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首页> 外文期刊>Computer-Aided Design of Integrated Circuits and Systems, IEEE Transactions on >Placement and Routing for Cross-Referencing Digital Microfluidic Biochips
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Placement and Routing for Cross-Referencing Digital Microfluidic Biochips

机译:交叉引用数字微流控生物芯片的布局和路由。

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摘要

Computer-aided design problems of digital microfluidic biochips are receiving much attention, and most of the previous works focus on direct-addressing biochips. In this paper, we solve the placement and droplet routing problem in cross-referencing biochips. In these biochips, the electrodes are addressed in a row-column manner, which may cause electrode interference that prevents simultaneous movements of multiple droplets. We propose a routing algorithm that solves the droplet routing problem directly. A two-coloring graph-theoretic method is used in our router to detect and prevent the electrode interference. In addition, we propose an integer linear programming based method to solve the placement problem. Our method considers the characteristics of cross-referencing biochips and is aware of droplet routing. Real-life benchmarks are used to evaluate the proposed methods. Compared with previous works, our router improves on average 4% in routing time and 58% in runtime. It can route all the benchmarks within the time limits, while the latest work fails in some cases. Moreover, experimental results show that by running our router on the placement result generated by our method and those generated by the latest work, an average improvement of 11%, 29%, 54%, and 46% in the maximum routing time, average routing time, stalling steps, and cell usage can be achieved.
机译:数字微流控生物芯片的计算机辅助设计问题受到了广泛关注,并且以前的大多数工作都集中在直接寻址生物芯片上。在本文中,我们解决了交叉引用生物芯片中的布局和液滴布线问题。在这些生物芯片中,电极以行-列方式寻址,这可能会导致电极干扰,从而阻止多个液滴同时运动。我们提出了一种路由算法,可以直接解决小滴路由问题。我们的路由器使用了两种颜色的图论方法来检测和防止电极干扰。此外,我们提出了一种基于整数线性规划的方法来解决布局问题。我们的方法考虑了交叉引用生物芯片的特性,并意识到液滴的路由。现实生活中的基准用于评估所提出的方法。与以前的作品相比,我们的路由器平均将路由时间提高了4%,将运行时间提高了58%。它可以在时限内路由所有基准测试,而在某些情况下最新工作失败。此外,实验结果表明,通过在我们的方法生成的布局结果和最新工作生成的布局结果上运行路由器,可以将最大路由时间,平均路由平均提高11%,29%,54%和46%时间,停滞步骤和电池使用情况都可以实现。

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