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I'm getting an "longer object length not multiple of shorter object length" warning in R when comparing two integers to subset a dataframe in the midst of a user defined function.

The user defined function just returns the median of a subset of integers taken from a dataframe:

function(s){ 
    return(median((subset(EDB,as.integer(validSession) == as.integer(s)))$absStudentDeviation))
}

(I did not originally have the as.integer coercions in there. I put them there to debug, text, and I'm still getting an error.)

The specific error I'm getting is:

In as.integer(validSession) == as.integer(s) : longer object length is not a multiple of shorter object length

I get this warning over 50 times when calling:

mediandf <- ddply(mediandf,.(validSession),
                           transform,
                           grossMed2 = medianfuncEDB(as.integer(validSession)))

The goal is to calculate the median of $validSession associated with the given validSession in the large dataframe EDB and attach that vector to mediandf.

I have actually double-checked that all values for validSession in both the mediandf dataframe and the EDB dataframe are integers by subsetting with is.integer(validSession).

Furthermore, it appears that the command actually does what I intend, I get a new column in my dataframe with values I have not verified, but I want to understand the warning. if "medianfuncEDB" is being called with an integer as its input, why am I getting a "longer object length is not multiple of shorter object length" when s == validSession is called?

Note that simple function calls, like medianfuncEDB(5) work without any problems, so why do I get warnings when using ddply?

EDIT: I found the problem with the help of Joran's comment. I did not know that transform fed entire vecotrs into the function. Using validSession[1] instead gave no warnings.

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Can you provide some sample data? –  Chase Dec 19 '11 at 0:09
    
I'm commenting rather than answering, since this will be tough to address without a reproducible example. However, it is unlikely to be related to coercion (as.integer). Are you sure that validSession will always be exactly the same length as s? Maybe you meant to use %in% rather than ==? –  joran Dec 19 '11 at 0:20
    
If you use the debugging tools (stackoverflow.com/questions/1882734/…), you will be able to compare what you think your data looks like to what it actually does. Specifically, try setting options(error=recover). –  Ari B. Friedman Dec 19 '11 at 0:28
    
joran, I must be misunderstanding how ddply operates. I was assuming it worked row-by-row when transforming the data. The function medianfuncDB is intended to take a bare integer, not a vector of integers, so in my mind both "s" and "validSession" are integers rather than vectors when they are compared. Perhaps I'm missing something about how "transform" works here. –  David R Dec 19 '11 at 1:10
    
Okay, looks like the simple error here is that I was not aware that the entire vector was being fed into my function. I am new to R and thought that the transform function worked on each row separately, so I though that "validSession" meant (the validSession value for this row) not "the entire validSession vector for this partition of the dataframe." –  David R Dec 19 '11 at 1:27

1 Answer 1

The ddply function already subsets your data frame by validSession. Hence transform is only fed a data frame with all the rows corresponding to a particular validSession.

That is, transform is already being fed subset(mediandf,validSession==s) for each s in unique(mediandf$validSession).

Since you don't have to do any subsetting (ddply takes care of that), all you need to do is:

ddply(mediandf,.(validSession),transform,grossMed2=median(absStudentDeviation))

And then you'll get mediandf back out with a new column grossMed2 with the value you want (so it will be the same value within each unique validSession).

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Thanks for your answer, but this won't give the correct values. I'm looking for the median of values from another dataframe (EDB rather than mediandf). I think the problem is simply that I didn't realize transform would feed the entire vector into my udf that I intended to only receive a single integer as argument. –  David R Dec 19 '11 at 1:25
    
ahh, I understand now. I agree - you could try a print(s) in medianfuncEDB just to make sure they're all the same within each function call (they should be), and just so something like as.integer(s)[1] then. –  mathematical.coffee Dec 19 '11 at 1:28

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