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首页> 外文期刊>Proceedings of the IEEE >Transmitter and Receiver Architectures for Molecular Communications: A Survey on Physical Design With Modulation, Coding, and Detection Techniques
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Transmitter and Receiver Architectures for Molecular Communications: A Survey on Physical Design With Modulation, Coding, and Detection Techniques

机译:分子通信的发射器和接收器体系结构:带有调制,编码和检测技术的物理设计概览

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Inspired by nature, molecular communications (MC), i.e., the use of molecules to encode, transmit, and receive information, stands as the most promising communication paradigm to realize the nanonetworks. Even though there has been extensive theoretical research toward nanoscale MC, there are no examples of implemented nanoscale MC networks. The main reason for this lies in the peculiarities of nanoscale physics, challenges in nanoscale fabrication, and highly stochastic nature of the biochemical domain of envisioned nanonetwork applications. This mandates developing novel device architectures and communication methods compatible with MC constraints. To that end, various transmitter and receiver designs for MC have been proposed in the literature together with numerable modulation, coding, and detection techniques. However, these works fall into domains of a very wide spectrum of disciplines, including, but not limited to, information and communication theory, quantum physics, materials science, nanofabrication, physiology, and synthetic biology. Therefore, we believe it is imperative for the progress of the field that an organized exposition of cumulative knowledge on the subject matter can be compiled. Thus, to fill this gap, in this comprehensive survey, we review the existing literature on transmitter and receiver architectures toward realizing MC among nanomaterial-based nanomachines and/or biological entities and provide a complete overview of modulation, coding, and detection techniques employed for MC. Moreover, we identify the most significant shortcomings and challenges in all these research areas and propose potential solutions to overcome some of them.
机译:受自然界的启发,分子通信(MC),即使用分子编码,传输和接收信息,是实现纳米网络最有希望的通信范例。即使对纳米级MC进行了广泛的理论研究,也没有实施纳米级MC网络的示例。造成这种情况的主要原因在于纳米级物理学的特殊性,纳米级制造中的挑战以及设想的纳米网络应用中生化领域的高度随机性。这要求开发新颖的设备架构和与MC约束兼容的通信方法。为此,文献中已经提出了用于MC的各种发射器和接收器设计,以及无数的调制,编码和检测技术。但是,这些作品属于非常广泛的学科领域,包括但不限于信息和通信理论,量子物理学,材料科学,纳米制造,生理学和合成生物学。因此,我们认为,对于该领域的进步,必须对有关主题的累积知识进行有组织的阐述。因此,为了填补这一空白,在这项全面的调查中,我们回顾了有关发射机和接收机架构的现有文献,以期在基于纳米材料的纳米机器和/或生物实体之间实现MC,并提供了用于调制,编码和检测技术的完整概述。 MC此外,我们确定了所有这些研究领域中最重大的缺点和挑战,并提出了克服其中某些问题的潜在解决方案。

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