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Multicontrol: Advanced Control-Logic Synthesis for Flow-Based Microfluidic Biochips

机译:MulticOntrol:基于流量的微流体生物芯片的高级控制逻辑合成

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Flow-based microfluidic biochips are one of the most promising platforms used in biochemical and pharmaceutical laboratories due to their high efficiency and low costs. Inside such a chip, fluids of nanoliter volumes are transported between devices for various operations, such as mixing and detection. The transportation channels and corresponding operation devices are controlled by microvalves driven by external pressure sources. Since assigning an independent pressure source to every microvalve would be impractical due to high costs and limited system dimensions, states of microvalves are switched by a control logic using time multiplexing. Existing control-logic designs, however, still switch only a single control channel per operation, leading to a low efficiency. In this article, we present the first automatic synthesis approach for a control logic that is able to switch multiple control channels simultaneously. Moreover, we propose the first fault-aware design in control logic by introducing backup control paths to maintain the correct function even when manufacturing defects occur. The construction of control logic is achieved by a highly efficient framework based on particle swarm optimization, Boolean logic simplification, grid routing, together with mixing multiplexing. The simulation results demonstrate that the proposed multichannel switching mechanism leads to fewer valve-switching times and lower total logic cost, while realizing fault tolerance for all control channels.
机译:基于流量的微流体生物芯片是生物化学和药物实验室中最有希望的平台之一,因为它们的效率高,成本低。在这样的芯片内部,纳米凝胶体积的流体在装置之间传送各种操作,例如混合和检测。运输通道和相应的操作设备由由外部压力驱动的微型手柄控制。由于将独立的压力源分配给每个微型阀,由于高成本和系统尺寸有限,因此使用时间复用通过控制逻辑切换微型阀的状态。然而,现有的控制逻辑设计仍然仅打开单个操作的单个控制信道,导致低效率。在本文中,我们介绍了一种用于同时切换多个控制信道的控制逻辑的第一自动合成方法。此外,我们提出了通过引入备份控制路径来控制逻辑中的第一个故障感知设计,即使在发生制造缺陷时也能够保持正确的功能。控制逻辑的构建是通过基于粒子群优化,布尔逻辑简化,网格路由的高效框架实现,以及混合复用。仿真结果表明,所提出的多通道切换机构导致阀门切换时间和较低的总逻辑成本,同时实现所有控制信道的容错率。

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