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I have a string in which I'm trying to break into easily-processed data. For this example, I want the revenue as well as the consensus data.

$digits = '[\$]?[\d]{1,3}(?:[\.][\d]{1,2})?';
$price = '(?:' . $digits . '(?:[\-])?' . $digits . '[\s]?(?:million|billion)?)';

$str = 'revenue of $31-34 billion, versus the consensus of $29.3 billion';
preg_match_all('/(?:revenue|consensus)(?:.*)' . $price . '/U', $str, $matches[]);
print_r($matches);

Returns:

Array (
    [0] => Array (
        [0] => Array (
            [0] => 'revenue of $31'
            [1] => 'consensus of $29'
        )
    )
)

What I was expecting:

Array (
    [0] => Array (
        [0] => Array (
            [0] => 'revenue of $31-34 billion'
            [1] => 'consensus of $29.3 billion'
        )
    )
)

When I leave out the U modifier:

Array (
    [0] => Array (
        [0] => Array (
            [0] => 'revenue of $31-34 billion, versus the consensus of $29.3 billion'
        )
    )
)

I cannot use of as a definite pattern in revenue of $31-34 billion, the data may/may not use it, therefore I used (?:.*).

share|improve this question
up vote 2 down vote accepted
preg_match_all('/(?:revenue|consensus)(?:.*?)' . $price . '/', $str, $matches[]);
                                           ^               ^  

You can make one particular wildcard non-greedy by adding ?, as in .*?. Get rid of the global /U modifier and change just the above wildcard to non-greedy, leaving $digits and $price alone.

Array
(
    [0] => Array
        (
            [0] => Array
                (
                    [0] => revenue of $31-34 billion
                    [1] => consensus of $29.3 billion
                )
        )
)
share|improve this answer
    
AHHH! It works! regex is so confusing, thank you so much! – John Smith Apr 4 '13 at 13:43

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