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arXiv · 2609.05229

Latency-Optimal Geo-Distributed Storage over Structured Networks

Abstract

We study latency-optimal file assignment in geo-distributed storage systems modeled as weighted graphs, where edge weights represent communication delays and each node stores one (possibly coded) file. Our goal is to minimize the average time required to retrieve an original file, taken uniformly over all nodes and files. We show that for every fixed number of files $k \geq 3$, computing a latency-minimizing assignment is NP-hard via a reduction from the domatic number problem. On the positive side, we identify natural network topologies that admit uncoded, structured optimal assignments in which, for every node, one can choose its $k$ closest nodes, including itself, so that they store distinct original files. We prove that every weighted tree, certain weighted cycles, and unit-weight graphs with sufficiently large minimum degree admit such assignments. For these graph classes, we provide efficient algorithms to construct latency-optimal file assignments.

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BibTeXRIS

Madhura Pathegama, Viveck Cadambe. 2026-09-04. Latency-Optimal Geo-Distributed Storage over Structured Networks. https://arxiv.org/abs/2609.05229

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