I am trying to "combine" two categorical variables in Stata (say var1 and var2) into a new (also categorical) variable (say res).

The example below illustrates what I am trying to achieve:

var1    var2    res
1       1       A
1       2       A
2       1       A
3       3       B
4       2       A
5       4       D

What this example does is to combine all categories of var1 and var2 that "overlap".

Here, the pair var1 == 1 and var2 == 1 initially form a group (res== A). All other pairs containing var1 == 1 or var2 == 1 should belong to the same group (hence res== A in rows 2 and 3). Because in row 2 we have var2==2, any pair with containing var2==2 should belong to the same group. That's why in row 4 res== A.

Another way to look at this problem is using the following matrix:

     |  1   2   3   4
-----------------------        
   1 |  1   1       
   2 |  1           
   3 |          1   
   4 |      1       
   5 |              1

Because the element [1,1] is not empty (or zero), all elements in row 1 and column 1 must belong to the same group. Because [1,2] is not empty, the same is true for row 1, column 2. And so on and so forth. It does not matter which row/column you decide to start from.

egen group alone doesn't cut it.

Any ideas?

up vote 3 down vote accepted

Sounds like you want to further group var1 if the values of var2 are the same. If that's the case, then you can use a program I wrote called group_id that's available from SSC. To install it, type in Stata's Command window:

ssc install group_id

Here's an example of how you would use it:

* Example generated by -dataex-. To install: ssc install dataex
clear
input float(var1 var2) str1 res
1 1 "A"
1 2 "A"
2 1 "A"
3 3 "B"
4 2 "A"
5 4 "D"
end

gen long wanted = var1
group_id wanted, matchby(var2)

list, sep(0)

and the results:

. list, sep(0)

     +----------------------------+
     | var1   var2   res   wanted |
     |----------------------------|
  1. |    1      1     A        1 |
  2. |    1      2     A        1 |
  3. |    2      1     A        1 |
  4. |    3      3     B        3 |
  5. |    4      2     A        1 |
  6. |    5      4     D        5 |
     +----------------------------+
  • Yes, this appears to be the case and the best/simplest way to go about it. – Pearly Spencer Jul 31 at 14:35

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.