The Role of Synchronic Causal Conditions in Visual Knowledge Learning

Seng-Beng Ho
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引用次数: 6

Abstract

We propose a principled approach for the learning of causal conditions from actions and activities taking place in the physical environment through visual input. Causal conditions are the preconditions that must exist before a certain effect can ensue. We propose to consider diachronic and synchronic causal conditions separately for the learning of causal knowledge. Diachronic condition captures the "change" aspect of the causal relationship – what change must be present at a certain time to effect a subsequent change – while the synchronic condition is the "contextual" aspect – what "static" condition must be present to enable the causal relationship involved. This paper focuses on discussing the learning of synchronic causal conditions as well as proposing a principled framework for the learning of causal knowledge including the learning of extended sequences of cause-effect and the encoding of this knowledge in the form of scripts for prediction and problem solving.
共时因果条件在视觉知识学习中的作用
我们提出了一种原则性的方法,通过视觉输入从物理环境中发生的动作和活动中学习因果条件。因果条件是在某种结果发生之前必须存在的先决条件。我们建议对因果知识的学习分别考虑历时和共时的因果条件。历时条件捕捉因果关系的“变化”方面——什么变化必须在一定时间出现,以影响随后的变化——而共时条件是“上下文”方面——什么“静态”条件必须出现,以使涉及的因果关系成为可能。本文重点讨论了共时因果条件的学习,并提出了一个因果知识学习的原则框架,包括因果扩展序列的学习和以脚本形式对这些知识进行编码,以用于预测和解决问题。
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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