On the Stochastic Analysis of a Quantum Entanglement Switch
arXiv:1903.04420 · doi:10.1109/tqe.2021.3058058
Abstract
We study a quantum entanglement switch that serves users in a star topology. We model variants of the system using Markov chains and standard queueing theory and obtain expressions for switch capacity and the expected number of qubits stored in memory at the switch. While it is more accurate to use a discrete-time Markov chain (DTMC) to model such systems, we quickly encounter practical constraints of using this technique and switch to using continuous-time Markov chains (CTMCs). Using CTMCs allows us to obtain a number of analytic results for systems in which the links are homogeneous or heterogeneous and for switches that have infinite or finite buffer sizes. In addition, we can model the effects of decoherence of quantum states fairly easily using CTMCs. We also compare the results we obtain from the DTMC against the CTMC in the case of homogeneous links and infinite buffer, and learn that the CTMC is a reasonable approximation of the DTMC. From numerical observations, we discover that decoherence has little effect on capacity and expected number of stored qubits for homogeneous systems. For heterogeneous systems, especially those operating close to stability constraints, buffer size and decoherence can have significant effects on performance metrics. We also learn that in general, increasing the buffer size from one to two qubits per link is advantageous to most systems, while increasing the buffer size further yields diminishing returns.
References in corpus (13)
- Quantum cryptography: Public key distribution and coin tossing
- Experimental demonstration of memory-enhanced quantum communication
- Distributed Quantum Computation Based-on Small Quantum Registers
- End-to-end capacities of a quantum communication network
- Multiplexed Memory-Insensitive Quantum Repeaters
- A Link Layer Protocol for Quantum Networks
- 3/4-efficient Bell measurement with passive linear optics and unentangled ancillae
- Demonstration of a Reconfigurable Entangled Radiofrequency-Photonic Sensor Network
- Designing a Quantum Network Protocol
- Shortcuts to quantum network routing
- Practical figures of merit and thresholds for entanglement distribution in quantum networks
- Practical route to entanglement-assisted communication over noisy bosonic channels
- Physical-Layer Supervised Learning Assisted by an Entangled Sensor Network
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- Performance metrics for the continuous distribution of entanglement in multi-user quantum networks
- Quantum MAC: Genuine Entanglement Access Control via Many-Body Dicke States
- Entanglement Distribution in the Quantum Internet: Knowing when to Stop!
- Entanglement Swapping in Quantum Switches: Protocol Design and Stability Analysis
- Entanglement generation in a quantum network with finite quantum memory lifetime
- A Control Architecture for Entanglement Generation Switches in Quantum Networks
- On the Quantum Performance Evaluation of Two Distributed Quantum Architectures
- A Linear Algebraic Framework for Dynamic Scheduling Over Memory-Equipped Quantum Networks
- Simulation of fidelity in entanglement-based networks with repeater chains
- Stability Analysis of a Quantum Network with Max-Weight Scheduling
- A Continuous Variable Quantum Switch
- Fidelity-Aware Multipath Routing for Multipartite State Distribution in Quantum Networks
- Multipartite multiplexing strategies for quantum routers
- Queue-Channel Capacities with Generalized Amplitude Damping
- An on-demand resource allocation algorithm for a quantum network hub and its performance analysis
- Efficient simulation of noisy entanglement generation
- Simulation of entanglement based quantum networks for performance characterization