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I have some long string where i'm trying to catch a substring untill a certain character is met. As an example, lets support i have the following string, and i would like to get the text until the first ampersand.

abc.8965.aghtj&hgjkiyu5.8jfhsdj

I would like to extract what is present before the ampersand so: abc.8965.aghtj W thought this would work:

grep'^.*&{1}'

I would translate it as

^ start of string
.* match whatever chars
&{1} until the first ampersand is matched

Any advice? I'm afraid this will take me weeks

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2 Answers 2

up vote 1 down vote accepted

{1} does not match the first occurrence; instead it means "match exactly one of the preceding pattern/character", which is identical to just matching the character (&{3} would match &&&).

In order to match the first occurrence of &, you need to use .*?:

grep'^.*?&'

Normally, .* is greedy, meaning it matches as much as possible. This means your pattern would match the last ampersand rather than the first one. .*? is the non-greedy version, matching as little as possible while fulfilling the pattern.

Update: That syntax may not be supported by grep. Here is another option:

'^[^&]*&'

It matches anything that is not an ampersand, up to the first ampersand.

You also may have to enable extended regular expression in grep (-E).

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grep'^.*?&' is unfortunately not working, i understand what you mean though –  JBoy Mar 4 '13 at 13:47
    
@JBoy, I made an update to the answer. –  dan1111 Mar 4 '13 at 13:54

Try this one:

^.*?(?=&)

it won't get ampersand sign, just a text before it

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Hi Sergio, thx, but unfortunately this is not fetchin anything –  JBoy Mar 4 '13 at 13:49
    
looks like you're doing smth wrong, both my and dan1111 work well, difference is that mine skips & sign –  Sergio Mar 4 '13 at 13:50
    
test="abc.8965.aghtj&hgjkiyu5.8jfhsdj" echo ${test} | grep '^.*?(?=&)' –  JBoy Mar 4 '13 at 13:51
    
@Sergio, does grep support look-ahead? –  dan1111 Mar 4 '13 at 13:56

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