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Given I have 10 items to iterate and I want to place a br every 3 of them like this example. How can I do this in Ruby?

1
2
3
<br>
4
5
6
<br>
7
8
9
<br>
10
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Why are you doing this? –  Andrew Grimm Apr 7 '11 at 3:15
1  
Interesting: 2 of the 3 downvoted answers used the XHTML tag <br/> and all the upvoted answers used the HTML tag <br>. Well I just said it was interesting.. –  Zabba Apr 7 '11 at 6:04
    
@Zabba: Maybe the former are Rails developers, while the latter are non-web developers who specialize in Plain Old Ruby Objects, and are more familiar with the language and its functional programming capabilities. –  Andrew Grimm Apr 7 '11 at 6:23
    
I just tried to be faithful to the question. I think those who wrote <br/> were downvoted (not by me) because they do not give what is asked. –  sawa Apr 7 '11 at 11:32
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8 Answers

up vote 9 down vote accepted

Solution 1

(1..10).each_slice(3){|a| puts '<br>' unless a[0] == 1; puts a}

Solution 2 (ruby 1.9.2)

(1..10).chunk{|i| i.%(3).zero?}.each{|r, a| puts(a, *('<br>' if r))}

Solution 3

puts (1..10).each_slice(3).map{|a| a.unshift('<br>')}.flatten.drop(1)

Solution 4 (ruby 1.9.2)

puts ['<br>'].product((1..10).each_slice(3).to_a).flatten.drop(1)

Solution 5

puts (1..10).each_slice(3).with_object([]){|a, aa| aa.push('<br>', *a)}.drop(1)

Solution 6

puts (1..10).map{|i| i.%(3).zero?? [i, '<br>'] : i}

Solution 7 (ruby1.9.2)

puts (1..10).to_a.
  tap{|a| a.length.downto(1){|i| a.insert(i, '<br>') if i.%(3).zero?}}
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1  
this is very nice! –  Zabba Apr 7 '11 at 4:15
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 (1..10).each do |i|
   puts i
   puts '<br>' if i % 3 == 0
 end
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1  
-1: Procedural code, and doesn't use .zero?. Not as bad as some answers, but a 33K user should do better. –  Andrew Grimm Apr 7 '11 at 3:07
3  
Actually, the 33K user's code is clear as hell. –  Zabba Apr 7 '11 at 4:14
2  
@Andrew: well, without list comprehensions (which Ruby doesn't have) a functional solution might be rather clunky. Sawa tried it and it's ... just OK. Perhaps you could post something? If you are accusing me of not knowing about .zero?, you are correct, I didn't. But now that I do, I still don't like it in this case. It's more source characters and certainly harder to read. In any case, I would encourage you again to post your ideas. Answers on SO live forever and if it's any good it will eventually get votes. –  DigitalRoss Apr 7 '11 at 4:27
    
+1 for being a whole lot clearer than every "properly functional" example posted. If functional must be as complicated as it's represented by the others here, give me procedural code anyday. –  cHao Apr 7 '11 at 22:06
    
@cHao: Ruby isn't ideal for pure functional programming, but there's usually a happy middle that's nicer than the full-on procedural solution here (not to hate on DigitalRoss — I agree this code is more readable than the pure version, which is an extremely valuable quality). See my answer for what I consider to be a very concise but still declarative version. stackoverflow.com/questions/5575172/… –  Chuck Apr 7 '11 at 22:54
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>> (1..10).each_slice(3).to_a.map{|x|x.join("\n")}.join("\n<br>\n")
=> "1\n2\n3\n<br>\n4\n5\n6\n<br>\n7\n8\n9\n<br>\n10"
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2  
+1 For a properly functional solution. Note that the .map is not necessary. –  Phrogz Apr 7 '11 at 2:37
    
@Phrogz, why isn't the map necessary? Without it the output is 1\n<br>\n2\n<br>\n3\n<br>.... (Ruby 1.8.7) –  Zabba Apr 7 '11 at 6:01
    
@Zabba Not for me: ruby-1.8.7-p330> (1..10).each_slice(3).map{|x|x.join}.join("<br>") #=> "123<br>456<br>789<br>10" (simplified for clarity) –  Phrogz Apr 7 '11 at 12:47
    
@Phrogz: Surely it's the to_a that is unnecesary, not the map. –  Chuck Apr 7 '11 at 17:58
    
@Chuck Holy crap, of course that's what I meant, as evidenced by the code. I am shocked that I read that in two separate comments and completely didn't notice the mistake. Thank you for bringing clarity to my clearly-confusing comment. –  Phrogz Apr 7 '11 at 19:49
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If I understood the question well, he didn't say that the elements would always be (1..10), and most answers I saw here are only valid for this specific case, since they rely on the value of the element, not in the index. A more generic solution that would work not only when array = (1..10).to_a, but with any array of any size is this:

array.each_with_index do |o, i| 
  puts o
  puts '<br>' if i % 3 == 2
end
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(1..10).each do |i| 
    puts i
    if (i % 3 == 0) 
      puts "<br/>"
    end
end
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-1: Procedural code, doesn't do puts ... if foo, doesn't use .zero?. Also, but this isn't part of why I downvoted, is Ruby is normally indented two, not four, spaces. –  Andrew Grimm Apr 7 '11 at 3:03
    
I am just starting out with Ruby myself. Why does this matter? –  omgz0r Apr 7 '11 at 3:37
    
Wouldn't you want other people learning Ruby to see examples of good Ruby code, not examples of average Ruby code? –  Andrew Grimm Apr 7 '11 at 23:39
    
You haven't demonstrated what makes it average, aside from some syntactic shortcuts and an aversion for procedural code. I'm curious as to why those things actually matter, aside from personal preference. –  omgz0r Apr 9 '11 at 23:06
    
What would you consider "average"? –  Andrew Grimm Apr 10 '11 at 3:33
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For printing, I like a combination of kurumi's and DigitalRoss's:

array.each_slice(3) {|elems| puts elems.join("\n"), '<br>' }

It's pretty declarative and very straightforward.

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That will give an extra <br> at the end. All the impurity you see is to get rid of this extra <br>. –  sawa Apr 8 '11 at 3:07
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Something not so ruby-esque

k = 3
while k < array.size
    arrays.insert(k,"<br />")
    k += 4
end
p array
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1  
-1 for side effects on an object you didn't create. –  Andrew Grimm Apr 7 '11 at 3:04
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I would suggest do a for(i=0;i<length;i++) { if (i%3) //put br }

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I need it in Ruby. –  Martin Apr 7 '11 at 2:14
    
Sorry.. I misread.. However except the syntex --- the logic is same.. Not sure why -1.. –  sajoshi Apr 7 '11 at 2:28
4  
I didn't vote you down, but perhaps because the syntax and logic are both wrong for Ruby. In ruby, i%3 is always a truthy value. (!!0 is not false, unlike in JavaScript.) –  Phrogz Apr 7 '11 at 2:39
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