Holistic co-design of fibre-optic distributed acoustic sensing and coherent communication

Integrating sensing into communication is crucial for the fully-connected and intelligent development of modern life. However, existing fiber-optic sensing and communication systems merely coexist without inadequate resource sharing, resulting in limited scalability for large-scale deployment. Here, we propose a holistically co-designed sensing and communication (CSAC) framework that incorporates multi-level optimization: (i) a dual-function pilot signal that shares time and spectrum resources; (ii) a simplified system using a single transmitter to simultaneously generate multi-tone pilot and subcarrier communication signals; (iii) a point-to-multipoint (P2MP) network that distributes pilot signals for multi-user frequency synchronization and enhanced acoustic sensing response. Our approach achieves multi-point frequency synchronization with an accuracy of 1.56 MHz and enhances acoustic sensing response to 12 kHz. By introducing the on-chip modulators to generate multi-frequency optical comb, the response bandwidth is further expanded to 28 kHz. This CSAC framework efficiently supports dense communication and diverse sensing, offering an eco-sustainable solution for the future optical networks. Integrating sensing into communication is crucial for future fully-connected and intelligent networks. Here, authors develop a holistically co-designed fiber sensing and communication framework that shares signal, hardware, and network resources, supporting dense communication and diverse sensing.

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Publication Details

Journal
Nature Communications
Published
2026-09-25
DOI
https://doi.org/10.1038/s41467-026-78056-0
Primary Topic
Advanced Fiber Optic Sensors
Type
article
Field-Weighted Citation Impact
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Holistic co-design of fibre-optic distributed acoustic sensing and coherent communication

Zihe Hu, Can Hui Zhao, Luming Zhao, Hao Wen et al.
Nature Communications
Advanced Fiber Optic Sensors
article

Holistic co-design of fibre-optic distributed acoustic sensing and coherent communication

Zihe Hu, Can Hui Zhao, Luming Zhao, Hao Wen, Ming Tang, Mingming Zhang, Junda Chen, Lei Shi, Yizhao Chen, Yuqi Li, Chen Cheng, Jun Wang, Youmin Zhang
article en

Abstract

Integrating sensing into communication is crucial for the fully-connected and intelligent development of modern life. However, existing fiber-optic sensing and communication systems merely coexist without inadequate resource sharing, resulting in limited scalability for large-scale deployment. Here, we propose a holistically co-designed sensing and communication (CSAC) framework that incorporates multi-level optimization: (i) a dual-function pilot signal that shares time and spectrum resources; (ii) a simplified system using a single transmitter to simultaneously generate multi-tone pilot and subcarrier communication signals; (iii) a point-to-multipoint (P2MP) network that distributes pilot signals for multi-user frequency synchronization and enhanced acoustic sensing response. Our approach achieves multi-point frequency synchronization with an accuracy of 1.56 MHz and enhances acoustic sensing response to 12 kHz. By introducing the on-chip modulators to generate multi-frequency optical comb, the response bandwidth is further expanded to 28 kHz. This CSAC framework efficiently supports dense communication and diverse sensing, offering an eco-sustainable solution for the future optical networks. Integrating sensing into communication is crucial for future fully-connected and intelligent networks. Here, authors develop a holistically co-designed fiber sensing and communication framework that shares signal, hardware, and network resources, supporting dense communication and diverse sensing.

Nature Communications
Shenzhen University (CN), Wuhan National Laboratory for Optoelectronics (CN), Huazhong University of Science and Technology (CN), Chalmers University of Technology (SE)
Responsible consumption and production
Openalex Percentile: Top 21%
Advanced Fiber Optic Sensors
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