Joint Optimization of Routing, Bandwidth, and Sub-Band Allocation in Energy-Efficient THz Nano-Networks

IF 6.3 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Open Journal of the Communications Society Pub Date : 2024-08-05 DOI:10.1109/OJCOMS.2024.3438571
Mohammed A. Alshorbaji;Ahmed Q. Lawey;Syed Ali Raza Zaidi
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Abstract

Nano-networks are envisioned to allow several nanoscale devices to transmit and receive information. One form of such networks is electromagnetic nano-networks working within the THz band. However, high overall path loss and molecular noise experienced in the THz band, as well as limited energy storage capabilities, restrict the communication range of nano-nodes and impact network efficiency. Therefore, optimizing the nano-network resources is necessary. In this paper, we present an optimization framework employing mixed-integer linear programming (MILP) to determine the most energy-efficient routing, bandwidth, and sub-band allocation for each nano-node in an electromagnetic nano-network operating within the THz band. Our model was tested for two different scenarios related to the priority of energy saving. We also compare our proposed optimal bandwidth, routing, and sub-band allocation against less complex designs where sub-bands with fixed bandwidth are employed in nano-nodes. Furthermore, we investigate the impact of nano-node’s processing and sensing units on the overall network energy consumption and the associated optimal bandwidth allocation and routing strategy. Given the considered parameters and the model’s assumptions, the results show that using the optimal multi-hops paths with higher bandwidth allocation for the considered sub-bands can be more energy efficient than sending the traffic using a single hop and lower bandwidths, especially when the transmission power dominates in the nano-network. On the other hand, when the processing and sensing unit’s energy consumption is dominant, then single hop schemes with lower bandwidth allocation result in the minimum network energy consumption. Finally, we discuss the limitations of the proposed energy-efficient strategies and point toward possible future research directions to which the model can be adapted.
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高能效太赫兹纳米网络中路由、带宽和子带分配的联合优化
纳米网络的设想是让多个纳米级设备传输和接收信息。这种网络的一种形式是在太赫兹波段工作的电磁纳米网络。然而,太赫兹波段的整体路径损耗大、分子噪声大,而且能量存储能力有限,这些都限制了纳米节点的通信范围,影响了网络效率。因此,有必要优化纳米网络资源。在本文中,我们提出了一个采用混合整数线性规划(MILP)的优化框架,以确定在太赫兹频段内运行的电磁纳米网络中每个纳米节点最节能的路由、带宽和子频段分配。我们的模型针对与节能优先级相关的两种不同情况进行了测试。我们还将我们提出的最优带宽、路由和子带分配与纳米节点采用固定带宽子带的不太复杂的设计进行了比较。此外,我们还研究了纳米节点的处理和传感单元对整个网络能耗的影响,以及相关的最优带宽分配和路由策略。考虑到所考虑的参数和模型假设,结果表明,在所考虑的子带中,使用带宽分配较高的多跳最优路径比使用单跳和较低带宽发送流量更节能,尤其是当传输功率在纳米网络中占主导地位时。另一方面,当处理和传感单元的能耗占主导地位时,采用带宽分配较低的单跳方案可使网络能耗最小。最后,我们讨论了所提节能策略的局限性,并指出了该模型未来可能的研究方向。
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来源期刊
CiteScore
13.70
自引率
3.80%
发文量
94
审稿时长
10 weeks
期刊介绍: The IEEE Open Journal of the Communications Society (OJ-COMS) is an open access, all-electronic journal that publishes original high-quality manuscripts on advances in the state of the art of telecommunications systems and networks. The papers in IEEE OJ-COMS are included in Scopus. Submissions reporting new theoretical findings (including novel methods, concepts, and studies) and practical contributions (including experiments and development of prototypes) are welcome. Additionally, survey and tutorial articles are considered. The IEEE OJCOMS received its debut impact factor of 7.9 according to the Journal Citation Reports (JCR) 2023. The IEEE Open Journal of the Communications Society covers science, technology, applications and standards for information organization, collection and transfer using electronic, optical and wireless channels and networks. Some specific areas covered include: Systems and network architecture, control and management Protocols, software, and middleware Quality of service, reliability, and security Modulation, detection, coding, and signaling Switching and routing Mobile and portable communications Terminals and other end-user devices Networks for content distribution and distributed computing Communications-based distributed resources control.
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