通过系统性来解释可解释性:人工智能的艰难系统性挑战
1Institute of Philosophy, University of Bern, Laenggassstrasse 49a, 3012 Bern, Switzerland.
概括
人工智能 (AI) 需要的不仅仅是可解释性;它需要系统性来实现一致和连贯的思维. 本文重新定义了系统性,解决了挑战,并提出了人工智能发展的动态框架.
科学领域:
- 认知科学 认知科学
- 人工智能的人工智能
- 思想的哲学 思想的哲学
背景情况:
- 可解释性是人工智能的关键期望,但不是高级人工智能的唯一标准.
- "系统性挑战"历史上质疑连接主义AI实现系统思维的能力.
- 一个更丰富的系统性概念,包括一致性和连贯性,已经被忽视了.
研究的目的:
- 为人工智能提出一个更广泛的理想,超越了解释性,专注于系统性.
- 提供一个概念框架,区分"思想系统性"的四种感官.
- 重新评估连接主义和系统性之间的紧张关系.
主要方法:
- 对"思想的系统性"进行概念分析.
- 区分多种意义上的系统性.
- 检查系统化的理由及其可转移到人工智能模型.
主要成果:
- 提出了一个概念框架,区分四种系统性的感觉.
- 解决了连接主义和系统性之间的感知冲突.
- 确定了系统化的五个理由,并应用于AI,揭示了"艰难的系统性挑战".
结论:
- 人工智能的系统性理想比以前理解的要苛刻得多.
- 建议对系统化的动态理解,调节AI对系统性的需求.
- 这一框架指导了人工智能模型应该如何以及何时变得更加系统.
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