Localization based on active learning for cognitive radio networks

Huifeng Wang, Zhan Gao, Qiao Yin
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Abstract

Most of existing works on primary user (PU) localization locate primary transmitter (PT) while the purpose of localization is to avoid interfering with primary receiver (PR). Therefore, it is more important to locate PR. In this paper, we propose a PR localization method based on active learning. The secondary user (SU) initiatively sends a probing signal to interfere with the PU, then the PU adapts transmit power and/or rate upon the interference signal and such transmit adaptations are observed by the SU, whereby the SU learns the PU's strategy for transmit adaptations. From the observation, the SU estimates the distance between the PR and the SU. Finally, the location of the PR can be estimated by maximum likelihood estimation without prior information of the PR transmission power. Simulation results are provided to evaluate the effectiveness of the proposed schemes under different system setups.
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基于主动学习的认知无线电网络定位
现有的主用户定位方法大多是定位主发射机,而定位的目的是为了避免对主接收机的干扰。因此,PR定位就显得尤为重要。本文提出了一种基于主动学习的PR定位方法。辅助用户(SU)主动发送探测信号干扰PU,然后PU根据干扰信号调整发射功率和/或速率,这种发射适应由SU观察,SU据此学习PU的发射适应策略。从观测结果中,SU估计出PR与SU之间的距离,最后在不需要PR发射功率先验信息的情况下,通过最大似然估计估计出PR的位置。仿真结果验证了所提方案在不同系统设置下的有效性。
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