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An Intelligent Compaction Technique for Pin Constrained Routing in Cross Referencing Digital Microfluidic Biochips

机译:交叉引用数字微流控生物芯片中引脚约束布线的智能压实技术

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The recent advances in microfluidic technology have resulted in the emergence of commercially successful lab-on-chip systems that manifested as applicable devices in the wide range of areas e.g. high-throughput DNA sequencing, immunoassays and clinical chemistry, environmental toxicity monitoring and point of- care diagnosis of diseases. The current generation of microfluidic devices termed as digital microfluidic biochips (DMFB) are capable of manipulating individual droplets of chemicals on a 2D planar array of electrodes. A special class of DMFB classified as Cross-referencing biochip has currently drawn major attention for targeted integration of multiple bioassay protocols. However, for parallel execution of multiple bioassays within a single array -these chips face a serious issue of electrode interference during simultaneous routing of droplets. In this paper, we propose a routing-aware zone-based detailed placement and compaction technique that reorients the droplet locations on a pre-synthesized Bioassay schematic fulfilling the requisite dependency constraints necessary for efficient execution# of the specified bioassay protocols. The focus for the proposed scheme include (ⅰ)enhanced routing in respect of less overall and average routing time, optimum cell utilization (ⅱ)minimum or no crossover with intelligent collision avoidance, and (ⅲ) optimized pin utilization with intelligent pin clustering and hence overcoming the major issue of electrode interference for Cross referencing biochips. Simulations are carried out on three test benches of Benchmark suite III, and the results obtained are encouraging..
机译:微流体技术的最新进展已导致商业上成功的芯片实验室系统的出现,这些系统表现为在广泛领域中的可应用设备,例如电子设备。高通量DNA测序,免疫测定和临床化学,环境毒性监测以及疾病的即时诊断。被称为数字微流控生物芯片(DMFB)的当前的微流控设备能够操纵二维平面电极阵列上的单个化学液滴。归类为交叉引用生物芯片的一类特殊的DMFB目前引起了对多种生物测定规程的靶向整合的主要关注。然而,对于在单个阵列内并行执行多个生物测定,这些芯片在液滴的同时布线过程中面临严重的电极干扰问题。在本文中,我们提出了一种基于路由感知区域的详细放置和压实技术,该技术可在预合成生物测定原理图上重新定位液滴位置,从而满足指定生物测定规程有效执行所需的必要依赖性约束。拟议方案的重点包括:(ⅰ)减少总体和平均布线时间,增强布线,最佳电池利用率(ⅱ)通过智能碰撞避免实现最小或无交叉,以及(ⅲ)通过智能引脚集群实现最佳引脚利用率,因此克服了交叉引用生物芯片的电极干扰这一主要问题。在Benchmark Suite III的三个测试台上进行了仿真,所获得的结果令人鼓舞。

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