Double the data rate in underwater acoustic communication using OFDM based on subcarrier power modulation

IF 2.7 4区 工程技术 Q2 ENGINEERING, CIVIL Journal of Marine Science and Technology Pub Date : 2024-02-28 DOI:10.1007/s00773-024-00989-2
Hussam Alraie, Raji Alahmad, Kazuo Ishii
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Abstract

Underwater communication is one of the most important and difficult challenges facing researchers due to the high attenuation of the signal, communication with the surface because of the harsh medium of water, and data transmission performance degradation as a result of various effects. Underwater acoustic communication (UWA) has a low data rate, which describes the disadvantage of this type of communication. In addition, it has a low bandwidth range and high latency but has a long transmission range as an advantage. Multicarrier wireless transmission systems increase the data rate by sending the data using more than one carrier. We proposed a noncoherent orthogonal frequency division multiplexing (OFDM) method to increase the data rate in UWA communication systems. In addition, doubling the data rate in the OFDM using Subcarrier Power Modulation (OFDM-SPM) system can save half of the bandwidth. The MATLAB simulation program was used to implement the system in the underwater acoustic environment to increase its throughput. The proposed design uses Differential Phase Shift Keying (DPSK) with power control, and the data stream is transmitted through two-dimensional modulation schemes, the DPSK, and the power level of each subcarrier in the OFDM system with cyclic prefix (CP). The underwater channel was designed using a Rician fading multipath with a spreading loss formula as a function of distance and frequency. We designed an equalizer at the receiver side to recover the original signal as a function of three parameters which are: the channel effect as a rate between transmitting and receiving symbols, the Rician channel response, and the UWA spreading loss. OFDM-Subcarrier Power Modulation (OFDM-SPM) using the proposed equalizer performed better than the theoretical OFDM-SPM in the Rayleigh channel. The designed equalizer increased the performance of the OFDM-SPM system by 25% which helped to enhance the system’s throughput and doubled the data rate compared with the OFDM system, doubling the data rate using OFDM-SPM had been validated in laboratory experiments in the Time domain.

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利用基于子载波功率调制的 OFDM 将水下声学通信的数据速率提高一倍
水下通信是研究人员面临的最重要和最困难的挑战之一,因为信号衰减大,与水面的通信因水这种恶劣的介质而受到影响,数据传输性能也因各种影响而下降。水下声学通信(UWA)的数据传输率较低,这说明了这种通信方式的缺点。此外,它的带宽范围小,延迟时间长,但传输距离远是其优点。多载波无线传输系统通过使用一个以上的载波发送数据来提高数据传输速率。我们提出了一种非相干正交频分复用(OFDM)方法,以提高 UWA 通信系统的数据传输速率。此外,在使用子载波功率调制(OFDM-SPM)的 OFDM 系统中,将数据传输率提高一倍可节省一半的带宽。我们使用 MATLAB 仿真程序在水下声学环境中实现该系统,以提高其吞吐量。拟议的设计采用带功率控制的差分相移键控(DPSK),数据流通过二维调制方案、DPSK 和带循环前缀(CP)的 OFDM 系统中每个子载波的功率电平进行传输。水下信道采用里氏衰减多径设计,传播损耗公式是距离和频率的函数。我们在接收器端设计了一个均衡器,以恢复原始信号,这三个参数分别是:作为发送和接收符号之间速率的信道效应、Rician 信道响应和 UWA 传播损耗。在瑞利信道中,使用所提均衡器的 OFDM-子载波功率调制(OFDM-SPM)的性能优于理论 OFDM-SPM。所设计的均衡器将 OFDM-SPM 系统的性能提高了 25%,这有助于提高系统的吞吐量,与 OFDM 系统相比,数据传输速率提高了一倍。
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来源期刊
Journal of Marine Science and Technology
Journal of Marine Science and Technology 工程技术-工程:海洋
CiteScore
5.60
自引率
3.80%
发文量
47
审稿时长
7.5 months
期刊介绍: The Journal of Marine Science and Technology (JMST), presently indexed in EI and SCI Expanded, publishes original, high-quality, peer-reviewed research papers on marine studies including engineering, pure and applied science, and technology. The full text of the published papers is also made accessible at the JMST website to allow a rapid circulation.
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