Self-interference cancellation in underwater acoustic communications systems using orthogonal pilots in IBFD

IF 0.6 Q3 ENGINEERING, MULTIDISCIPLINARY Acta Polytechnica Pub Date : 2023-03-02 DOI:10.14311/ap.2023.63.0023
Hala A. Naman, A. E. Abdelkareem
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Abstract

This paper proposes a Self-interference (SI) cancellation system model of Underwater acoustic (UWA) communication for in-band full-duplex (IBFD) technology. The SI channel is separated from the Far channel by exploiting a concurrently orthogonal pilot channel estimation technique using two orthogonal frequency-division multiplexing (OFDM) blocks to establish orthogonality between them based on a unitary matrix. Compared to the half-duplex channel estimator, the mean squared error (MSE) and the bit error rate (BER) provided strong evidence for the efficiency of the proposed SI cancellation. Since full-duplex systems are more efficient than half-duplex ones, the proposed approach might be seen as a viable option for them. The proposed method proved effective when used with a fixed full-duplex (FD) position and FD shifting of up to 4°. Different channel lengths and distances are adopted to evaluate the proposed method. Initial findings indicate that MSE for the SI channel minimum mean-square error (MMSE) estimator at 20 dB is 0.118 · 10−3, for fixed FD. In addition, this paper presents a geometry channel model for the Far channel in the IBFD underwater communication system that describes the propagation delay of the multipath reflection. The simulation results for the multipath propagation delay spread are similar to the traditional results, with the delay spread of the suggested model reaching (79 ms), which is close to the Bellhop simulator result (78 ms).
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基于IBFD正交导频的水声通信系统自干扰消除
本文提出了一种适用于带内全双工(IBFD)技术的水声通信自干扰(SI)消除系统模型。通过利用使用两个正交频分复用(OFDM)块的同时正交导频信道估计技术,将SI信道与远信道分离,以基于酉矩阵在它们之间建立正交性。与半双工信道估计器相比,均方误差(MSE)和误码率(BER)为所提出的SI消除的效率提供了有力的证据。由于全双工系统比半双工系统更有效率,因此所提出的方法可能被视为一种可行的选择。当使用固定的全双工(FD)位置和高达4°的FD移位时,所提出的方法被证明是有效的。采用不同的通道长度和距离来评估所提出的方法。初步结果表明,对于固定FD,SI信道最小均方误差(MMSE)估计器在20 dB时的MSE为0.118·10−3。此外,本文还提出了IBFD水下通信系统中远信道的几何信道模型,该模型描述了多径反射的传播延迟。多径传播延迟扩展的模拟结果与传统结果相似,所提出的模型的延迟扩展达到(79ms),接近Bellhop模拟器的结果(78ms)。
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来源期刊
Acta Polytechnica
Acta Polytechnica ENGINEERING, MULTIDISCIPLINARY-
CiteScore
1.90
自引率
12.50%
发文量
49
审稿时长
24 weeks
期刊介绍: Acta Polytechnica is a scientific journal published by CTU in Prague. The main title, Acta Polytechnica, is accompanied by the subtitle Journal of Advanced Engineering, which defines the scope of the journal more precisely - Acta Polytechnica covers a wide spectrum of engineering topics, physics and mathematics. Our aim is to be a high-quality multi-disciplinary journal publishing the results of basic research and also applied research. We place emphasis on the quality of all published papers. The journal should also serve as a bridge between basic research in natural sciences and applied research in all technical disciplines. The innovative research results published by young researchers or by postdoctoral fellows, and also the high-quality papers by researchers from the international scientific community, reflect the good position of CTU in the World University Rankings. We hope that you will find our journal interesting, and that it will serve as a valuable source of scientific information.
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