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I am trying to reshape a data frame that contains a factor and a numeric variable with the melt and cast procedure. The following data shows my problem:

library(reshape)

df <- as.data.frame(cbind(c(1,1,2,2,3,3),c(2000,2001,2001,2002,2000,2001),c(2,1,4,3,1,5)))   
names(df) <- c("Id","Year","Var")

df$Fac <- interaction(c(1,1,1,0,0,0),c(0,0,0,1,1,1),drop=TRUE)

MData <- melt.data.frame(df,id=c("Year","Id"))
RSData <- cast(MData, Id ~ Year | ...)

The operation works, but the missing observations in RSData are not NAs as they should be, but rather strings (< NA> and not NA):

$Var
  Id 2000 2001 2002
1  1    2    1 <NA>
2  2 <NA>    4    3
3  3    1    5 <NA>

$Fac
  Id 2000 2001 2002
1  1  1.0  1.0 <NA>
2  2 <NA>  1.0  0.1
3  3  0.1  0.1 <NA>

If I, however, disregard the factor the NAs are normal NAs:

df <- as.data.frame(cbind(c(1,1,2,2,3,3),c(2000,2001,2001,2002,2000,2001),c(2,1,4,3,1,5)))   
names(df) <- c("Id","Year","Var")

MData <- melt.data.frame(df,id=c("Year","Id"))
RSData <- cast(MData, Id ~ Year | ...)

The output becomes:

$Var
  Id 2000 2001 2002
1  1    1    1   NA
2  2   NA    1    0
3  3    0    0   NA

The string NAs give me problems when I try to use my recast data. How do I get the correct NAs when I have a factor and numeric variables in the data frame I want to melt and recast?

Thanks,

M

share|improve this question
    
Are Dummy1 and Dummy2 supposed to be numeric or factors? You trouble begins with the variable Fac which is a factor, but is melted into the numeric variables Dummy1 and Dummy2. –  joran Apr 16 '13 at 18:03
    
@joran So, they two variables 'Dummy1' and 'Dummy2' are numeric, but only take on 0 and 1. I want to combine these into a factor, 'Fac'. I know that in this small example making a new factor doesn't make a lot of sense, but in my real data, I have several dummies and thus get more than 2 levels in the resulting factor. –  Mace Apr 16 '13 at 18:25
    
But the larger issue here is that when you melt the df, R is trying to stack Fac on top of all the Dummy variables. In doing so, it has to find a single, common data type to use. Even if they are all factors, you are going to run into trouble merging factor levels. Are you sure you mean to include the Dummy variables when melting? –  joran Apr 16 '13 at 18:37
    
I can see that the same thing happens when I have a column in my data frame where the entries are of type character. I guess, I have to keep the dummy variables, and avoid factors, and do my analysis with all the dummy variables and not have one single factor - cumbersome but possible. –  Mace Apr 16 '13 at 18:45
    
Well, there is probably a better way to go about this. But it's hard to say what that would be without more details. But keep in mind that your original strategy of melting the df to have a single factor variable with values from Dummy1,..., and their interaction was fundamentally nonsensical. That's the part I was trying to get clarification on, because that's the part that makes no sense. –  joran Apr 16 '13 at 18:49

1 Answer 1

up vote 0 down vote accepted

I am confident that I have found the answer to my own question by reading the comments and the documentation over and over. Bascially, the problem is that when using the melt.data.frame() method all the variable values are put in 1 column, and since I have both strings and numeric values the numeric values are implicitly converted to strings.

The only way around this I see is to reshape the numeric variables and the factors separately:

MDataNum = melt.data.frame(df[c("Id","Year","Var")],id=c("Year","Id"))
RSDataNum <- cast(MDataNum, Id ~ Year | ...)

MDataFac = melt.data.frame(df[c("Id","Year","Fac")],id=c("Year","Id"))
RSDataFac <- cast(MDataFac, Id ~ Year | ...)

The result becomes:

> RSDataNum 
$Var
  Id 2000 2001 2002
1  1    2    1   NA
2  2   NA    4    3
3  3    1    5   NA

> RSDataFac 
$Fac
  Id 2000 2001 2002
1  1  1.0  1.0 <NA>
2  2 <NA>  1.0  0.1
3  3  0.1  0.1 <NA>
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