Balancing Quantum Memories in Asymmetric Repeaters for High-Fidelity Entanglement Distribution
Karim S. Elsayed, Amr Rizk

TL;DR
This paper addresses the mismatch problem in asymmetric quantum repeaters by deriving a dynamic optimal memory allocation strategy that enhances entanglement fidelity without sacrificing rate.
Contribution
It introduces a dynamic optimal memory allocation method for asymmetric quantum repeaters to improve fidelity and rate performance.
Findings
Optimal allocation significantly improves entanglement fidelity.
Dynamic allocation maintains high rate comparable to standard repeaters.
Fixed memory allocation can reduce fidelity.
Abstract
At the core of the quantum Internet lie quantum repeaters that enable remote end-to-end entanglement generation. Fundamentally, the entanglement generation rate and fidelity of quantum repeaters constitute the bottleneck for end-to-end performance. To achieve high rates, quantum repeaters employ quantum memory multiplexing. In a high-rate standard repeater, each memory sequentially generates an entanglement with its neighboring nodes and then applies entanglement swapping. This, however, results in low fidelity due to decoherence of the first-formed entanglement in the sequential generation process. By allocating different numbers of memories to simultaneously form entanglements with the left and right adjacent nodes, quantum repeaters reduce high waiting times and achieve high fidelity. In such a repeater, a mismatch problem arises due to the difference between the probabilistic number…
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