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Automated Design of Agentic Systems
This chapter explores the development and intricacies of Automated Design of Agentic Systems (ADAS), highlighting the transition from traditional machine learning to innovative automated approaches. It emphasizes the importance of defining comprehensive search spaces and the use of meta-learning to enhance the efficiency of discovering agents. Additionally, the chapter discusses the balance between exploration and exploitation in design iterations, shedding light on how even simple frameworks can yield complex and effective agentic systems.