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I have a data frame df like the following:

   var1 var2 var3
    0    20   0
    0    0    0 
    10   0   10
    0    0    0
    ...

Let say I want to return indices where the value will meet the certain constraints: say any value that is above the mean value of that column: so in above example, it shall return row 1, 2, 3, but not 4.

I tried:

 which( df > mean(df), arr.ind=TRUE)

However, this will return a flattened array index (3, 5 ...).

Any suggestions?

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2 Answers 2

Use arr.ind=TRUE for array index

    df<-c(1,2,3,4,3,4,3,5,6,4)
    which(df>mean(df), arr.ind=TRUE)
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this will return indices of flattened array, not row index of the data frame. –  Oliver May 29 '13 at 19:36
    
perhaps row and column can be interchanged according to requirements.. –  itfeature.com May 30 '13 at 3:16

Assuming I understand the question correctly:

idx <- (1:nrow(df))[apply(df, 1, function(row) any(row > mean(df)))]

This will give you the numeric row indices for which some value in each row is above the mean value in the data.frame.

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