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Migrating Existing Container Workload to Kubernetes -- LLM Based Approach and Evaluation

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arxiv 2408.11428 v1 pith:4Q76IDL5 submitted 2024-08-21 cs.SE

classification cs.SE
keywords developerskubernetesllmsapplicationapproachbenchmarkinghowevermanifests
verification ladder T0 review T1 audit T2 compute T3 formal
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Although Kubernetes has become a widespread open-source system that automates the management of containerized applications, its complexity can be a significant barrier, particularly for application developers unfamiliar with it. One approach employs large language models (LLMs) to assist developers in generating Kubernetes manifests; however it is currently impossible to determine whether the output satisfies given specifications and is comprehensible. In this study, we proposed a benchmarking method for evaluating the effectiveness of LLMs in synthesizing manifests, using the Compose specification -- a standard widely adopted by application developers -- as input. The proposed benchmarking method revealed that LLMs generally produce accurate results that compensate for simple specification gaps. However, we also observed that inline comments for readability were often omitted, and completion accuracy was low for atypical inputs with unclear intentions.

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Cited by 1 Pith paper

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

  1. KubeGuard: LLM-Assisted Kubernetes Hardening via Configuration Files and Runtime Logs Analysis

    cs.CR 2025-09 conditional novelty 6.0 of 10

    KubeGuard generates and refines Kubernetes Roles, NetworkPolicies, and Deployments from aggregated audit, network, and provenance logs using prompt-chained LLMs, achieving F1 up to 0.96 with GPT-4o.

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