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Gemini: Practical Reconfigurable Datacenter Networks with Topology and Traffic Engineering

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arxiv 2110.08374 v1 pith:4QTALHHM submitted 2021-10-15 cs.NI

classification cs.NI
keywords geminitopologycostdesignsfabricsnetworkroutingtraffic
verification ladder T0 review T1 audit T2 compute T3 formal
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To reduce cost, datacenter network operators are exploring blocking network designs. An example of such a design is a "spine-free" form of a Fat-Tree, in which pods directly connect to each other, rather than via spine blocks. To maintain application-perceived performance in the face of dynamic workloads, these new designs must be able to reconfigure routing and the inter-pod topology. Gemini is a system designed to achieve these goals on commodity hardware while reconfiguring the network infrequently, rendering these blocking designs practical enough for deployment in the near future. The key to Gemini is the joint optimization of topology and routing, using as input a robust estimation of future traffic derived from multiple historical traffic matrices. Gemini "hedges" against unpredicted bursts, by spreading these bursts across multiple paths, to minimize packet loss in exchange for a small increase in path lengths. It incorporates a robust decision algorithm to determine when to reconfigure, and whether to use hedging. Data from tens of production fabrics allows us to categorize these as either low-or high-volatility; these categories seem stable. For the former, Gemini finds topologies and routing with near-optimal performance and cost. For the latter, Gemini's use of multi-traffic-matrix optimization and hedging avoids the need for frequent topology reconfiguration, with only marginal increases in path length. As a result, Gemini can support existing workloads on these production fabrics using a spine-free topology that is half the cost of the existing topology on these fabrics.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. MixNet: A Runtime Reconfigurable Optical-Electrical Fabric for Distributed Mixture-of-Experts Training

    cs.NI 2025-01 conditional novelty 7.0 of 10

    MixNet uses regionally reconfigurable optical switches to adapt the network topology during MoE training, reaching fat-tree-like performance with lower cost.

  2. Unlocking Diversity of Fast-Switched Optical Data Center Networks with Unified Routing

    cs.NI 2024-11 conditional novelty 6.0 of 10

    A schedule-aware routing algorithm with in-switch buffering achieves loss-free operation in fast-switched optical data center networks at microsecond-scale time slices, shown on a Tofino2 prototype and in large simulations.

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