Self-evolving Agents with reflective and memory-augmented abilities

Liang, Xuechen, Tao, Meiling, Xia, Yinghui, Shi, Tianyu, Wang, Jun, Yang, JingSong

arXiv.org Artificial Intelligence 

Large language models (LLMs) have made significant advances in the field of natural language processing, but they still face challenges such as continuous decision-making. In this research, we propose a novel framework by integrating iterative feedback, reflective mechanisms, and a memory optimization mechanism based on the Ebbinghaus forgetting curve, it significantly enhances the agents' capabilities in handling multi-tasking and long-span information.

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