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Spectrum sensing, detection and optimisation in cognitive radio for non-stationary primary user signals

机译:非平稳主要用户信号的认知无线电中的频谱感测,检测和优化

摘要

Cognitive radio is an emerging technology proposing the concept of dynamic spec- trum access as a solution to the looming problem of spectrum scarcity caused by the growth in wireless communication systems. Under the proposed concept, non- licensed, secondary users (SU) can access spectrum owned by licensed, primary users (PU) so long as interference to PU are kept minimal.ududSpectrum sensing is a crucial task in cognitive radio whereby the SU senses the spectrum to detect the presence or absence of any PU signal. Conventional spectrum sensing assumes the PU signal as ‘stationary’ and remains in the same activity state during the sensing cycle, while an emerging trend models PU as ‘non-stationary’ and undergoes state changes. Existing studies have focused on non-stationary PU during the transmission period, however very little research considered the impact on spectrum sensing when the PU is non-stationary during the sensing period.ududThe concept of PU duty cycle is developed as a tool to analyse the performance of spectrum sensing detectors when detecting non-stationary PU signals. New detectors are also proposed to optimise detection with respect to duty cycle ex- hibited by the PU. This research consists of two major investigations. The first stage investigates the impact of duty cycle on the performance of existing detec- tors and the extent of the problem in existing studies. The second stage develops new detection models and frameworks to ensure the integrity of spectrum sensing when detecting non-stationary PU signals.ududThe first investigation demonstrates that conventional signal model formulated for stationary PU does not accurately reflect the behaviour of a non-stationary PU. Therefore the performance calculated and assumed to be achievable by the conventional detector does not reflect actual performance achieved. Through analysing the statistical properties of duty cycle, performance degradation is proved to be a problem that cannot be easily neglected in existing sensing studies when PU is modelled as non-stationary.ududThe second investigation presents detectors that are aware of the duty cycle ex- hibited by a non-stationary PU. A two stage detection model is proposed to improve the detection performance and robustness to changes in duty cycle. This detector is most suitable for applications that require long sensing periods. A second detector, the duty cycle based energy detector is formulated by integrat- ing the distribution of duty cycle into the test statistic of the energy detector and suitable for short sensing periods. The decision threshold is optimised with respect to the traffic model of the PU, hence the proposed detector can calculate average detection performance that reflect realistic results.ududA detection framework for the application of spectrum sensing optimisation is proposed to provide clear guidance on the constraints on sensing and detection model. Following this framework will ensure the signal model accurately reflects practical behaviour while the detection model implemented is also suitable for the desired detection assumption. Based on this framework, a spectrum sensing optimisation algorithm is further developed to maximise the sensing efficiency for non-stationary PU. New optimisation constraints are derived to account for any PU state changes within the sensing cycle while implementing the proposed duty cycle based detector.
机译:认知无线电是一种新兴技术,提出了动态频谱访问的概念,以解决由无线通信系统的增长引起的频谱稀缺的迫在眉睫的问题。在提出的概念下,只要保持对PU的干扰最小,未许可的次要用户(SU)即可访问许可的主要用户(PU)拥有的频谱。 ud ud频谱感知是认知无线电中的关键任务,因此, SU感测频谱以检测是否存在任何PU信号。传统频谱感测将PU信号假定为“平稳”,并在感测周期内保持相同的活动状态,而新兴趋势将PU建模为“非平稳”,并经历状态变化。现有研究集中于传输期间的非平稳PU,但是很少有研究考虑当PU在感测期间处于非平稳状态时对频谱感测的影响。 ud udPU占空比的概念是作为一种工具开发的分析频谱感应检测器在检测非平稳PU信号时的性能。还提出了新的检测器,以针对PU所显示的占空比优化检测。这项研究包括两个主要的调查。第一阶段研究占空比对现有检测器性能的影响以及现有研究中问题的严重程度。第二阶段开发新的检测模型和框架,以确保在检测非平稳PU信号时频谱感测的完整性。 ud ud第一阶段研究表明,为固定PU制定的常规信号模型不能准确反映非平稳PU信号的行为PU。因此,常规检测器所计算和假定可获得的性能不能反映所达到的实际性能。通过分析占空比的统计特性,当将PU建模为非平稳模型时,性能下降被证明是在现有的传感研究中不容忽视的问题。 ud ud第二项研究提出了了解占空比的检测器由非固定PU展示。提出了一种两阶段检测模型,以提高检测性能和占空比变化的鲁棒性。该检测器最适合需要较长检测时间的应用。第二个检测器,即基于占空比的能量检测器,是通过将占空比的分布整合到能量检测器的测试统计中来制定的,适用于短的检测周期。针对PU的流量模型优化了决策阈值,因此,所提出的检测器可以计算出反映实际结果的平均检测性能。 ud ud提出了一种用于频谱感知优化应用的检测框架,可为频谱感知优化提供清晰的指导感应和检测模型的约束。遵循此框架将确保信号模型准确反映实际行为,同时实现的检测模型也适用于所需的检测假设。在此框架的基础上,进一步开发了频谱感测优化算法,以最大化非平稳PU的感测效率。在实现所提出的基于占空比的检测器的同时,得出了新的优化约束以解决传感周期内的任何PU状态变化。

著录项

  • 作者

    Chang Kevin;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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