论文标题

自然智力理论

A Theory of Natural Intelligence

论文作者

von der Malsburg, Christoph, Stadelmann, Thilo, Grewe, Benjamin F.

论文摘要

简介:与当前的AI技术,自然智能(这种自主智力)相反,在动物和人类的大脑中实现的这种自主智力是在其自然环境目标中实现的。这些优势如何通过自然神经网络中产生的思想和想象力是什么? 方法:回顾文献,我们提出了这样的论点,即我们的自然环境和大脑都具有低复杂性,也就是说,他们的一代人的信息很少,因此既有高度结构化。我们进一步认为,大脑和自然环境的结构密切相关。 结果:我们建议大脑的结构规律性采用净碎片(自组织网络模式)的形式,并且这些形式是使大脑能够快速学习,从几个例子中概括并弥合抽象定义的一般目标和混凝土情况之间差距的强大感应偏见。 结论:我们的结果对人工神经网络研究中的开放问题具有重要的轴承。

Introduction: In contrast to current AI technology, natural intelligence -- the kind of autonomous intelligence that is realized in the brains of animals and humans to attain in their natural environment goals defined by a repertoire of innate behavioral schemata -- is far superior in terms of learning speed, generalization capabilities, autonomy and creativity. How are these strengths, by what means are ideas and imagination produced in natural neural networks? Methods: Reviewing the literature, we put forward the argument that both our natural environment and the brain are of low complexity, that is, require for their generation very little information and are consequently both highly structured. We further argue that the structures of brain and natural environment are closely related. Results: We propose that the structural regularity of the brain takes the form of net fragments (self-organized network patterns) and that these serve as the powerful inductive bias that enables the brain to learn quickly, generalize from few examples and bridge the gap between abstractly defined general goals and concrete situations. Conclusions: Our results have important bearings on open problems in artificial neural network research.

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