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I'm trying this:

(hash-set (when (= a 1) x))

I'm expecting #{x} if a equals to 1 and an empty set #{} otherwise. But I'm getting #{nil} instead of any empty set. How to re-write the statement?

ps. A workaround, but it looks ugly:

(filter #(not (nil? %)) (hash-set (when (= a 1) x)))

The solution:

(apply hash-set (when (= a 1) (list x)))
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Just FYI, (filter #(not (nil? %)) ...) can usually be rewritten as (filter identity ...) - though it falls over if you have boolean false in the collection being filtered. It's slightly more idiomatic. –  Alex Jan 24 '13 at 19:22

3 Answers 3

up vote 1 down vote accepted

You could use:

(apply hash-set (when (= a 1) x))

I'm assuming that a and x are variables, for example via:

(defn foo [a & x] (apply hash-set (when (= a 1) x)))

I made the parameter x optional since you don't need to provide it if a not equals 1.

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I believe you are needing x to be in a list as the function destructuring does, so (apply hash-set (when (= a 1) '(x))), or I like (into #{} (when (= a 1) '(x))). –  A. Webb Jan 23 '13 at 20:34

Another way:

(into #{} (when (= a 1) [x]))

If you like the word hash-set in your code, you can do:

(apply hash-set (when (= a 1) [x]))
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You could do:

(if (= a 1) #{x} #{})
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You have to remove the last ) –  sloth Jan 23 '13 at 20:23
    
The main defect here is the duplication of #{. I would like to keep hash-set in one place only, for consistency –  yegor256 Jan 23 '13 at 20:24

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