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Julio Suárez Albanchez

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Open access Aug 2026

Hyper-Distributed Edge Cloud Architecture with 10 Tbps Gateways and Multi-Regional Nodes

Syria’s digital reconstruction offers a unique opportunity to deploy a next-generation distributed computing infrastructure that leverages three strategic international gateways (IGWs): a submarine cable from Cyprus to Tartus (10 Tbps), a terrestrial link from Jordan to Damascus (10 Tbps), and a terrestrial link from Turkey to Aleppo (10 Tbps). This paper proposes and rigorously evaluates a hybrid edge cloud architecture comprising three regional edge nodes (Damascus, Aleppo, and Coastal) and a central cloud in Homs, all interconnected via an ultra-high-speed domestic backbone (10 Tbps). Using analytical models and simulations, researchers demonstrate that edge nodes reduce end-to-end latency to <0.5 ms locally (10–20× improvement over cloud-only), cut backbone traffic by 99% through intelligent preprocessing, and ensure full compliance with the Syrian data residency law (Law No. 12/2016). Furthermore, the integration of 10 Tbps IGWs enables low-latency international peering (RTT ≤ 2.9 ms from the coast to Europe) while preserving data sovereignty. Total cost of ownership (TCO) is reduced by 52% compared to a cloud-only model, even with 10× higher capacity. Researchers provide a comprehensive set of Mermaid-based diagrams and tables quantifying latency, bandwidth, cost, and failover scenarios. The paper concludes with actionable recommendations for the Syrian Ministry of Communications and Technology and international partners.

Jouma Ali Al-Mohamad, M. Paslavskyi, Julio Suárez Albanchez et al. · 0 citations

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