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Optimal signaling and detector design for M-ary communication systems in the presence of multiple additive noise channels

机译:存在多个附加噪声通道的Mary通信系统的最佳信令和检测器设计

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摘要

An M-ary communication system is considered in which the transmitter and the receiver are connecte via multiple additive (possibly non-Gaussian) noise channels, any one of which can be utilized for the transmission of a given symbol. Contrary to deterministic signaling (i.e., employing a fixed constellation), a stochastic signaling approach is adopted by treating the signal values transmitted for each information symbol over each channel as random variables. In particular, the joint optimization of the channel switching (i.e., time sharing among different channels) strategy, stochastic signals, and decision rultes at the receiver is performed in order to minimize the average probability of error under an average transmit power constraint. It is proved that the solution to this problem involves either one of the following: (i) deterministic signaling over a single channel, (ii) randomizing (time sharing) betwee two different signal constellations over a single channel, or (iii) switching (time sharing) between two channels with deterministic signaling over each channel. For all cases, the optimal strategies are shown to employ corresponding maximum a posteriori probability (MAP) decision rules at the receiver. In additio sufficient conditions are derived in order to specify whether the proposed strategy can or cannot improve the error performance over the conventional approach, in which a single channel is employed with deterministic signaling at the average power limit. Finally, numerical examples are presented to illustrate the theoretical results.
机译:考虑了一种M进制通信系统,其中,发射机和接收机通过多个加性(可能是非高斯)噪声信道连接,其中任何一个噪声信道均可用于给定符号的传输。与确定性信令(即,采用固定的星座)相反,通过将在每个信道上针对每个信息符号传输的信号值视为随机变量,采用了随机信令方法。特别地,执行信道切换策略(即,不同信道之间的时间共享),接收机处的随机信号和决策规则的联合优化,以使在平均发射功率约束下的平均错误概率最小。事实证明,该问题的解决方案涉及以下任一情况:(i)在单个通道上进行确定性信令;(ii)在单个通道上将两个不同信号星座图随机化(分时),或(iii)切换(两个通道之间的时间共享),每个通道上都有确定的信令。对于所有情况,最佳策略都显示为在接收器处采用相应的最大后验概率(MAP)决策规则。另外,导出足够的条件以便指定所提议的策略是否可以改善传统方法的错误性能,在传统方法中,采用单个信道并在平均功率极限下使用确定性信令。最后,通过数值例子说明了理论结果。

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