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Latency-Aware Orchestration of Microservices in Heterogeneous Kubernetes Clusters Using Reinforcement Learning

Sava Stanisic et al · Graz University of Technology · 2026

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he orchestration of microservices in distributed cloud environments poses significant challenges due to the heterogeneous nature of cluster nodes and dynamic workload patterns. Traditional scheduling strategies in Kubernetes often fail to optimize latency-sensitive applications effectively. This paper proposes a latency-aware orchestration framework that integrates reinforcement learning techniques to dynamically schedule and migrate microservices across heterogeneous Kubernetes clusters. The proposed approach leverages a deep Q-network (DQN) agent trained to minimize end-to-end response times while balancing resource utilization and avoiding service-level objective (SLO) violations. Experiments conducted on a hybrid testbed comprising virtual and physical nodes demonstrate that the reinforcement learning-based scheduler reduces latency by up to 25% compared to default Kubernetes scheduling policies. The results highlight the potential of intelligent orchestration methods to enhance performance in complex cloud-native deployments. 

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APA 7

al, S. S. E. (2026). Latency-Aware Orchestration of Microservices in Heterogeneous Kubernetes Clusters Using Reinforcement Learning. https://doi.org/10.3897/jucs.166567

MLA

al, Sava Stanisic et. "Latency-Aware Orchestration of Microservices in Heterogeneous Kubernetes Clusters Using Reinforcement Learning." 2026. https://doi.org/10.3897/jucs.166567.

Chicago

al, Sava Stanisic et. 2026. "Latency-Aware Orchestration of Microservices in Heterogeneous Kubernetes Clusters Using Reinforcement Learning.". https://doi.org/10.3897/jucs.166567.

Harvard

al, S. S. E. 2026, Latency-Aware Orchestration of Microservices in Heterogeneous Kubernetes Clusters Using Reinforcement Learning, Graz University of Technology, available at: https://doi.org/10.3897/jucs.166567 [Accessed 8 Aug. 2026].

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Title
Latency-Aware Orchestration of Microservices in Heterogeneous Kubernetes Clusters Using Reinforcement Learning
Author / contributors
Sava Stanisic et al
Publisher
Graz University of Technology
Publication year
2026
ISSN
0948-6968
ISSN
0948-6968
Language
English

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