ARCHITECTING INTELLIGENT DECENTRALIZED DATA SYSTEMS TO ENABLE ANALYTICS WITH ENTROPY-AWARE GOVERNANCE, QUANTUM READINESS AND LLM-DRIVEN FEDERATION
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Enterprises pursuing AI-driven transformation face a critical tradeoff: centralized consistency vs.decentralized scalability. The "Data Platform Unification Paradox" captures this dilemma. Building onour prior NLPI 2025 paper, this extended version integrates technical depth, mathematical models, andconcrete architectures, especially for integrating Data Mesh with Quantum Databases and LLM Agents. Afederated architecture is proposed using graph-theoretic models and entropy-based data valuation. Weintroduce a formal structure to evaluate platform complexity and propose intelligent agent-basedgovernance models to operationalize data sharing across domains. This work aims to move beyondconceptual frameworks by proposing actionable blueprints for next-generation, intelligent dataecosystems.



