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I have numbers like theses:

1.80
2.75
@1.55

Theses numbers are in strings and I'm trying to get them throught preg_match. At this time I have this:

$pattern = '/ [0-9]{1}\.[0-9]{2}/';  
$result = preg_match($pattern, $feed, $matches);

This works pretty well but I need more precision on my preg_match and I didn't found a solution. With this pattern, numbers like 1.556 will be found. I don't want this, my numbers length will be 4 chars. dot included.

Also, here I am not able to catch the numbers starting by a @, only a space. How can I do this?

$result = preg_match($pattern, 'test 1.556 red @1.62 blue 2.33 ?', $matches);  

Here the results needed are 1.62 and 2.33

share|improve this question
    
Add range of digits you want. For minimum 2 and maximum 3 floating point digits use [0-9]{2,3} –  Maciej Sz Dec 10 '13 at 0:43
1  
Add \b at the end? –  PeeHaa Dec 10 '13 at 0:44
    
@PeeHaa if you wanna post it as an anwer I will accept it. –  zeflex Dec 10 '13 at 1:07

3 Answers 3

up vote 1 down vote accepted

The following pattern will match all numbers in the format of #.## with an optional leading space or at sign.

[ @]?(\d{1}\.\d{2})\b

Demo: http://regex101.com/r/eB4bL5

share|improve this answer

As an alternative to regular expressions, PHP-Sanitization-Filters:

$array = explode(' ', 'test 1.556 red @1.62 blue 2.33 ?');

$result = filter_var_array(
    array(
        'convert' => $array
    ), 
    array(
        'convert' => array(
            'filter' => FILTER_SANITIZE_NUMBER_FLOAT, 
            'flags' => FILTER_FLAG_ALLOW_FRACTION | FILTER_FORCE_ARRAY
        )
    )
);

var_dump(array_filter(array_map('floatval', $result['convert'])));

results in:

array(3) {
  [1]=>
  float(1.556)
  [3]=>
  float(1.62)
  [5]=>
  float(2.33)
}
share|improve this answer
1  
Too much complicated for my need I think.. Btw thanks for your participation. –  zeflex Dec 10 '13 at 1:05
    
Yes, but filters a bit more flexible versus your (defined) regex. FLOAT-Filters didn't care about digit-counts, only valid floats are sanitized, your regex wouldn't match any possible float-definition ( positive or negative, common or scientific spelled ). Anyway, it's an alternative, regex is faster on large texts and should be prefered. Good luck. –  tr0y Dec 10 '13 at 1:14

if you want it up to 4 precision and the @ to be catched That is what you need

$pattern = '/ @*([0-9]{1}\.[0-9]{2})\b /'; 
share|improve this answer
    
$pattern = '/ @*[0-9]{1}\.[0-9]{2,4}/'; $result = preg_match($pattern, 'test 1.556 red @1.55 blue 2.33 ?', $matches); var_dump($matches); You get the result that I don't want. –  zeflex Dec 10 '13 at 0:49
    
Oh so you want it to be concretely 1.11 format right ? –  яша Dec 10 '13 at 0:54
    
Yep, I edited the first post with a little explanation at the end. –  zeflex Dec 10 '13 at 0:54
    
try that @*([0-9]{1}\.[0-9]{2})\b :) –  яша Dec 10 '13 at 0:59
1  
I see I thought you want the numbers with the @ in front of them anyway I am glad you have found the solution –  яша Dec 10 '13 at 1:09

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