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A data-driven study on preferred situations for running


Description

We analyzed a large data set from a mobile exercise application to find the preferred running situations of a large number of users. We categorized the users according to
their running behaviors (i.e. regularly active, or rarely ac-tive over the year), then studied the influence of 15 features, including temporal, geographical and weather-based features for different user groups. We found that geographical features influence the behavior of less active runners.



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Open Access