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Guys, this drives me crazy.

This works as expected:

eobj <- substitute(obj <- list(a, b), list(a = 32, b = 33))
eval(eobj)
obj
[[1]]
[1] 32

[[2]]
[1] 33

Now, try this:

efun <- substitute(fun <- function() a+ b, list(a = 32, b = 33))
str(efun)
# language fun <- function() 32 + 33  
eval(efun)
fun
# function() a+ b

What is going on here? How on earth eval gets it hands on the original form of the expression?

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1 Answer 1

up vote 7 down vote accepted

Cause when you print fun it's actually print source of function (see attributes(fun)) which isn't modify by substitute.

Notice that when you define a or b in global workspace function result are the same.

You can see actual code of function by body(fun).

Or compare:

print.function(fun, useSource=FALSE)
# function () 
# 32 + 33
print.function(fun, useSource=TRUE) # Which is default
# function() a+ b
share|improve this answer
    
Yap, it's the source indeed. But, I am still confused, were does the source come from? The source of fun is kept separate from the object itself? Expression efun does not have any reference to the source. eval does not have a direct access to the original definition. –  VitoshKa Nov 2 '10 at 15:21
    
I suppose that source is set before substitute works. That is function creates object of type expression (language?) with argument source and then substitute replace values of a and b within an expression with proper values left source untouched. –  Marek Nov 2 '10 at 15:36
1  
attr(fun, "source") shows the source that its keeping around for your function and what print actually prints out. If there is no "source" attribute then print will show the actual function. Thus attr(fun, "source") <- NULL will cause print to show the actual function rather than the contents of the "source" attribute. Also options(keep.source = FALSE) can be used to turn off this behavior entirely in which case your functions won't get a "source" attribute in the first place. –  G. Grothendieck Nov 2 '10 at 17:43
    
@Marek It looks like that. But that means the source is set before the function is assigned to fun, at parsing. And where is it stored in the meantime? efun does not have a source attribute. This probably we best ask the R core. –  VitoshKa Nov 2 '10 at 21:09
1  
@VitoshKa It's somewhere there, if you do save(efun, file="test.txt", ascii=TRUE) and check this file then you'll see there is original code with a and b. –  Marek Nov 3 '10 at 9:39

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