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Evaluating GPT’s Programming Capability Through CodeWars’ Katas

  • Zizhuo Zhang,
  • Lian Wen,
  • Shaoyang Zhang,
  • David Chen,
  • Yanfei Jiang

摘要

Understanding the capabilities and limitations of programming-oriented AI models is crucial. This paper evaluates the programming proficiency of GPT-3.5 and GPT-4 using Codewars coding problems of varying difficulty. The experiments reveal a distinct boundary at the 3kyu level, beyond which these models struggle. This led to proposing a complexity measure that includes problem difficulty and solution time. The research emphasizes the need for validation and creative thinking in AI models to better emulate human problem-solving. Future work aims to refine the complexity measure, enhance AI capabilities, and develop an objective programming problem difficulty measure. These insights are valuable for advancing AI programming and problem-solving abilities.