提高3G无线网络覆盖的混合认知引擎

L. Morales-Tirado, J. E. Suris-Pietri, J. Reed
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引用次数: 13

摘要

第三代(3G)无线网络已经通过传统的无线资源管理技术得到了很好的研究和优化,但仍有改进的空间。认知无线电(CR)技术可以通过提供对周围无线电环境的感知、利用先前的网络知识以及利用机器学习和人工智能技术优化无线电资源的使用,从而带来显著的网络改进。认知无线电也可以与传统设备共存,从而充当异构通信系统之间的桥梁。本文提出了一种用于3G无线网络的混合认知无线电引擎。该引擎采用基于案例的推理(CBR)和决策树(DT)搜索作为引擎的推理、学习和优化功能的主要模块。对引擎模型进行了实现和仿真测试,并将其应用于提高网络的覆盖率。
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A Hybrid Cognitive Engine for Improving Coverage in 3G Wireless Networks
Third generation (3G) wireless networks have been well studied and optimized with traditional radio resource management techniques, but still there is room for improvement. Cognitive radio (CR) technology can bring significant network improvements by providing awareness to the surrounding radio environment, exploiting previous network knowledge and optimizing the use of radio resources using machine learning and artificial intelligence techniques. Cognitive radio can also co-exist with legacy equipment thus acting as a bridge among heterogenous communication systems. In this paper, we present a hybrid cognitive radio engine for 3G wireless networks. The engine is designed using case-based reasoning (CBR) and decision tree (DT) searches, as the main blocks to the engine's reasoning, learning and optimization functions. The engine model was implemented and tested via simulation, it was applied to improve coverage in the network.
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