cs.AI updates on arXiv.org 10月28日 12:06
AI架构与Chomsky层次抽象机等效
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本文建立现代智能体AI系统架构与Chomsky层次抽象机之间的形式等价性。提出AI代理的记忆架构是决定其计算能力的关键特征,并将其直接映射到相应的自动机类别。通过该等价框架,优化代理架构,实现计算效率与成本的最优化,并促进代理安全与可预测性的保证。

arXiv:2510.23487v1 Announce Type: new Abstract: This paper establishes a formal equivalence between the architectural classes of modern agentic AI systems and the abstract machines of the Chomsky hierarchy. We posit that the memory architecture of an AI agent is the definitive feature determining its computational power and that it directly maps it to a corresponding class of automaton. Specifically, we demonstrate that simple reflex agents are equivalent to Finite Automata, hierarchical task-decomposition agents are equivalent to Pushdown Automata, and agents employing readable/writable memory for reflection are equivalent to TMs. This Automata-Agent Framework provides a principled methodology for right-sizing agent architectures to optimize computational efficiency and cost. More critically, it creates a direct pathway to formal verification, enables the application of mature techniques from automata theory to guarantee agent safety and predictability. By classifying agents, we can formally delineate the boundary between verifiable systems and those whose behavior is fundamentally undecidable. We address the inherent probabilistic nature of LLM-based agents by extending the framework to probabilistic automata that allow quantitative risk analysis. The paper concludes by outlining an agenda for developing static analysis tools and grammars for agentic frameworks.

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AI架构 Chomsky层次 自动机理论 智能体 计算效率
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