Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I have a vector fruit with three entries Peach, Plum, Pear. I would like to find each unique pairing in fruit and create a new, two column data.frame (e.g. below). How might I do this in r for an even larger data.set? expand.grid results in pear-plum and plum-pear which are not unique pairings, or not the ones I am seeking. Any suggestions?

fruit <- c("Peach", "Plum", "Pear")

fruit1 <- c("Peach", "Peach", "Plum")
fruit2 <- c("Plum", "Pear", "Pear") <- data.frame(fruit1, fruit2)
fruit1 fruit2
1  Peach   Plum
2  Peach   Pear
3   Plum   Pear

# attempt
fruit.y <- fruit
df.expand <- expand.grid(fruit,fruit.y)
share|improve this question
I guess you're looking for ?combn? – alexis_laz Apr 11 '14 at 23:24

1 Answer 1

up vote 1 down vote accepted

Using your initial strategy, you can still try expand grid:

fruit_df <- expand.grid(fruit,fruit)

Then sort each row by fruit and delete the duplicates:

fruit_df2 <-, 1, function(x) sort(x)))))

     V1    V2
1 Peach Peach
2 Peach  Plum
3 Peach  Pear
4  Plum  Plum
5  Pear  Plum
6  Pear  Pear

Another strategy is to generate all combination of pairs in fruit, try:


     [,1]    [,2]    [,3]  
[1,] "Peach" "Peach" "Plum"
[2,] "Plum"  "Pear"  "Pear"

Or to make your output as a data frame, transpose the results and recast:,2)))

Note that using combn you will not get the plum-plum.

share|improve this answer
In both approaches above the results includes same-same is there a way to not include these pairings aside from subset(fruit_df, ! fruit_df$Var1 == fruit_df$Var2) ? – nofunsally Apr 12 '14 at 14:49
@nofunsally my original post had an error -- using the combn approach you will not get duplicate pairs like same-same. i've corrected the error. – Gary Weissman Apr 12 '14 at 22:38

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

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