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Research PaperResearchia:202605.13043

Simultaneously Minimizing Storage and Bandwidth Under Exact Repair With Quantum Entanglement

Lei Hu

Abstract

We study exact-regenerating codes for entanglement-assisted distributed storage systems. Consider an $(n,k,d,α,β_{\mathsf{q}},B)$ distributed system that stores a file of $B$ classical symbols across $n$ nodes with each node storing $α$ symbols. A data collector can recover the file by accessing any $k$ nodes. When a node fails, any $d$ surviving nodes share an entangled state, and each of them transmits a quantum system of $β_{\mathsf{q}}$ qudits to a newcomer. The newcomer then performs a meas...

Submitted: May 13, 2026Subjects: Engineering; Chemical Engineering

Description / Details

We study exact-regenerating codes for entanglement-assisted distributed storage systems. Consider an (n,k,d,α,βq,B)(n,k,d,α,β_{\mathsf{q}},B) distributed system that stores a file of BB classical symbols across nn nodes with each node storing αα symbols. A data collector can recover the file by accessing any kk nodes. When a node fails, any dd surviving nodes share an entangled state, and each of them transmits a quantum system of βqβ_{\mathsf{q}} qudits to a newcomer. The newcomer then performs a measurement on the received quantum systems to generate its storage. Recent work [1] showed that, under functional repair where the regenerated content may differ from that of the failed node, there exists a unique optimal regenerating point that \emph{simultaneously minimizes both storage αα and repair bandwidth dβqd β_{\mathsf{q}}} when d2k2d \geq 2k-2. In this paper, we show that, under \emph{exact repair}, where the newcomer reproduces exactly the same content as the failed node, this optimal point remains achievable. Our construction builds on the classical product-matrix framework and the Calderbank-Shor-Steane (CSS)-based stabilizer formalism.


Source: arXiv:2605.12455v1 - http://arxiv.org/abs/2605.12455v1 PDF: https://arxiv.org/pdf/2605.12455v1 Original Link: http://arxiv.org/abs/2605.12455v1

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Date:
May 13, 2026
Topic:
Chemical Engineering
Area:
Engineering
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