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Analysis of the Sample Size Required for an Accurate Estimation of Primary Channel Activity Statistics under Imperfect Spectrum Sensing

机译:在不完善的频谱感应下准确估算主信道活动统计信息所需的样本量分析

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Primary channel activity statistics play an important role in improving the performance of Dynamic Spectrum Access (DSA) / Cognitive Radio (CR) systems. The statistical information of the idle/busy periods of a primary channel can be estimated based on the outcomes of spectrum sensing. Recent studies have shown that these statistics can be estimated accurately even under Imperfect Spectrum Sensing (ISS) scenarios. Those studies, however, have assumed no constraints on the required sample size of observations of the idle/busy periods in order to provide accurate estimation (i.e., large sample size was assumed to test the accuracy of these statistics estimation methods). In real-world scenario, DSA/CR systems are limited to the hardware design capabilities, which include limited memory capacity, energy consumption and computational capability. As a result, it is very important to find how many samples of the idle/busy periods are required to provide an acceptable level of accuracy for the estimated statistics. Therefore, this work analyses the impact of the sample size on the estimation of the primary channel statistics under ISS and it finds closed-form expressions for the required sample size of the idle/busy periods to achieve a targeted accuracy. In addition, the analytical results achieved in this work are validated by means of simulations and hardware experiments.
机译:主要信道活动统计信息在提高动态频谱访问(DSA)/认知无线电(CR)系统的性能方面起着重要作用。可以基于频谱感测的结果来估计主信道的空闲/繁忙时段的统计信息。最近的研究表明,即使在不完善的频谱感应(ISS)情况下,也可以准确估算这些统计信息。但是,这些研究假设闲置/忙碌时段的观测所需样本量没有限制,以便提供准确的估算值(即,假设使用大样本量来测试这些统计估算方法的准确性)。在实际情况下,DSA / CR系统仅限于硬件设计功能,其中包括有限的内存容量,能耗和计算能力。结果,找到需要多少空闲/繁忙时段的样本以为估计的统计数据提供可接受的准确性水平是非常重要的。因此,这项工作分析了样本量对国际空间站下主要渠道统计数据估计的影响,并找到了空闲/忙碌时段所需样本量的闭式表达式,以实现目标精度。此外,通过仿真和硬件实验验证了这项工作中获得的分析结果。

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