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Close-to-optimal placement and routing for continuous-flow microfluidic biochips

机译:连续流体微流体生物芯片的近距离放置和路由

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Continuous-flow microfluidics rapidly evolved in the last decades as a solution to automate laboratory procedures in molecular biology and biochemistry. Therefore, the physical design of the corresponding chips, i.e., the placement and routing of the involved components and channels, received significant attention. Recently, several physical design solutions for this task have been presented. However, they often rely on general heuristics which traverse the search space in a rather arbitrary fashion and, additionally, consider placement and routing independently from each other. Consequently, the obtained results are often far from being optimal. In this work, a methodology is proposed which aims for determining close-to-optimal physical designs for continuous-flow microfluidic biochips. To this end, we consider all - or, at least, as much as possible - of the valid solutions. As this obviously yields a significant complexity, solving engines are utilized to efficiently traverse the search space and pruning schemes are proposed to reduce the search space without discarding too many promising solutions. Evaluations show that the proposed methodology is capable of determining optimal results for small experiments to be realized. For larger experiments, close-to-optimal results can efficiently be derived. Moreover, compared to the current state-of-the-art, improvements of up to 1-2 orders of magnitude can be observed.
机译:连续流体微流体在过去几十年中迅速发展成为一种自动化分子生物化学和生物化学的实验室程序的解决方案。因此,相应的芯片的物理设计,即涉及组件和通道的放置和路由,接受了重大关注。最近,已经提出了几种用于此任务的物理设计解决方案。然而,他们经常依赖于遍历以相当任意的方式遍历搜索空间的通用启发式,并且另外,考虑彼此独立地进行放置和路由。因此,所获得的结果往往远未最佳。在这项工作中,提出了一种方法,该方法旨在确定用于连续流体微流体生物芯片的近似优异的物理设计。为此,我们考虑所有 - 或至少尽可能多地 - 有效解决方案。由于这显然产生了显着的复杂性,因此利用求解引擎有效地遍历搜索空间和修剪方案,以减少搜索空间而不会丢弃太多有前途的解决方案。评估表明,所提出的方法能够确定要实现的小实验的最佳结果。对于更大的实验,可以有效地获得近距离的结果。此外,与目前的最先进的最多,可以观察到最多1-2个级的改进。

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