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March 10, 2026Simulation Modelling Practice and Theory1 citationsOpen Access

A new approach for reducing end-to-end latency in energy efficient IP-over-WDM networks

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CDConstantinos T. DelistavrouGBGeorgia A. BeletsiotiGPGeorgios Papadimitriou

Key Points

  • The aim is to develop a hybrid approach that reduces end-to-end latency while ensuring energy efficiency in IP-over-WDM networks.
  • Proposed Hybrid Bypass (HyB) for routing high and low-priority traffic differently.
  • Compared HyB against Direct Bypass (DiB), Multi-hop Bypass (MhB), and latency-aware heuristics.
  • Analyzed latency and power using a simulator with realistic network constraints.
  • HyB reduces mean latency by 12.9% for low-priority traffic relative to MhB.
  • Achieves a latency reduction of 1.5% for high-priority traffic compared to DiB.
  • Overall mean latency achieved is 4.75 ms for time-sensitive traffic and 5.15 ms for best-effort traffic.
  • Service availability improves by reducing blocking from approximately 66% to less than 15%.
  • HyB decreases power consumption by 36.5% for high-priority and 57.8% for low-priority traffic compared to baseline methods.

Abstract

Ultra-Reliable Low-Latency Communications (URLLC) services in IP-over-WDM (IPoWDM) backbone networks require stringent end-to-end latency together with energy-efficient operation. Conventional Routing and Wavelength Assignment (RWA) planning primarily minimizes power and may overlook latency inflation introduced by routing and grooming decisions. Hybrid Bypass (HyB) is proposed as a heuristic that jointly targets latency and power through service differentiation: high-priority (latency-sensitive) demands are routed with Direct Bypass (DiB)-like provisioning, while low-priority (best-effort) demands follow a Multi-hop Bypass (MhB)-like strategy and are groomed onto the residual capacity of the virtual topology established by the high-priority stage. A scalable simulator benchmarks HyB against DiB, MhB, and the latency-aware Hottest-first and Comparison (HotC) heuristic. Results show that HyB reduces mean latency by 12.9% for low-priority traffic relative to MhB (up to 37.4% in large-scale topologies) while providing a marginal latency advantage for high-priority traffic relative to DiB (on average 1.5%); overall mean latency is 4 . 75 ms for time-sensitive and 5 . 15 ms for best-effort traffic. Under realistic constraints (finite fibers and wavelength continuity), HyB improves service availability by reducing blocking from ≈ 66 % to < 15 % with minor latency impact, quantifying the latency–availability trade-off that underpins URLLC-oriented planning under constrained resources. Using a component-based power model (router ports, transponders, EDFAs), HyB reduces power by 36.5% for high-priority demands versus DiB and by 57.8% for low-priority demands versus MhB. By integrating selective grooming and service-differentiated routing, HyB provides an energy- and latency-aware RWA planning framework for sustainable, QoS-oriented backbone design. • Hybrid Bypass enables service-differentiated Routing and Wavelength Assignment balancing latency and energy. • Traffic Grooming Rejection Criterion prevents tail-latency inflation. • Direct and Multi-hop Bypass re-implemented with explicit per-demand latency measurements. • Pareto analysis quantifies energy–latency trade-offs across baselines. • Open-source GitHub simulator 1 1 https://github.com/delistavrouk/SimLight . enables reproducible latency–power–blocking benchmarking.

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Cite This Study

Delistavrou et al. (2026) studied this question.

synapsesocial.com/papers/69af95a470916d39fea4d658https://doi.org/10.1016/j.simpat.2026.103275
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