Probabilistic Clustering of Extratropical Cyclones Using Regression Mixture Models
نویسندگان
چکیده
A probabilistic clustering technique is developed for classification of wintertime extratropical cyclone (ETC) tracks over the North Atlantic. We use a regression mixture model to describe the longitude-time and latitude–time propagation of the ETCs. A simple tracking algorithm is applied to 6-hourly mean sea-level pressure fields to obtain the tracks from either a general circulation model (GCM) or a reanalysis data set. Quadratic curves are found to provide the best description of the data. We select a three-cluster classification for both data sets, based on a mix of objective and subjective criteria. The track orientations in each of the clusters are broadly similar for the GCM and reanalyzed data; they are characterized by predominantly south-to-north (S–N), west-to-east (W–E), and southwest-to-northeast (SW–NE) tracking cyclones, respectively. The reanalysis cyclone tracks, however, are found to be much more tightly clustered geographically than those of the GCM. For the reanalysis data, anomaly composites of high-pass-filtered mean sea level pressures and the ambient 700-hPa geopotential height field resemble patterns of the positive and negative phases of the North Atlantic Oscillation for the SW–NE and W–E clusters respectively, while the S–N cluster is accompanied by a more transient geopotential trough over the
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