Deep Learning Applied to Scientific Discovery: A Hot Interface with Philosophy of Science

Journal for General Philosophy of Science / Zeitschrift für Allgemeine Wissenschaftstheorie 54 (2):339-351 (2023)
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Abstract

We review publications in automated scientific discovery using deep learning, with the aim of shedding light on problems with strong connections to philosophy of science, of physics in particular. We show that core issues of philosophy of science, related, notably, to the nature of scientific theories; the nature of unification; and of causation loom large in scientific deep learning. Therefore, advances in deep learning could, and ideally should, have impact on philosophy of science, and vice versa. We suggest lines of further research, and highlight the role ‘theory-based’ AI could have in future developments of the field.

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Author Profiles

Louis Vervoort
Université du Québec à Montreal
Henry Shevlin
Cambridge University

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References found in this work

Causation.David Lewis - 1973 - Journal of Philosophy 70 (17):556-567.
The Logic of Scientific Discovery.Karl Popper - 1959 - Studia Logica 9:262-265.
Understanding from Machine Learning Models.Emily Sullivan - 2022 - British Journal for the Philosophy of Science 73 (1):109-133.
Deep learning: A philosophical introduction.Cameron Buckner - 2019 - Philosophy Compass 14 (10):e12625.

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