Dados Bibliográficos

AUTOR(ES) Nelly D. Oelke , Debbie Elizabeth White , Steven Friesen
AFILIAÇÃO(ÕES) University of British Columbia Press, Associate Professor, Associate Dean of Research Faculty of Nursing, University of Calgary, Calgary, Alberta, Canada, Quality Practice Leader, Bethany Care Society, Calgary, Alberta, Canada
ANO 2012
TIPO Artigo
PERIÓDICO International Journal of Qualitative Methods
ISSN 1609-4069
E-ISSN 1609-4069
DOI 10.1177/160940691201100305
CITAÇÕES 11
ADICIONADO EM 2025-08-18
MD5 2efa53f029ddf47ac25a41a8069d7351

Resumo

Health services research is multifaceted and impacted by the multiple contexts and stakeholders involved. Hence, large data sets are necessary to fully understand the complex phenomena (e.g., scope of nursing practice) being studied. The management of these large data sets can lead to numerous challenges in establishing trustworthiness of the study. This article reports on strategies utilized in data collection and analysis of a large qualitative study to establish trustworthiness. Specific strategies undertaken by the research team included training of interviewers and coders, variation in participant recruitment, consistency in data collection, completion of data cleaning, development of a conceptual framework for analysis, consistency in coding through regular communication and meetings between coders and key research team members, use of N6™ software to organize data, and creation of a comprehensive audit trail with internal and external audits. Finally, we make eight recommendations that will help ensure rigour for studies with large qualitative data sets: organization of the study by a single person; thorough documentation of the data collection and analysis process; attention to timelines; the use of an iterative process for data collection and analysis; internal and external audits; regular communication among the research team; adequate resources for timely completion; and time for reflection and diversion. Following these steps will enable researchers to complete a rigorous, qualitative research study when faced with large data sets to answer complex health services research questions.

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