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I am looking for a function that returns the first element in a sequence that evalutes a fn to true. For example:

(first-map (fn [x] (= x 1)) '(3 4 1))

The above fake function should return 1 (the last element in the list). Is there something like this in Clojure?

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why not just (first (filter #(= % 1) '(3 4 1))? – 4e6 Apr 17 '12 at 13:56
@4e6 Because that would apply the function to every element on the list, which might be undesirable on a large list. – Matthew Apr 17 '12 at 13:58
Map is lazy, so I don't think it would. You ought to test that though. – Bill Apr 17 '12 at 14:03

5 Answers 5

up vote 29 down vote accepted
user=> (defn find-first
         [f coll]
         (first (filter f coll)))
user=> (find-first #(= % 1) [3 4 1])

Edit: A concurrency. :) No. It does not apply f to the whole list. Only to the elements up to the first matching one due to laziness of filter.

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Thanks @kotarak, my concern is that this would process all of the elements in the collection, which is undesirable on a large list. Perhaps I need to create a function that recurs until it finds the lement that satisfies the condition. – Matthew Apr 17 '12 at 14:02
I see your edit. Awesome! Thanks so much. – Matthew Apr 17 '12 at 14:03
@Matthew modulo chunked sequences. There f may be applied to more elements depending on the chunk size. – kotarak Apr 17 '12 at 14:32
using filter or some takes more resources. alternatively, reduced can shortcut the whole calculation while takes less resources: (reduce #(when (= %2 50000000) (reduced %2)) nil (range)). – xando Sep 4 at 19:02
@xando Did you use something like the following to prove it?user=> (def input (range)) #'user/input user=> (time (some #{50000000} input)) "Elapsed time: 3909.789411 msecs" 50000000 user=> (time (reduce #(when (= %2 50000000) (reduced %2)) nil input)) "Elapsed time: 198616.007581 msecs" 50000000 These happen to be the results I got. – Marko Topolnik Sep 5 at 6:26

In your case, the idiom is

(some #{1} [1 2 3 4])

How it works: #{1} is a set literal. A set is also a function evaluating to its arg if the arg is present in the set and to nil otherwise. Any set element is a "truthy" value (well, except for a boolean false, but that's a rarity in a set). some returns the return value of the predicate evaluated against the first collection member for which the result was truthy.

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I think some is the best tool for the job:

(some #(if (= % 1) %) '(3 4 1))
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This does not suffer from the chunked sequences effect. But doesn't work in cases where 1 is nil or false. YMMV. – kotarak Apr 17 '12 at 14:35
Wait... how can 1 equal nil? :) anyway, Matthew specified that elements should 'evaluate to true' so I think the behavior is the desired. – vemv Apr 17 '12 at 15:07
Consider f to be #(contains? #{0 "false" false} %). And he said "evaluates a fn to true". – kotarak Apr 17 '12 at 15:11
You're entirely right. :) – vemv Apr 17 '12 at 15:16

Using drop-while instead of filter should address "over-application" of f for chunked sequences:

(defn find-first [f coll]
  (first (drop-while (complement f) coll)))
;;=> #'user/find-first

(find-first #(= % 1) [3 4 1])
;;=> 1
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I tried several methods mentioned in this thread (JDK 8 and Clojure 1.7), and did some benchmark tests:

repl> (defn find-first
         [f coll]
         (first (filter f coll)))

repl> (time (find-first #(= % 50000000) (range)))
"Elapsed time: 5799.41122 msecs"

repl> (time (some #{50000000} (range)))
"Elapsed time: 4386.256124 msecs"

repl> (time (reduce #(when (= %2 50000000) (reduced %2)) nil (range)))
"Elapsed time: 993.267553 msecs"

The results show that reduce way may be the most efficient solution as in clojure 1.7.

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