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How would a programmer go along to yield successive powers of two starting at 1 up to a limit?

I saw the documentation http://clojuredocs.org/clojure_core/1.2.0/clojure.core/iterate but still need help. Thanks.

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4 Answers 4

Separate the task into two steps.

IF you first create a lazy infinite (no need to decide in advance the maximum power you'll need) sequence of powers of 2, you can subsequently slice and dice it any way you choose

(def powers-of-2 (iterate (partial *' 2) 2))

To get the first n powers

(take 5 powers-of-2)

To get the powers less than 70

(take-while (partial > 70) powers-of-2)

Added:

Actually I prefer the more general form:

(defn powers-of [n] (iterate (partial *' n) n))

(take 5 (powers-of 2))

As well as being more general, unless you have efficiency concerns, by calling the higher order function each time for a new lazy sequence you avoid holding on to the head and allow the memory to be garbage collected.

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1  
+1 for the (iterate...) version. It would be even better with *' instead of * to handle arithmetic overflows. –  JohnJ Oct 25 '12 at 13:42
    
oops, added that to my first example and then forgot it when adding the general form. Edited answer. Thanks. –  status203 Oct 25 '12 at 13:45
    
Based on subsequent question asked, to start the powers of two from an exponent of 0, change the second argument to iterate from a 2 to a 1. To limit the number of powers to the nth exponent use the "take" form e.g. (take 71 powers-of-2) –  status203 Oct 25 '12 at 14:55
4  
Even the specialized powers-of-2 form should be a (no-argument) defn, not a def. Otherwise the sequence can never get garbage collected, and attempting to find the ten billionth power of two might run you out of memory. –  amalloy Oct 25 '12 at 16:52

You can use for form:

(def powers (for [x (range)] 
                 (java.lang.Math/pow 2 x)))

(take 10 powers)
(1.0 2.0 4.0 8.0 16.0 32.0 64.0 128.0 256.0 512.0)
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but up to a specific number that number of choice. For example, (powers-of-two 70 (fn [p] (println "The power of two's are " p)) –  user1585646 Oct 25 '12 at 9:56
    
He just showed you how to do that with (take 10 powers). –  Rayne Oct 25 '12 at 10:10
    
@user1585646 - if you keep correcting people's answers, perhaps you should revise your question. –  noahlz Oct 25 '12 at 15:05

There are two ways to interpret "limit", and from your question it is not sure which one you mean.

Also, you say "starting at 1 up to a limit". Do you mean "start at 0^2 (which is 1) up to a limit", or "start at 1^2 (which is 2)"? In the examples below I'm assuming you want to start with 0^2. If you want to start with 1^2, replace (range) with (drop 1 (range)) in the code below.

In the first interpretation, "limit" means "give me a sequence of n elements, where the elements are the successive powers of two". Ankur and others showed how to do that:

;; return the sequence (0^2, 1^2, 2^2 ... 149^2) 
(take 150 (for [x (range)] (java.lang.Math/pow 2 x)))
; => (1.0 2.0 4.0 8.0 ..... 7.1362384635297994E44)

;; this is functionally equivalent:
(for [x (range 150)] (java.lang.Math/pow 2 x))

The other interpretation is "give me a sequence of successive powers of two that are smaller than the limit". You could do that with the following:

;; return the sequence (0^2, 1^2, 2^2 ... 2^7)
(for [x (range) :let [r (Math/pow 2 x)] :while (< r 150)] r)
; => (2.0 4.0 8.0 16.0 32.0 64.0 128.0)
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Here is one way:

(defn powers-of-two
  [n]
  (map ; we are mapping over a sequence 
    (comp int #(Math/pow 2 %)) ; a composition of two functions
                               ; Math/pow returns doubles so int is used to make them into integers
    (range 1 (inc n)))) ; a sequence from 1 to 10

(powers-of-two 15) ;=> (2 4 8 16 32 64 128 256 512 1024 2048 4096 8192 16384 32768)
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but up to a specific number of choice. For example, (powers-of-two 70 (fn [p] (println "The power of two's are " p)) –  user1585646 Oct 25 '12 at 9:57
    
@user1585646 You can put it in a function. I will update my answer. –  ponzao Oct 25 '12 at 12:47

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