1

I am trying to call the first duplicate character in my string in Ruby. I have defined an input string using gets.

How do I call the first duplicate character in the string?

This is my code so far.

string = "#{gets}"
print string

How do I call a character from this string?

Edit 1:

This is the code I have now where my output is coming out to me No duplicates 26 times. I think my if statement is wrongly written.

string "abcade"
puts string
for i in ('a'..'z')
if string =~ /(.)\1/
puts string.chars.group_by{|c| c}.find{|el| el[1].size >1}[0]
else
puts "no duplicates"
end
end

My second puts statement works but with the for and if loops, it returns no duplicates 26 times whatever the string is.

4
  • 1
    Do you want to know the first duplicate character or the index of where it occurs? Does tester count as duplicated since it has two e characters, or are you intending to find things like billing?
    – tadman
    Commented Jun 3, 2015 at 15:41
  • 1
    You'd need to iterate through the string, keeping a set of already-found characters, and stop iterating as soon as the set contains the current character. One way to access string chars is using array index notation, e.g., s[0] etc. Another is to iterate using each_char. There are many options. Commented Jun 3, 2015 at 15:41
  • 2
    Welcome to Stack Overflow. Your code generates a syntax error error "undefined method 'string' for main:Object (NoMethodError)". Perhaps that's because you didn't copy your code into the question correctly? "Questions seeking debugging help ('why isn't this code working?') must include the desired behavior, a specific problem or error and the shortest code necessary to reproduce it in the question itself. Questions without a clear problem statement are not useful to other readers. See: How to create a Minimal, Complete, and Verifiable example." Commented Jun 3, 2015 at 15:48
  • Convert to array and use detect? see my answer below.
    – locoboy
    Commented Jun 3, 2015 at 18:15

7 Answers 7

5
s.chars.map { |c| [c, s.count(c)] }.drop_while{|i| i[1] <= 1}.first[0]

With the refined form from Cary Swoveland :

s.each_char.find { |c| s.count(c) > 1 }
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  • 2
    Consider the simplification: s.each_char.find { |c| s.count(c) > 1 }. Note that s.each_char is an enumerator, which is more efficient than the (temporary) array s.chars. In any event, this is a solution to the second interpretation of the question I gave in my answer. +1. Commented Jun 3, 2015 at 18:00
5

The following returns the index of the first duplicate character:

the_string =~ /(.)\1/

Example:

'1234556' =~ /(.)\1/
=> 4

To get the duplicate character itself, use $1:

$1
=> "5"

Example usage in an if statement:

if my_string =~ /(.)\1/
  # found duplicate; potentially do something with $1
else
  # there is no match
end
15
  • How does this work? What part of that regex identifies duplication?
    – Jared Beck
    Commented Jun 3, 2015 at 15:56
  • I don't want the index of the string but the character itself. So for instance for your string I would want the output to be 5. Commented Jun 3, 2015 at 15:58
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    @ShailiParikh I specifically asked what you wanted in the comments above. It really would've helped to have said that up front.
    – tadman
    Commented Jun 3, 2015 at 15:59
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    @JaredBeck the (.) part of the regex matches any character and captures it in $1 and the \1 part of the regex matches any duplicate of $1
    – davidrac
    Commented Jun 3, 2015 at 16:28
  • 1
    @CarySwoveland Mostly just disturbed ;) Commented Jun 3, 2015 at 17:50
2

Below method might be useful to find the first word in a string

def firstRepeatedWord(string)
  h_data = Hash.new(0)
  string.split(" ").each{|x| h_data[x] +=1}
  h_data.key(h_data.values.max)
end
1
1

I believe the question can be interpreted in either of two ways (neither involving the first pair of adjacent characters that are the same) and offer solutions to each.

Find the first character in the string that is preceded by the same character

I don't believe we can use a regex for this (but would love to be proved wrong). I would use the method suggested in a comment by @DaveNewton:

require 'set'

def first_repeat_char(str)
  str.each_char.with_object(Set.new) { |c,s| return c unless s.add?(c) }
  nil
end

first_repeat_char("abcdebf") #=> b
first_repeat_char("abcdcbe") #=> c
first_repeat_char("abcdefg") #=> nil

Find the first character in the string that appears more than once

r = /
    (.) # match any character in capture group #1
    .*  # match any character zero of more times
    ?   # do the preceding lazily
    \K  # forget everything matched so far
    \1  # match the contents of capture group 1
    /x

"abcdebf"[r] #=> b
"abccdeb"[r] #=> b
"abcdefg"[r] #=> nil

This regex is fine, but produces the warning, "regular expression has redundant nested repeat operator '*'". You can disregard the warning or suppress it by doing something clunky, like:

r = /([^#{0.chr}]).*?\K\1/

where ([^#{0.chr}]) means "match any character other than 0.chr in capture group 1".

Note that a positive lookbehind cannot be used here, as they cannot contain variable-length matches (i.e., .*).

1

You could probably make your string an array and use detect. This should return the first char where the count is > 1.

string.split("").detect {|x| string.count(x) > 1}
1
  • Cool - feel free to mark this as correct and upvote if this works :). Also if you expect spaces in #{gets} you can just remove them.
    – locoboy
    Commented Jun 3, 2015 at 18:24
0

I'll use positive lookahead with String#[] method :

"abcccddde"[/(.)(?=\1)/] #=> c
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  • Alas, @Davidrac's solution achieve's the same result, but is simpler. Commented Jun 3, 2015 at 18:02
0

As a variant:

str = "abcdeff"
p str.chars.group_by{|c| c}.find{|el| el[1].size > 1}[0]

prints "f"

1
  • I am also trying to output a value when there are no duplicates in the string. How do I make this an if statement? Commented Jun 3, 2015 at 16:57

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