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I have a matrix with varing number of columns of the following form:

1  10  10 10 15
2  14  14 13 13
4  19  19 20 21
6  32  32 20 15

I would like to select the majority for each row producing the following output:

1  10
2  14/13
3  19
4  32
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2  
Just for educational purposes, what you're looking for is called the "mode." table is the easiest way to find modes. –  Carl Witthoft Jan 2 '13 at 0:36

3 Answers 3

up vote 12 down vote accepted

Seemed like table almost gives what you need, but the output must be massaged. Compose is an interesting way to do this:

require(functional)
apply(m, 1, Compose(table,
                    function(i) i==max(i),
                    which,
                    names,
                    function(i) paste0(i, collapse='/')
                    )
      )

## [1] "10"    "13/14" "19"    "32"   
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can I do the same but omit the first column? –  user1723765 Jan 1 '13 at 21:19
    
You can. Replace m with m[-1,,drop=FALSE]. Similarly to omit the first column, use m[,-1,drop=FALSE]. –  Matthew Lundberg Jan 1 '13 at 21:20

late addition, but when values are all positive, as in your example, you can also:

apply(x, 1, function(idx) {
     which(tabulate(idx) == max(tabulate(idx)))
     })

without first column:

 apply(x[,-1], 1, function(idx) {
     which(tabulate(idx) == max(tabulate(idx)))
     })

and finally tweak your output:

s <- apply(x[,-1], 1, function(idx) {
     which(tabulate(idx) == max(tabulate(idx)))
     })
sapply(s, paste, sep="", collapse="/")

[1] "10"    "13/14" "19"    "32"   
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For the last line, an anonymous function is not required: sapply(s, paste, sep="", collapse="/") –  Matthew Lundberg Jan 2 '13 at 1:48
    
thanks @MatthewLundberg I have a habit of typing them out as default –  user1317221_G Jan 2 '13 at 1:50

One of the possible answers:

# over each row of data.frame (or matrix)
sapply(1:nrow(x), function(idx) {
# get the number of time each entry in df occurs
    t <- table(t(x[idx, ]))
# get the maximum count (or frequency)
    t.max <- max(t)
# get all values that equate to maximum count
    t <- as.numeric(names(t[t == t.max]))
})
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this is great, what if I would like to omit the first column? –  user1723765 Jan 1 '13 at 21:12
1  
@user1723765 instead of the table command given, use table(t(x[idx,-1])) –  Matthew Lundberg Jan 1 '13 at 21:18

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