The need for ethical guidelines in mathematical research in the time of generative AI

Markus Pantsar
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Abstract

Generative artificial intelligence (AI) applications based on large language models have not enjoyed much success in symbolic processing and reasoning tasks, thus making them of little use in mathematical research. However, recently DeepMind’s AlphaProof and AlphaGeometry 2 applications have been reported to perform well in mathematical problem solving. These applications are hybrid systems combining large language models with rule-based systems, an approach sometimes called neuro-symbolic AI. In this paper, I present a scenario in which such systems are used in research mathematics, more precisely in theorem proving. In the most extreme case, such a system could be an autonomous automated theorem prover (AATP), with the potential of proving new humanly interesting theorems and even presenting them in research papers. The use of such AI applications would be transformative to mathematical practice and demand clear ethical guidelines. In addition to that scenario, I identify other, less radical, uses of generative AI in mathematical research. I analyse how guidelines set for ethical AI use in scientific research can be applied in the case of mathematics, arguing that while there are many similarities, there is also a need for mathematics-specific guidelines.

在生成式人工智能时代,数学研究需要伦理准则
基于大型语言模型的生成式人工智能(AI)应用在符号处理和推理任务中没有取得太大成功,因此在数学研究中用处不大。然而,据报道,最近DeepMind的AlphaProof和AlphaGeometry 2应用程序在数学问题解决方面表现良好。这些应用程序是将大型语言模型与基于规则的系统相结合的混合系统,这种方法有时被称为神经符号人工智能。在本文中,我提出了一个场景,其中这样的系统被用于研究数学,更准确地说,在定理证明。在最极端的情况下,这样的系统可能是一个自主自动化定理证明器(AATP),具有证明新的人类有趣定理的潜力,甚至可以在研究论文中展示它们。这种人工智能应用程序的使用将对数学实践产生变革,并需要明确的道德准则。除了这种情况,我还发现了生成式人工智能在数学研究中的其他不那么激进的用途。我分析了为科学研究中人工智能的道德使用设定的指导方针如何应用于数学领域,并认为尽管有许多相似之处,但也需要针对数学的指导方针。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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