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I've got 81,000 records in my test frame, and duplicated is showing me that 2039 are identical matches. One answer to Find duplicated Column pairs in Data Frame in R suggests a method for creating a smaller frame of just the duplicate records. This works for me, too:

dup <- data.frame(as.numeric(duplicated(df$var))) #creates df with binary var for duplicated rows
colnames(dup) <- c("dup") #renames column for simplicity
df2 <- cbind(df, dup) #bind to original df
df3 <- subset(df2, dup == 1) #subsets df using binary var for duplicated`

But it seems, as the poster noted, inelegant. Is there a cleaner way to get the same result: a view of just those records that are duplicates?

In my case I'm working with scraped data and I need to figure out whether the duplicates exist in the original or were introduced by me scraping.

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2 Answers 2

up vote 2 down vote accepted

duplicated(df) will give you a logical vector (all values consisting of either T/F), which you can then use as an index to your dataframe rows.

# indx will contain TRUE values wherever in df$var there is a duplicate
indx <- duplicated(df$var)
df[indx, ]  #note the comma 

You can put it all together in one line

df[duplicated(df$var), ]  # again, the comma, to indicate we are selected rows
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Thanks. Will test later tonight. Time for a break from my headfirst flounding dive into R. –  Amanda Nov 27 '12 at 23:20
    
I wound up with this: dupes <- df[duplicated(df),c('last','first','external_id')] and then dupes.unique <- unique(dupes) -- as it turns out some of the duplicates appear 10 or 12 times. With that I can go back to my source and confirm that I didn't introduce the duplication. –  Amanda Nov 29 '12 at 3:41
doops <- which(duplicated(df$var)==TRUE)
uniques <- df[-doops,]
duplicates <- df[doops,]

Is the logic I generally use when I am trying to remove the duplicate entrys from a data frame.

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2  
You can avoid the which call and use ! instead of - –  mnel Nov 28 '12 at 0:05
    
changing = to <- in this scenario doesn't seem necessary. –  Antishatter Nov 28 '12 at 0:11
1  
You should probably change = to == too. –  Gregor Nov 28 '12 at 1:08
1  
You could also remove the redundant == TRUE –  hadley Nov 28 '12 at 16:56
1  
@antishatter Google's R Style Guide does prefer <- to = and as someone who is just getting my bearings here I may as well learn to do it "right" google-styleguide.googlecode.com/svn/trunk/… –  Amanda Nov 29 '12 at 2:59

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