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Development of an algorithm for determining smoking status and behaviour over the life course from UK electronic primary care records.
Atkinson, Mark D; Kennedy, Jonathan I; John, Ann; Lewis, Keir E; Lyons, Ronan A; Brophy, Sinead T.
Afiliação
  • Atkinson MD; Farr Institute, Swansea University Medical School, Swansea, SA2 8PP, UK. M.Atkinson@swansea.ac.uk.
  • Kennedy JI; Farr Institute, Swansea University Medical School, Swansea, SA2 8PP, UK.
  • John A; Farr Institute, Swansea University Medical School, Swansea, SA2 8PP, UK.
  • Lewis KE; Farr Institute, Swansea University Medical School, Swansea, SA2 8PP, UK.
  • Lyons RA; Prince Philip Hospital, Hywel Dda Health Board, Llanelli, UK.
  • Brophy ST; Farr Institute, Swansea University Medical School, Swansea, SA2 8PP, UK.
BMC Med Inform Decis Mak ; 17(1): 2, 2017 01 05.
Article em En | MEDLINE | ID: mdl-28056955
ABSTRACT

BACKGROUND:

Patients' smoking status is routinely collected by General Practitioners (GP) in UK primary health care. There is an abundance of Read codes pertaining to smoking, including those relating to smoking cessation therapy, prescription, and administration codes, in addition to the more regularly employed smoking status codes. Large databases of primary care data are increasingly used for epidemiological analysis; smoking status is an important covariate in many such analyses. However, the variable definition is rarely documented in the literature.

METHODS:

The Secure Anonymised Information Linkage (SAIL) databank is a repository for a national collection of person-based anonymised health and socio-economic administrative data in Wales, UK. An exploration of GP smoking status data from the SAIL databank was carried out to explore the range of codes available and how they could be used in the identification of different categories of smokers, ex-smokers and never smokers. An algorithm was developed which addresses inconsistencies and changes in smoking status recording across the life course and compared with recorded smoking status as recorded in the Welsh Health Survey (WHS), 2013 and 2014 at individual level. However, the WHS could not be regarded as a "gold standard" for validation.

RESULTS:

There were 6836 individuals in the linked dataset. Missing data were more common in GP records (6%) than in WHS (1.1%). Our algorithm assigns ex-smoker status to 34% of never-smokers, and detects 30% more smokers than are declared in the WHS data. When distinguishing between current smokers and non-smokers, the similarity between the WHS and GP data using the nearest date of comparison was κ = 0.78. When temporal conflicts had been accounted for, the similarity was κ = 0.64, showing the importance of addressing conflicts.

CONCLUSIONS:

We present an algorithm for the identification of a patient's smoking status using GP self-reported data. We have included sufficient details to allow others to replicate this work, thus increasing the standards of documentation within this research area and assessment of smoking status in routine data.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Atenção Primária à Saúde / Comportamentos Relacionados com a Saúde / Fumar / Registro Médico Coordenado / Abandono do Hábito de Fumar / Registros Eletrônicos de Saúde Tipo de estudo: Guideline / Prevalence_studies / Prognostic_studies / Risk_factors_studies Limite: Adolescent / Adult / Aged / Aged80 / Female / Humans / Male / Middle aged País/Região como assunto: Europa Idioma: En Ano de publicação: 2017 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Atenção Primária à Saúde / Comportamentos Relacionados com a Saúde / Fumar / Registro Médico Coordenado / Abandono do Hábito de Fumar / Registros Eletrônicos de Saúde Tipo de estudo: Guideline / Prevalence_studies / Prognostic_studies / Risk_factors_studies Limite: Adolescent / Adult / Aged / Aged80 / Female / Humans / Male / Middle aged País/Região como assunto: Europa Idioma: En Ano de publicação: 2017 Tipo de documento: Article