I have a string variable called country with a value which can be for example Afghanistan2008, but it can also be Brasil2012. I would like to create two new variables, one being the country part and one the year part .

Because there are always numbers at the end of the string, I do know the position the string should be split at from the right side but not from the left side.

Could I use something like:

gen(substr("country",-4,.))

If not, could anyone tell me how to split an entire column of such variables into a country and a year variable? I would also like to keep the original variable.

up vote 2 down vote accepted

You can use a regular expression:

clear
set obs 2

generate string = ""
replace string = "Afghanistan2008" in 1
replace string = "Brasil2012" in 2

generate country = regexs(0) if regex(string, "[a-zA-Z]+")
generate year = regexs(1) + regexs(2) if regex(string, "(19|20)([0-9][0-9])")

list

   +--------------------------------------+
   |          string       country   year |
   |--------------------------------------|
1. | Afghanistan2008   Afghanistan   2008 |
2. |      Brasil2012        Brasil   2012 |
   +--------------------------------------+

Type help regex in Stata's command prompt for more information.

Alternatively you could do the following:

generate len = length(string) - 3

generate country2 = substr(string, 1, len - 1)
generate year2 = substr(string, len, .)

list country2 year2

   +---------------------+
   |    country2   year2 |
   |---------------------|
1. | Afghanistan    2008 |
2. |      Brasil    2012 |
   +---------------------+
  • Thanks for your help. Is there no way to tell the substr() function to substract the negative of 'gen spyear = real(substr(country,-4,.))' ? – Tom May 7 at 15:30
  • I am a little bit confused about the use of the first part of your explanation.Could I not simply use the last two lines of your explanation? generate country = regexs(0) if regex(string, "[a-zA-Z]+") generate year = regexs(1) + regexs(2) if regex(string, "(19|20)([0-9][0-9])") I am not really sure what the rest does.. – Tom May 7 at 15:35
  • Yes. The rest just creates a Minimal, Complete, and Verifiable example (which you should had provided). I have also updated my answer to include an alternative solution based on the substr() function. – Pearly Spencer May 7 at 15:38
  • Thank you very much for your answer. I ended up using . "generate len = length(country) - 3 . generate spcountry = substr(country, 1, len - 1)" . Thank you for your help. Please do understand that for various reasons people sometimes just need a quick fix.. – Tom May 7 at 15:53
  • Sorry only upvoted, check marked now. – Tom May 7 at 15:56

For my specific situation the following makes a new year variable:

gen spyear = real(substr(country,-4,.))

I took the other part from @PearlySpencer:

generate len = length(country) - 3
generate spcountry = substr(country, 1, len - 1)

which creates an excess column to be removed.

EDIT (Nick Cox) This can be simplified to

gen spyear = real(substr(country, -4, 4)) 
gen spcountry = substr(country, 1, length(country) - 4)

showing that

  1. There is no need to create a variable containing the string length.

  2. The puzzling split 4 = 3 + 1 is not needed either.

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