Özet
Autonomous network management in (Formula presented) must continuously adapt to dynamic conditions while preserving operator-defined service intent. Existing learning- and optimization-based approaches primarily optimize short-term performance. However, they do not explicitly control how repeated local decisions affect long-term service objectives. As a result, small intent violations may accumulate over time, leading to purpose drift. This paper proposes Knowledge Graph as Network DNA (KG-DNA), a bio-inspired management framework that encodes network structure, operational policies, and SLA/QoS objectives as heritable genetic components within a knowledge graph. Autonomous adaptation is realized through a three-stage process. In Stage I, service intent is formalized as regulatory genes that define immutable semantic constraints. In Stage II, operational genes are evolved using an intent-aware fitness function and constrained mutation, ensuring that each adaptation step remains intent-feasible. In Stage III, long-term purpose regulation is introduced by monitoring temporal intent violations, detecting persistent drift, and biasing future evolutionary updates toward intent-aligned policy regions through a bounded regulation factor. By combining step-level feasibility control with temporal regulation, KG-DNA enables performance optimization without sacrificing long-term service purpose. The evaluation scenario demonstrates improved SLA continuity, reduced purpose drift, and stable adaptation behavior compared to conventional autonomous management approaches.
| Orijinal dil | İngilizce |
|---|---|
| Makale numarası | 100321 |
| Dergi | Telematics and Informatics Reports |
| Hacim | 22 |
| DOI'lar | |
| Yayın durumu | Yayınlandı - Haz 2026 |
Bibliyografik not
Publisher Copyright:© 2026 The Author. Published by Elsevier B.V. This is an open access article under the CC BY license. http://creativecommons.org/licenses/by/4.0/
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