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I have problem with regex. I've been playing with it for three hours and I didn't find out anything working.

I have this text:

Fax received from 45444849 ( 61282370000 )

And I need to extract the number from brackets, so I will get 61282370000. If there is nothing (or whitespaces only) in brackets it should take the number before brackets. I have only managed to do this expression, which takes the number from brackets correctly:

Fax received from .* \(\s([^)]*)\s\)$

Thanks.

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1  
I would advise that rather than trying to construct a regex which takes either that you construct a regex which takes the one in the brackets - if this fails then another regex takes the one before... –  El Ronnoco May 10 '11 at 9:22
    
The problem is, that I have to setup application, which can take only one result group (either the number from brackets, or the number before, if there is nothing in brackets). If I have the possibility to edit it on application level, I would do it rather, than finding this solution, but I can't. I've tried the alternate symbol "|", but I haven't done anything useful. –  Ondřej Holman May 10 '11 at 9:27
    
Try using "||". For eg./\(\s*(\d+)/||/(\d+)/ achieves the same thing. The matched no. will always be present in $1 –  kshenoy May 10 '11 at 12:04

5 Answers 5

up vote 9 down vote accepted

Try the regex /(\d+)(?!\D*\d+)/ It uses negative lookahead to capture the last number in the string.

For eg.

perl -le '$_="Fax received from 45444849 ( 61282370000 )"; /(\d+)(?!\D*\d+)/; print $1'

will give you 61282370000. However,

perl -le '$_="Fax received from 45444849 (  )"; /(\d+)(?!\D*\d+)/; print $1'

gives 45444849 in $1

share|improve this answer
    
Thank you very much. –  Ondřej Holman May 10 '11 at 9:32
    
+1 Good job on the lookahead –  Mike Pennington May 10 '11 at 9:35
    
@mousio thanks for pointing out the gaffe –  kshenoy May 10 '11 at 13:22

If this is perl, you don't need to do the selection logic in the regex. You simply need to capture both and select, like so:

my $number = List::Util::first { $_; } m/(\d{7,})\s*[(]\s*(\d{7,})?\s*[)]/;
# deal with $number...
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In Oracle PL/SQL, I should write as follows:

SELECT TRIM (
          REPLACE (
             REPLACE (
                REGEXP_REPLACE (
                   'Fax received from 323 ( 123 )',
                   '[ abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789]*( [0123456789]* )',
                   '',
                   1,
                   1,
                   'cm'),
                ')',
                ''),
             '(',
             ''))
  FROM DUAL;

The result of the SELECTed expression is 123.

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1  
I'm still trying to figure out why you're posting a SQL query as a response to this question –  Mike Pennington May 10 '11 at 11:58

You should try to match on both... then use if... assume the data is in $line...

$line =~ /Fax\sreceived.+?(\d+)\s+\(\s*(\S+)?\s+\)/;
if ($2) {$result= $2;} else {$result= $1;}

Examples...

$line1 = "Fax received from 45444849 ( 61282370000 )";
$line1 =~ /Fax\sreceived.+?(\d+)\s+\(\s*(\S+)?\s+\)/;
if ($2) {$result= $2;} else {$result= $1;}
print "result1: $result\n";

$line2 = "Fax received from 95551212 ( )";
$line2 =~ /Fax\sreceived.+?(\d+)\s+\(\s*(\S+)?\s+\)/;
if ($2) {$result= $2;} else {$result= $1;}
print "result2: $result\n";

Running that yields...

[mpenning@Bucksnort ~]$ perl fax.pl
result1: 61282370000
result2: 95551212
[mpenning@Bucksnort ~]$
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Pseudocode...

if str.match("\(\s*(\d+)\s*\)") 
   return str.matches("\(\s*(\d+)\s*\)")[0]
else
   return str.matches("(\d+)")[0]
share|improve this answer
    
Thank you very much. –  Ondřej Holman May 10 '11 at 9:33

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