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I have a data frame of this type

string1,string2,value1
string3,string1,value2
string3,string5,value3
...
...

I would convert srings in unique integers:

1,2,value1
3,1,value2
3,5,value3
...
...

I am trying with c() operator, that convert the string in a unique integer. The problem is how to manage the two columns of the data frame. How can I do this?

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1  
Are you just trying to strip the letters and just have numbers remaining, or are you actually thinking of, say, a ?factor? – Ananda Mahto Dec 8 '12 at 15:43
up vote 6 down vote accepted

If you want to assign numbers to the strings, rather than removing the text 'string', you can use a factor with known levels, then coerce to numeric.

d <- read.csv(header=TRUE, file=textConnection("a,b,c
string1,string2,value1
string3,string1,value2
string3,string5,value3"))

l=unique(c(as.character(d$a), as.character(d$b)))

d1 <- data.frame(a=as.numeric(factor(d$a, levels=l)), b=as.numeric(factor(d$b, levels=l)), c=d$c)
> d1
  a b      c
1 1 3 value1
2 2 1 value2
3 2 4 value3

Note that the numeric values chosen do not agree with the numerals in the strings, but each string is given a unique number.

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If the desired factors are already known, something like d[c("a", "b")] <- lapply(d[-3], factor, levels=paste("string", 1:5, sep="")) might be useful for converting to factor. – Ananda Mahto Dec 8 '12 at 15:58
    
@Matthew How can i keep track of the relation between string and integer in order to reverse the operation at some point? – emanuele Dec 8 '12 at 16:04
    
You should remove the as.numeric() so you end up with factors. – flodel Dec 8 '12 at 16:29
    
You can also look them up in the vector used for factor levels. l[1] returns string1. – Matthew Lundberg Dec 8 '12 at 16:31
    
I would also recommend you just do in-place replacement: df$a <- factor(...) and df$b <- factor(...) rather than reassigning the whole data.frame (your solution is also specific about only a third column). – flodel Dec 8 '12 at 16:44

Here's a simple solution using match:

df <- read.csv(text="string1,string2,value1
string3,string1,value2
string3,string5,value3", header = FALSE)

cbind(sapply(df[-3], match, unique(unlist(df[-3]))), df[3])

  V1 V2     V3
1  1  3 value1
2  2  1 value2
3  2  4 value3

How it works: The values of both columns are matched with a vector of unique numbers of these columns. This returns their positions.

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