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Quality assurance and quality control of till compositional data using Python / E. Brouard and P.M. Godbout.M183-2/9309E-PDF

"Compositional data derived from tills play a pivotal role in geoscientific investigations, offering insights into geological processes, environmental conditions, and mineral exploration. However, ensuring the accuracy and reliability of these datasets is paramount for meaningful analyses and informed decision-making. To address this need, this report introduces a comprehensive suite of streamlined Quality Assurance and Quality Control (QA/QC) protocols tailored to till data. Designed to simplify QA/QC workflows—particularly for users with limited experience in coding or statistical analysis—these protocols combine simple procedures with user-friendly Python scripts. The protocols cover essential aspects of data quality assessment, including basic statistics, accuracy, precision, and variability, providing users with plots for visual interpretation and a systematic approach to evaluating the integrity and reliability of their datasets. The manuscript outlines key considerations for meticulous planning, proper data formatting, and the effective use of tools such as Microsoft Excel and Python. By following the outlined procedures and using the provided scripts, users can generate summary statistics, assess measurement accuracy, evaluate differences between routine samples and their analytical duplicates, and determine whether data variability is acceptable for mapping and statistical purposes"--Page 1.

Permanent link to this Catalogue record:
publications.gc.ca/pub?id=9.954824&sl=0

Publication information
Department/Agency
  • Geological Survey of Canada, issuing body.
TitleQuality assurance and quality control of till compositional data using Python / E. Brouard and P.M. Godbout.
Series title
  • Open file, 2816-7155 ; 9309e
Publication typeMonograph - View Master Record
Language[English]
Other language editions[French]
FormatDigital text
Electronic document
Note(s)
  • Issued also in French under title: Contrôle de la qualité et validation des données compositionnelles des tills à l'aide de Python.
  • Includes bibliographical references (page 21).
Publishing information
  • [Ottawa] : Natural Resources Canada = Ressources naturelles Canada, 2025.
  • ©2025
Author / Contributor
  • Brouard, Etienne, author.
Description1 online resource (21 pages) : colour illustrations.
ISBN9780660787893
Catalogue number
  • M183-2/9309E-PDF
Subject terms
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