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Dato 2025

Publikasjonstype Vitenskapelig tidsskriftpublikasjon

A framework for advancing independent air quality sensor measurements via transparent data generating process classification

Sebastiàn Diez, Thomas J. Bannan, Miriam Chacón-Mateos, Pete M. Edwards, Valerio Ferracci, Dogushan Kilic, Alastair C. Lewis, Carl Malings, Nicholas A. Martin, Olalekan Popoola, Colleen Marciel F. Rosales, Sean Schmitz, Philipp Schneider, Erika von Schneidemesser

Publikasjonsdetaljer

Publikasjonstype: Vitenskapelig artikkel

Tidsskrift: npj Climate and Atmospheric Science

Volum: 8

Artikkelnummer: 285

Sammendrag:

We propose operational definitions and a classification framework for air quality sensor-derived data, thereby aiding users in interpreting and selecting suitable data products for their applications. We focus on differentiating independent sensor measurements (ISM) from other data products, emphasizing transparency and traceability. Recommendations are provided for manufacturers, academia, and standardization bodies to adopt these definitions, fostering data product differentiation and incentivizing the development of more robust, reliable sensor hardware.

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