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I want to calculate !1000 in clojure, how can I do this without getting a integer-overflow exception?

My factorial code is right now: (reduce * (range 1 1001)).

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3 Answers 3

up vote 15 down vote accepted

You could use the *' operator which supports arbitrary precision by automatically promoting the result to BigInt in case it would overflow:

(reduce *' (range 1 1001))
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Thanks! That was a bit easier and cleaner. –  Sawny Oct 10 '12 at 19:43
    
What are the pros / cons of doing it this way instead of @Hamza's way? –  Sawny Oct 10 '12 at 19:45
    
It can accept arbitrary input. @Hamza should use bigint –  noahlz Oct 10 '12 at 19:55

Put N at the end of the number which makes it a bigint,

(reduce * (range 1N 1001N))
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Coerce the parameters to clojure.lang.BigInt

(reduce * (range (bigint 1) (bigint 1001)))

I.e. if you are working with an third-party library that doesn't use *'

(defn factorial' [n]
   (factorial (bigint n)))
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