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I have found that to convert a variable name into a string I would use deparse(substitute(x)) where x is my variable name. But what if I want to do this in an sapply function call?

sapply( myDF, function(x) { hist( x, main=VariableNameAsString ) } )

When I use deparse(substitute(x)), I get something like X[[1L]] as the title. I would like to have the actual variable name. Any help would be appreciated.

David

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up vote 9 down vote accepted

If you need the names, then iterate over the names, not the values:

sapply(names(myDF), function(nm) hist(myDF[[nm]], main=nm))

Alternatively, iterate over both names and values at the same time using mapply or Map:

Map(function(name, values) hist(values, main=name),
    names(myDF), myDF)

For the most part, you shouldn't be using deparse and substitute unless you are doing metaprogramming (if you don't know what it is, you're not doing it).

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Yep. When using sapply, values are being passed without names. –  BondedDust Sep 7 '12 at 1:01
    
Great. That was very helpful. –  dmonder Sep 10 '12 at 20:49
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