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Given the macro below -

(defmacro defhello [fn-name body]   `(defn ~fn-name [~'name] ~body))

and a function defined when called as -

(defhello greeting (str "Hello" name))

and called as

(greeting "Joe")

, will return

Hello Joe

I do not understand the usage of ~' in front of the name parameter? What does it do? Don't quote (') and unquote (~) cancel each other? What happens when they are used together? Why not just write name without them?

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Where did this example come from? –  Nikita Beloglazov Sep 10 '12 at 12:50
    
I wrote it. Its working as expected. However the ~' was just trial and error, so wanted to know why it works. –  murtaza52 Sep 10 '12 at 12:54

3 Answers 3

up vote 8 down vote accepted

In short, the ~ evaluates the expression in the syntax-quoted form just like it does for ~fn-name. In this case, the expression to evaluate is 'name, in which the result is the unqualified symbol name.

However, lets break this down one piece at a time.

If you only had the unqualified symbol name, it would be evaluated to clojure.core/name at runtime1. This would result in an incorrect defn form and cause a compiler exception.

(defn greeting [clojure.core/name] (str "Hello" name)) 

If you only had the quoted unqualified symbol 'name, it would still be evaluated at runtime. The difference is that it would expand to (quote clojure.core/name). Again, this would result in an incorrect defn form and cause a compiler exception.

(defn greeting [(quote clojure.core/name)] (str "Hello" name))

Finally, by using ~'name, you will have the quoted form evaluated at compile-time, resulting in the unqualified symbol name, leaving you with a proper defn form.

(defn greeting [name] (str "Hello" name))

1 - This is true for this example because it assumes another name function does not exist.

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1) Why does it evaluate symbols to clojure.core/name ns, and not the current ns? Is this the default behavour for all symbol resolution? –  murtaza52 Sep 12 '12 at 5:39
    
Also thanks for the awesome answer, it was very helpful ! –  murtaza52 Sep 12 '12 at 5:40
1  
It doesn't. It's evaluating the symbol name to clojure.core/name because that function already exists and is within scope. (clojure.core is provided by default.) Also, the single quote does not namespace qualify things, whereas the syntax-quote does. –  Jeremy Heiler Sep 12 '12 at 15:38

As I understand it, you quote the function definition, so it will not be evaluated when the macro is defined. You use the unquote operator ~, to evaluate name in the definition. If name were a kind of list ~@ (unquote splice) would evaluate the elements of a list without the surrounding brackets.

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The quote before name is used to keep the symbol from qualifying.

If you don't know what is qualifying, please refer to Reader.

In addition, you can use macroexpand for macro debugging.

And if you want to know more about macros, I recommend you to read On Lisp. Maybe it's a little difficult, but that let you know how macro works.

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