Parallel Simulation of Quantum Networks with Distributed Quantum State Management

Author:

Wu Xiaoliang1ORCID,Kolar Alexander2ORCID,Chung Joaquin3ORCID,Jin Dong4ORCID,Suchara Martin3ORCID,Kettimuthu Rajkumar3ORCID

Affiliation:

1. Illinois Institute of Technology, Chicago, United States

2. University of Chicago, Chicago, United States

3. Argonne National Laboratory, Lemont, United States

4. Illinois Institute of Technology, Chicago, United States and University of Arkansas, Fayetteville, United States

Abstract

Quantum network simulators offer the opportunity to cost-efficiently investigate potential avenues for building networks that scale with the number of users, communication distance, and application demands by simulating alternative hardware designs and control protocols. Several quantum network simulators have been recently developed with these goals in mind. As the size of the simulated networks increases, however, sequential execution becomes time-consuming. Parallel execution presents a suitable method for scalable simulations of large-scale quantum networks, but the unique attributes of quantum information create unexpected challenges. In this work, we identify requirements for parallel simulation of quantum networks and develop the first parallel discrete-event quantum network simulator by modifying the existing serial simulator SeQUeNCe. Our contributions include the design and development of a quantum state manager (QSM) that maintains shared quantum information distributed across multiple processes. We also optimize our parallel code by minimizing the overhead of the QSM and decreasing the amount of synchronization needed among processes. Using these techniques, we observe a speedup of 2 to 25 times when simulating a 1,024-node linear network topology using 2 to 128 processes. We also observe an efficiency greater than 0.5 for up to 32 processes in a linear network topology of the same size and with the same workload. We repeat this evaluation with a randomized workload on a caveman network. We also introduce several methods for partitioning networks by mapping them to different parallel simulation processes. We have released the parallel SeQUeNCe simulator as an open source tool alongside the existing sequential version.

Funder

U.S. Department of Energy, Office of Science

National Quantum Information Science Research Centers

National Science Foundation

Publisher

Association for Computing Machinery (ACM)

Reference56 articles.

1. Time-segmentation parallel simulation of networks of queues with loss or communication blocking

2. P. D. Barnes. 2011. A Benchmark Model for Parallel ns3. Technical Report. Lawrence Livermore National Laboratory, Livermore, CA.

3. A distributed simulation framework for quantum networks and channels;Bartlett Ben;arXiv:1808.07047,2018

4. Teleporting an unknown quantum state via dual classical and Einstein-Podolsky-Rosen channels

5. Quantum Repeaters: The Role of Imperfect Local Operations in Quantum Communication

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