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I have a data frame like the following example

      a = c(1, 1, 1, 2, 2, 3, 4, 4)
      b = c(3.5, 3.5, 2.5, 2, 2, 1, 2.2, 7)
      df <-data.frame(a,b)

I can remove duplicated rows from R data frame by the following code, but how can I find how many times each duplicated rows repeated? I need the result as a vector.

      unique(df)

or

      df[!duplicated(df), ]
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4 Answers 4

up vote 8 down vote accepted

Here is solution using function ddply() from library plyr

library(plyr)
ddply(df,.(a,b),nrow)

  a   b V1
1 1 2.5  1
2 1 3.5  2
3 2 2.0  2
4 3 1.0  1
5 4 2.2  1
6 4 7.0  1
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2  
You could save a few characters by replacing function(x) nrow(x) with just nrow. –  orizon Aug 13 '13 at 5:24
    
@orizon thanks, updated my answer. –  Didzis Elferts Aug 13 '13 at 5:27
    
Is it at all possible to recreate this with dplyr? –  maj Apr 30 '14 at 10:22
    
@maj I haven't used dplyr so can't answer –  Didzis Elferts Apr 30 '14 at 11:55

You could always kill two birds with the one stone:

aggregate(list(numdup=rep(1,nrow(df))), df, length)
# or even:
aggregate(numdup ~., data=transform(df,numdup=1), length)

  a   b numdup
1 3 1.0      1
2 2 2.0      2
3 4 2.2      1
4 1 2.5      1
5 1 3.5      2
6 4 7.0      1
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Here are two approaches.

# a example data set that is not sorted
DF <-data.frame(replicate(sequence(1:3),n=2))

# example using similar idea to duplicated.data.frame
count.duplicates <- function(DF){
x <- do.call('paste', c(DF, sep = '\r'))
  ox <- order(x)
  rl <- rle(x[ox])
  cbind(DF[ox[cumsum(rl$lengths)],,drop=FALSE],count = rl$lengths)

}
count.duplicates(DF)
#   X1 X2 count
# 4  1  1     3
# 5  2  2     2
# 6  3  3     1


# a far simpler `data.table` approach
library(data.table)
count.dups <- function(DF){

  DT <- data.table(DF)
  DT[,.N, by = names(DT)]
}
count.dups(DF)
#    X1 X2 N
# 1:  1  1 3
# 2:  2  2 2
# 3:  3  3 1
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Using dplyr:

summarise(group_by(df,a,b),length(b))

or

group_size(group_by(df,a,b))
#[1] 1 2 2 1 1 1
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