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Capacity of multiple-antenna systems with both receiver and transmitter channel state information

机译:具有接收器和发射器信道状态信息的多天线系统的容量

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The capacity of multiple-antenna systems operating in Rayleigh flat fading is considered under the assumptions that channel state information (CSI) is available at both transmitter and receiver, and that the transmitter is subjected to an average power constraint. First, the capacity of such systems is derived for the special case of multiple transmit antennas and a single receive antenna. The optimal power-allocation scheme for such a system is shown to be a water-filling algorithm, and the corresponding capacity is seen to be the same as that of a system having multiple receive antennas (with a single transmitter antenna) whose outputs are combined via maximal ratio combining. A suboptimal adaptive transmission technique that transmits only over the antenna having the best channel is also proposed for this special case. It is shown that the capacity of such a system under the proposed suboptimal adaptive transmission scheme is the same as the capacity of a system having multiple receiver antennas (with a single transmitter antenna) combined via selection combining. Next, the capacity of a general system of multiple transmitter and receiver antennas is derived together with an equation that determines the cutoff value for such a system. The optimal power allocation scheme for such a multiple-antenna system is given by a matrix water-filling algorithm. In order to eliminate the need for cumbersome numerical techniques in solving the cutoff equation, approximate expressions for the cutoff transmission value are also provided. It is shown that, compared to the case in which there is only receiver CSI, large capacity gains are available with optimal power and rate adaptation schemes. The increased capacity is shown to come at the price of channel outage, and bounds are derived for this outage probability.
机译:在假设信道状态信息(CSI)在发射机和接收机上均可用并且发射机受到平均功率约束的假设下,考虑了在瑞利平坦衰落下工作的多天线系统的容量。首先,对于多个发射天线和单个接收天线的特殊情况,推导了此类系统的容量。该系统的最佳功率分配方案显示为注水算法,并且相应的容量被视为与具有多个接收天线(带有单个发射器天线)的系统相同,其输出被组合在一起。通过最大比例合并。对于这种特殊情况,还提出了仅在具有最佳信道的天线上进行传输的次优自适应传输技术。示出了在所提出的次优自适应传输方案下的这种系统的容量与具有通过选择合并而组合的具有多个接收器天线(具有单个发射器天线)的系统的容量相同。接下来,推导具有多个发射器和接收器天线的一般系统的容量以及确定该系统的截止值的方程式。这种多天线系统的最佳功率分配方案是通过矩阵注水算法给出的。为了消除求解截止方程所需的繁琐的数值技术,还提供了截止透射值的近似表达式。结果表明,与只有接收机CSI的情况相比,采用最佳功率和速率自适应方案可获得大容量增益。事实证明,增加的容量是以信道中断为代价的,并且为此中断概率得出了界限。

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