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I imported an Excel file and got a data frame like this

structure(list(A = structure(1:3, .Label = c("1.100", "2.300", 
"5.400"), class = "factor"), B = structure(c(3L, 2L, 1L), .Label = c("1.000.000", 
"500", "7.800"), class = "factor"), C = structure(1:3, .Label = c("200", 
"3.100", "4.500"), class = "factor")), .Names = c("A", "B", "C"
), row.names = c(NA, -3L), class = "data.frame")

I would now like to convert these chars to numeric or even integer. However, the dot character (.) is not a decimal sign but a "thousand's separator" (it's German).

How would I convert the data frame properly?

I tried this:

df2 <- as.data.frame(apply(df1, 2, gsub, pattern = "([0-9])\\.([0-9])", replacement= "\\1\\2"))

df3 <- as.data.frame(data.matrix(df2))

however, apply seems to convert each column to a list of factors. Can I maybe prevent apply from doing so?

share|improve this question

marked as duplicate by BondedDust, mnel, nneonneo, Andrew Alcock, Vishal Apr 8 '13 at 2:48

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
If the problem had been that the values contained currency, that question has also been addressed at the level of data input using the read.* functions: stackoverflow.com/questions/10823241/… –  BondedDust Apr 5 '13 at 15:43
    
looking at the answers to these questions and the solutions offered here (I will accept one of these - I used the one I posted myself but @juba's solution seems to work as well), I think it is not a duplicate... –  speendo Apr 5 '13 at 15:52
    
The question to be addressed is not whether his answer is a duplicate but whether the question is a duplicate. You should do more searching before posting questions. –  BondedDust Apr 5 '13 at 16:17
    
I found stackoverflow.com/questions/2347410/… before posting: the OP wants to remove a comma, I wanted to remove a dot, I also was not able to translate the answers in this thread to my problem. I didn't find stackoverflow.com/questions/10823241/… before, but this adresses a completely different problem. I did a lot of searching before posting (believe it or not). –  speendo Apr 5 '13 at 18:51

2 Answers 2

You can use this :

sapply(df, function(v) {as.numeric(gsub("\\.","", as.character(v)))})

Which gives :

        A       B    C
[1,] 1100    7800  200
[2,] 2300     500 3100
[3,] 5400 1000000 4500

This will give you a matrix object, but you can wrap it into data.frame() if you wish.

Note that the columns in you original data are not characters but factors.


Edit: Alternatively, instead of wrapping it with data.frame(), you can do this to get the result directly as a data.frame:

# the as.character(.) is just in case it's loaded as a factor
df[] <- lapply(df, function(x) as.numeric(gsub("\\.", "", as.character(x))))
share|improve this answer
    
oh you are right - bad minimal example. In the "real" data, they are characters. –  speendo Apr 5 '13 at 12:44
up vote 1 down vote accepted

I think I just found another solution:

It's necessary to use stringsAsFactors = FALSE.

Like this:

df2 <- as.data.frame(apply(df1, 2, gsub, pattern = "([0-9])\\.([0-9])", replacement= "\\1\\2"), stringsAsFactors = FALSE)

df3 <- as.data.frame(data.matrix(df2))
share|improve this answer
    
I guess this'll just replace 2 dots? –  Arun Apr 5 '13 at 13:39
    
why do you think just 2 dots? just tried it with structure(list(A = c("800.000.000.000", "2.034.312.421", "321.325.123.234" ), B = c("800.000.000.000", "2.034.312.421", "321.325.123.234" ), C = c("800.000.000.000", "2.034.312.421", "321.325.123.234" )), .Names = c("A", "B", "C"), row.names = c(NA, -3L), class = "data.frame") - all dots were replaced. –  speendo Apr 5 '13 at 14:34
    
Yes indeed, sorry, I don't know why I said that. However, this wouldn't work if the number was ".578", right? –  Arun Apr 5 '13 at 14:36
    
I think it should also work then. In principle this runs the command gsub("([0-9])\\.([0-9])", "\\1\\2", x) for every x in the data frame. In other words, the function searches for all patterns <digit1>.<digit2> and replaces them with <digit1><digit2>. This should work with all digits - problems could occur with patterns like <digit1>.<digit2>.<digit3> but here the dot wouldn't be a thousand's seperator anyway. –  speendo Apr 5 '13 at 15:04
1  
maybe because of the personal union ;-) –  speendo Apr 5 '13 at 15:53

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