112

To get the last n characters from a string, I assumed you could use

ending = string[-n..-1]

but if the string is less than n letters long, you get nil.

What workarounds are available?

Background: The strings are plain ASCII, and I have access to ruby 1.9.1, and I'm using Plain Old Ruby Objects (no web frameworks).

120

Well, the easiest workaround I can think of is:

ending = str[-n..-1] || str

(EDIT: The or operator has lower precedence than assignment, so be sure to use || instead.)

6
  • +1... I think this way is easier to read than string.reverse[0..n].reverse, which gives me a second of "wait, why is he doing that?" (or would if I weren't reading it in the context of this question)
    – Arkaaito
    Feb 1 '10 at 5:19
  • 4
    Good answer, but it should be || instead of or, or put parentheses around str[-n..-1] or str. Feb 1 '10 at 5:34
  • Good answer, but I don't like that ruby doesn't treat s[-inf..-1] the same as x[0..inf]
    – klochner
    Feb 1 '10 at 7:35
  • Thanks for noting the operator precedence issue, Andrew. Gets me every time. Feb 2 '10 at 8:21
  • @perimosocordiae you aren't the only one. stackoverflow.com/questions/372652/… Feb 2 '10 at 22:06
109

Here you have a one liner, you can put a number greater than the size of the string:

"123".split(//).last(5).to_s

For ruby 1.9+

"123".split(//).last(5).join("").to_s

For ruby 2.0+, join returns a string

"123".split(//).last(5).join
7
  • 22
    If you're using a recent version of Ruby, you could use chars instead of split. Oct 23 '11 at 21:15
  • 1
    I used "12345678910".split(//).last(7).join.to_s Oct 23 '12 at 16:03
  • @Hard-BoiledWonderland join works. I don't think you need the last to_s if you use join. Dec 5 '12 at 11:15
  • @AndrewGrimm You're right, for that case I used the above with Nokogiri n.xpath('ReferenceID').inner_text.split(//).last(7).join.to_s.to_i I needed the to_s to perform the to_i to extract the numeric value. Dec 5 '12 at 12:31
  • You are missing .join - now it returns an array of strings. Instead it should be "123".split(//).last(5).join (Ruby 2.0.0) Jul 10 '13 at 13:47
66

In straight Ruby (without Rails), you can do

string.chars.last(n).join

For example:

2.4.1 :009 > a = 'abcdefghij'
 => "abcdefghij"
2.4.1 :010 > a.chars.last(5).join
 => "fghij"
2.4.1 :011 > a.chars.last(100).join
 => "abcdefghij"

If you're using Ruby on Rails, you can call methods first and last on a string object. These methods are preferred as they're succinct and intuitive.

For example:

[1] pry(main)> a = 'abcdefg'                                                                                                                
 => "abcdefg"
[2] pry(main)> a.first(3)                                                                                                                   
 => "abc"
[3] pry(main)> a.last(4)                                                                                                                    
 => "defg"
1
  • 1
    Ruby does not imply Rails.
    – Volte
    Jun 14 '16 at 2:57
14
ending = string.reverse[0...n].reverse
2
  • This is the best approach I see on this page that satisfies the requirement of being able to supply an ending character length that exceeds the total string length. Aug 8 '13 at 18:46
  • 1
    For example, if you are intending to take the last 3 character of a group of stings like "abcde", "ab", and "a". This technique will result in "cde", "ab", and "a" using the same code for each. "abcde".reverse[0,3].reverse >>> "cde" "ab".reverse[0,3].reverse >>> "ab" "a".reverse[0,3].reverse >>> "a" Aug 8 '13 at 18:56
9

You can use the following code:

string[string.length-n,string.length]
1
  • 1
    code only - answers are not always helpful. explaining why/how this code is the fix would be great
    – ry8806
    Jun 3 '15 at 12:04
6

To get the last n characters from a string, you could do this

a[-n, n] if a is the array.

Here's and example if you would want one.

ruby-1.9.2-p180 :006 > a = "911234567890"

=> "911234567890"

ruby-1.9.2-p180 :009 > a[-5,5]

=> "67890"

ruby-1.9.2-p180 :010 > a[-7,7]

=> "4567890"

3
  • If the number is too large, nil is returned, which is what this question was specifically trying to avoid. Sep 7 '11 at 23:52
  • Good answer. Clean.
    – Volte
    Jun 14 '16 at 2:58
  • Why is this getting upvotes? It has the exact same problem as what the OP was asking how to fix.
    – jeffdill2
    Oct 22 '19 at 13:46
5

Have you tried a regex?

string.match(/(.{0,#{n}}$)/)
ending=$1

The regex captures as many characters it can at the end of the string, but no more than n. And stores it in $1.

0
1

Improvement on EmFi's answer.

string[/.{,#{n}}\z/m]

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