1

I have a list of users grabbed by the Etc Ruby library:

Thomas_J_Perkins

Jennifer_Scanner

Amanda_K_Loso

Aaron_Cole

Mark_L_Lamb

What I need to do is grab the full first name, skip the middle name (if given), and grab the first character of the last name. The output should look like this:

Thomas P

Jennifer S

Amanda L

Aaron C

Mark L

I'm not sure how to do this, I've tried grabbing all of the characters: /\w+/ but that will grab everything.

  • Define "first name" and "last name". In what culture? Don't assume that a first name occurs first; You can inadvertently insult a customer by not processing their name correctly. Read "How to Ask" including the links, and "minimal reproducible example". We expect to see evidence of your effort. As is it looks like you haven't tried and want us to write the code for you, which is off-topic, or to write a tutorial for you, which again is off-topic. – the Tin Man May 9 '16 at 16:09
5

You don't always need regular expressions.

Some people, when confronted with a problem, think "I know, I'll use regular expressions." Now they have two problems. Jamie Zawinski

You can do it with some simple Ruby code

string = "Mark_L_Lamb"
string.split('_').first + ' ' + string.split('_').last[0]
=> "Mark L"
  • Was just typing the same. – amdouglas May 9 '16 at 15:53
  • @amdouglas great minds think alike. :) – SteveTurczyn May 9 '16 at 15:54
  • Good answer, but calling string.split("_") twice is needless. – Jordan Running May 9 '16 at 16:00
  • @amdouglas Would that still work even if there's no middle initial? – JasonBorne May 9 '16 at 16:05
  • 1
    @JasonBorne yes, it takes the full first word and the first letter of the last word. It doesn't care if you have two or three words. – SteveTurczyn May 9 '16 at 16:10
6

I think its simpler without regex:

array = "Thomas_J_Perkins".split("_") # split at _
array.first + " " + array.last[0] # .first prints first name .last[0] prints first char of last name
#=> "Thomas P"
1

You can use

^([^\W_]+)(?:_[^\W_]+)*_([^\W_])[^\W_]*$

And replace with \1_\2. See the regex demo

The [^\W_] matches a letter or a digit. If you want to only match letters, replace [^\W_] with \p{L}.

^(\p{L}+)(?:_\p{L}+)*_(\p{L})\p{L}*$

See updated demo

The point is to match and capture the first chunk of letters up to the first _ (with (\p{L}+)), then match 0+ sequences of _ + letters inside (with (?:_\p{L}+)*_) and then match and capture the last word first letter (with (\p{L})) and then match the rest of the string (with \p{L}*).

NOTE: replace ^ with \A and $ with \z if you have independent strings (as in Ruby ^ matches the start of a line and $ matches the end of the line).

Ruby code:

s.sub(/^(\p{L}+)(?:_\p{L}+)*_(\p{L})\p{L}*$/, "\\1_\\2")
1

I'm in the don't-use-a-regex-for-this camp.

str1 = "Alexander_Graham_Bell"
str2 = "Sylvester_Grisby"

"#{str1[0...str1.index('_')]} #{str1[str1.rindex('_')+1]}"
  #=> "Alexander B"
"#{str2[0...str2.index('_')]} #{str2[str2.rindex('_')+1]}"
  #=> "Sylvester G"

or

first, last = str1.split(/_.+_|_/)
  #=> ["Alexander", "Bell"] 
first+' '+last[0]
  #=> "Alexander B" 

first, last = str2.split(/_.+_|_/)
  #=> ["Sylvester", "Grisby"] 
first+' '+last[0]
  #=> "Sylvester G" 

but if you insist...

r = /
    (.+?)     # match any characters non-greedily in capture group 1
    (?=_)     # match an underscore in a positive lookahead 
    (?:.*)    # match any characters greedily in a non-capture group 
    (?:_)     # match an underscore in a non-capture group
    (.)       # match any character in capture group 2
    /x        # free-spacing regex definition mode

str1 =~ r
$1+' '+$2
  #=> "Alexander B"

str2 =~ r
$1+' '+$2
  #=> "Sylvester G"

You can of course write

r = /(.+?)(?=_)(?:.*)(?:_)(.)/
0

This is my attempt:

/([a-zA-Z]+)_([a-zA-Z]+_)?([a-zA-Z])/

See demo

0

Let's see if this works:

/^([^_]+)(?:_\w)?_(\w)/

And then you'll have to combine the first and second matches into the format you want. I don't know Ruby, so I can't help you there.

0

And another attempt using a replacement method:

result = subject.gsub(/^([^_]+)(?:_[^_])?_([^_])[^_]+$/, '\1 \2')

We capture the entire string, with the relevant parts in capturing groups. Then just return the two captured groups

0

using the split method is much better

full_names.map do |full_name|
   parts = full_name.split('_').values_at(0,-1)
   parts.last.slice!(1..-1)
   parts.join(' ')
end
  • I suggest first, last = full_name.split('_').values_at(0,-1); first+last[0]. – Cary Swoveland May 9 '16 at 16:44
-1

/^[A-Za-z]{5,15}\s[A-Za-z]{1}]$/i This will have the following criteria: 5-15 characters for first name then a whitespace and finally a single character for last name.

  • Never, ever restrict names to word characters. Also, people named "Bill" or "Paul" or "Anne" might have a problem with the 5-15 character criteria. And what's that \s doing in your pattern anyway? – Aran-Fey May 9 '16 at 16:51
  • \s denotes a whitespace so that there is a white space between the first name and the last name. If length is an an issue then you can use {,upperLimit} anytime. – Avneesh Srivastava May 9 '16 at 16:54
  • The point is, your pattern doesn't work because of the \s. You want to match an underscore, not a space. – Aran-Fey May 9 '16 at 16:56
  • In that case: /^[A-Za-z]{2,15}[_]{1}[A-Za-z]{1}]$/i – Avneesh Srivastava May 9 '16 at 17:04
  • I'm starting to think that you misunderstood OP's question. Your pattern isn't supposed to match names like "Mark L", it's supposed to turn "Mark_L_Lamb" into "Mark L". – Aran-Fey May 9 '16 at 17:08

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