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Suppose I have the following language object:

lang <- quote( f(x=a) )

and I want to substitute in 1 for a. How can I do this?

I would expect substitute to do what I want, but

substitute(lang, list(a=1))

just returns lang, while

substitute(f(x=a), list(a=1))

does in fact do what I expect.

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2 Answers 2

Use do.call:

do.call(substitute, list(lang, list(a=1)))

By using do.call, we force evaluation of the name `lang` to its actual underlying value, f(x=a). Then substitution is performed on f(x=a), rather than the name `lang`.

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1  
If your language object is a function call, you can update the argument defaults directly via: lang$x <- 1, lang$x <- quote(b), etc. –  Joshua Ulrich Oct 9 '13 at 21:24

If you have previously defined a in some environment (.GlobalEnv) as:

a <- 1

You can generally run:

construct(deconstruct_and_eval(lang))
f(x = 1)

For the definitions of these custom functions, see Generalized function to substitute all variables in the quote()d expression, if they exist in an environment

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I believe you need to run require(data.table) for this to succeed. –  BondedDust Aug 3 at 1:09

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