Preprint proposes a new architecture to improve control and reliability in generative AI systems, suggesting innovative solutions for operational challenges.
The adoption of generative models in continuously operating systems creates a structural tension between semantic understanding and operational control. This preprint proposes the Deterministically Orchestrated Hybrid Agentic Architecture (DOHAA), a pattern in which agentic behavior emerges from conventional software, perceptual modules, generative models, and validation controls, while authority over the process remains with a programmatic orchestrator.The architecture did not originate in an arbitrary design choice or a theoretical preference for deterministic orchestration. It evolved in response to operational constraints caused by indiscriminate use of generative AI in a continuous flow: excessive token consumption, queue pressure, latency, resource contention, and repeated analysis of irrelevant or redundant inputs. The resulting design assigns deterministic software to repeatable, auditable, and recoverable functions, while reserving probabilistic cognition for inputs that require semantic interpretation. The paper describes the progressive separation of control and cognition, bounded autonomy, prefiltering, structured contracts, externalized memory, temporal provenance, layered validation, safe degradation, fallback mechanisms, and controlled publication. It explains quality stability as an architectural property and proposes an evaluation protocol for comparing accuracy, consistency, efficiency, recovery, and traceability against purely deterministic systems and language-model-led agents. Version 1.0 is a conceptual and architectural contribution. It presents no experimental results and has not undergone peer review. A subsequent version will incorporate aggregated and anonymized operational metrics without disclosing organizations, sources, processed content, infrastructure, or sensitive parameters.
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Dante Guillermo Ribulotta (2026) studied this question.
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