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I have a date:

> require(zoo)
> date1 <- as.yearmon("Mar 2012", "%b %Y")
> class(date1)
[1] "yearmon"

How can I extract the month and year from this?

month1 <- fn(date1)
year1 <- fn(date1)

What function should I use in place of fn()

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6 Answers 6

up vote 76 down vote accepted

Use the format() method for objects of class "yearmon". Here is your example date (properly created!)

date1 <- as.yearmon("Mar 2012", "%b %Y")

Then we can extract the date parts as required:

> format(date1, "%b") ## Month, char, abbreviated
[1] "Mar"
> format(date1, "%Y") ## Year with century
[1] "2012"
> format(date1, "%m") ## numeric month
[1] "03"

These are returned as characters. Where appropriate, wrap in as.numeric() if you want the year or numeric month as a numeric variable, e.g.

> as.numeric(format(date1, "%m"))
[1] 3
> as.numeric(format(date1, "%Y"))
[1] 2012

See ?yearmon and ?strftime for details - the latter explains the placeholder characters you can use.

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Thank you very much for your help. –  adam.888 Mar 17 '12 at 12:07
%B for full month, i.e. March "instead" of "Mar" –  PatrickT Mar 22 '14 at 10:06

The lubridate package is amazing for this kind of thing:

> require(lubridate)
> month(date1)
[1] 3
> year(date1)
[1] 2012
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Ha thank you for this answer. It especially beats the other solutions when you want to do something like if(year(date1) > 2014){year(date1) <- year(date1) - 100} –  Vincent Feb 10 '14 at 9:34
this was definitely the best answer for my requirements of taking the year piece out of 4000 contracts' start dates. –  D8Amonk Mar 7 at 18:06
@Ari B. Friedman i am currently using R 3.1.0 while this doesn'tsupport lubridate package and tried installing this and used year(date) but it gives the day instead of year does this only work on dates whose format is "2015-05-06" ? –  KRU May 6 at 3:34
@KRU New versions of R sometimes take a few weeks for the repositories to update all packages. It should work on all date formats as long as it's a true date format, not a character vector. Please post a new q if that still doesn't solve your problem and you can't search SO for either component of your question. –  Ari B. Friedman May 8 at 6:43

You can use format:

x <- as.yearmon(Sys.time())
[1] "Mar"
[1] "2012"
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How can I get the month to be a number? (eg 3 for Mar?) –  adam.888 Mar 17 '12 at 11:47
@user1169210 format(x,"%m") –  James Mar 17 '12 at 12:04
@user1169210 I covered this in my answer. You want as.numeric(format(x, "%m")) for the month as a numeric for example. –  Gavin Simpson Mar 17 '12 at 12:05
Thank you very much for your help. –  adam.888 Mar 17 '12 at 12:07

I know the OP is using zoo here, but I found this thread googling for a standard ts solution for the same problem. So I thought I'd add a zoo-free answer for ts as well.

# create an example Date 
date_1 <- as.Date("1990-01-01")
# extract year
as.numeric(format(date_1, "%Y"))
# extract month
as.numeric(format(date_1, "%m"))
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For large vectors:

y = as.POSIXlt(date1)$year + 1900    # x$year : years since 1900
m = as.POSIXlt(date1)$mon + 1        # x$mon : 0–11
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This is the best answer, since R already provides the handy POSIXlt object that makes zoo package unnecessary –  Marco Demaio Aug 11 at 15:45

I did this, since if one uses zoo, one has problems with ggplot etc

GT[,1]<- as.Date(GT[,1])
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It is not true that zoo has problems with ggplot2. In fact, it has an extensive interface to ggplot2. –  G. Grothendieck Oct 13 '14 at 10:57

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