0

Sample string: +Z XA( 0,1,6,22,26,33,34,35,36,25,24) +DD +I +M >x1 >bdz +A

Result should be: +Z +DD +I +M +A or Z DD I M A

The regex (\+\w+) seems to find all tokens, but I don't know how to define the replace pattern. I'd like to remove everything else.

I use Omnis7 but the regex engine is a compiled Delphi library that I used to extend Omnis7. The regex engine is a full implementation of regex. I tried to find the regex with an online regex tool (regex101.com).

How do I solve this problem?

7
  • what have you tried so far?
    – LuckyLikey
    May 25 '19 at 9:02
  • the regex (\+\w+) seems to find all tokens, but I don't know how to define the replace pattern. I'd like to remove everything else.
    – x2ph
    May 25 '19 at 9:14
  • 1
    what programming language do ypu use to execute the regex replace?
    – LuckyLikey
    May 25 '19 at 9:17
  • go here for an easy to use regex editor.
    – LuckyLikey
    May 25 '19 at 9:19
  • I use Omnis7 but the regex engine is a compiled Delphi library that I used to extend Omnis7. The regex engine is a full implementation of regex. I tried to find the regex with an online regex tool (regex101.com)
    – x2ph
    May 25 '19 at 9:20
3

Use:

  • Find: (\+\w+\h?)|.
  • Replace: $1

Demo

2
  • 2
    You don't need the quantifiers after the dot.
    – user557597
    May 25 '19 at 9:30
  • @sln: True, fixed.
    – Toto
    May 26 '19 at 10:32
1

This is one way to do it

Find (?:(?!\+\w)[\S\s])*\+(\w+)(?:(?!\+\w)[\S\s])*
Replace $1

https://regex101.com/r/MAW3fT/1

Expanded

 (?:
      (?! \+ \w )
      [\S\s] 
 )*
 \+ 
 ( \w+ )                       # (1)
 (?:
      (?! \+ \w )
      [\S\s] 
 )*

While the other answer looks simple it is 2 times slower than this one.

Benchmarks

Regex1:   (\+\w+\h?)|.+?
Options:  < none >
Completed iterations:   50  /  50     ( x 1000 )
Matches found per iteration:   49
Elapsed Time:    2.06 s,   2056.43 ms,   2056428 µs
Matches per sec:   1,191,386


Regex2:   (?:(?!\+\w)[\S\s])*\+(\w+)(?:(?!\+\w)[\S\s])*
Options:  < none >
Completed iterations:   50  /  50     ( x 1000 )
Matches found per iteration:   5
Elapsed Time:    1.00 s,   997.28 ms,   997281 µs
Matches per sec:   250,681

What to notice is they both matched correctly, so the elapsed time
is the bell weather here. Where my regex took half the time.

0
0

Just managed to settle on a potential pattern but saw that you have already found your answer. Here's a suggestion nevertheless.

Find: (?<![+\w])[^+][\w\W]+?\s

Replace: ''

https://regex101.com/r/cXceQO/1/

1
  • 2
    [+\w+] matches 1 + or 1 \w, the second + is superfluous.
    – Toto
    May 25 '19 at 10:16
0

Thanks to all here. I played around with it and found the exact solution:
Search: +Z XA( 0,1,6,22,26,33,34,35,36,25,24) +DD +I +M >x1 >bdz +A
Find: (\+)(\w+\h?)(.?)|.

  1. Replace: $1$2$3
    Result: +Z +DD +I +M +A

or

  1. Replace: $2$3
    Result: Z DD I M A

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.