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Look at the function below. I want to pass a vector of factors and test if any of the elements in the vector is a factor of x. How do I do that?

(defn multiple?
  "Takes a seq of factors, and returns true if x is multiple of any factor."
  ([x & factors] (for [e m] ))
  ([x factor] (= 0 (rem x factor))))
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4 Answers

up vote 1 down vote accepted

You could try using some and map:

(defn multiple? [x & factors]
  (some zero? (map #(rem x %) factors)))

Also some returns nil if all tests fail, if you need it to actually return false, you could put a true? in there:

(defn multiple? [x & factors]
  (true? (some zero? (map #(rem x %) factors))))

Note that some short-circuits and map is lazy, so multiple? stops as soon as a match is found. e.g. the following code tests against the sequence 1,2,3,4,....

=> (apply multiple? 10 (map inc (range)))
true

Obviously this computation can only terminate if multiple? doesn't test against every number in the sequence.

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You can solve it only using some.

=> (defn multiple? [x factors]
 (some #(zero? (rem x %)) factors))
#'user/multiple?
=> (= true (multiple? 10 [3 4]))
false
=> (= true (multiple? 10 [3 4 5 6]))
true

some will stop at the first factor.

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1  
Ah, it's impolite to post an answer that is identical to another answer, especially as your answer is more than 20 minutes later than the original answer. –  dbaupp Jun 19 '12 at 2:52
    
@dbaupp I don't think my answer is identical to yours. This one uses only some. Yours uses some and map. –  Raghu Kaippully Jun 19 '12 at 3:22
    
Ah, I missed that. My apologies. :) (Also, true? is a neater way to write = true) –  dbaupp Jun 19 '12 at 3:23
    
You are right. I think I picked up = true habit from link. :-) –  Raghu Kaippully Jun 19 '12 at 4:40
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Try this, using explicit tail recursion:

(defn multiple? [x factors]
  "if any of the elements in the vector is a factor of x"
  (loop [factors factors]
        (cond (empty? factors) false
              (zero?  (rem x (first factors))) true
              :else   (recur (rest factors)))))

The advantages of the above solution include: it will stop as soon as it finds if any of the elements in the vector is a factor of x, without iterating over the whole vector; it's efficient and runs in constant space thanks to the use of tail recursion; and it returns directly a boolean result, no need to consider the case of returning nil. Use it like this:

(multiple? 10 [3 4])
=> false

(multiple? 10 [3 4 5 6])
=> true

If you want to obviate the need to explicitly pass a vector (for calling the procedure like this: (multiple? 10 3 4 5 6))) then simply add a & to the parameter list, just like it was in the question.

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The map/some solution exhibits the same behaviour. (It doesn't test every number in the sequence.) –  dbaupp Jun 19 '12 at 2:20
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A more Clojurian way is to write a more general-purpose function: instead of answering true/false question it would return all factors of x. And because sequences are lazy it is almost as efficient if you want to find out if it's empty or not.

(defn factors [x & fs]
  (for [f fs :when (zero? (rem x f))] f))

(factors 5 2 3 4)
=> ()

(factors 6 2 3 4) 
=> (2 3)

then you can answer your original question by simply using empty?:

(empty? (factors 5 2 3 4))
=> true

(empty? (factors 6 2 3 4))
=> false
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Using filter is more idiomatic than for: (filter #(zero? (rem x %)) fs) –  dbaupp Jun 20 '12 at 2:05
    
Good comment, I agree. I've used for because @murtaza52 was trying to use it in the question itself. –  dimagog Jun 20 '12 at 5:05
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