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Toward Formalizing Llm-based Agent Designs Through Structural Context Modeling And Semantic Dynamics Analysis

Abstract

Current research on large language model (LLM) agents is fragmented: discussions of conceptual frameworks and methodological principles are frequently intertwined with low-level implementation details, causing both readers and authors to lose track amid a proliferation of superficially distinct concepts. We argue that this fragmentation largely stems from the absence of an analyzable, self-consist

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