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Can someone tell me what is wrong with this if-else loop in R? I frequently can't get if-else loops to work. I get an error:

if(match('SubjResponse',names(data))==NA) {
    observed <- data$SubjResponse1
}
else {
    observed <- data$SubjResponse
}

Note that data is a data frame.

The error is

Error in if (match("SubjResponse", names(data)) == NA) { : 
  missing value where TRUE/FALSE needed
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2 Answers 2

up vote 1 down vote accepted

As @DirkEddelbuettel noted, you can't test NA that way. But you can make match not return NA:

By using nomatch=0 and reversing the if clause (since 0 is treated as FALSE), the code can be simplified. Furthermore, another useful coding idiom is to assign the result of the if clause, that way you won't mistype the variable name in one of the branches...

So I'd write it like this:

observed <- if(match('SubjResponse',names(data), nomatch=0)) {
    data$SubjResponse # match found
} else {
    data$SubjResponse1 # no match found
}

By the way if you "frequently" have problems with if-else, you should be aware of two things:

  1. The object to test must not contain NA or NaN, or be a string (mode character) or some other type that can't be coerced into a logical value. Numeric is OK: 0 is FALSE anything else (but NA/NaN) is TRUE.

  2. The length of the object should be exactly 1 (a scalar value). It can be longer, but then you get a warning. If it is shorter, you get an error.

Examples:

len3 <- 1:3
if(len3) 'foo'  # WARNING: the condition has length > 1 and only the first element will be used

len0 <- numeric(0)
if(len0) 'foo'  # ERROR: argument is of length zero

badVec1 <- NA
if(badVec1) 'foo' # ERROR: missing value where TRUE/FALSE needed

badVec2 <- 'Hello'
if(badVec2) 'foo' # ERROR: argument is not interpretable as logical
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This is not a full example as we do not have the data but I see these issues:

  1. You cannot test for NA with ==, you need is.na()
  2. Similarly, the output of match() and friends is usually tested for NULL or length()==0
  3. I tend to write } else { on one line.
share|improve this answer
    
match will always return a vector of the same length as the first argument (x). So in this case, always a scalar value. –  Tommy Jan 18 '12 at 4:16
    
Circle 8.1.4 of 'The R Inferno' burns-stat.com/pages/Tutor/R_inferno.pdf –  Patrick Burns Jan 18 '12 at 9:31

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