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Autonomy, Social Norms, and Alignment: Towards a Developmental Framework for Autonomous Artificial Agents· 自主性、社会规范与对齐:面向发育的自主人工代理框架

In recent years, artificial intelligence has made extraordinary progress thanks to large-scale models capable of generalization and the generation of complex outputs. However, transferring this potential into embodied agents reveals a significant limitation: the most advanced systems rely on pre-existing datasets and human feedback strategies that are powerful but insufficient in dynamic or unknown contexts. To adapt, an agent must acquire knowledge through direct interaction with its environment. One strategy to address this challenge involves introducing higher-level mechanisms, such as intrinsic motivations, which leverage curiosity and competence, to guide exploration and learning in complex environments. While this flexibility expands autonomy, it complicates the task of ensuring agen

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探讨面向发育的自主人工代理框架,融合自主性、社会规范与对齐策略。

核心方法
引入内在动机机制(如好奇心和能力)作为高级策略,以促进在复杂环境中的探索和学习,同时考虑社会规范和价值对齐。
适合谁读
研究者
要解决的问题
现有最先进的人工智能系统在动态或未知环境中,依赖预存数据集和人类反馈策略,难以自主适应和学习。
关键实验
未提供
主要贡献
提出了一种结合自主性、社会规范与对齐的发育框架,为自主人工代理设计提供新思路。
意义与局限
该框架有助于开发更适应未知和复杂环境的自主人工代理,但如何平衡自主性与社会规范仍具挑战。
领域:cs.AI作者:Marica Notte、Ludovica Marinucci、Vieri Giuliano Santucci
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