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A mechanistic interpretation, if possible

How does predictive modelling causality affect the regulation of chemicals

Dados Bibliográficos

ID5260643
AutoresFrançois Thoreau (University of Liège, autor correspondente)
Ano2016
Volume3
Fascículo2
Data de publicação2016-12-01
Peer ReviewedSim
Open AccessSim
TipoARTICLE
PeriódicoBig Data & Society (JOURNAL)
Identificadores do periódicoISSN: 2053-9517 • E-ISSN: 2053-9517
EditoraSAGE Publications Inc (PUBLISHER)
DOI10.1177/2053951716670189
OpenAlexW2522602083
IdiomaEN
Citações recebidas5
Referências citadas15

The regulation of chemicals is undergoing drastic changes with the use of computational models to predict environmental toxicity. This particular issue has not attracted much attention, despite its major impacts on the regulation of chemicals. This raises the problem of causality at the crossroads between data and regulatory sciences, particularly in the case models known as quantitative structure-activity relationship models. This paper shows that models establish correlations and not scientific facts, and it engages anew the way regulators deal with uncertainties. It does so by exploring the tension and problems raised by the possibility of causal explanation afforded by quantitative structure-activity relationship models. It argues that the specificity of predictive modelling promotes rethinking of the regulation of chemicals

Business · Computational model · Economics · Positive economics · Animal testing and alternatives · Chemistry and Chemical Engineering · Computational Drug Discovery Methods · Computer Science · Psychology · Artificial Intelligence

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Obras citantes distintas5
Citações por ano0,5
Intervalo de citações2016 - 2025 (10)
Velocidade de citaçãorecent
Altamente citadoNão
Tipos de citaçãoNeutras: 2
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