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A logical framework for data-driven reasoning

Academic Article
Publication Date:
2024
Citation:
A logical framework for data-driven reasoning / P. Baldi, E.A. Corsi, H. Hosni. - In: LOGIC JOURNAL OF THE IGPL. - ISSN 1367-0751. - (2024), pp. jzae113.1-jzae113.36. [Epub ahead of print] [10.1093/jigpal/jzae113]
abstract:
We introduce and investigate a family of consequence relations with the goal of capturing certain important patterns of data-driven inference. The inspiring idea for our framework is the fact that data may reject, possibly to some degree, and possibly by mistake, any given scientific hypothesis. There is no general agreement in science about how to do this, which motivates putting forward a logical formulation of the problem. We do so by investigating distinct definitions of 'rejection degrees' each yielding a consequence relation. Our investigation leads to novel variations on the theme of rational consequence relations, prominent among non-monotonic logics.
IRIS type:
01 - Articolo su periodico
Keywords:
data-driven inference; significance inference; null hypothesis significance testing; non-monotonic logic
List of contributors:
P. Baldi, E.A. Corsi, H. Hosni
Authors of the University:
HOSNI HYKEL ( author )
Link to information sheet:
https://air.unimi.it/handle/2434/1160844
Full Text:
https://air.unimi.it/retrieve/handle/2434/1160844/2916152/jzae113.pdf
Project:
Reasoning with Data
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Settore PHIL-02/A - Logica e filosofia della scienza
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