Maximizing Qubit Throughput under Buffer Decoherence and Variability in Generation
Padma Priyanka, Avhishek Chatterjee, and Sheetal Kalyani

TL;DR
This paper models qubit generation in quantum networks as a queueing problem, deriving optimal policies to maximize throughput while managing buffer decoherence and stochastic delays, with adaptive learning for unknown parameters.
Contribution
It introduces an analytical framework for optimal qubit generation policies considering buffer decoherence and stochastic delays, including a Bayesian adaptive approach for unknown system parameters.
Findings
The 'no lag' policy is optimal under certain conditions.
A Bayesian learning framework effectively adapts to unknown system parameters.
The model applies to delay-sensitive IoT sensing and service systems.
Abstract
Quantum communication networks require transmission of high-fidelity, uncoded qubits for applications such as entanglement distribution and quantum key distribution. However, current implementations are constrained by limited buffer capacity and qubit decoherence, which degrades qubit quality while waiting in the buffer. A key challenge arises from the stochastic nature of qubit generation, there exists a random delay (D) between the initiation of a generation request and the availability of the qubit. This induces a fundamental trade off early initiation increases buffer waiting time and hence decoherence, whereas delayed initiation leads to server idling and reduced throughput. We model this system as an admission control problem in a finite buffer queue, where the reward associated with each job is a decreasing function of its sojourn time. We derive analytical conditions under…
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Taxonomy
TopicsQuantum Information and Cryptography · Age of Information Optimization · Quantum Computing Algorithms and Architecture
