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Optimal designs for space-time linear precoders and decoders

机译:时空线性预编码器和解码器的最佳设计

摘要

In this paper, we introduce a new paradigm for the design of transmitter space-time coding that we refer to as linear precoding. It leads to simple closed-form solutions for transmission over frequency-selective multiple-input multiple-output (MIMO) channels, which are scalable with respect to the number of antennas, size of the coding block, and transmit average/peak power. The scheme operates as a block transmission system in which vectors of symbols are encoded and modulated through a linear mapping operating jointly in the space and time dimension. The specific designs target minimization of the symbol mean square error and the approximate maximization of the minimum distance between symbol hypotheses, under average and peak power constraints. The solutions are shown to convert the MIMO channel with memory into a set of parallel flat fading subchannels, regardless of the design criterion, while appropriate power/bits loading on the subchannels is the specific signature of the different designs. The proposed designs are compared in terms of various performance measures such as information rate, BER, and symbol mean square error.
机译:在本文中,我们介绍了一种用于发射机空时编码设计的新范例,我们将其称为线性预编码。这就导致了通过频率选择多输入多输出(MIMO)信道进行传输的简单封闭形式解决方案,该解决方案相对于天线的数量,编码块的大小以及发射平均/峰值功率是可伸缩的。该方案用作块传输系统,其中符号的矢量通过在空间和时间维度上共同操作的线性映射被编码和调制。具体的设计目标是在平均功率和峰值功率约束下,最小化符号均方误差和近似最大化符号假设之间的最小距离。示出的解决方案将具有存储器的MIMO信道转换为一组并行的平坦衰落子信道,而与设计标准无关,而子信道上适当的功率/比特负载是不同设计的特定特征。根据各种性能指标(如信息速率,BER和符号均方误差)对建议的设计进行了比较。

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