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Characterizing Nanoscale Transient Communication

机译:表征纳米级瞬态通信

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We consider the novel paradigm of nanoscale transient communication (NTC), where certain components of the small-scale communication link are physically transient. As such, the transmitter and the receiver may change their properties over a prescribed lifespan due to their time-varying structures. The NTC systems may find important applications in the biomedical, environmental, and military fields, where system degradability allows for benign integration into life and environment. In this paper, we analyze the NTC systems from the channel-modeling and capacity-analysis perspectives and focus on the stochastically meaningful slow transience scenario, where the coherence time of degeneration is much longer than the coding delay . We first develop novel and parsimonious models to characterize the NTC channels, where three types of physical layers are considered: electromagnetism-based terahertz (THz) communication, diffusion-based molecular communication (DMC), and nanobots-assisted touchable communication (TouchCom). We then revisit the classical performance measure of -outage channel capacity and take a fresh look at its formulations in the NTC context. Next, we present the notion of capacity degeneration profile (CDP), which describes the reduction of channel capacity with respect to the degeneration time. Finally, we provide numerical examples to demonstrate the features of CDP. To the best of our knowledge, the current work represents a first attempt to systematically evaluate the quality of nanoscale communication systems deteriorating with time.
机译:我们考虑了纳米级瞬态通信(NTC)的新颖范例,其中小规模通信链路的某些组件是物理瞬态的。这样,由于发送器和接收器的时变结构,它们可能会在规定的使用寿命内更改其属性。 NTC系统可能会在生物医学,环境和军事领域中找到重要的应用,在这些领域中,系统的可降解性有助于良性地融入生活和环境。在本文中,我们从通道建模和容量分析的角度分析了NTC系统,并着眼于随机有意义的慢速瞬态场景,在这种场景中,退化的相干时间比编码延迟长得多。我们首先开发新颖和简约的模型来表征NTC通道,其中考虑了三种类型的物理层:基于电磁的太赫兹(THz)通信,基于扩散的分子通信(DMC)和纳米机器人辅助的可触摸通信(TouchCom)。然后,我们重新讨论经典的-信道容量测试方法,并重新审视NTC环境中的公式。接下来,我们介绍容量退化配置文件(CDP)的概念,它描述了信道容量相对于退化时间的减少。最后,我们提供了数值示例来演示CDP的功能。据我们所知,当前的工作代表了系统评估纳米级通信系统质量随时间恶化的首次尝试。

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