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In Clojure, what is the best way for iterating concurrently on two seqs and calling a function on the two running elements? For example:

(def a (range 3))
(def b (range 100 103))
(defn my-func [] ...) ;some custom code

The code should execute my-func 3 times, like this:

(my-func 0 100)
(my-func 1 101)
(my-func 2 102)

How can I achieve that without defining any function or macro?

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1  
(range 100 102) only has two elements - perhaps you mean (range 100 103)? –  mikera Feb 3 '12 at 2:51
    
@mikera: thanks. updated the question –  viebel Feb 5 '12 at 10:39

2 Answers 2

up vote 10 down vote accepted

map is exactly what you need, it takes a function and any number of seqs and calls them just as you wish.

(def a (range 3))
(def b (range 100 103))
user=> a
(0 1 2)
user=> b
(100 101 102)

user=> (defn my-func [a b] (str a ":" b))
#'user/my-func

user=> (my-func 1 2)
"1:2"

user=> (map my-func a b)
("0:100" "1:101" "2:102")

and because map is lazy if you want the function to actually run now:

(doall (map my-func a b))
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This doesn't work. This outputs: (0 : 100 1 : 101 nil nil) –  viebel Feb 2 '12 at 23:53
    
@viebel: Are you running at the REPL and using println? If so, your results are confusing. Assuming you ran (map #(println %1 ":" %2) a b), what happened is that the REPL printed (, then println printed the 0 : 100 and 1 : 101, then the REPL finished printing the results of the map, which is nil nil). –  mange Feb 3 '12 at 0:01
    
the nil nil is the return of prinln before i edited it –  Arthur Ulfeldt Feb 3 '12 at 0:02
    
@Arthur Ulfeldt:The whole point of my question is to seek for a way to iterate without creating a map. println is just an example. The code I seek for should work with any function that receives 2 args. Should I edit the question in order to clarify it? –  viebel Feb 3 '12 at 0:06
2  
@YehonathanSharvit: map is lazy (see the page on clojure.org, or sequences has a bit too), so it won't evaluate until it needs the results (which is also why the REPL stuff intersperses). It's very handy, but can trip you up in times like this. Try (doall (map println '(1 2) '(10 20))). doall forces evaluation of the seq passed to it. –  mange Feb 3 '12 at 0:40

You could also try

(doseq [[x y] (map list my-list1 my-list2)]
  (println x y))

(map list list-2 list-2) creates a list where the first element is a list of the first elements of the input lists, the second element is a list of the second elements, ...

We then iterate over the list, using Clojure's destructuring to extract the elements of the original lists.

In general, you want map if you want to use the return value of the function you are applying. If you are merely executing a function for its side effects, I generally use doseq. This case is complicated by the fact that map works in parallel, while doseq iterates over the Cartesian Product of the lists it is given, so you need both map and doseq to get the behavior we want.

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Is there any doseq-like function that iterates in parallel and not over the cartesian product. If no, what is the rationale behind it? –  viebel Feb 4 '12 at 19:07
    
As far as I know, there is no such function. Ideally doseq/for (they share the same syntax) would allow something like an :and option to allow for two seqs to iterate in parallel. Unfortunately, such an option doesn't exist. –  Retief Feb 4 '12 at 20:25

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