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Complexity Reduction Schemes for Gibbs Sampling MIMO Detection with Maximum Ratio Combining

机译:具有最大比率组合的Gibbs采样MIMO检测的复杂度降低方案

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In this paper, complexity reduction schemes for Gibbs sampling multi-input multi-output (MIMO) detection with maximum ratio combining are proposed. In a conventional Gibbs sampling MIMO detection algorithm, the Gibbs sampling is directly applied to a received signal. Thus, a squared Euclid distance between the received signal vector and a candidate symbol vector is calculated as a metric and it requires (2 × No. of received antennas) multiplication operations. On the other hand, in a proposed algorithm, each candidate symbol is updated with a metric calculated by two multiplication operations. However, after each iteration, another metric is also need to be calculated to select the best candidate symbol vector. To reduce the number of multiplication operations, a summation and subtraction metric (SSM) is applied. Furthermore, as an initial transmit symbol vector, a zero vector is applied in the conventional and proposed Gibbs sampling MIMO detection algorithms since the receiver can avoid to calculate the pseudo inverse of a channel matrix. The bit error rate performance and the complexities of these schemes are compared with that of QR decomposition with M-algorithm (QRM)-maximum likelihood detection (MLD). Numerical results obtained through computer simulation show that the proposed Gibbs sampling MIMO detection algorithm is less complex when the numbers of transmit signals and received antennas are more than 32 × 32.
机译:提出了一种基于最大比率组合的吉布斯采样多输入多输出(MIMO)检测的复杂度降低方案。在常规的吉布斯采样MIMO检测算法中,吉布斯采样直接应用于接收信号。因此,接收信号向量和候选符号向量之间的平方欧几里德距离被计算为度量,并且需要(2×接收天线数)乘法运算。另一方面,在提出的算法中,每个候选符号用通过两次乘法运算计算出的度量来更新。但是,在每次迭代之后,还需要计算另一个度量以选择最佳候选符号向量。为了减少乘法运算的数量,应用了加减法(SSM)。此外,由于接收器可以避免计算信道矩阵的伪逆,因此在传统和提议的吉布斯采样MIMO检测算法中将零向量用作初始发送符号向量。将这些方案的误码率性能和复杂性与采用M算法(QRM)-最大似然检测(MLD)的QR分解的性能进行了比较。通过计算机仿真得到的数值结果表明,当发射信号和接收天线的数量大于32×32时,所提出的Gibbs采样MIMO检测算法较不复杂。

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