数字微流控生物芯片专用容错架构合成

M. Alistar, P. Pop, J. Madsen
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引用次数: 13

摘要

基于微流控技术的生物芯片正在取代传统的生化分析仪,并且能够在芯片上集成使用微流控技术进行生化分析的所有必要功能。数字微流体生物芯片是基于对液体的操纵,而不是将其作为连续流动,而是作为电极阵列上的离散液滴。微流控操作,如传输、混合、分裂,是通过在一系列电极上排列相应的液滴来完成的。研究人员提出了几种合成数字微流控生物芯片的方法。所有先前的工作都假设生物芯片结构是给定的,并且大多数方法都考虑电极阵列的矩形形状。然而,非常规的特定于应用程序的体系结构在实践中很常见。因此,在本文中,我们提出了一种特定于应用程序的体系结构综合方法。我们的方法还可以通过引入冗余电极来容忍永久故障来帮助设计者提高产量。所提出的架构综合算法已经使用几个基准进行了评估。
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Application-specific fault-tolerant architecture synthesis for digital microfluidic biochips
Microfluidic-based biochips are replacing the conventional biochemical analyzers, and are able to integrate onchip all the necessary functions for biochemical analysis using microfluidics. The digital microfluidic biochips are based on the manipulation of liquids not as a continuous flow, but as discrete droplets on an array of electrodes. Microfluidic operations, such as transport, mixing, split, are performed on this array by routing the corresponding droplets on a series of electrodes. Researchers have proposed several approaches for the synthesis of digital microfluidic biochips. All previous work assumes that the biochip architecture is given, and most approaches consider a rectangular shape for the electrode array. However, non-regular application-specific architectures are common in practice. Hence, in this paper, we propose an approach to the application-specific architecture synthesis. Our approach can also help the designer to increase the yield by introducing redundant electrodes to tolerate permanent faults. The proposed architecture synthesis algorithm has been evaluated using several benchmarks.
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