Data visualisation for time series in environmental epidemiology.
نویسندگان
چکیده
BACKGROUND Data visualisation has become an integral part of statistical modelling. METHODS We present visualisation methods for preliminary exploration of time-series data, and graphical diagnostic methods for modelling relationships between time-series data in medicine. We use exploratory graphical methods to better understand the relationship between a time-series reponse and a number of potential covariates. Graphical methods are also used to examine any remaining information in the residuals from these models. RESULTS We applied exploratory graphical methods to a time-series data set consisting of daily counts of hospital admissions for asthma, and pollution and climatic variables. We provide an overview of the most recent and widely applicable data-visualisation methods for portraying and analysing epidemiological time series. DISCUSSION Exploratory graphical analysis allows insight into the underlying structure of observations in a data set, and graphical methods for diagnostic purposes after model-fitting provide insight into the fitted model and its inadequacies.
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عنوان ژورنال:
- Journal of epidemiology and biostatistics
دوره 6 6 شماره
صفحات -
تاریخ انتشار 2001