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I have extracted data to a data frame with mixed format dates that need consolidated. The structure of the data frame is as follows:

dateDF <- structure(list(id = 1:7, value = c(5813L, 8706L, 4049L, 5877L, 
1375L, 2223L, 3423L), date = structure(c(4L, 3L, 2L, 1L, 7L, 
6L, 5L), .Label = c("??:?? 05-Dec-11", "??:?? 06-Dec-11", "??:?? 07-Dec-11", 
"??:?? 19-Dec-11", "30/12/2011 16:00", "30/12/2011 16:45", "31/12/2011 19:10"
), class = "factor")), .Names = c("id", "value", "date"), row.names = c(NA, 
-7L), class = "data.frame")

I have used dateDF$date <- str_replace(string=dateDF$date, pattern='\\?\\?\\:\\?\\? ', '12:00 ') to produce:

id  value   date
1   5813    12:00 19-Dec-11
2   8706    12:00 07-Dec-11
3   4049    12:00 06-Dec-11
4   5877    12:00 05-Dec-11
5   1375    31/12/2011 19:10
6   2223    30/12/2011 16:45
7   3423    30/12/2011 16:00

I now need to convert the top 4 style dates with format hh:mm dd-mmm-yy to a format consistent with the bottom three date formats dd/mm/yyyy hh:mm for each case where the first format exists in the column.

Any help is appreciated.

J.

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1 Answer 1

up vote 2 down vote accepted

If you know that you only have those two formats, you can first identify them (the first one has alphabetic characters in it, the other does not) and convert accordingly.

dateDF$date <- as.POSIXlt( 
  dateDF$date, 
  format = ifelse( 
    grepl("[a-z]", d$date), 
    "%H:%M %d-%b-%y", 
    "%d/%m/%Y %H:%M" 
  ) 
)
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Thanks @VincentZoonekynd, this is wonderful. –  John Jan 18 '12 at 0:55

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