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Dear list, here is my simplified data set:

foo <- data.frame(var1= c(1:10), var2=rep(1:5,2),var3=rep(1:2,5),var4=rep(3:7,2) )    

all together 20 variables

foo

   var1 var2 var3   var4    ... var20
1     1    1    1      3
2     2    2    2      4
3     3    3    1      5
4     4    4    2      6
5     5    5    1      7
6     6    1    2      3
7     7    2    1      4
8     8    3    2      5
9     9    4    1      6
10   10    5    2      7

I need to get a unique combination of 3 variables and its sum for each period

ie. sth like

  var1var2var3   var1var3var4   var1var5var18  etc...
1     6               sum
2     6           
3     7          
4     10           
5     11           
6     9         
7     10             
8     13          
9     14          
10    17         

note that var1var3var5 is the same as var3var1var5

Any help is welcome. Regards, Alex

share|improve this question
1  
Are you solving for an arbitrary dataset or this specific one? There might be optimizations for this one. Also, your first solution data point seems like it should be 3, not 6 (row 1, first column) – Tom Cerul Feb 22 '11 at 17:06
1  
It seems like combn(20,3) could be useful here to generate the unique combinations of all columns. How to turn that into something to reference each column in an apply or for loop is a bit beyond me. – Chase Feb 22 '11 at 17:23
up vote 7 down vote accepted

As @Chase suggested, combn gets you what you want:

nams <- apply( combn(colnames(foo),3), 2, function(z) paste(z, collapse = ''))
cols <- combn( ncol(foo), 3)

tripleSums <- apply( cols, 2, function(z) rowSums(foo[,z]))
colnames(tripleSums) <- nams

> tripleSums
      var1var2var3 var1var2var4 var1var3var4 var2var3var4
 [1,]            3            5            5            5
 [2,]            6            8            8            8
 [3,]            7           11            9            9
 [4,]           10           14           12           12
 [5,]           11           17           13           13
 [6,]            9           10           11            6
 [7,]           10           13           12            7
 [8,]           13           16           15           10
 [9,]           14           19           16           11
[10,]           17           22           19           14
share|improve this answer
    
Great, thats exactly what i was looking for. Thanks – Alex Feb 22 '11 at 20:15
    
sure thing, no problem! – Prasad Chalasani Feb 22 '11 at 21:08
    
@Alex, try accepting this answer as the correct one (by clicking the check mark under the vote score). – Roman Luštrik Feb 23 '11 at 9:00

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