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I have a problem using data.table: How do I convert column classes? Here is a simple example: With data.frame I don't have a problem converting it, with data.table I just don't know how:

df <- data.frame(ID=c(rep("A", 5), rep("B",5)), Quarter=c(1:5, 1:5), value=rnorm(10))
#One way: http://stackoverflow.com/questions/2851015/r-convert-data-frame-columns-from-factors-to-characters
df <- data.frame(lapply(df, as.character), stringsAsFactors=FALSE)
#Another way
df[, "value"] <- as.numeric(df[, "value"])

library(data.table)
dt <- data.table(ID=c(rep("A", 5), rep("B",5)), Quarter=c(1:5, 1:5), value=rnorm(10))
dt <- data.table(lapply(dt, as.character), stringsAsFactors=FALSE) 
#Error in rep("", ncol(xi)) : invalid 'times' argument
#Produces error, does data.table not have the option stringsAsFactors?
dt[, "ID", with=FALSE] <- as.character(dt[, "ID", with=FALSE]) 
#Produces error: Error in `[<-.data.table`(`*tmp*`, , "ID", with = FALSE, value = "c(1, 1, 1, 1, 1, 2, 2, 2, 2, 2)") : 
#unused argument(s) (with = FALSE)

Do I miss something obvious here?

Update due to Matthew's post: I used an older version before, but even after updating to 1.6.6 (the version I use now) I still get an error.

Update 2: Let's say I want to convert every column of class "factor" to a "character" column, but don't know in advance which column is of which class. With a data.frame, I can do the following:

classes <- as.character(sapply(df, class))
colClasses <- which(classes=="factor")
df[, colClasses] <- sapply(df[, colClasses], as.character)

Can I do something similar with data.table?

Update 3:

sessionInfo() R version 2.13.1 (2011-07-08) Platform: x86_64-pc-mingw32/x64 (64-bit)

locale:
[1] C

attached base packages:
[1] stats     graphics  grDevices utils     datasets  methods   base     

other attached packages:
[1] data.table_1.6.6

loaded via a namespace (and not attached):
[1] tools_2.13.1
share|improve this question
    
The "[" operator arguments in data.table methods are different than they are for data.frame –  BondedDust Oct 18 '11 at 21:11
1  
Please paste the actual error rather than #Produces error. +1 anyway. I don't get any error, which version do you have? There is an issue in this area though, it's been raised before, FR#1224 and FR#1493 are high priority to address. Andrie's answer is the best way, though. –  Matt Dowle Oct 19 '11 at 9:43
    
Sorry @MatthewDowle for missing that in my question, I updated my post. –  Christoph_J Oct 19 '11 at 12:50
1  
@Christoph_J Thanks. Are you sure about that invalid times argument error? Work fine for me. Which version do you have? –  Matt Dowle Oct 19 '11 at 15:24
    
I updated my post with the sessionInfo(). However, I checked it on my work machine today. Yesterday, on my home machine (Ubuntu) the same error occurred. I will update R and see if the problem is still there. –  Christoph_J Oct 19 '11 at 16:31
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2 Answers

up vote 9 down vote accepted

For a single column:

dtnew <- dt[, Quarter:=as.character(Quarter)]
str(dtnew)

Classes ‘data.table’ and 'data.frame':  10 obs. of  3 variables:
 $ ID     : Factor w/ 2 levels "A","B": 1 1 1 1 1 2 2 2 2 2
 $ Quarter: chr  "1" "2" "3" "4" ...
 $ value  : num  -0.838 0.146 -1.059 -1.197 0.282 ...

Using lapply and as.character:

dtnew <- dt[, lapply(.SD, as.character), by=ID]
str(dtnew)

Classes ‘data.table’ and 'data.frame':  10 obs. of  3 variables:
 $ ID     : Factor w/ 2 levels "A","B": 1 1 1 1 1 2 2 2 2 2
 $ Quarter: chr  "1" "2" "3" "4" ...
 $ value  : chr  "1.487145280568" "-0.827845218358881" "0.028977182770002" "1.35392750102305" ...
share|improve this answer
    
Thanks @Andrie for the answer, that definitely works for this particular problem, but seems to me like a workaround. I update my original question since I do not know in advance which columns I want to convert. With a data.frame, I can write just three lines to convert, for example, between factors and characters for every column in the data.frame(see updated example above), can I do something similar with data.table? Or do I have to check first which column is not of one type (the type I want to convert) and group by this column? –  Christoph_J Oct 19 '11 at 13:04
1  
@Christoph_J Please show the grouping command you're struggling with (the real problem). Think you may have missed something simple. Why are you trying to convert column classes? –  Matt Dowle Oct 19 '11 at 15:27
1  
@Christoph_J If you struggle to manipulate data.tables, why not simply convert them temporarily to data.frames, do the data cleaning and then convert them back to data.tables? –  Andrie Oct 19 '11 at 16:10
1  
@Christoph_J If your "real" question is substantially different, then I suggest you post it as a new question. In that way you will get new eyeballs on the question. –  Andrie Oct 19 '11 at 16:55
6  
What is the idiomatic way of doing this for a subset of columns (instead of all of them)? I've defined a character vector convcols of columns. dt[,lapply(.SD,as.numeric),.SDcols=convcols] is almost instant while dt[,convcols:=lapply(.SD,as.numeric),.SDcols=convcols] almost freezes up R, so I'm guessing that I'm doing it wrong. Thanks –  Frank May 2 '13 at 23:07
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This is a BAD way to do it! I'm only leaving this answer in case it solves other weird problems. These better methods are the probably partly the result of newer data.table versions... so it's worth while to document this hard way. Plus, this is a nice syntax example for eval substitute syntax.

library(data.table)
dt <- data.table(ID = c(rep("A", 5), rep("B",5)), 
                 fac1 = c(1:5, 1:5), 
                 fac2 = c(1:5, 1:5) * 2, 
                 val1 = rnorm(10),
                 val2 = rnorm(10))

names_factors = c('fac1', 'fac2')
names_values = c('val1', 'val2')

for (col in names_factors){
  e = substitute(X := as.factor(X), list(X = as.symbol(col)))
  dt[ , eval(e)]
}
for (col in names_values){
  e = substitute(X := as.numeric(X), list(X = as.symbol(col)))
  dt[ , eval(e)]
}

str(dt)

which gives you

Classes ‘data.table’ and 'data.frame':  10 obs. of  5 variables:
 $ ID  : chr  "A" "A" "A" "A" ...
 $ fac1: Factor w/ 5 levels "1","2","3","4",..: 1 2 3 4 5 1 2 3 4 5
 $ fac2: Factor w/ 5 levels "2","4","6","8",..: 1 2 3 4 5 1 2 3 4 5
 $ val1: num  0.0459 2.0113 0.5186 -0.8348 -0.2185 ...
 $ val2: num  -0.0688 0.6544 0.267 -0.1322 -0.4893 ...
 - attr(*, ".internal.selfref")=<externalptr> 
share|improve this answer
5  
Another and easier way is to use set() e.g. for (col in names_factors) set(dt, j=col, value=as.factor(dt[[col]])) –  Matt Dowle Dec 27 '13 at 23:34
    
Is that new? You should add that as an answer, it's much better than what I was suggesting. –  geneorama Dec 28 '13 at 6:35
    
set was new in v1.8.0, July 2012 –  Matt Dowle Dec 28 '13 at 9:23
1  
I think my answer accomplishes this in one line, for all versions. Not sure if set is more appropriate though. –  Ben Rollert Apr 23 at 5:31
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