Skip to main content

ETHNOS_APP

Home • Search • Journals • List 0

Contribution of Chronic Conditions to Aggregate Changes in Old-Age Functioning

Bibliographic Data

ID11037659
AuthorsPeizhong Peter Wang (The authors are with the Department of Public Health Sciences, University of Toronto, Toronto, Ontario.), Peter Wang (0000-0002-0682-6861, Toronto Public Health), E M Badley (0000-0002-6045-2549, Toronto Public Health)
Year2002
Volume92
Issue1
Pages7-7
Publication date2002-01-01
Peer ReviewedYes
Open AccessNo
TypeARTICLE
VenueAmerican Journal of Public Health (JOURNAL)
Journal identifiersISSN: 0090-0036 • E-ISSN: 1541-0048
PublisherAmerican Public Health Association (PUBLISHER • US)
DOI10.2105/ajph.92.1.7
PMID11772743
OpenAlexW2005571404
LanguageEN
Citations received1
References cited1

Because our research interest is in disability, we read Freedman and Martin's article on chronic conditions and disability1 with special interest. Several aspects of their work concerned us. The authors introduced the concept “total contribution of a given factor,” which can be expressed as a summation of (X95 − X84) • (β95 + β84)/2 and (β95−β84) • (X95 + X84)/2. According to Freedman and Martin's notations, β84 and β95 are the regression coefficients for the contribution of condition X to the risk of activity limitation and X84 and X95 are the prevalence of condition X in the general population derived from the 1984 and 1995 data, respectively. However, the authors failed to elaborate the meaning of this concept and left readers wondering what “total contribution” meant. With some algebraic operation, the above summation can be greatly simplified to X95 • β95 − X84 • β84, because βyear and Xyear are the individual average risk for activity limitation and the prevalence in the population for a given chronic condition, respectively. The product of the 2 (β • X) is simply the population attributable risk2 for condition X. Therefore, “total contribution of a given factor” as reported by the authors should be accurately interpreted as the difference of 2 adjusted population attributable risks for a given condition in 2 different years. A better understanding of this concept would help the data presentation greatly; the numbers in Table 5 would be better reported as percentages rather than the confusing decimal numbers. We feel that the results from this study have been overinterpreted. The 2 sets of coefficients for comparison were derived from 2 cross-sectional surveys. Therefore, the association between activity limitation and a given chronic condition, which was reflected in the difference in coefficients for the same chronic condition at 2 time points, could also be influenced by other changes, rather than changes in activity limitation and the chronic condition of interest, between the 2 surveys. When 2 coefficients from 2 surveys are compared, it is unrealistic to assume that all other factors are equal. However, this fundamental limitation was not adequately addressed. Furthermore, the overall goodness of fit for the upper-body models is poor. Chroniccondition variables plus all other covariates can explain only 7% of all variation in upper-body limitation. How the model's predictability affects the interpretation and generalization of results should also be discussed. We believe that the impact of chronic conditions on activity limitation should be explored in terms of both individual and population effects, as the 2 may not be necessarily in agreement. For osteoporosis, for instance, the individual effects on activity limitation differed significantly (β84 = 0.081, β95 = 0.005), but the population attributable risks did not change much (X95 • β95 − X84 • β84 = 0.3%). Therefore, it is clear that at the individual level, the effect of osteoporosis on activity limitation became less severe, which is reflected in the significant change in βs between 1984 and 1994. However, owing to the increased prevalence of osteoporosis during the 10 years, the effect of osteoporosis on activity limitation at the population level remained constant. Finally, we have concerns about some of the statistical tests reported in this article. The authors used a very liberal P value of .1. Consequently, some of the 95% confidence intervals included 0 but were still treated as statistically significant (Table 4). For example, the differences for cancer (0.027 ± 0.029), arthritis (−0.018 ± 0.020) in the upper body, and osteoporosis (–0.222 ± 0.257) were treated as if they were statistically significant. The study was based on large samples, and therefore type I error is more likely to be a concern. In situations like this, a more demanding P value, such as .01, should be used. Also, the P values for differences reported in Table 2 cannot be correct. Using the information provided in that table, we verified these P values and found that at least the differences for broken hip, diabetes, and hypertension were not statistically significant (P > .1). The incorrect statistical tests pose no small threat to the succeeding Results and Discussion

Arithmetic · Decimal · Freedman · Geography · Meaning (existential) · Notation · Population · Product (mathematics) · Regression toward the mean · Sociology · Statistics · Demography · Global Health Care Issues · Health disparities and outcomes · Insurance, Mortality, Demography, Risk Management · Mathematics · Medicine · Psychology

  • A influência das doenças crônicas na capacidade funcional dos idosos do Município de São Paulo, Brasil

    Open Access•Luís C Alves, Luciana Correia Alves et al.•Cadernos de Saude Publica•2007

Unique citing works1
Citations per year0,05
Citation span2007 - 2007 (1)
Citation velocityhistorical
Highly citedNo

Tools

Open DOISci-Hub
Ethnos_APP • Open Source Project • MIT License • Frontend v2.0.0 • Privacy and Cookies • API Documentation: api.ethnos.app/docs • API Source Code: GitHub • DOI: 10.5281/zenodo.17049435 • Frontend Source Code: GitHub • DOI: 10.5281/zenodo.17050053 • cruz.rio.br • Expectantes Misericordiae