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quant-ph20252 cited

Q-Fly: An Optical Interconnect for Modular Quantum Computers

Daisuke Sakuma, Tomoki Tsuno, Hikaru Shimizu +11

Much like classical supercomputers, scaling up quantum computers requires an optical interconnect. However, signal attenuation leads to irreversible qubit loss, making quantum inte…

quant-ph2025

Automatic Configuration Protocols for Optical Quantum Networks

Amin Taherkhani, Andrew Todd, Kentaro Teramoto +2

Before quantum networks can scale up to practical sizes, there are many deployment and configuration tasks that must be automated. Currently, quantum networking testbeds are largel…

quant-ph2025

Cross-Validating Quantum Network Simulators

Joaquin Chung, Michal Hajdušek, Naphan Benchasattabuse +7

We present a first cross-validation of two open-source quantum network simulators, QuISP and SeQUeNCe, focusing on basic networking tasks to ensure consistency and accuracy in simu…

quant-ph2024

Entanglement Swapping in Orbit: a Satellite Quantum Link Case Study

Paolo Fittipaldi, Kentaro Teramoto, Naphan Benchasattabuse +3

Satellite quantum communication is a promising way to build long distance quantum links, making it an essential complement to optical fiber for quantum internetworking beyond metro…

quant-ph2024

Scalable Timing Coordination of Bell State Analyzers in Quantum Networks

Yoshihiro Mori, Toshihiko Sasaki, Rikizo Ikuta +5

The optical Bell State Analyzer (BSA) plays a key role in the optical generation of entanglement in quantum networks. The optical BSA is effective in controlling the timing of arri…

quant-ph2024

Performance of Quantum Networks Using Heterogeneous Link Architectures

Kento Samuel Soon, Naphan Benchasattabuse, Michal Hajdušek +3

The heterogeneity of quantum link architectures is an essential theme in designing quantum networks for technological interoperability and possibly performance optimization. Howeve…