现场可编程引脚约束数字微流控生物芯片的容错架构和CAD算法

Alireza Abdoli, A. Jahanian
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引用次数: 8

摘要

数字微流控嵌入式生物芯片的出现彻底改变了实验室程序的完成。与传统的台式化学程序相比,数字微流控生物芯片提供了通用的分析执行以及几个优势;这些现代设备的优点包括自动化、小型化和低成本。然而,这些嵌入式系统容易受到各种类型的故障的影响,这些故障会对分析执行结果的完整性产生不利影响。本文从多个方面研究了现场可编程引脚约束型数字微流控生物芯片的容错问题;评估混合模块故障、SSD (Storage / Split / Detection)模块故障、路由路径内区域故障的影响。仿真结果表明,在混合模块故障的情况下,操作时间保持不变,但路由时间的5%优势有助于总生物测定执行时间的1%改进;考虑到错误混合模块产生的开销,结果显示操作时间没有开销,路由时间开销为20%,而路由时间开销又导致总生物测定执行时间开销为2%。在SSD模块故障的情况下,操作时间保持不变,但由于路由时间优势19%,总生物测定执行时间改善2%;关于由故障SSD模块引起的开销,可以观察到,尽管路由时间有4%的开销,但总的生物测定执行时间没有开销。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fault-tolerant architecture and CAD algorithm for field-programmable pin-constrained digital microfluidic biochips
Advent of digital microfluidic embedded biochips has revolutionized accomplishment of laboratory procedures. Digital microfluidic biochips provide general-purpose assay execution along with several advantages compared with traditional benchtop chemistry procedures; advantages of these modern devices encompass automation, miniaturization and lower costs. However these embedded systems are vulnerable to various types of faults which can adversely affect the integrity of assay execution outcome. This paper addresses fault tolerance of field-programmable pin-constrained digital microfluidic biochips from various aspects; evaluating effects of faulty mix modules, faulty Storage / Split / Detection (SSD) modules and faulty regions within routing paths. The simulation results show that in case of faulty mixing modules the operation times were retained however the 5 % advantage in routing times contributes to 1 % improvement of total bioassay execution time; considering overheads incurred by faulty mixing modules, the results show no overhead in operation times and 20 % overhead in routing times which in turn incur 2 % overhead on total bioassay execution time. In case of faulty SSD modules the operation time remains the same however as a result of 19 % advantage in routing times the total bioassay execution time shows 2 % improvement; regarding the overheads incurred by faulty SSD modules it is observed that despite the 4 % overhead in routing times there is no overhead with the total bioassay execution time.
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