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like this

range = (0..10)

how can I get number like this:

0 5 10 

plus five every time but less than 10

if range = (0..20) then i should get this:

0 5 10 15 20
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3 Answers

Try using .step() to go through at a given step.

(0..20).step(5) do |n|
    print n,' '
end

gives...

0 5 10 15 20

As mentioned by dominikh, you can add .to_a on the end to get a storable form of the list of numbers: (0..20).step(5).to_a

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and if you want to store the numbers you can use (0..10).step(5).to_a -- this requires ruby >= 1.8.7 though. An alternative is 0.step(10, 5).to_a, which also required ruby >= 1.8.7 –  Dominik Honnef Apr 6 '10 at 9:12
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Like Dav said, but add to_a:

(0..20).step(5).to_a # [0, 5, 10, 15, 20]
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You generally don’t need to add to_a unless you really do need an array. –  Konrad Rudolph Apr 6 '10 at 9:16
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The step method described in http://ruby-doc.org/core/classes/Range.html should do the job but seriously harms may harm the readability.

Just consider:

(0..20).step(5){|n| print ' first ', n }.each{|n| print ' second ',n }

You may think that step(5) kind of produces a new Range, like why_'s question initially intended. But the each is called on the (0..20) and has to be replaced by another step(5) if you want to "reuse" the 0-5-10-15-20 range.

Maybe you will be fine with something like (0..3).map{|i| i*5}?

But "persisting" the step method's results with .to_a should also work fine.

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“seriously harms the readability” – what?! Why? How? –  Konrad Rudolph Apr 6 '10 at 9:11
2  
I'd argue that step is more readable than a map of that nature, at least in this case. –  Amber Apr 6 '10 at 9:11
    
(0..20).step(5).each{...}.each{...} will do what you want it to do. –  Marc-André Lafortune Apr 6 '10 at 15:29
    
@Marc-Andre Lafortune: (0..20).step(5).each{print '.'}.each{print '!'} will print .....!!!!!!!!!!!!!!!!!!!!! and that's hard to figure out at first glance - at least for me. –  efi Apr 6 '10 at 20:00
    
@efi: no, it will print .....!!!!! Did you actually try it? The reason is that step(5) (with no block) returns an Enumerator that will yield 5 times. This Enumerator is returned by both each. What's confusing you is that step(5){a block} returns the original enumerable, so further each will operate on the full range. –  Marc-André Lafortune Apr 6 '10 at 21:16
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