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The substitute function in R creates a language object in the form of a tree that one can parse. How can I create the tree from scratch using list or else to then give it to eval?

# substitute gives a tree representation of the expression
a=1; b=2;
e1 = substitute(a+2*b)
eval(e1)      #gives 5 as expected
e1            # is type language
e1[[1]]       # this is `+`
e1[[2]]       # this is 'a' type symbol
e1[[3]]       # this is type language
e1[[3]][[1]]  # this is `*`  etc....

I would like to know how I can reconstruct the e1 object programmatically. Ideally I create an object of intricated lists with the correct object in them and maybe I call some as.language on the list object. However that does not work. For instance:

# how to construct the tree?
eval(list(as.symbol('+'),1,1))                # does not return 2
eval(as.expression(list(as.symbol('+'),1,1))) # does not return 2

One way is to just generate the string '1+1' and then parse it, but it does not seem elegant to generate strings to parse them again when you have the tree in the first place!

eval(parse(text='1+1')) # does return 1, but not elegant if tree is 
                        # large and already in memory 

Thanks for your help!

share|improve this question
up vote 6 down vote accepted
> plus <- .Primitive("+")
> plus
function (e1, e2)  .Primitive("+")
> times=.Primitive("*")
> eval(call("plus", b, call("times",2, b)))
[1] 6
> eval(call("plus", a, call("times",2, b)))
[1] 5
share|improve this answer
1  
even better, so I can just do call('+',e1,e2) to combine 2 expression with a plus, perfect! – tlamadon Dec 22 '11 at 23:28

There are a few ways you could construct R expressions programmatically. The most convenient, if it works for your case, is bquote:

> a = 1
> bquote(.(a) + .(a))
1 + 1

where .() is an inverse-quote. This should work for practically anything, but if it does not, there are ways to manually construct the basic building blocks of expressions:

> as.symbol('f')
f
> as.call(list(quote(f), 1, 2))
f(1, 2)
> as.call(list(as.symbol('{'), 1, 2))
{
    1
    2
}
> 
share|improve this answer
    
great, as.call was actually what I was looking for. From 2 expressions how to combine them into a third one and as.call(list(as.symbol('+'),e1,e2)) works – tlamadon Dec 22 '11 at 23:20

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