arXiv:2605.05144cs.LGcs.CY2026-05中稿 · publication in 202…

高中生用AI辅助完成金融预测项目,边做边学突破传统教学模式。

Human-AI Co-Mentorship in Project-Based Learning: A Case Study in Financial Forecasting

论文配图:Human-AI Co-Mentorship in Project-Based Learning: A Case Study in Financial Forecasting
图 1 · 摘自论文原文
  • 学生通过AI工具迭代实现代码开发,聚焦问题定义与解决。
  • 无深厚基础的学生在暑期完成可落地的ETF价格预测模型。
  • 适合对AI+教育融合、跨学科实践感兴趣的师生参考。

本文回顾了一项由高中生和低年级本科生组成的团队,在研究生导师指导并借助AI工具支持下开展的AI研究项目。尽管参与者在人工智能与金融领域背景有限,但表现出对技术市场分析和ETF价格预测的强烈兴趣。项目采用工作流设计模式:学生先确定解决问题的步骤序列,再利用AI工具执行各环节。通过每日站会进行调试与概念答疑,学生在协作中深入探索计算机科学或金融方向,并在2025年夏季取得显著进展。该实践证明,AI工具能有效赋能青少年科研,使其跳过基础理论灌输,直接投入高阶问题构建与实际应用,具备重要教学意义。

原文摘要 · Abstract (English)

This paper reflects on a AI research project carried out by a team of high-school and early-undergraduate students under the mentorship of graduate researchers and ably assisted by AI tools. We share our experience in not only on the learning experience for the high school students, but also on how AI tools accelerated the process that enabled the high school students to focus on higher order problem formulation and solution. Although the participants entered the project with limited background in both AI and finance, they showed strong enthusiasm for technical market analysis and ETF price prediction. Traditional learning settings would first teach the necessary methods in a classroom setting and only later let students apply them. In contrast, our project emphasized workflow design: students identified the sequence of steps needed to address the problem and then used AI-driven tools to execute each step. We note that the high school students developed the necessary code through iterating with the AI tools, and we used our daily stand-ups to debug and answer conceptual questions. Each of the student was able to dig deeper into their area of interest whether computer science or finance, while collaboratively making a significant advance over the summer of 2025. This project was an important pedagogical exercise on how AI tools can be used for mentoring high school students, allowing them to focus on their specific interests and using the daily stand-ups to focus on problem definition and conceptual understanding. Despite their limited technical qualifications, the students were able to leverage AI tools to build meaningful models with real-world application.

AI教育项目式学习金融预测

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