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I am trying to determine the correct RegEx syntax to perform the following. I have line in a file in which I want to match every character before the first occurrence of white space.

so for example in the line:

123abc xyz foo bar

it is unclear to me why the following:

^.*\s

is matching up to the b in the word bar:

123abc xyz foo

It appears to me that the \s is greedy, however I am not certain how I can make it not greedy and just match 123abc I have tried various forms of this regex in an attempt to make it non-greedy ^.*\s? or something like this, however I have been unsuccessful. Thank you in advance

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1  
try this - ^.*?\s. in your version the point is greedy –  ie. Jun 25 '12 at 19:17
    
This is exactly what I wanted - thank you both - What I thought I was doing was making the point greedy with the * until it finds a blank space (with the \s) and then I would place the ? after the \s to indicate that only match 0 or more times. I understand now - thank you –  vloche Jun 25 '12 at 21:07

2 Answers 2

That is because . can be any character, including space. You can try

^[^ ]*\s

or

^\S*\s

instead.

That is a greedy re. But you can make non-greedy re also:

^.*?\s

You mistake is that you have placed ? on a wrong place.

Examples:

$ echo aaaa bbb cccc dddd > re.txt
$ cat re.txt
aaaa bbb cccc dddd
$ egrep -o '^.*\s' re.txt
aaaa bbb cccc 
$ egrep -o '^\S*\s' re.txt
aaaa 
$ egrep -o '^[^ ]*\s' re.txt
aaaa 

And non-greedy search with perl:

$ perl -ne 'print "$1\n" if /^(.*?)\s/' re.txt
aaaa
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Should be noted that each such match will include exactly one trailing whitespace character –  Ωmega Jun 25 '12 at 19:48
    
Thank you Igor - you answered my first question and a different one regarding RegEx - thanks –  vloche Jun 25 '12 at 21:11
    
@vloche Please consider marking this answer as accepted –  ellockie Mar 21 '14 at 11:38

Use regex ^\S*(?=\s)

Which mean all (*) non whitespace characters (\S) from very beginning (^), but has to be followed be whitespace character (\s), but not included in match - positive lookahead (?=\s)

If you want trailing whitespace(s) to be included as well, then use regex ^\S*\s+

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^\S*\s* is incorrect. ^\S*\s+ would be correcter. –  Igor Chubin Jun 25 '12 at 19:30
    
@IgorChubin - Thanks for pointing it out, typo now corrected and answer updated. –  Ωmega Jun 25 '12 at 19:37

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