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A Comprehensive Review of AI Agents: Transforming Possibilities in Technology and Beyond
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本文系统探讨了AI智能体的架构原则、基础组件和新兴范式,分析了认知科学、强化学习、多智能体协调等领域的最新进展,并探讨了相关伦理、安全与可解释性问题,旨在引导AI智能体系统向更稳健、自适应和可靠的方向发展。

arXiv:2508.11957v1 Announce Type: cross Abstract: Artificial Intelligence (AI) agents have rapidly evolved from specialized, rule-based programs to versatile, learning-driven autonomous systems capable of perception, reasoning, and action in complex environments. The explosion of data, advances in deep learning, reinforcement learning, and multi-agent coordination have accelerated this transformation. Yet, designing and deploying unified AI agents that seamlessly integrate cognition, planning, and interaction remains a grand challenge. In this review, we systematically examine the architectural principles, foundational components, and emergent paradigms that define the landscape of contemporary AI agents. We synthesize insights from cognitive science-inspired models, hierarchical reinforcement learning frameworks, and large language model-based reasoning. Moreover, we discuss the pressing ethical, safety, and interpretability concerns associated with deploying these agents in real-world scenarios. By highlighting major breakthroughs, persistent challenges, and promising research directions, this review aims to guide the next generation of AI agent systems toward more robust, adaptable, and trustworthy autonomous intelligence.

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AI智能体 架构原则 认知科学 强化学习 伦理安全
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