Architectural synthesis of flow-based microfluidic large-scale integration biochips

W. H. Minhass, P. Pop, J. Madsen, Felician Stefan Blaga
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引用次数: 75

Abstract

Microfluidic biochips are replacing the conventional biochemical analyzers and are able to integrate the necessary functions for biochemical analysis on-chip. In this paper we are interested in flow-based biochips, in which the flow of liquid is manipulated using integrated microvalves. By combining several microvalves, more complex units, such as micropumps, switches, mixers, and multiplexers, can be built. The manufacturing technology, soft lithography, used for the flow-based biochips is advancing faster than Moore's law, resulting in increased architectural complexity. However, the designers are still using full-custom and bottom-up, manual techniques in order to design and implement these chips. As the chips become larger and the applications become more complex, the manual methodologies will not scale, becoming highly inadequate. Therefore, for the first time to our knowledge,we propose a top-down architectural synthesis methodology for the flow-based biochips. Starting from a given biochemical application and a microfluidic component library, we are interested in synthesizing a biochip architecture, i.e., performing component allocation from the library based on the biochemical application, generating the biochip schematic (netlist) and then performing physical synthesis (deciding the placement of the microfluidic components on the chip and performing routing of the microfluidic channels), such that the application completion time is minimized. We evaluate our proposed approach by synthesizing architectures for real-life applications as well as synthetic benchmarks.
流动微流控大规模集成生物芯片的结构合成
微流控生物芯片正在取代传统的生化分析仪,并能够集成芯片上生化分析的必要功能。在本文中,我们对基于流动的生物芯片感兴趣,其中液体的流动是使用集成的微阀来控制的。通过组合几个微阀,更复杂的单位,如微泵,开关,混频器和多路复用器,可以建立。用于流动型生物芯片的制造技术——软光刻技术的发展速度超过了摩尔定律,从而增加了架构的复杂性。然而,为了设计和实现这些芯片,设计师们仍然使用全定制和自下而上的手工技术。随着芯片变得越来越大,应用程序变得越来越复杂,手工方法将无法扩展,变得非常不足。因此,据我们所知,我们首次提出了一种自上而下的基于流的生物芯片的架构合成方法。从给定的生物化学应用和微流控元件库开始,我们感兴趣的是合成生物芯片架构,即基于生物化学应用从库中进行元件分配,生成生物芯片原理图(网表),然后进行物理合成(决定微流控元件在芯片上的位置并执行微流控通道的路由),从而使应用完成时间最小化。我们通过综合实际应用程序的体系结构以及综合基准来评估我们提出的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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