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A Study on Large-Scale Signal Detection Using Gaussian Belief Propagation in Overloaded Interleave Division Multiple Access

机译:高斯置信传播下高斯置信度传播的大规模信号检测研究

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With the progress of IoT, an explosive increase in the number of devices connected to the Internet is predicted. Among multiple access techniques for the IoT, non-orthogonal multiple access (NOMA) has been attracting attention. Interleave division multiple access (IDMA), which is one of the NOMA techniques, detects transmitted data sequences based on a property that each terminal uses its own unique interleave pattern. In this paper, we apply Gaussian belief propagation (GaBP) to IDMA signal detection of hundreds of users, and evaluate the detection performance when the repetition code rate is larger than the inverse of the number of users. In addition, the performance when terminating the iteration for the error-free users using the cyclic redundancy check (CRC) is also evaluated. The simulation results show that the GaBP with CRC achieves both good BER performance and reduction of the number of iterations in the overloaded case.
机译:随着物联网的发展,预计连接到Internet的设备数量将呈爆炸性增长。在物联网的多址技术中,非正交多址(NOMA)一直引起人们的关注。作为NOMA技术之一的交错划分多路访问(IDMA),基于每个终端使用其自己独特的交错模式的属性来检测发送的数据序列。在本文中,我们将高斯置信传播(GaBP)应用于数百个用户的IDMA信号检测,并在重复码率大于用户数的倒数时评估检测性能。此外,还评估了使用循环冗余校验(CRC)终止无错误用户的迭代时的性能。仿真结果表明,在过载情况下,带CRC的GaBP既可以实现良好的BER性能,又可以减少迭代次数。

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