Current developments in nanotechnology make electromagnetic communication (EC) possible at the nanoscale for applications involving Wireless [Body] Sensor Networks (W[B]SNs). This specialized branch of WSN has emerged as an important research area contributing to medical treatment, social welfare, and sports. The concept is based on the interaction of integrated nanoscale machines by means of wireless communications. One key hurdle for advancing nanocommunications is the lack of an apposite networking protocol to address the upcoming needs of the nanonetworks. Recently, some key challenges have been identified, such as nanonodes with extreme energy constraints, limited computational capabilities, Terahertz frequency bands with limited transmission range, etc., in designing protocols for wireless nanosensor networks (WNN). This work proposes an improved performance scheme of nanocommunication over Terahertz bands for wireless BSNs making it suitable for smart e-health applications. The scheme contains -- a new energy-efficient forwarding routine for EC in WNN consisting of hybrid clusters with centralized scheduling, a model designed for channel behavior taking into account the aggregated impact of molecular absorption, spreading loss, and shadowing, and an energy model for energy harvesting and consumption. The outage probability is derived for both single and multilinks and extended to determine the outage capacity. The outage probability for a multilink is derived using a cooperative fusion technique at a predefined fusion node. Simulated using a Nano-Sim simulator, performance of the proposed model has been evaluated for energy efficiency, outage capacity, and outage probability. The results demonstrate the efficiency of the proposed scheme through maximized energy utilization in both single and multihop communication, multisensor fusion enhances the link quality of the transmission.
翻译:纳米技术的当前发展使得电磁通信(EC)有可能在纳米规模上用于无线传感器网络(W[B]SNSs)的应用。WSN的这个专业分支已成为一个重要的研究领域,有助于医疗、社会福利和体育。这个概念的基础是综合纳米规模机器通过无线通信进行互动。推进纳米通信的一个关键障碍是缺乏一个满足纳米网络即将出现的需要的匹配网络协议。最近,已经发现了一些关键的挑战,例如具有极端能源限制、计算能力有限、传输范围有限的超频频频频谱等纳米节,这是设计无线纳米纳米传感器网络(WNNN)网络的一个重要研究领域。这个工作提出了改进超超超超超超纳米机器机器的纳米通信性能计划,从而有利于智能电子健康应用。这个计划包含一个在WNNNE网络中由混合集群组成的新的节能传输程序,一个设计用于频道行为模型,其中考虑到分子吸收的综合影响,传播速度有限、超频频频频频频带的频率带带带带带带, 利用SIMNVS的模型和多频带计算, 确定一个用于模拟和超导流流能源生成的模型。一个用于模拟的能量流流流流流化的模型,一个用于模拟的能量生成和多频系的能量生成,一个模型,一个模拟的能量生成的计算,一个用于模拟的能量生成的计算,一个模拟的计算,一个模拟的能量生成的计算,一个模拟的能量采集测测测算。