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I have two data frames that both have a column containing a factor like the following:

> head(test.data)
      var0     var1       date  store
1 109.5678 109.5678 1990-03-30 Store1
2 109.3009 108.4261 1990-06-30 Store1
3 108.8262 106.2517 1990-09-30 Store1
4 108.2443 108.6417 1990-12-30 Store1
5 109.5678 109.5678 1991-03-30 Store1
6 109.3009 108.4261 1991-06-30 Store1
> summary(test.data)
      var0             var1              date                store   
 Min.   : -9.72   Min.   : -2.297   Min.   :1990-03-30   Store1 : 8  
 1st Qu.: 68.32   1st Qu.: 71.305   1st Qu.:1990-09-07   Store2 : 8  
 Median :102.19   Median :101.192   Median :1991-02-13   Store3 : 8  
 Mean   :101.09   Mean   :103.042   Mean   :1991-02-13   Store4 : 8  
 3rd Qu.:151.22   3rd Qu.:151.940   3rd Qu.:1991-07-23   Store5 : 8  
 Max.   :196.55   Max.   :201.099   Max.   :1991-12-30   Store6 : 8  
                                                         (Other):48  
>
> head(test.clusters)
   store cluster
1 Store1       A
2 Store2       C
3 Store3       A
4 Store4       B
5 Store5       D
6 Store6       A
>
> summary(test.clusters)
     store   cluster
 Store1 :1   A:5    
 Store2 :1   B:4    
 Store3 :1   C:2    
 Store4 :1   D:1    
 Store5 :1          
 Store6 :1          
 (Other):6          
> 

I want to add a column to test.data containing each row's cluster, based on their shared store. I am currently doing this using a doubly nested loop:

new_col <- rep(test.clusters$cluster[1], length(test.data$store))
for (i in seq(test.data$store)){
  for (j in seq(test.clusters$store)){
    if (test.data$store[i] == test.clusters$store[j]){
      new_col[i] <- test.clusters$cluster[j]
      break
    }       
  }
}
test.data$cluster <- new_col

This is very verbose, grossly inefficient and frankly ugly. What is the idiomatic method for doing this in R?

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3 Answers 3

Use the join function from plyr. It uses match internally, so should be fast (4-10x faster than merge).

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Note that this only works with the current version of plyr. If you're stuck on an older version of R, for whatever reason, this won't be an option. –  Harlan Oct 6 '10 at 15:26

Use merge function.

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3  
+1 See also stackoverflow.com/questions/3515611/merge-command-in-r and stackoverflow.com/questions/2232699/… for example, or do a search on "merge [r]" on the site. –  Joris Meys Oct 6 '10 at 11:04
    
I'll look into it - didn't know what keyword to search for! –  fmark Oct 6 '10 at 11:49

I recommend match. It will be much faster then merge.

It should look like this:

test.data$cluster <- test.clusters$cluster[match(test.data$store, test.clusters$store)]
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