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I'm expecting below that I should be able to call my function squared indirectly via the symbol function, but its not working. What am I doing wrong here:

user=> (defn squared [x] (* x x))
#'user/squared
user=> (squared 2)
4
user=> ((symbol "squared") 2)
nil
user=> ((symbol "user" "squared") 2)
nil
user=> 
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The basic issue with the code (hopefully addressed by my answer) aside, I'm a bit curious about the problem you're solving, if you'd be willing to go into more detail...? –  Michał Marczyk Sep 8 '11 at 22:21
    
its a bit of a rabbit hole and I'm a complete novice...but basically I ran into "Can't take value of a macro" because I'm doing something like (a :b c & d) where both a and c are macros. I was hoping if I switch that to (a :b :c & d) and then convert :c to a symbol it will work. I have a feeling this is completely wrong actually, but since my little idea of ((symbol "squared") 2) didn't work I figured I'd ask how that works.... –  Kevin Sep 8 '11 at 22:31
    
If you get this sort of error with an (a :b c & d) form, then most likely a produces an expansion which includes c verbatim in non-operator position. If you only want to include the name of the c macro in the expansion (and the actual thing you pass to a is the symbolic name of the macro c), then you could just add a quote to the expansion, so that you return 'c rather than c in the appropriate place. If you actually want to call the c macro, you need to make sure that it ends up being inserted in the operator position in the expansion produced by a. –  Michał Marczyk Sep 8 '11 at 22:37
    
actually what I really want to do, is write some macro that takes (defmacro [x] ...) where I know that x is a form like (f a b c) and I want to transform it to (fn [n] (f n a b c)). But I'm not sure if this is possible or how to even begin to go about it if it is. I feel like I should open a new question if you want to take a stab at it. –  Kevin Sep 8 '11 at 22:39
    
(defmacro transform [[f & args]] (fn [n#] (~f n# ~@args))) should work. –  Michał Marczyk Sep 8 '11 at 22:46
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1 Answer

up vote 28 down vote accepted

The symbol itself does not hold your function, the Var it names does.

This says "take the contents (@ = deref) of the Var (resolve) named by the symbol (symbol) whose name is "squared" and apply it (as a function) to the argument 2:

(@(resolve (symbol "squared")) 2)

This says "take the Var named by the symbol etc.":

((resolve (symbol "squared")) 2)

Both will work, since Vars, when asked to act as a function, defer to the functions stored in them. (If you try to use a Var as a function when it is not bound to a function, an error will result.)

This says "take the symbol named "squared" and apply it as a function to the argument 2" -- note that the symbol itself is used as the function:

((symbol "squared") 2)

Now symbols can be used as functions (they implement the clojure.lang.IFn interface), but the way they act when used in this way is that they look themselves up in their argument, i.e. treat their argument as a map and perform a lookup inside it:

('foo {'foo 2})
; is equivalent to
(get {'foo 2} 'foo)

If the argument passed to a symbol is not something it makes sense to do lookups in, nil is returned.

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(@(resolve (symbol "squared")) 2) does not work.....this is what it outputs - [#<core$_STAR_ clojure.core$_STAR_@1fdac27> 4 4] –  Pranav Sep 9 '11 at 6:00
    
It works for me -- I just pasted the definition of squared into a REPL followed by (@(resolve (symbol "squared")) 2) (copied from your comment) and got 4 as the response: pastie.org/2508000 Could you please double check that you are using the same definition of squared etc.? –  Michał Marczyk Sep 9 '11 at 11:59
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