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Work-in-Progress: What Recent Artificial Intelligence Breakthroughs in the Game of GO Mean for Human Learning and Engineering Education

机译:进行中:GO游戏中的最新人工智能突破对人类学习和工程教育意味着什么

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Artificial intelligence, led by the method of deep learning, has generated enormous interest in both professional circle and general public in the last two years thanks to Deepmind's AlphaGo's stunning mastery of Go, the most sophisticated board game. While most interest since then has been shown in exploring the applications of AlphaGo's algorithms in machine learning, it is the potential impact of its learning strategy on human learning that captures our attention. Can AlphaGo's success, aside from taking advantage of superior computing power, lead to more effective learning for humans? Does AlphaGo's learning lend support to any of the learning theories? Or does the training data reveal any notable pattern or trajectory that may suggest new perspectives on human cognition? In this work-in-progress paper, we try to make connection between human and machine learning using the technical details revealed by the Deepmind team, and examine what insights can be gained from AlphaGo's training on human cognitive development and more specifically, engineering education.
机译:得益于Deepmind的AlphaGo对最复杂的棋盘游戏Go的精湛掌握,以深度学习方法为主导的人工智能在过去两年中引起了专业界和公众的极大兴趣。尽管自那以来人们对探索AlphaGo算法在机器学习中的应用表现出了最大的兴趣,但其学习策略对人类学习的潜在影响吸引了我们的注意力。除了利用卓越的计算能力之外,AlphaGo的成功还能为人类带来更有效的学习吗? AlphaGo的学习是否支持任何一种学习理论?还是训练数据揭示了可能暗示人类认知新观点的任何显着模式或轨迹?在这篇进行中的论文中,我们尝试使用Deepmind团队揭示的技术细节在人与机器学习之间建立联系,并研究可以从AlphaGo的人类认知发展培训(更具体地说是工程教育)中获得哪些见解。

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