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#edge computing Open access

Addressing Edge-Cloud Microservices SLOs with Scalable Theodolite Across Multiple Kubernetes Clusters

Oct 2026 · Zenodo (CERN European Organization for Nuclear Research)
IoT and Edge/Fog Computing

Abstract

This deposit contains the raw measurement data, result figures, and evaluationscript behind the evaluation chapter of the Master's thesis "Addressing Edge-CloudMicroservices SLOs with Scalable Theodolite Across Multiple Kubernetes Clusters"(Ravish Kumar, Kiel University, 2026). The study benchmarks a collaborative edge-cloud image-classification pipeline thatsplits a single image stream between a Raspberry Pi 5 edge tier (ResNet-50) and anIntel Xeon cloud tier (ResNet-152), coordinated by Extended Theodolite, anSLO-driven benchmarking harness that spans two independent Kubernetes clusters. Atwo-dimensional grid of 30 configurations - six compute topologies (cloud x edgereplicas) crossed with five edge/cloud workload splits - is measured on threequality dimensions: classification accuracy, per-image inference latency, andenergy (measured on the edge via the Raspberry Pi's on-board PMIC, estimated on thecloud via the Fan et al. CPU-utilization model).

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