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In clojure, apply cannot be applied to a macro. For instance (apply and [true false]) raises an exception. I was thinking about following workaround:

(defmacro apply-macro[func args] `(~func ~@args))

At first glance, it seemed to work pretty well:

(apply-macro and [true 5]); 5
(apply-macro and [true 5 0]); 0
(let [a 0] (apply-macro and [true a])); 0

But, when I passed to it a variable that points to a vector, it collapsed.

(let [a [true]] (apply-macro and a));  java.lang.IllegalArgumentException:
   ;Don't know how to create ISeq from: clojure.lang.Symbol

What a disappointment!!!!

Any idea how to fix apply-macro?

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3 Answers 3

up vote 9 down vote accepted

The problem is that a is just a symbol at compile time. So there's no way for a compile-time macro to see what it contains and do the necessary expansion. As a result, you need to expand the macro at run-time using eval.

One way to do this is just to wrap the macro in a function that calls eval, which can be done with this handy "functionize" macro:

(defmacro functionize [macro]
  `(fn [& args#] (eval (cons '~macro args#))))

(let [a [true]] (apply (functionize and) a))
=> true

If you like, you could also define apply-macro in terms of functionize:

(defmacro apply-macro [macro args]
   `(apply (functionize ~macro) ~args))

(let [a [true false]] (apply-macro and a))
=> false

Having said all this, I still think the best thing to do is to avoid macros entirely when they are not really needed: they add extra complexity and are best reserved for cases when you really need compile time code generation. In this case you don't: Alex Taggart's answer gives a good example of how to achieve a similar objective without any macros, which is probably more appropriate in most situations.

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@YehonathanSharvit: the point is that (apply-macro and a) gets expanded to (and <splice a into the form>) at read time, but a gets only defined at evaluation time. So the unquote-splicing of a (i.e. ~@a) fails, because a has not yet been defined. –  liwp Feb 14 '12 at 9:29
    
Sure, a is a vector at run-time. But that's no use if you want to construct an (and ....) form at with the contents of a at compile time, since the compiler can't see the contents of a. Hence you need to call the compiler again at runtime once you know what a contains, hence the need for eval. It's a bit convoluted but hope that logic makes sense..... –  mikera Feb 14 '12 at 9:31
    
Functionize seems great!!! Are you the author? Are there any limitations? –  viebel Feb 14 '12 at 10:10
    
I just invented functionize in response to your question. I think it's fairly general purpose but haven't exactly tested it in the field :-) –  mikera Feb 14 '12 at 10:14
1  
As a community we should try to avoid encouraging the inexperienced to over-use macros in general and eval in particular, especially when there are better tools for the job. –  Alex Taggart Feb 14 '12 at 20:09

You don't.

Macros are expanded during evaluation/compile time, not at runtime, thus the only information they can use are the args passed in, but not what the args evaluate to at runtime. That's why a literal vector works, because that literal vector is there at compile time, but a is just a symbol; it will only evaluate to a vector at runtime.

To have and-like behaviour for lists, use (every? identity coll).

To have or-like behaviour for lists, use (some identity coll).

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Anyone would feel my question was stupid. But I really do not understand following code result.

user=> (let [a [true false]] (apply-macro and (eval a)));
[true false] ;; I expected false but [true false]
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Use the macroexpand function to see how the compiler expands the macro. –  Jeremy Heiler Jul 18 '12 at 22:45
    
user=> (macroexpand-1 '(apply-macro and (eval a))) (and eval a) I understand ~~ thanks –  rafael Jul 19 '12 at 1:52

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