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A Promise of Realizable, Ultra-Scalable Communications at Nano-Scale:A Multi-Modal Nano-Machine Architecture

机译:纳米级可实现,超扩展通信的承诺:多模式纳米机器架构

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Wireless networks of nano-nodes will play a critical role in future medical, quality control, environmental monitoring and military applications. Nano-nodes are invisible/marginally visible to the human eye, ranging in size from approximately 100  to few nanometers. Nano-networking poses unique challenges, requiring ground-breaking solutions. First, the nano-scale imposes severe restrictions to the computational and communication capabilities of the nodes. Second, nano-nodes are not accessible for programming, configuration and debugging in the classical sense. Thus, a nano-network should be self-configuring, resilient and adaptive to environmental changes. Finally, all nano-networking protocols should be ultra-scalable, since a typical nano-network may comprise billions of nodes. The study contributes a novel paradigm for data dissemination in networking nano-machines, addressing these unique challenges. Relying on innovative analytical results on lattice algebra and nature-inspired processes, a novel data dissemination method is proposed. The nano-nodes exploit their environmental feedback and mature adaptively into network backbone or remain single network users. Such a process can be implemented as an ultra-scalable, low complexity, multi-modal nano-node architecture (physical layer), providing efficient networking and application services at the same time. Requiring existing manufacturing technology, the proposed architecture constitutes the first candidate solution for realizable nano-networking.
机译:纳米节点的无线网络将在未来的医疗,质量控制,环境监测和军事应用中发挥关键作用。纳米节点是肉眼看不到的/几乎看不见的,大小范围从大约100纳米到几纳米。纳米网络提出了独特的挑战,需要突破性的解决方案。首先,纳米级对节点的计算和通信能力施加了严格的限制。其次,传统意义上的纳米节点不可用于编程,配置和调试。因此,纳米网络应该是自我配置的,有弹性的并且适应环境变化。最后,由于典型的纳米网络可能包含数十亿个节点,因此所有纳米网络协议都应该具有超扩展性。这项研究为网络纳米机器中的数据分发提供了一种新颖的范例,解决了这些独特的挑战。依靠关于格子代数和自然启发过程的创新分析结果,提出了一种新的数据传播方法。纳米节点利用其环境反馈并适应性地成熟到网络主干中或保持单个网络用户。这样的过程可以实现为超可扩展,低复杂度,多模式的纳米节点体系结构(物理层),同时提供有效的联网和应用服务。要求现有的制造技术,提出的体系结构构成了可实现纳米网络的第一个候选解决方案。

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