Including uncertainty of the expected mortality rates in the prediction of loss in life expectancy

Autor: Yuliya Leontyeva, Mats Lambe, Hannah Bower, Paul C. Lambert, Therese M.-L. Andersson
Jazyk: angličtina
Rok vydání: 2023
Předmět:
Zdroj: BMC Medical Research Methodology, Vol 23, Iss 1, Pp 1-14 (2023)
Druh dokumentu: article
ISSN: 1471-2288
DOI: 10.1186/s12874-023-02118-w
Popis: Abstract Purpose This study introduces a novel method for estimating the variance of life expectancy since diagnosis (LEC) and loss in life expectancy (LLE) for cancer patients within a relative survival framework in situations where life tables based on the entire general population are not accessible. LEC and LLE are useful summary measures of survival in population-based cancer studies, but require information on the mortality in the general population. Our method addresses the challenge of incorporating the uncertainty of expected mortality rates when using a sample from the general population. Methods To illustrate the approach, we estimated LEC and LLE for patients diagnosed with colon and breast cancer in Sweden. General population mortality rates were based on a random sample drawn from comparators of a matched cohort. Flexible parametric survival models were used to model the mortality among cancer patients and the mortality in the random sample from the general population. Based on the models, LEC and LLE together with their variances were estimated. The results were compared with those obtained using fixed expected mortality rates. Results By accounting for the uncertainty of expected mortality rates, the proposed method ensures more accurate estimates of variances and, therefore, confidence intervals of LEC and LLE for cancer patients. This is particularly valuable for older patients and some cancer types, where underestimation of the variance can be substantial when the entire general population data are not accessible. Conclusion The method can be implemented using existing software, making it accessible for use in various cancer studies. The provided example of Stata code further facilitates its adoption.
Databáze: Directory of Open Access Journals
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