认知无线电网络中信道特征感知频谱聚合算法

Jintao Lin, Lianfeng Shen, Nan Bao, Bailong Su, Zhipeng Deng, Dayang Wang
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引用次数: 22

摘要

在认知无线电(CR)网络中,频谱孔太窄而无法支持高速通信是很常见的。不连续正交频分复用(DOFDM)是一种利用一个射频(RF)同时访问多个频谱片段的辅助用户的好方法。为了提高CR网络的整体吞吐量,本文提出了一种新的信道特征感知频谱聚合(CCASA)算法,该算法利用DOFDM对只有一个无线电前端的频谱片段进行聚合。CCASA算法通过自适应调制与编码(AMC)和频谱聚合相结合,将好的子载波分配给特定的辅助用户,从而获得更好的信道效率。该算法在保持较低的计算复杂度的同时,考虑了不同的带宽需求和二级用户的聚合限制。仿真结果表明,与现有的聚合算法相比,CCASA实现了更高的总吞吐量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Channel Characteristic Aware Spectrum Aggregation algorithm in Cognitive Radio networks
In Cognitive Radio (CR) networks, it is common that the spectrum holes are too narrow to support high-speed communications. Discontinuous Orthogonal Frequency Division Multiplexing (DOFDM) is a good way for a secondary user to access several spectrum fragments simultaneously with one Radio Front (RF). In this paper, a novel Channel Characteristic Aware Spectrum Aggregation (CCASA) algorithm which uses DOFDM to aggregation spectrum fragments with only one radio front is proposed in order to increase the overall throughput of a CR network. By combining Adaptive Modulation and Coding (AMC) and spectrum aggregation, the good subcarriers are assigned to the specific secondary users in CCASA algorithm thus achieving a better channel efficiency. Different bandwidth requirement and aggregation limitation of secondary users are both considered in this algorithm while maintaining a fairly low computational complexity. The simulation results show that CCASA achieves a bigger total throughput than existing aggregation algorithms.
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