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Efficient joint maximum-likelihood channel estimation and signal detection

机译:高效的联合最大似然信道估计和信号检测

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摘要

In wireless communication systems, channel state information is often assumed to be available at the receiver. Traditionally, a training sequence is used to obtain the estimate of the channel. Alternatively, the channel can be identified using known properties of the transmitted signal. However, the computational effort required to find the joint ML solution to the symbol detection and channel estimation problem increases exponentially with the dimension of the problem. To significantly reduce this computational effort, we formulate the joint ML estimation and detection as an integer least-squares problem, and show that for a wide range of signal-to-noise ratios (SNR) and problem dimensions it can be solved via sphere decoding with expected complexity comparable to the complexity of heuristicudtechniques.
机译:在无线通信系统中,通常假定信道状态信息在接收机处可用。传统上,训练序列用于获得信道的估计。可替代地,可以使用发射信号的已知特性来识别信道。但是,找到针对符号检测和信道估计问题的联合ML解决方案所需的计算量随问题的规模呈指数增长。为了显着减少这种计算量,我们将联合ML估计和检测公式化为整数最小二乘问题,并表明对于宽范围的信噪比(SNR)和问题维度,可以通过球面解码来解决预期的复杂度可与启发式 udtechniques的复杂度相提并论。

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