In clojure, I'd like to know what are the differences between the three below.

(println (map + '(1 2 3) '(4 5 6))) 

(println (map '+ '(1 2 3) '(4 5 6))) 

(println (map #'+ '(1 2 3) '(4 5 6))) 

The results are

(5 7 9) 

(4 5 6) 

(5 7 9) 

I can't understand the second one's behavior.

I feel the first one and the third one are the same in clojure which is Lisp-1 and doesn't distinguish between evaluating a variable and the identically named function.

This may be a basic question, but there seems not to be enough infomation. Please teach me.

Thanks.

  • 2
    As an aside, in clojure it is idiomatic to describe literal sequences with vectors instead of quoted lists. – Alex Taggart Mar 19 '12 at 0:14
  • Oh, I see. Thank you, Alex. – jolly-san Mar 19 '12 at 8:01
up vote 33 down vote accepted

Regarding the third case, in contrast to Common Lisp, #'+ does not read as (function +) and refer to the value of the symbol + in the function namespace, since Clojure does not have a function namespace. Instead, it reads as (var +) and refers to the var called +. Applying a var is the same as applying the value stored in the var.

In the second case, you are repeatedly applying a symbol to a pair of numbers. This is valid by accident. Applying a symbol to a map is the same as indexing into that map:

user> ('a {'a 1, 'b 2, 'c 3, '+ 4})
1
user> ('+ {'a 1, 'b 2, 'c 3, '+ 4})
4

If you supply a second argument, it is used as the default value in case no matching key is found in the map:

user> ('+ {'a 1, 'b 2, 'c 3} 4)
4

Since in each iteration, you apply the symbol + to a pair of numbers, and since a number isn't a map and therefore doesn't contain + as a key, the second argument is returned as the default value of a failed match.

user> ('+ 'foo 4)
4
user> ('+ {} 4)
4
user> ('+ 1 4)
4
  • Great answer. Clear explanation of not immediately obvious behavior. Thanks. – sw1nn Mar 18 '12 at 18:39
  • Thank you very much, Matthias. I could understand what #' means. I didn't realize Var, and I ignored it, but this time I could understand it more deeply. I also could understand the 2nd code behavior. Thank you. – jolly-san Mar 19 '12 at 8:04

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.