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The Constellation Modification in Frequency Multiplication on MPSK Data TransmissionERSOY, O. , KARAKOC, M. C. , SAHIN, A. B. |
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Author keywords
constellation modification, frequency multiplication, millimeter wave communication, phase shift keying, 5G mobile communication
References keywords
communications(17), terahertz(12), phase(11), performance(8), systems(7), indoor(7), noise(6), electronics(6), communication(6), access(6)
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About this article
Date of Publication: 2023-11-30
Volume 23, Issue 4, Year 2023, On page(s): 51 - 60
ISSN: 1582-7445, e-ISSN: 1844-7600
Digital Object Identifier: 10.4316/AECE.2023.04006
Web of Science Accession Number: 001147490000007
SCOPUS ID: 85182227910
Abstract
This research aims to introduce an innovative method of constellation modification in MPSK data transmission through utilization of frequency multiplication. This method presents a significant solution for providing efficient data transmission in millimeter wave frequency band, addressing the requisites for high data rates and capacity. However, the application of frequency multiplication to MPSK signal causes problems wherein data recovery becomes unattainable due to nonlinearity. Hence, a modified MPSK modulator is developed. Along with the standard MPSK modulator, back-to-back and line-of-sight (LOS) measurements of the modified MPSK modulator are performed. To conduct the standard and modified MPSK modulators in real-time, the development of transmitter and receiver blocks is undertaken using LabVIEW and experimentation is performed employing the SDRs. Comparative analysis reveals that the modified MPSK modulator, conceived through the proposed method, yields improvement in error performance while mitigating the computational burden from digital processing. Importantly, these enhancements are achieved without necessitating alterations in receiver. BER results for measurements of standard and modified MPSK are obtained. The findings substantiate the effectiveness of the proposed method, manifesting a discernible enhancement in error performance. This method proves appropriate for MPSK data in experimental millimeter wave band investigations utilizing frequency multiplier chains. |
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[1] C. Lin and G. Y. Li, "Energy-Efficient Design of Indoor mmWave and Sub-THz Systems With Antenna Arrays," IEEE Transactions on Wireless Communications, vol. 15, no. 7, pp. 4660-4672, Jul. 2016. [CrossRef] [Web of Science Times Cited 102] [SCOPUS Times Cited 116] [2] S. Ju, Y. Xing, O. Kanhere, and T. S. Rappaport, "Millimeter Wave and Sub-Terahertz Spatial Statistical Channel Model for an Indoor Office Building," IEEE Journal on Selected Areas in Communications, vol. 39, no. 6, pp. 1561-1575, Jun. 2021. [CrossRef] [Web of Science Times Cited 123] [SCOPUS Times Cited 153] [3] H. Zhang et al., "mmWave Indoor Channel Measurement Campaign for 5G New Radio Indoor Broadcasting," IEEE Transactions on Broadcasting, vol. 68, no. 2, pp. 331-344, Jun. 2022. [CrossRef] [Web of Science Times Cited 17] [SCOPUS Times Cited 26] [4] L. Pometcu and R. D'Errico, "Characterization of sub-THz and mmwave propagation channel for indoor scenarios," in 12th European Conference on Antennas and Propagation (EuCAP 2018), Apr. 2018, pp. 1-4. [CrossRef] [SCOPUS Times Cited 27] [5] K. Du, O. Ozdemir, F. Erden, and I. Guvenc, "Sub-Terahertz and mmWave Penetration Loss Measurements for Indoor Environments," in 2021 IEEE International Conference on Communications Workshops (ICC Workshops), Jun. 2021, pp. 1-6. [CrossRef] [Web of Science Times Cited 10] [SCOPUS Times Cited 29] [6] M. Xiao et al., "Millimeter Wave Communications for Future Mobile Networks," in IEEE Journal on Selected Areas in Communications, vol. 35, no. 9, pp. 1909-1935, Sept. 2017. [CrossRef] [Web of Science Times Cited 745] [SCOPUS Times Cited 879] [7] X. Wang et al., "Millimeter Wave Communication: A Comprehensive Survey," in IEEE Communications Surveys & Tutorials, vol. 20, no. 3, pp. 1616-1653, thirdquarter 2018. [CrossRef] [Web of Science Times Cited 348] [SCOPUS Times Cited 445] [8] Z. Chen et al., "Terahertz Wireless Communications for 2030 and Beyond: A Cutting-Edge Frontier," in IEEE Communications Magazine, vol. 59, no. 11, pp. 66-72, November 2021. [CrossRef] [Web of Science Times Cited 95] [SCOPUS Times Cited 127] [9] A. Maestrini et al., "Schottky diode-based terahertz frequency multipliers and mixers," Comptes Rendus Physique, vol. 11, no. 7, pp. 480-495, Aug. 2010. [CrossRef] [Web of Science Times Cited 126] [SCOPUS Times Cited 151] [10] Song, H-J., Nagatsuma, T., Handbook of Terahertz Technologies and Devices and Applications. Pan Stanford Publishing - CRC Press, pp. 101-125, Florida, 2015, 1st edn. [11] M. Schwartz, "Armstrong's invention of noise-suppressing FM [History of Communications]," IEEE Communications Magazine, vol. 47, no. 4, pp. 20-23, Apr. 2009. [CrossRef] [Web of Science Times Cited 3] [SCOPUS Times Cited 4] [12] P. O'Shea, A. Z. Sadik, and Z. M. Hussain, Digital Signal Processing: An Introduction with MATLAB and Applications. Berlin, Heidelberg: Springer, pp. 209-227, 2011. [CrossRef] [Web of Science Times Cited 54] [SCOPUS Times Cited 84] [13] D. L. Woolard, W. R. Loerop, and M. S. Shur, Terahertz Sensing Technology: Volume 1: Electronic Devices and Advanced Systems Technology, vol. 30. in Selected Topics in Electronics and Systems, vol. 30, pp. 79-107, WORLD SCIENTIFIC, 2003. [CrossRef] [14] J. Ward et al., "Capability of THz sources based on Schottky diode frequency multiplier chains," in 2004 IEEE MTT-S International Microwave Symposium Digest (IEEE Cat. No.04CH37535), Jun. 2004, pp. 1587-1590 Vol.3. [CrossRef] [15] Jin, C., "GaN Schottky Diodes for Signal Generation and Control", PhD Thesis, Technical University of Darmstadt, 2015. [16] G. Chattopadhyay, "Technology, Capabilities, and Performance of Low Power Terahertz Sources," IEEE Transactions on Terahertz Science and Technology, vol. 1, no. 1, pp. 33-53, Sep. 2011. [CrossRef] [Web of Science Times Cited 180] [SCOPUS Times Cited 222] [17] A. Hirata, "Millimeter-wave system technologies for wireless communications, imaging, and sensing," IEICE Electronics Express, vol. 12, no. 13, pp. 20152003-20152003, 2015. [CrossRef] [Web of Science Times Cited 3] [SCOPUS Times Cited 4] [18] O. Ersoy and A. B. Sahin, "Investigation of Harmonic Frequency Multiplication on Transmitted Data through Pulse Shaping for 6G Communication," 2020 7th International Conference on Electrical and Electronics Engineering (ICEEE), Antalya, Turkey, 2020, pp. 237-242. [CrossRef] [Web of Science Times Cited 3] [SCOPUS Times Cited 5] [19] O. Ersoy, M. C. Karakoc and v. A. B. Sahin, "Investigation of Faster Than Nyquist Transmission For Terahertz Communication Using Harmonic Receiver," 2021 29th Signal Processing and Communications Applications Conference (SIU), Istanbul, Turkey, 2021, pp. 1-4. [CrossRef] [Web of Science Times Cited 1] [SCOPUS Times Cited 2] [20] O. Ersoy, M. C. Karakoc and A. B. Sahin, "A Novel Constellation Modification Method for Harmonic Modulated MPSK Data Transmission in Millimeter Wave Communication," in IEEE Access, vol. 11, pp. 55281-55296, 2023. [CrossRef] [Web of Science Times Cited 1] [SCOPUS Times Cited 1] [21] S. M. Hashir, "PSK Modulation/Demodulation and Performance Evaluation in FM Band Using USRP," in 2018 Advances in Wireless and Optical Communications (RTUWO), Nov. 2018, pp. 66-71. [CrossRef] [SCOPUS Times Cited 3] [22] H. Harkat, P. Monteiro, A. Gameiro, F. Guiomar, and H. Farhana Thariq Ahmed, "A Survey on MIMO-OFDM Systems: Review of Recent Trends," Signals, vol. 3, no. 2, pp. 359-395, Jun. 2022. [CrossRef] [Web of Science Times Cited 21] [SCOPUS Times Cited 29] [23] L. Y. Hosni, A. Y. Farid, A. A. Elsaadany, and M. A. Safwat, "5G New Radio Prototype Implementation Based on SDR," CN, vol. 12, no. 01, pp. 1-27, 2020. [CrossRef] [24] A. Batra, M. Wiemeler, T. Kreul, D. Goehringer, and T. Kaiser, "A Massive MIMO Signal Processing Architecture for GHz to THz Frequencies," in 2018 First International Workshop on Mobile Terahertz Systems (IWMTS), Jul. 2018, pp. 1-6. [CrossRef] [SCOPUS Times Cited 5] [25] J. Vieira et al., "A flexible 100-antenna testbed for Massive MIMO," in 2014 IEEE Globecom Workshops (GC Wkshps), Dec. 2014, pp. 287-293. [CrossRef] [SCOPUS Times Cited 224] [26] W. Boukley Hasan, P. Harris, A. Doufexi, and M. Beach, "Real-Time Maximum Spectral Efficiency for Massive MIMO and its Limits," IEEE Access, vol. 6, pp. 46122-46133, 2018. [CrossRef] [Web of Science Times Cited 16] [SCOPUS Times Cited 21] [27] S. Malkowsky et al., "The World's First Real-Time Testbed for Massive MIMO: Design, Implementation, and Validation," IEEE Access, vol. 5, pp. 9073-9088, 2017. [CrossRef] [Web of Science Times Cited 140] [SCOPUS Times Cited 166] [28] Proakis, J. G., Salehi, M., Communication Systems Engineering. Prentice-Hall, Upper Saddle River, NJ, pp. 350-432, 2nd edn., 2002. [29] Rappaport, T. S., Wireless Communications Principles and Practice. Prentice-Hall, Upper Saddle River, NJ, pp. 267-294, 1st edn., 2002. [30] T. Kurner, D. M. Mittleman, and T. Nagatsuma, THz Communications: Paving the Way Towards Wireless Tbps. Springer International Publishing, pp. 341-351, 2022. [31] Y. Jang, J. Jeong, and D. Yoon, "Bit Error Floor of MPSK in the Presence of Phase Error", IEEE Transactions on Vehicular Technology, vol. 65, no. 5, pp. 3782-3786, May 2016. [CrossRef] [Web of Science Times Cited 18] [SCOPUS Times Cited 20] [32] C. Bicici, I. Ozdur, and O. Cerezci, "Analysis of oscillator phase noise effect on high order QAM links", Analog Integr. Circ. Sig. Process, vol. 105, no. 1, pp. 1-6, Oct. 2020. [CrossRef] [Web of Science Times Cited 2] [SCOPUS Times Cited 2] [33] T. V. Pham, T. V. Nguyen, and A. T. Pham, "A General Conditional BER Expression of Rectangular QAM in the Presence of Phase Noise", in 2021 IEEE 32nd Annual International Symposium on Personal, Indoor and Mobile Radio Communications (PIMRC), pp. 422-427, Sep. 2021. [CrossRef] [Web of Science Record] [SCOPUS Times Cited 2] [34] S. Ahn, S. An, H. Oh, and D. Yoon, "Approximate Closed-form Expression for the Average BER of M-ary PSK with Gaussian-distributed Phase Error", in 2020 27th International Conference on Telecommunications (ICT), pp. 1-4, Oct. 2020. [CrossRef] [SCOPUS Times Cited 2] [35] X. Deng, H. Yang, Q. Wu, J. Jiang, and C. Lin, "Phase Noise Effects on the Performance of High-Order Digital Modulation Terahertz Communication System", Chinese Journal of Electronics, vol. 31, no. 3, pp. 589-594, May 2022. [CrossRef] [Web of Science Times Cited 3] [SCOPUS Times Cited 6] [36] D. Taggart and R. Kumar, "Impact of phase noise on the performance of the QPSK modulated signal", in 2011 Aerospace Conference, pp. 1-10, Mar. 2011. [CrossRef] [SCOPUS Times Cited 14] [37] Y. Jang, D. Yoon, and S.-K. Lee, "Generalized BER Expression of MPSK in the Presence of Phase Error", IEEE Communications Letters, vol. 17, no. 12, pp. 2213-2216, Dec. 2013. [CrossRef] [Web of Science Times Cited 20] [SCOPUS Times Cited 23] [38] Y. Jang, "Average BER performance of MPSK with noisy phase reference in Nakagami-m fading channel", Electronics Letters, vol. 57, no. 21, pp. 823-825, Oct. 2021. [CrossRef] [Web of Science Times Cited 5] [SCOPUS Times Cited 6] [39] A. Chandra, A. Patra, and C. Bose, "Performance analysis of BPSK over different fading channels with imperfect carrier phase recovery", in 2010 IEEE Symposium on Industrial Electronics and Applications (ISIEA), pp. 106-111, Oct. 2010. [CrossRef] [SCOPUS Times Cited 10] [40] P. Desombre, H. Farès, and Y. Louët, "Performance Comparison of Digital Modulations in the Presence of Gaussian Phase Noise in the Sub-THz Context", in 2021 Fourth International Workshop on Mobile Terahertz Systems (IWMTS), pp. 1-5, Jul. 2021. [CrossRef] [Web of Science Times Cited 5] [SCOPUS Times Cited 5] [41] A. Chandra, D. Biswas, and C. Bose, "BER Performance of Coherent PSK in Rayleigh Fading Channel with Imperfect Phase Estimation", in 2010 International Conference on Recent Trends in Information, Telecommunication and Computing, pp. 130-134, Mar. 2010. 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