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As said, I'd like to reverse a string in Ruby using recursion (I know how to do it with loops, but I can't wrap my mind around the recursion stuff yet). Here's what I got:

def reverseRecursive(s)

   if s.length==1 then 
      return s 
      return ((s[s.length-1,1] = s[(s.length-(s.length+1)),1]) + reverseRecursive(s.length-1))


What's wrong with this? I replace the first letter with the last, then add the function with one letter less, the first letter is replaced with the last one again until there's only one letter left which ruby is supposed to put out. Instead I get the following cryptic message: undefined method 'length'for 4: Fixnum(NoMethodError) So it recognized that I want the length of the string -1. How is this undefined? Length works always...

Thanks for your help. :)

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5 Answers 5

On this line:

return ((s[s.length-1,1] = s[(s.length-(s.length+1)),1]) + reverseRecursive(s.length-1))

You are calling the reverseRecursive method with an integer:


and inside the method, you are trying to access the length of an integer which will give you an error:

I don't know about Ruby but the logic should be this:

return s[s.length-1] + reverseRecursive(s[0, s.length-1])
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Hmm ok how do I fix it? This on its own return ((s[s.length-1,1] = s[(s.length-(s.length+1)),1])) gives me the last letter. When I add the +reverseRecursive(s.length-1) for the recursion, it gives me the error... I tried giving it "to_s" on some parts, but it doesn't work. – user3071205 Dec 5 '13 at 18:44
updated the answer, have a look :) – JoeC Dec 5 '13 at 19:04

This isn't an attempt to fix the recursion logic, instead it's to help you write better Ruby code:

def reverse_recursive(s)

  if s.length > 1 then 
    ((s[s.length - 1, 1] = s[(s.length - (s.length + 1)), 1]) + reverse_recursive(s.length - 1))


  • Methods in Ruby are written in snake_case, not camelCase, so use reverse_recursive.
  • Use whitespace around operators like +, = and =. It's a readability thing for those other people who have no clue what you're doing, like your future self that can't remember why you wrote something a certain way, or a future employer who expects you to write in an idiomatic Ruby style.
  • if s.length==1 then shouldn't have a trailing then. Use then for single line if tests:

    if s.length == 1 then return s

    But that isn't used in Ruby very often. Instead we'd use a trailing if:

    return s if s.length == 1
  • Ruby allows, and it's idiomatic to use, implied return values. In other words, you don't have to use return at the end of a block or method to return the value. The last value seen will be what's returned by the method.

  • The logic for your conditional test:

    if s.length==1 then 
      return s 
      return ((s[s.length-1,1] = s[(s.length-(s.length+1)),1]) + reverseRecursive(s.length-1))

    has a problem if s == '', because then you have a string length of 0, which isn't caught correctly:

    s = ''
    if s.length == 1
      ((s[s.length - 1, 1] = s[(s.length - (s.length + 1)), 1]) + reverseRecursive(s.length - 1))
    # ~> TypeError
    # ~> no implicit conversion of nil into String

    Use a better test and look for a string length > 1 like in the example above.

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Now that your question has been answered, let's have some fun by thinking up other ways to reverse a string using recursion. Here's one:

def esrever(s)
  s.size < 2 ? s : s[-1] + esrever(s[1..-2]) + s[0]

esrever("") # => "" 
esrever("a") # => "a" 
esrever("at") # => "ta" 
esrever("this seems to be working") # => "gnikrow eb ot smees siht" 
  • esrever(s[1..-2]) passes all but the first and last characters of the string to itself.
  • s[-1] + esrever(s[1..-2]) + s[0] reverses the first and last characters and sandwiches the reversed midsection between them.
  • If the method receives a string of length zero or 1, there is nothing to do but return the string.
  • You might want to look at "Ruby Names" for a description of Ruby's naming conventions.
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Your return statement needs to be altered a bit:

return s[s.length-1].chr + reverseRecursive(s[0, s.length-1])

You notice the chr? That is so you get the character at the position, and not the fixnum.

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As mentioned by others the error is coming because you are passing an integer 's.length-1' into the recursive function, so when it checks it's length at line 3 it has an error because integers do not have a .length function.
Furthermore the logic and the syntax in the recursion is faulty.
The logic should be s[last letter] + recursion(s[second..second last]) + s[first letter]. You need to switch the first with the last letter not replace the first with last, & then call the recursive function on the middle letters to keep swapping the first and last.
Syntactically, I'm not sure exactly how you were trying to achieve your goals because that is not written in ruby, here is more like how it should look:
def reverse_recursive(str) return str if str.length < 2 # not ==1 in case empty string passed in str[-1] + reverse_recursive("#{str[1..-2]}") + str[0] end

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