因果史,统计相关性和解释力

IF 1.4 2区 哲学 Q1 HISTORY & PHILOSOPHY OF SCIENCE
David Kinney
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引用次数: 0

摘要

在讨论因果解释的力量时,人们经常发现对两个前提的承诺。第一个是,在其他条件相同的情况下,因果解释的强大程度在于它引用了因果效应发生的完整历史。第二个是,在其他条件相同的情况下,因果解释的强大程度在于,一个原因的出现使我们能够预测其结果的出现。本文证明了一个表示定理,表明存在一个唯一的函数族来衡量满足这两个前提的因果解释的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Causal History, Statistical Relevance, and Explanatory Power
In discussions of the power of causal explanations, one often finds a commitment to two premises. The first is that, all else being equal, a causal explanation is powerful to the extent that it cites the full causal history of why the effect occurred. The second is that, all else being equal, causal explanations are powerful to the extent that the occurrence of a cause allows us to predict the occurrence of its effect. This article proves a representation theorem showing that there is a unique family of functions measuring a causal explanation’s power that satisfies these two premises.
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来源期刊
Philosophy of Science
Philosophy of Science 管理科学-科学史与科学哲学
CiteScore
3.10
自引率
5.90%
发文量
128
审稿时长
6-12 weeks
期刊介绍: Since its inception in 1934, Philosophy of Science, along with its sponsoring society, the Philosophy of Science Association, has been dedicated to the furthering of studies and free discussion from diverse standpoints in the philosophy of science. The journal contains essays, discussion articles, and book reviews.
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