Modelling agreement for binary intensive longitudinal data

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Abstract

Devices that measure our physical, medical and mental condition have entered our daily life recently. Such devices measure our status in a continuous manner and can be useful in predicting future medical events or can guide us towards a healthier life. It is therefore important to establish that such devices record our behaviour in a reliable manner and measure what we believe they measure. In this article, we propose to measure the reliability and validity of a newly developed measuring device in time using a longitudinal model for sequential kappa statistics. We propose a Bayesian estimation procedure. The method is illustrated by a validation study of a new accelerometer in cardiopulmonary rehabilitation patients.

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APA

Vanbelle, S., & Lesaffre, E. (2023). Modelling agreement for binary intensive longitudinal data. Statistical Modelling, 23(2), 127–150. https://doi.org/10.1177/1471082X211034002

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