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How do you preserve factored variables in left joins using sqldf?

I am trying to perform a left join using the sqldf function in R; however, the process seems to convert a factored column in my "right" dataframe to a character class in the merged dataset.

I suspect that this is because the left join includes rows from the "left" dataframe for which there are no corresponding rows in the "right" dataframe, thus introducing NAs to the factored column.

I've created this reproducible example:

require(sqldf)
leftDF <- data.frame(A = sample(1:15, replace = FALSE), 
                     B = sample(letters, 15, replace = TRUE),
                     stringsAsFactors = FALSE)
str(leftDF)
rightDF <- data.frame(X = sample(1:5, 10, replace = TRUE),
                      Y = sample(letters, 10, replace = TRUE),
                      stringsAsFactors = TRUE)
str(rightDF)
mergedDF <- sqldf("SELECT l.A, l.B, r.Y 
                   FROM leftDF as l 
                   LEFT JOIN rightDF as r 
                   ON l.A = r.X")
str(mergedDF)

Is this the expected behavior of sqldf? The conversion of the factored variable to a character class may not be obvious to programmers until the variable doesn't behave they way they expect in future analyses.

I can preserve the factor by first adding an NA level to the factored column prior to the join using addNA(); however, adding NA as a level seems to be discouraged (see warning in ?addNA). Is there a better way of handling this?

Thanks in advance,

Jeff

An additional example to address comments:

require(sqldf)
leftDF <- data.frame(A = sample(1:15, replace = FALSE),
                     B = sample(letters, 15, replace = TRUE), 
                     stringsAsFactors = FALSE)
str(leftDF)
rightDF <- data.frame(X = sample(1:5, 10, replace = TRUE),
                      Y = sample(c("one","two","three","four","five","six"), 
                                 10, replace = TRUE), stringsAsFactors = FALSE)
rightDF$Y <- factor(rightDF$Y, levels = c("one","two","three","four","five","six"))
#rightDF$Y <- addNA(rightDF$Y)
table(rightDF$Y)
str(rightDF)
mergedDF <- sqldf("SELECT l.A, l.B, r.Y as Y__factor
                   FROM leftDF as l
                   LEFT JOIN rightDF as r
                   ON l.A = r.X")
str(mergedDF)
table(mergedDF$Y, useNA = c("always"))
share|improve this question
    
Based on a quick reading of the docs I agree that this seems contrary to what is described in there. I'm not very experience with sqldf, though. Another work around that I found was using method = c('numeric','factor','factor'). –  joran Oct 24 '13 at 17:52

1 Answer 1

up vote 1 down vote accepted

This is FAQ #1 on the sqldf home page.

In this case the components of mergeDF$Y are not all among the levels of rightDF$Y hence it can't use the latter's levels and so reverts back to using "character" class.

One can use the method argument in a number of ways to specify the result. See ?sqldf.

Alternately fix it up following the sqldf statement.

Here is an example:

# use one of the next two lines or some further variation depending on what you want
meth <- function(x) replace(x, "Y", factor(x$Y, levels(rightDF$Y)))
meth <- function(x) replace(x, "Y", factor(x$Y, c(levels(rightDF$Y), NA), exclude=NULL))

mergedDF <- sqldf("SELECT l.A, l.B B, r.Y
                   FROM leftDF as l 
                   LEFT JOIN rightDF as r 
                   ON l.A = r.X", method = meth) ## note use of method=meth
share|improve this answer
    
@G-Grothendiec, thanks for your input. I did find the FAQ before posting and did try method = "raw", which as you might suspect didn't achieve the desired result. After reading your post, I tried the 4th method where I selected r.Y as Y__factor. This works provided you don't care if missing levels are dropped and if the order of levels is unimportant (e.g., table(mergeDF$Y, useNA = c("always")). I have edited my question with an additional example. Is there anyway to preserve levels and the level order with the "name__class" method as described in the method argument of ?sqldf? –  penguinv22 Oct 24 '13 at 19:58
    
@penguinv22, I have added an example of using method at the end of the answer. –  G. Grothendieck Oct 24 '13 at 20:42

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