利用脉冲整形函数降低水声通信系统OFDM载波间干扰

Hamada Esmaiel, D. Jiang
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引用次数: 4

摘要

由于多径传播和频率选择性衰落,水声通信的可靠性和高数据速率存在诸多障碍。OFDM在水下信道中的有效应用还受到载波频偏的高灵敏度的影响,载波频偏会由于载波间干扰(ICI)而使子载波间的正交性发生扭曲。带宽有限的系统通常采用脉冲整形技术来减少ICI,并尽量减少接收机错误的可能性。这种减少可以通过尽可能减少侧叶来实现。由于侧瓣增加了信号干扰功率,也导致了信号干扰比(SIR)的降低。本文研究了脉冲整形技术下水声信道的ICI和SIR性能。对基于OFDM的离散傅立叶变换(DFT)脉冲和基于离散余弦变换(DCT)脉冲的性能进行了比较。仿真结果表明,与其他几种常用脉冲相比,改进的提升余弦脉冲形状技术在水声信道的ICI降功率、SIR和误码率性能方面具有更好的性能。在水声信道中,IDCT-OFDM具有较强的抗载波间干扰能力。所得到的系统也显示出相当好的误码率性能。然后提出了基于识别信号脉冲的系统方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
OFDM Inter-Carrier Interference reduction using pulse shaping function for underwater acoustic communications systems
Due to multipath propagation and frequency selective fading, there are many obstacles for reliable and high data rate underwater acoustic (UWA) communication. The effective use of OFDM in underwater channel also suffers from its high sensitivity to carrier frequency offset, which distorts the orthogonality between subcarriers due to Inter-Carrier Interference (ICI). Bandwidth limited systems often employ pulse shaping techniques for the reduction of ICI, and minimize the likelihood of errors at the receiver. Such reduction can be achieved by minimizing the side lobes as much as possible. Since the side lobes contribute to the ICI power, which also results in the decrease of Signal to Interference Ratio (SIR). In this paper, the ICI and SIR performance under pulse shaping technique is studied for underwater acoustic channel. Performance comparison of OFDM Discrete Fourier Transform (DFT)-based pulses and Discrete Cosine Transform (DCT)-based pulses is conducted. Simulation results show that, the modified raised cosine pulse shape technique can achieve better performance of ICI power reduction, SIR and BER performances for underwater acoustic channel in comparison to several other commonly used pulses. The IDCT-OFDM is strongly resistant to inter-carrier interference in underwater acoustic channel. The resultant system can also demonstrate reasonably good bit error rate performance. A system scheme is then proposed based on the identified signal pulse.
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