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Fake data for illustration:

df <- data.frame(a=c(1,2,3,4,5), b=(c(2,2,2,2,NA)), 
                 c=c(NA,2,3,4,5)))

This would get me the answer I want IF it weren't for the NA values:

df$count <- with(df, (a==1) + (b==2) + (c==3)) 

Also, would there be an even more elegant way if I was only interested in, e.g. variables==2?

df$count <- with(df, (a==2) + (b==2) + (c==2)) 

Many thanks!

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+1 for a good question and a great user name :) –  Tommy Mar 23 '12 at 21:35

2 Answers 2

up vote 4 down vote accepted

The following works for your specific example, but I have a suspicion that your real use case is more complicated:

df$count <- apply(df,1,function(x){sum(x == 1:3,na.rm = TRUE)})
> df
  a  b  c count
1 1  2 NA     2
2 2  2  2     1
3 3  2  3     2
4 4  2  4     1
5 5 NA  5     0

but this general approach should work. For instance, your second example would be something like this:

df$count <- apply(df,1,function(x){sum(x == 2,na.rm = TRUE)})

or more generally you could allow yourself to pass in a variable for the comparison:

df$count <- apply(df,1,function(x,compare){sum(x == compare,na.rm = TRUE)},compare = 1:3)
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great, this does everything I need! –  Grateful Guy Mar 23 '12 at 21:37

Another way is to subtract your target vector from each row of your data.frame, negate and then do rowSums with na.rm=TRUE:

target <- 1:3
rowSums(!(df-rep(target,each=nrow(df))),na.rm=TRUE)
[1] 2 1 2 1 0

target <- rep(2,3)
rowSums(!(df-rep(target,each=nrow(df))),na.rm=TRUE)
[1] 1 3 1 1 0
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thanks for showing me another way :) –  Grateful Guy Mar 23 '12 at 23:30

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