cs.AI updates on arXiv.org 07月21日 12:06
Why Isn't Relational Learning Taking Over the World?
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文章探讨了AI领域的关系学习未被广泛应用的原因,指出现实世界中数据多存在于表格、数据库等关系格式中,而关系学习尚未得到足够重视。

arXiv:2507.13558v1 Announce Type: new Abstract: AI seems to be taking over the world with systems that model pixels, words, and phonemes. The world is arguably made up, not of pixels, words, and phonemes but of entities (objects, things, including events) with properties and relations among them. Surely we should model these, not the perception or description of them. You might suspect that concentrating on modeling words and pixels is because all of the (valuable) data in the world is in terms of text and images. If you look into almost any company you will find their most valuable data is in spreadsheets, databases and other relational formats. These are not the form that are studied in introductory machine learning, but are full of product numbers, student numbers, transaction numbers and other identifiers that can't be interpreted naively as numbers. The field that studies this sort of data has various names including relational learning, statistical relational AI, and many others. This paper explains why relational learning is not taking over the world -- except in a few cases with restricted relations -- and what needs to be done to bring it to it's rightful prominence.

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关系学习 AI领域 数据模型
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