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Joint Predictive Control of Power and Rate for Wireless Networks 被引量:6
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作者 KONG Shu-Lan ZHANG Huan-Shui +1 位作者 ZHANG Zhao-Sheng ZHANG Cheng-Hui 《自动化学报》 EI CSCD 北大核心 2007年第7期761-764,共4页
为了在分布式的无线网络,预兆的力量和率控制计划减轻循环延期,为系统模型被建议也说明拥挤层次和输入延期而不是在一个网络推迟状态。有输入延期的一个测量反馈控制问题被最小化之间的差别的精力提出实际并且控制的需要的 signal-to-... 为了在分布式的无线网络,预兆的力量和率控制计划减轻循环延期,为系统模型被建议也说明拥挤层次和输入延期而不是在一个网络推迟状态。有输入延期的一个测量反馈控制问题被最小化之间的差别的精力提出实际并且控制的需要的 signal-to-interference-plus-noise 比率(SNR ) 层次,以及精力定序。解决这个问题,我们在场为控制的二个 Riccati 方程和在时间的评价推迟系统。一个完全的分析最佳的控制器被使用分离原则并且解决二个 Riccati 方程获得,在一个人是为随机的线性二次的规定的向后的方程,其它是标准过滤 Riccati 方程的地方。模拟结果说明建议力量和率控制计划的表演。 展开更多
关键词 无线网络 预知功率控制 卡尔曼过滤 时滞状态
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Stochastic Modeling and Power Control of Time-Varying Wireless Communication Networks
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作者 Mohammed M. Olama Seddik M. Djouadi Charalambos D. Charalambous 《Communications and Network》 2014年第3期155-164,共10页
Wireless networks are characterized by nodes mobility, which makes the propagation environment time-varying and subject to fading. As a consequence, the statistical characteristics of the received signal vary continuo... Wireless networks are characterized by nodes mobility, which makes the propagation environment time-varying and subject to fading. As a consequence, the statistical characteristics of the received signal vary continuously, giving rise to a Doppler power spectral density (DPSD) that varies from one observation instant to the next. This paper is concerned with dynamical modeling of time-varying wireless fading channels, their estimation and parameter identification, and optimal power control from received signal measurement data. The wireless channel is characterized using a stochastic state-space form and derived by approximating the time-varying DPSD of the channel. The expected maximization and Kalman filter are employed to recursively identify and estimate the channel parameters and states, respectively, from online received signal strength measured data. Moreover, we investigate a centralized optimal power control algorithm based on predictable strategies and employing the estimated channel parameters and states. The proposed models together with the estimation and power control algorithms are tested using experimental measurement data and the results are presented. 展开更多
关键词 wireless networks time-VARYING wireless Fading Channel Impulse Response Doppler power Spectral Density STOCHASTIC STATE-SPACE Model STOCHASTIC Modeling Optimal power control EXPECTATION Maximization kalman filter
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