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Take this regular expression: /^[^abc]/. This will match any single character at the beginning of a string, except a, b, or c.

If you add a * after it – /^[^abc]*/ – the regular expression will continue to add each subsequent character to the result, until it meets either an a, or b, or c.

For example, with the source string "qwerty qwerty whatever abc hello", the expression will match up to "qwerty qwerty wh".

But what if I wanted the matching string to be "qwerty qwerty whatever "

...In other words, how can I match everything up to (but not including) the exact sequence "abc"?

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What do you mean by match but not including ? – Toto Aug 19 '11 at 16:53
I mean I want to match "qwerty qwerty whatever " – not including the "abc". In other words, I don't want the resulting match to be "qwerty qwerty whatever abc". – callum Aug 19 '11 at 17:03

6 Answers 6

up vote 128 down vote accepted

You didn't specify which flavor or regex you're using, but this will work in any of the most popular ones that can be considered "complete".

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sidyll can you explain how this works please? – Sean Jul 29 '14 at 23:41
Hi @Sean, the .+? is just like .+ but un-greedy, so it matches "any" character (.) in count of 1 or more until the first occurrence of the following part of the expression. Which is a look around: (?=abc) matches abc but does not count as characters matched (zero width) and only returns if matches or not (assertion). please check the link in the answer by Issun for more on lookarounds. So it matches anything until the first match of abc, but not counting the abc. If .+ was used, then it would match as much as possible until the last possible occurrence of abc (greedy) – sidyll Jul 30 '14 at 23:36
Thanks, nice one! – AndiDev Jan 17 at 22:30
clever :) Thanks! – plong0 Apr 16 at 20:20
100th vote is by me :) – sabithpocker Sep 21 at 20:07

If you're looking to capture everything up to "abc":



( ) capture the expression inside the parentheses for access using $1, $2, etc.

^ match start of line

.* match anything, ? non-greedily (match the minimum number of characters required) - [1]

[1] The reason why this is needed is that otherwise, in the following string:

whatever whatever something abc something abc

by default, regexes are greedy, meaning it will match as much as possible. Therefore /^.*abc/ would match "whatever whatever something abc something ". Adding the non-greedy quantifier ? makes the regex only match "whatever whatever something ".

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Thanks, but your one does include the abc in the match. In other words the resulting match is "whatever whatever something abc". – callum Aug 19 '11 at 17:05
Could you explain what you're ultimately trying to do? If your scenario is: (A) You want to get everything leading up to "abc" -- just use parentheses around what you want to capture. (B) You want to match the string up to the "abc" -- you have to check the abc anyway, so it needs to be part of the regex regardless. How else can you check that it's there? – Jared Ng Aug 19 '11 at 17:09
sed doesn't seem to support non-greedy matching, nor does it support look-around ((?=...)). What else can I do? Example command: echo "ONE: two,three, FOUR FIVE, six,seven" | sed -n -r "s/^ONE: (.+?), .*/\1/p" returns two,three, FOUR FIVE, but I expect two,three... – CoDEmanX Aug 23 at 14:52
@CoDEmanX You should probably post that as your own separate question rather than a comment, especially since it's specifically about sed. That being said, to address your question: you may want to look at the answers to this question. Also note that in your example, a non-greedy aware interpreter would return just two, not two,three. – Jared Ng Aug 29 at 19:27
You're right, thanks for the link though. Why would it return just two? There's a comma in two,three, but no space. – CoDEmanX Aug 29 at 19:35

What you need is lookaround assertion like ".+? (?=abc)".


Be aware that "[abc]" isnt the same as "abc". Inside brackets it's not a string - each character is just one of the possibilities. Outside the brackets it becomes the string.

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As @Jared Ng and @Issun pointed out, the key to solve this kind of RegEx like "matching everything up to a certain word(substrings)" or "matching everything after a certain word(substrings)" is called "lookaround" zero-length assertions. Read more here

In your particular case, it can be solved by a positive look ahead. A picture is worth a thousand words. See the detail explanation in the screenshot. (BTW, is a great online regex test tool!)

enter image description here

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The $ marks the end of a string, so something like this should work: [[^abc]*]$ where you're looking for anything NOT ENDING in any iteration of abc, but it would have to be at the end

Also if you're using a scripting language with regex (like php or js), they have a search function that stops when it first encounters a pattern (and you can specify start from the left or start from the right, or with php, you can do an implode to mirror the string).

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I believe you need subexpressions.If i remember right you can use the normal () brackets for subexpressions.

This part is From grep manual:

 Back References and Subexpressions
       The back-reference \n, where n is a single digit, matches the substring
       previously matched  by  the  nth  parenthesized  subexpression  of  the
       regular expression.

EDIT: so something like ^[^(abc)] should do the trick...

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Sorry, that doesn't work. Putting the abc in parentheses doesn't seem to make any difference. They are still treated as "a OR b OR c". – callum Aug 19 '11 at 17:04

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