The Internet of Microfluidic Things: Perspectives on System Architecture and Design Challenges: Invited Paper

Mohamed Ibrahim, M. Gorlatova, K. Chakrabarty
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引用次数: 3

Abstract

The integration of microfluidics and biosensor technology is transforming microbiology research by providing new capabilities for clinical diagnostics, cancer research, and pharmacology studies. This integration enables new approaches for biochemistry automation and cyber-physical adaptation. Similarly, recent years have witnessed the rapid growth of the Internet of Things (IoT) paradigm, where different types of real-world elements such as wearable sensors are connected and allowed to autonomously interact with each other. Combining the advances of both cyber-physical microfluidics and IoT domains can generate new opportunities for knowledge fusion by transforming distributed local microfluidic elements into a global network of coordinated microfluidic systems. This paper aims to streamline this transformation and it presents a research vision for enabling the Internet of Microfluidic Things (IoMT). To leverage advances in connected Microfluidic Things, we highlight new perspectives on system architecture, and describe technical challenges related to design automation, temporal flexibility, security, and service assignment. This vision is supported by case studies from cancer research and pharmacology studies to explain the significance of the proposed framework.
微流体物联网:系统架构和设计挑战的视角:特邀论文
微流体和生物传感器技术的集成通过为临床诊断、癌症研究和药理学研究提供新的能力,正在改变微生物学研究。这种集成使生物化学自动化和网络物理适应的新方法成为可能。同样,近年来见证了物联网(IoT)范式的快速增长,其中不同类型的现实世界元素(如可穿戴传感器)被连接起来,并允许彼此自主交互。结合网络物理微流控和物联网领域的进步,可以通过将分布式局部微流控元件转化为协调微流控系统的全球网络,为知识融合创造新的机会。本文旨在简化这一转变,并提出了实现微流体物联网(IoMT)的研究愿景。为了利用互联微流控事物的进步,我们强调了系统架构的新视角,并描述了与设计自动化、时间灵活性、安全性和服务分配相关的技术挑战。这一观点得到了来自癌症研究和药理学研究的案例研究的支持,以解释拟议框架的重要性。
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