An Application of Isotonic Longitudinal Marginal Regression to Monitoring the Healing Process
1999
Fahrmeir, L. | Gieger, Christian | Heumann, Christian
This paper discusses marginal regression for repeated ordinal measurements that are isotonic over time. Such data are often observed in longitudinal studies on healing processes in which, due to recovery, the status of patients only improves or remains the same. We show how this prior information can be used to construct appropriate and parsimoniously parametrized marginal models. As a second aspect, we also incorporate nonparametric fitting of covariate effects via a penalized quasiâlikelihood or general estimating equation approach. We illustrate our methods by an application to sportsârelated injuries.
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