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in R, I got the data class of date as follow:

20100701
20100702
20100703
20100704

how could I transform them to the follow form:

2010 07 01
2010 07 02
2010 07 03

the data of year,month and day in 3 columns.

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1  
It's unclear how to answer your question. Could you please edit to include the output of dput(myinputdatahere) so that we can replicate what you're working with? That'll provide us with the metadata necessary to answer your question exactly. –  Tommy O'Dell Jul 10 '12 at 6:29

3 Answers 3

up vote 2 down vote accepted

Just to mention, this can also be done (although maybe less conveniently than with package lubridate) with functions strptime and format.POSIXct from the base package :

x <- c(20100701,20100702,20100703,20100704)
strptime(x, format="%Y%m%d") -> y
data.frame(year=format(y,format="%Y"),month=format(y,format="%m"),day=format(y,format="%d"))
  year month day
1 2010    07  01
2 2010    07  02
3 2010    07  03
4 2010    07  04
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This is very straight-forward if you use the package lubridate:

library(lubridate)
x <- ymd(dates)
data.frame(y=year(x), m=month(x), d=day(x))
     y m d
1 2010 7 1
2 2010 7 2
3 2010 7 3
4 2010 7 4

lubridate provides a stack of convenience functions to work with dates. In this example:

  • ymd() converts a string to date, guessing what the format is.
  • year() extractst the year
  • month() extracts the month
  • day() extracts the day
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Some dummy data:

dates <- c("20100701", "20100701", "20100701", "20100701")

To get dates:

library(lubridate)
ymd(dates)
Using date format %Y%m%d.
[1] "2010-07-01 UTC" "2010-07-01 UTC" "2010-07-01 UTC" "2010-07-01 UTC"

To get a dataframe, and just split the string:

library(stringr)
data.frame(year=str_sub(dates, 1, 4), month=str_sub(dates, 5, 6), day=str_sub(dates, 7, 8))
  year month day
1 2010    07  01
2 2010    07  01
3 2010    07  01
4 2010    07  01
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You could easily get rid of the stringr dependency by changing str_sub to substr –  Dason Oct 5 '12 at 16:33

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