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I have a table with 21638 unique* rows:

vocabulary <- read.table("http://socserv.socsci.mcmaster.ca/jfox/Books/Applied-Regression-2E/datasets/Vocabulary.txt", header=T)

This table has five columns, the first of which holds the respondent ID numbers. I want to check if any respondents appear twice, or if all respondents are unique.

To count unique IDs I can use

length(unique(vocabulary$id))

and to check if there are any duplicates I might do

length(unique(vocabulary$id)) == nrow(vocabulary)

which returns TRUE, if there are no duplicates (which there aren't).

My question:

Is there a direct way to return the values or line numbers of duplicates?

Some further explanation:

There is an interpretation problem with using the function duplicated(), because is only returns the duplicates in the strict sense, excluding the "originals". For example, sum(duplicated(vocabulary$id)) or dim(vocabulary[duplicated(vocabulary$id),])[1] might return "5" as the number of duplicate rows. The problem is that if you only know the number of duplicates, you won't know how many rows they duplicate. Does "5" mean that there are five rows with one duplicate each, or that there is one row with five duplicates? And since you won't have the IDs or line numbers of the duplicates, you wouldn't have any means of finding the "originals".


*I know there are no duplicate IDs in this survey, but it is a good example, because using any of the answers given elsewhere to this question, like duplicated(vocabulary$id) or table(vocabulary$id) will output a haystack to your screen in which you'll be quite unable to find any possible rare duplicate needles.

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If two rows are identical do you want to return both rows, or just (say) the second "duplicate" row? –  joran Jun 3 '13 at 20:38
    
I edited my answer to address the additional information. –  P Lapointe Jun 3 '13 at 22:04

3 Answers 3

up vote 14 down vote accepted

You could use table, i.e.

n_occur <- data.frame(table(vocabulary$id))

gives you a data frame with a list of ids and the number of times they occurred.

n_occur[n_occur$Freq > 1,]

tells you which ids occurred more than once.

vocabulary[vocabulary$id %in% n_occur$Var1[n_occur$Freq > 1],]

returns the records with more than one occurrence.

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Thank you all for your answers. I like them all (so +1 for each), and I learned a lot from each of them. I'm choosing this answer, because (1) it works without installing a new library and (2) because I find the logic behind it simple and elegant. –  what Jun 5 '13 at 12:48

This will give you duplicate rows:

vocabulary[duplicated(vocabulary$id),]

This will give you the number of duplicates:

dim(vocabulary[duplicated(vocabulary$id),])[1]

Example:

vocabulary2 <-rbind(vocabulary,vocabulary[1,]) #creates a duplicate at the end
vocabulary2[duplicated(vocabulary2$id),]
#            id year    sex education vocabulary
#21639 20040001 2004 Female         9          3
dim(vocabulary2[duplicated(vocabulary2$id),])[1]
#[1] 1 #=1 duplicate

EDIT

OK, with the additional information, here's what you should do: duplicated has a fromLast option which allows you to get duplicates from the end. If you combine this with the normal duplicated, you get all duplicates. The following example adds duplicates to the original vocabulary object (line 1 is duplicated twice and line 5 is duplicated once). I then use table to get the total number of duplicates per ID.

#Create vocabulary object with duplicates
voc.dups <-rbind(vocabulary,vocabulary[1,],vocabulary[1,],vocabulary[5,])

#List duplicates
dups <-voc.dups[duplicated(voc.dups$id)|duplicated(voc.dups$id, fromLast=TRUE),]
dups
#            id year    sex education vocabulary
#1     20040001 2004 Female         9          3
#5     20040008 2004   Male        14          1
#21639 20040001 2004 Female         9          3
#21640 20040001 2004 Female         9          3
#51000 20040008 2004   Male        14          1

#Count duplicates by id
table(dups$id)
#20040001 20040008 
#       3        2 
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2  
For counting the number of dups, I was planning on suggesting sum(duplicated(vocabulary$id)), which seems simpler to me. –  joran Jun 3 '13 at 20:49
    
@Joran: Yes, your solution would also work. –  P Lapointe Jun 3 '13 at 20:52
1  
@what This answer is only as misleading as your original question was unclear. –  joran Jun 3 '13 at 21:04
    
I edited my answer to address the additional information. –  P Lapointe Jun 3 '13 at 22:05

Here's a data.table solution that will list the duplicates along with the number of duplications (will be 1 if there are 2 copies, and so on - you can adjust that to suit your needs):

library(data.table)
dt = data.table(vocabulary)

dt[duplicated(id), cbind(.SD[1], number = .N), by = id]
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