Causality and Scientific Inquiry: Lessons from Space Physics and Medical Sciences

Fuente: arXiv
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Main Authors: Asgari-Targhi, Marzieh, Asgari-Targhi, Amene, Asgari-Targhi, Mahboubeh, J., Edward, Hall
Format: Preprint
Published: 2026
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author Asgari-Targhi, Marzieh
Asgari-Targhi, Amene
Asgari-Targhi, Mahboubeh
J., Edward
Hall
author_facet Asgari-Targhi, Marzieh
Asgari-Targhi, Amene
Asgari-Targhi, Mahboubeh
J., Edward
Hall
contents Over the past two decades, the rapid surge in data-intensive computational techniques for statistical modeling may have had the effect of diminishing the use of applied mathematics in causal scientific inquiry. In this paper, co-authored by an astrophysicist, a mathematician, and philosophers, we assess the hazards of neglecting the branch of mathematics that constructs models to address causal questions in favor of statistical modeling alone. Causality is relevant in all branches of science and is often elucidated through applied mathematics. Here, we illuminate the idea with examples drawn from space physics and medical sciences. We examine causal questions to demonstrate how applied mathematical and statistical methods may differentiate between two fundamental facets of causality, i.e., mechanistic and difference-making. Understanding such foundational differences in causality may, in some cases, help explain discrepant or erroneous research results. Most importantly, understanding the relationship between causality and analytical approaches used in science has the potential to strengthen the rigor and reliability of scientific inquiry through optimal selection of mathematical and/or statistical methods.
format Preprint
id arxiv_https___arxiv_org_abs_2605_11420
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Causality and Scientific Inquiry: Lessons from Space Physics and Medical Sciences
Asgari-Targhi, Marzieh
Asgari-Targhi, Amene
Asgari-Targhi, Mahboubeh
J., Edward
Hall
History and Philosophy of Physics
Solar and Stellar Astrophysics
Over the past two decades, the rapid surge in data-intensive computational techniques for statistical modeling may have had the effect of diminishing the use of applied mathematics in causal scientific inquiry. In this paper, co-authored by an astrophysicist, a mathematician, and philosophers, we assess the hazards of neglecting the branch of mathematics that constructs models to address causal questions in favor of statistical modeling alone. Causality is relevant in all branches of science and is often elucidated through applied mathematics. Here, we illuminate the idea with examples drawn from space physics and medical sciences. We examine causal questions to demonstrate how applied mathematical and statistical methods may differentiate between two fundamental facets of causality, i.e., mechanistic and difference-making. Understanding such foundational differences in causality may, in some cases, help explain discrepant or erroneous research results. Most importantly, understanding the relationship between causality and analytical approaches used in science has the potential to strengthen the rigor and reliability of scientific inquiry through optimal selection of mathematical and/or statistical methods.
title Causality and Scientific Inquiry: Lessons from Space Physics and Medical Sciences
topic History and Philosophy of Physics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2605.11420