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首页> 外文期刊>Wireless personal communications: An Internaional Journal >Cognitive Radio with Reinforcement Learning Applied to Multicast Downlink Transmission with Power Adjustment
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Cognitive Radio with Reinforcement Learning Applied to Multicast Downlink Transmission with Power Adjustment

机译:具有增强学习功能的认知无线电应用于功率调整的组播下行链路传输

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摘要

This paper shows how channel assignment in multicast terrestrial communication systems with distributed channel occupancy detection can be improved using intelligence based on reinforcement learning and transmitter power adjustment. It is shown how such schemes greatly reduce the number of reassignments and improve the dropping probability, at the expense of increased blocking. It is found that using different minimum quality of service threshold percentages can partly control and improve the performance, in place of the more traditional SINR threshold levels. The paper also shows how a power adjustment technique is developed which significantly reduces the level of overlap between adjacent base stations, and further reduces interference and transmitter power.
机译:本文展示了如何使用基于强化学习和发射机功率调整的智能来改善具有分布式信道占用检测功能的组播地面通信系统中的信道分配。显示了这种方案如何以减少阻塞为代价,大大减少了重新分配的次数并提高了掉线概率。发现使用不同的最低服务质量阈值百分比可以部分控制和改善性能,以代替更传统的SINR阈值水平。本文还显示了如何开发功率调整技术,该技术可显着降低相邻基站之间的重叠水平,并进一步降低干扰和发射机功率。

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