Performance Evaluation of Multicarrier Modulation Techniques Using Discrete Wavelet Transform for 5G Wireless Communication System and Beyond
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Abstract
Multicarrier modulation schemes have gained widespread adoption in wireless
communication systems when compared to single-carrier modulations. Multicarrier schemes
can overcome the challenges posed by multipath fading channels. Various researchers have
proposed different multi-carrier modulation techniques to meet customer needs and mitigate
the limitations of existing techniques. One widely adopted multi-carrier modulation technique
in fourth-generation (4G) technology is Orthogonal Frequency Division Multiplexing
(OFDM). However, the current Cyclic Prefix-OFDM (CP-OFDM) falls short of meeting the
demands of 5G wireless communication systems because it suffers from significant
drawbacks, such as Out-of-Band Emission (OOBE) and dependency on CP. To address the
challenges associated with OFDM, different multicarrier modulation techniques such as
Filtered-OFDM (F-OFDM) and Filter Bank Multicarrier Modulation (FBMC) have been
employed. The growing demand for wireless communication has prompted the need for
further advancements in wireless communication systems. In this study, the Discrete Wavelet
Transform (DWT) is introduced as an innovative signal analysis approach within
multicarrier modulation, offering numerous advantages, including support for high-speed
applications, and efficient bandwidth utilization over the existing multi-carrier modulation
techniques. The proposed wavelet-based multi-carrier modulation, featuring higher-order
Quadrature Amplitude Modulation (QAM), aims to address the limitations of OFDM and
other multi-carrier techniques. The performances of each multi-carrier modulation technique
with DWT have been analyzed based on performance parameters such as spectral efficiency
(SE), Power Spectral Density (PSD), Bit Error Rate (BER), Peak-to-Average Power ratio
(PAPR), and Computational Complexity. The performance of wavelet-based multicarrier
modulation achieved significantly higher spectral efficiency, lower computational
complexity, and reduced BER. Simulation results have shown that the PSD of DWT-F-OFDM
achieved a 29.99 dBW/Hz reduction in OOBE compared to the FBMC-QAM techniques.
DWT-based multicarrier modulation provides the lowest PAPR compared to the conventional
candidate multicarrier modulation techniques. From the result analysis, The PAPR
characteristics of haar and bior2.2-based multicarrier schemes reduce the PAPR of OFDM
by 3.72,3.66 and 3.36 dB, FBMC-OQAM by 5.18,4.42 and 4.00 dB, and F-OFDM by 2.42,
2.18 and 2.10 dB for higher-order QAM (64-QAM,256-QAM and 1024-QAM )modulation
respectively compared to existing candidate multi-carrier modulation techniques.
Additionally, the proposed DWT-multicarrier modulation is applied to BER analysis for the
Vehicular and Pedestrian channel models. Based on the result analysis, it is observed that the
bior2.2,sym4, and haar wavelets multicarrier modulation techniques showed better BER
performance for Vehicular A, Vehicular B, and Pedestrian B channel models.
