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In my application I need to convert clojure keyword eg. :var_name into a string "var_name". Any ideas how that could be done?

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3 Answers 3

up vote 75 down vote accepted
user=> (doc name)
-------------------------
clojure.core/name
([x])
  Returns the name String of a string, symbol or keyword.
nil
user=> (name :var_name)
"var_name"
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1  
I cannot imagine a more complete answer, but just for fun I shall dare someone to come up with it. –  Hamish Grubijan Sep 15 '10 at 15:55
1  
@Hamish Perhaps by adding (source name)? –  ponzao Sep 15 '10 at 18:05
1  
Thanks! My initial reaction was to do this: (.replaceFirst (.toString (keyword "abc")) ":" "") –  Susheel Javadi Sep 16 '10 at 6:26
2  
Thanks kotarak! I am loving this Clojure more every day! This is my third day. –  Santosh Sep 16 '10 at 8:46
1  
Maybe this answer should explain why (name :foo/123/bar) is "bar". If you want the full path of a keyword you need to use subs or something like (str (namespace k) "/" (name k)) –  Annan Apr 6 '12 at 13:48

Actually, it's just as easy to get the namespace portion of a keyword:

(name :foo/bar)  => "bar"
(namespace :foo/bar) => "foo"

Note that namespaces with multiple segments are separated with a '.', not a '/'

(namespace :foo/bar/baz) => throws exception: Invalid token: :foo/bar/baz
(namespace :foo.bar/baz) => "foo.bar"

And this also works with namespace qualified keywords:

;; assuming in the namespace foo.bar
(namespace ::baz) => "foo.bar"  
(name ::baz) => "baz"
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Note that kotarak's answer won't return the namespace part of keyword, just the name part - so :

(name :foo/bar)
>"bar"

Using his other comment gives what you asked for :

(subs (str :foo/bar) 1)
>"foo/bar"
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