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Abstract In much of North America, variables such as temperature, precipitation, snowpack and streamflow are modulated by modes of large‐scale ocean‐atmosphere variability such as the Pacific Decadal Oscillation (PDO), El Niño‐Southern Oscillation (ENSO) and the Pacific North American Pattern (PNA). In this study, we test the hypothesis that the influence of these modes on air temperature and precipitation in British Columbia (BC), Canada, can be explained in relation to changes in frequencies of synoptic‐scale circulation types. A catalogue of 13 circulation types was derived by classifying daily mean sea‐level pressure (MSLP) grids from 1948 to 2003. The grids cover BC and the North Pacific and were subjected to a standard pattern recognition algorithm employing principal component analysis followed by cluster analysis on the component scores. The circulation types are generally associated with distinctive patterns of precipitation and air temperature anomalies across BC. Multiple linear regressions for selected stations in BC using the type frequencies as predictors explain up to 75% of the variance of mean winter temperature and 65% of winter precipitation. The frequencies of most circulation types vary significantly between the different phases of ENSO, PDO and PNA in a manner consistent with the temperature anomalies associated with those modes and, to a lesser extent, with the more complex precipitation anomalies. In addition, however, average temperatures and precipitation amounts for some circulation types differ systematically between phases of ENSO and PDO. Subsequent analysis revealed distinct differences among ENSO and PDO phases in the upper‐level circulation patterns associated with some surface types. A major part of the teleconnections can be explained through variations in the frequencies of synoptic‐scale circulation types, but systematic within‐type variability, particularly with PDO and PNA, can additionally influence the surface climate. Copyright © 2005 Royal Meteorological Society.
Stahl et al. (Fri,) studied this question.