基于改进能量探测器的认知无线电频谱传感:实验研究

Prachetos Sadhukhan, Naveen Kumar, M. Bhatnagar
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引用次数: 13

摘要

认知无线电(CR)是一种解决频谱稀缺问题并为有效利用频谱铺平道路的技术。近年来,人们观察到,大多数研究都集中在建立理论模型上,这些模型主要由仿真结果支持。为了成功地支持任何理论开发的模型,有必要在实际环境中使用硬件对算法进行测试。由于为满足仿真需求而做出的一些假设在实际情况下可能不成立,因此理论概念的实现和测试相当具有挑战性。在本文中,我们给出了我们在单节点和合作CR网络中实现改进的能量检测器的实验测试结果。理论模型取自[1],而GNU Radio和通用软件无线电外围设备2 (USRP2)套件分别作为实现中的软件和硬件。阴影衰落(由于障碍物和隐藏节点问题)使得单节点感知有时不可靠。利用次节点间的协作,配合适当的融合规则,既发挥了空间分集的优势,又提高了频谱空穴感知的可靠性。实际测试表明,协同感知优于单节点感知。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improved energy detector based spectrum sensing for cognitive radio: An experimental study
Cognitive radio (CR) is a technology that addresses the problem of scarcity of spectrum and paves the way for efficient use of the same. In recent times, it has been observed that most research is focused on building theoretical models which are backed mostly by simulation results. In order to successfully support any theoretically developed model, it is necessary that the algorithm be tested in practical environment using hardware. Since some assumptions made to satisfy simulation requirements may not hold under practical circumstances, the implementation and testing of a theoretical concept is quite challenging. In this paper, we present experimental test results from our implementation of improved energy detector for single node and co-operative CR networks. The theoretical model is taken from [1], while GNU Radio and universal software radio peripherals 2 (USRP2) kits serve as software and hardware, respectively, in the implementation. Shadowed fading (due to obstacles and hidden node problem) makes single node sensing sometimes unreliable. Use of cooperation among secondary nodes, along with proper fusion rules, not only exploits the advantage of spatial diversity but also improves the reliability of spectrum hole sensing, as evident from the test results. It has been demonstrated by using the practical testing that cooperative sensing is better than single node sensing.
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