Author
Listed:
- Xuxun Ye
(Portland Institute, Nanjing University of Posts and Telecommunications, 66 XinMofan Road, Nanjing 210003, China)
- Anliang Cai
(School of Communications and Information Engineering, Nanjing University of Posts and Telecommunications, 66 XinMofan Road, Nanjing 210003, China)
Abstract
The millisecond-level volatile fluctuations in workloads in large-scale intelligent computing clusters pose significant challenges to traditional electricity markets. Constrained by optical–electrical–optical conversion bottlenecks, these markets struggle to achieve real-time response and risk substantial social welfare loss. Leveraging existing fiber-optic infrastructure to build All-Optical Networks (AONs) presents a cost-effective evolutionary path. This paper develops a distributed energy trading strategy based on all-optical multicast. By utilizing the physical multicast properties of the underlying light-tree architecture instead of traditional protocols, the proposed strategy bypasses end-to-end latency constraints. This enables rapid transaction synchronization and dynamic tracking of social welfare optima within millisecond-level time-slots. Simulation results demonstrate that the proposed scheme elevates the transaction saturation threshold by two orders of magnitude compared with traditional strategies, effectively breaking the physical locking effect of latency on system throughput. Across various topologies, the social welfare gains exceed those of conventional schemes by more than 20 times. This study validates the engineering value of all-optical architectures for high-frequency trading and provides critical technical support for ultra-dynamic power trading algorithms.
Suggested Citation
Xuxun Ye & Anliang Cai, 2026.
"A Distributed Energy Trading Framework Based on All-Optical Multicast Communication,"
Future Internet, MDPI, vol. 18(4), pages 1-32, April.
Handle:
RePEc:gam:jftint:v:18:y:2026:i:4:p:214-:d:1922221
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