改进的准静态衰落信道非均匀功率分配和多级解码的分层时空结构

Dherar Rezk, Xiaofeng Wang
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引用次数: 0

摘要

由Foschini首创的贝尔实验室分层时空(BLAST)架构被发现可以在中等复杂性下实现高频谱效率。但是,BLAST接收机纠错码的冗余并没有被用于检测改进,检测和解码是分开进行的。本文研究了一种基于多阶段解码(MSD)和层间不均匀传输功率分配的BLAST性能改进方法,用于平面准静态瑞利衰落信道的传输。MSD的使用利用了所使用的信道代码中的固有冗余来改进BLAST中的检测,而不需要复杂的迭代解码方法。此外,我们还研究了在平坦准静态瑞利衰落信道上传输时,各层间传输功率分配不均的问题。首先推导出一个使停电容量最大化的电力分配定理。然后,我们发现在结合MSD检测的BLAST中,保证各层停机能力相等所需的不均匀功率分配。提出的功率分配方法简化了实现,提高了错误性能。仿真结果表明,该结构在平坦准静态瑞利衰落信道上的传输误差性能明显优于现有的BLAST方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improved layered space time architecture over quasi-static fading channels with unequal power allocation and multistage decoding
The Bell labs layered space-time (BLAST) architecture pioneered by Foschini was found to achieve high spectral efficiency with moderate complexity. However, the redundancy in error correcting codes in BLAST receiver is not used in detection improvement, as detection and decoding are carried out separately. In this paper, we investigate a new approach for improved performance of BLAST based on multi- stage decoding (MSD) and unequal transmit power allocation among layers, for transmission over flat quasi-static Rayleigh fading channels. The use of MSD exploits the inherent redundancy in the employed channel codes to improve detection in BLAST without the need for complex iterative decoding approaches. In addition, we investigate unequal transmit power allocation among layers for transmission over flat quasi-static Rayleigh fading channels. We first derive a theorem for power allocation that maximizes outage capacity. We then find the unequal power allocation required to guarantee equal outage capacities among layers in BLAST combined with MSD detection. The proposed power allocation simplifies implementation and improves error performance. Simulation results show that the proposed architecture significantly outperforms existing BLAST schemes in terms of error performance for transmission over flat quasi-static Rayleigh fading channels.
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