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Why will (1..5).each iterate over 1,2,3,4,5, but (5..1) will not? It returns the Range instead.

1.9.2p290 :007 > (1..5).each do |i| puts i end
1
2
3
4
5
 => 1..5
1.9.2p290 :008 > (5..1).each do |i| puts i end
 => 5..1
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5 Answers 5

up vote 13 down vote accepted

The easiest way to do that is use downto

5.downto(1) do |i| puts i end
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Very nice, thanks Derek! –  larryzhao Jan 11 '12 at 16:38
1  
And in modern versions of Ruby, you can do x = 5.downto(1) and pass x around as a variable. –  Andrew Grimm Jan 11 '12 at 21:59
    
Nice. a range handles a block as an each iterator automatically. No need to explicitly call .each –  gwho Nov 16 at 8:40

Ranges use <=> to determine if an iteration is over; 5 <=> 1 == 1 (greater-than), so it's done before it starts. Even if they didn't, ranges iterate using succ; 5.succ is 6, still out of luck. A range's step cannot be negative, so that won't work either.

It returns the range because each returns what it was called on. Use downto if it's the functionality itself you're looking for, otherwise the above answers your actual question regarding "why".

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Very good explanation, now I understand all of them. –  larryzhao Jan 11 '12 at 16:45

Because Ruby only does what it's told, not what you mean.

It can't tell whether you want to go in reverse (ie 5, 4, 3, 2, 1), or whether you really only want the numbers starting from 5 that are less than or equal to 1. It's theoretically possible that someone may want the latter, and because Ruby can't tell what you really want, it'll go with the latter.

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numbers starting from 5 that are less than or equal to 1 –  Neeraj Jun 16 at 11:11

This doesn't even really have anything to do with Ruby, it's just simple basic math: the range which starts with 5 and ends with 1 is empty. There is nothing to iterate over.

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1  
Yes, but why doesn't Ruby go "wait a moment, 1 is less than 5, let's go in reverse instead"? –  Andrew Grimm Jan 11 '12 at 21:50
    
ruby is very user-friendly, so it would be entirely reasonable to expect that it would work. –  gwho Nov 16 at 7:59
    
@AndrewGrimm: because Ruby can't tell. The range protocol doesn't require that the right value responds to <=>, only the left. –  Jörg W Mittag Nov 16 at 9:27
    
@gwho: I don't think inventing new incompatible meanings for existing notation is very user-friendly. Everybody who has at least a superficial knowledge of high school level math knows how a range works and would be very surprised by that. Note that this would also require a backwards-incompatible change in the range protocol, because at the moment, the only thing that is required for iterating a range is that the left value responds to succ and <=>, that is not enough for iterating downwards. –  Jörg W Mittag Nov 16 at 9:31

You can easily extend the Range class, in particular the each method, to make it compatible with both ascending and descending ranges:

class Range
   def each
     if self.first < self.last
       self.to_s=~(/\.\.\./)  ?  last = self.last-1 : last = self.last
       self.first.upto(last)  { |i| yield i}
     else
       self.to_s=~(/\.\.\./)  ?  last = self.last+1 : last = self.last
       self.first.downto(last) { |i|  yield i }
     end
   end
end

Then, the following code will perform just as you'd expect:

(0..10).each  { |i| puts i}
(0...10).each { |i| puts i}
(10..0).each  { |i| puts i}
(10...0).each { |i| puts i}
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