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Article

Design and Performance Evaluation of Communication Systems Based on Non-Orthogonal Overlapped Chirp Modulation

1
State Grid Hebei Electric Power Company Co., Ltd., Shijiazhuang 050000, China
2
Information & Telecommunication Branch, State Grid Hebei Electric Power Company Co., Ltd., Shijiazhuang 050000, China
3
School of Information Science and Engineering, Southeast University, Nanjing 210096, China
*
Author to whom correspondence should be addressed.
Symmetry 2026, 18(3), 412; https://doi.org/10.3390/sym18030412
Submission received: 27 November 2025 / Revised: 27 January 2026 / Accepted: 29 January 2026 / Published: 27 February 2026
(This article belongs to the Section F: Engineering and Materials)

Abstract

With the evolution of smart grids, power communication networks are increasingly required to support high-bandwidth and diversified services such as high-definition video, real-time control, and positioning—services that impose dual challenges of communication capacity and spectrum constraints—under severe resource limitations. Conventional orthogonal modulation schemes exhibit significant limitations in spectral efficiency and concurrent access capabilities, particularly in supporting high-density user environments. To address this, we propose a communication system based on non-orthogonal overlapped chirp modulation, in which the intrinsic symmetry properties of chirp waveforms are utilized to enhance system design and performance. We first construct the system architecture with a multi-symbol concurrent transmission scheme and introduce continuous orthogonal phase modulation to improve symbol distinguishability and mitigate inter-symbol interference—an approach that effectively harnesses signal symmetry for interference suppression. At the receiver, a low-complexity demodulation algorithm based on correlation matrix computation is developed, further improved through oversampling techniques that exploit temporal and spectral symmetry in signal design. Monte Carlo simulations confirm that the proposed system outperforms traditional orthogonal chirp and orthogonal frequency division multiplexing systems in bit error rate performance and spectral efficiency across varying signal-to-noise ratios and modulation schemes. The proposed NOOC system achieves spectral efficiency scaling linearly with concurrency level K, reaching up to 16 bits/s/Hz for K = 16 with BPSK, compared to 1 bit/s/Hz in orthogonal systems. The study provides both a theoretical foundation and practical insights for developing symmetry-aware, efficient, and reliable air interface technologies suitable for future power-private networks.
Keywords: non-orthogonal overlapped chirp communication; continuous orthogonal phase modulation; low-complexity reception; spectral efficiency enhancement; power communication networks non-orthogonal overlapped chirp communication; continuous orthogonal phase modulation; low-complexity reception; spectral efficiency enhancement; power communication networks

Share and Cite

MDPI and ACS Style

Liu, G.; Zhang, J.; Gao, Q.; Pei, W.; Zhang, J.; Jiao, S. Design and Performance Evaluation of Communication Systems Based on Non-Orthogonal Overlapped Chirp Modulation. Symmetry 2026, 18, 412. https://doi.org/10.3390/sym18030412

AMA Style

Liu G, Zhang J, Gao Q, Pei W, Zhang J, Jiao S. Design and Performance Evaluation of Communication Systems Based on Non-Orthogonal Overlapped Chirp Modulation. Symmetry. 2026; 18(3):412. https://doi.org/10.3390/sym18030412

Chicago/Turabian Style

Liu, Guoping, Jiaju Zhang, Qiusheng Gao, Wenjiang Pei, Junpeng Zhang, and Sinuo Jiao. 2026. "Design and Performance Evaluation of Communication Systems Based on Non-Orthogonal Overlapped Chirp Modulation" Symmetry 18, no. 3: 412. https://doi.org/10.3390/sym18030412

APA Style

Liu, G., Zhang, J., Gao, Q., Pei, W., Zhang, J., & Jiao, S. (2026). Design and Performance Evaluation of Communication Systems Based on Non-Orthogonal Overlapped Chirp Modulation. Symmetry, 18(3), 412. https://doi.org/10.3390/sym18030412

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