, most existing designs cannot satisfy high-throughput demand for bioassays, and thus inapplicable in practical contexts. In this paper, we propose the first optimal pin-count design scheme for digital microfluidic biochips. By integrating a very simple combinational logic circuit into the original chip, the proposed scheme can provide high-throughput for bioassays with an information-theoretic minimum number of control pins. Furthermore, to cope with the rapid growth of the chip’s scale, we also propose a scalable and efficient heuristics to reduce the number of control pins. A logic optimization technique, which can be used to reduce the complexity of the integrated combinational logic circuit, is also presented in this paper. Experiments demonstrate that the proposed scheme can obtain much fewer number of control pins compared with the previous state-of-the-art works.
机译:数字微流控生物芯片已成为生物医学实验中最有前途的技术之一。在现代微流体技术中,减少独立控制引脚的数量反映了大多数微流体系统的制造成本,功耗和可靠性,这是每个数字微流体生物芯片设计面临的主要挑战。但是,所有先前的芯片设计都牺牲了问题的最佳性,并且只能观察到控制引脚数量的有限减少。而且,大多数现有设计不能满足对生物测定的高通量需求,因此不适用于实际情况。在本文中,我们提出了数字微流控生物芯片的第一个最佳引脚数设计方案。通过将一个非常简单的组合逻辑电路集成到原始芯片中,所提出的方案可以为具有信息理论最小控制引脚数的生物测定提供高通量。此外,为了应对芯片规模的快速增长,我们还提出了一种可扩展且高效的启发式方法,以减少控制引脚的数量。本文还提出了一种逻辑优化技术,可用于降低集成组合逻辑电路的复杂性。实验表明,与以前的最新技术相比,该方案可以获得更少的控制引脚。

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