Influence of imperfect cophasing on performance of EGC receiver of BPSK and QPSK signals transmitted over Weibull fading channel

G. Djordjevic, Dejan N. Milic, A. Cvetkovic, M. Stefanovic
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引用次数: 2

Abstract

This paper presents an analysis of maximum ratio combining (MRC) receiver of quaternary phase-shift keying (QPSK) signals transmitted over a Weibull fading channel. We determine the influence of imperfect cophasing and branches unbalance on bit error rate dependence on average signal-to-noise ratio. The performance dependence on diversity order and fading severity is also observed. Keywords — Cophasing, Diversity systems, Error probability, Fading. I. INTRODUCTION N order to reduce the influence of multipath fading on signal detection, it is possible to use spatially separated receiver antennas at the reception and to combine the signals from different branches of the receiver in a certain manner. The optimal combining technique is maximum ratio combining (MRC). This combining technique involves cophasing of the useful signal in all branches, multiplication of the received signal in each branch by the estimated envelope of that particular signal and summing of the received signals from all antennas (1). By cophasing, all the random phase fluctuations of the signal that emerged during the transmission are eliminated. For this process it is necessary to estimate the phase of the received signal. This phase estimation can be performed from the modulated or unmodulated received signal carrier. In previous papers concerning this matter the assumptions of the ideal phase estimation of the incoming signal were mainly used (2), (3). Only in (4) and (5) the influence of the imperfect phase estimation was examined and that was in the case of the equal gain combining (EGC) in the receiver. In paper (4), the influence of the phase error on the error probability in the case of digital binary (BPSK) and quaternary phase-shift keying (QPSK) signal detection was observed. This error probability was calculated applying the Gram-Charlier expansion. The analysis is performed under the assumption of the uncorrelated Rayleigh fading at receiving antennas. In paper (5) closed-form expressions for outage probability and error probability during the BPSK and QPSK signal detection over the Nakagami-m fading channel were obtained. Dual branch EGC technique was applied. In both papers the analysis of the system was done under the assumption that the branches of the receiver are balanced. However, as it is well-known (6), it is very rare to meet in practice the identical propagation paths in each branch. Also, the electrical components in different branches of the receiver are not ideal. Thus, it is also of interest to consider the influence of the branch unbalance in the receiver on system performances. In this paper an analysis of QPSK signal reception is presented. The signal is transmitted over the Weibull fading channel and MRC technique is applied in the receiver, while the receiving branches are assumed unbalanced. The phase estimation is performed from the unmodulated carrier and is not ideal. The difference between the phase of the incoming signal and the estimated phase for that signal is a statistical process and it follows the Tikhonov distribution (4), (5), (7). It is shown in which measure the imperfect phase estimation affects the bit-error rate (BER).
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不完全相位对威布尔衰落信道中BPSK和QPSK信号EGC接收机性能的影响
本文分析了在威布尔衰落信道上传输的四元相移键控(QPSK)信号的最大比组合(MRC)接收机。根据平均信噪比确定了不完全相位和支路不平衡对误码率的影响。分析了分集顺序和衰落严重程度对性能的影响。关键词:共相,分集系统,误差概率,衰落。为了减少多径衰落对信号检测的影响,可以在接收端使用空间分离的接收天线,并将接收端不同支路的信号以一定的方式组合在一起。最优组合技术为最大比值组合(MRC)。这种组合技术包括对所有支路的有用信号进行共相,将每个支路的接收信号乘以该特定信号的估计包络,并将来自所有天线的接收信号相加(1)。通过共相,消除了传输过程中出现的所有随机相位波动。对于这个过程,有必要估计接收信号的相位。相位估计可以从调制或未调制的接收信号载波进行。在以往关于这一问题的论文中,主要采用了输入信号的理想相位估计的假设(2)、(3)。只有在(4)和(5)中研究了不完全相位估计的影响,这是在接收机等增益组合(EGC)的情况下。在论文(4)中,观察了数字二进制(BPSK)和四元相移键控(QPSK)信号检测中相位误差对误差概率的影响。应用Gram-Charlier展开计算了该误差概率。分析是在假设接收天线存在不相关瑞利衰落的情况下进行的。论文(5)给出了在Nakagami-m衰落信道上BPSK和QPSK信号检测时的中断概率和错误概率的封闭表达式。采用双支EGC技术。在这两篇论文中,系统的分析都是在假设接收支路是平衡的情况下进行的。然而,众所周知(6),在实践中,在每个分支中遇到相同的传播路径是非常罕见的。此外,接收机不同支路的电气元件也不理想。因此,考虑接收端支路不平衡对系统性能的影响也是值得关注的。本文对QPSK信号的接收进行了分析。信号在威布尔衰落信道上传输,接收机采用MRC技术,假设接收支路不平衡。相位估计是从未调制载波进行的,并不理想。输入信号的相位与估计信号的相位之差是一个统计过程,它遵循Tikhonov分布(4)、(5)、(7)。如图所示,不完全相位估计会影响误码率(BER)。
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