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Spectrum Behavior Prediction and Optimized Throughput /Time performance Using FFNN in Cognitive Radio

机译:认知无线电中基于FFNN的频谱行为预测和优化的吞吐量/时间性能

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Progressively, number of radio spectrum users is increasing as life tends towards new technologies in all sectors, so even those users of licensed band are demanding larger radio spectrum. Users may get assigned into other bands to balance the radio spectrum congestion. In this paper, radio spectrum is sensed for void detection and secondary user assignment. Cognitive users are participating the white band either by transmitting alongside with primary users or waiting until the hole is getting vacant. During the period of transmission, the behaviors of primary users are studied for determining the spectrum occupancy status. The activity of primary users is simulated as random variables due to uncertain behaviors from time perspectives. Issues like channel noise and fading effects stand as interrupters of spectrum sensing which make spectrum holes to appear busy due to such incidents. Cognitive Radio network is modeled by using MATLAB software so that both primary and secondary users can sense the spectrum and share the spectrum effectively by employing the approach of waiting time estimator which provides behaviors and activity matrix. Candidates are made to share the spectrum and hereafter transmission delay and throughput are examined when underlay and interweave spectrum sharing were in use. Three techniques are used to share the spectrum which are underlay, interweave and Feed Forward Neural Network. The results shown that feed forward neural network is outperformed in both time delay minimization and throughput enhancement.
机译:随着各领域人们对新技术的趋向,无线电频谱用户的数量逐渐增加,因此,即使是那些许可频段的用户也要求更大的无线电频谱。用户可能会被分配到其他频段以平衡无线电频谱的拥塞。在本文中,对无线电频谱进行感知以进行无效检测和辅助用户分配。认知用户通过与主要用户一起传输或等到空洞而参与白带。在传输期间,研究主要用户的行为以确定频谱占用状态。由于时间的不确定性,主要用户的活动被模拟为随机变量。诸如信道噪声和衰落效应之类的问题成为频谱感应的中断者,由于此类事件,频谱洞显得很忙。认知无线电网络是使用MATLAB软件建模的,因此,主要和次要用户都可以通过使用提供行为和活动矩阵的等待时间估计器的方法来感知频谱并有效地共享频谱。使候选者共享频谱,此后在使用底层频谱和交织频谱共享时检查传输延迟和吞吐量。三种技术用于共享频谱,分别是底层,交织和前馈神经网络。结果表明,前馈神经网络在时间延迟最小化和吞吐量提高方面均表现出色。

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