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i have a db with 3 tables review, pos and neg words for a film review im trying to detect if the word 'not' appears before a positive or negative word then add 1 to the pos count if it appears before a neg word ie this was not bad, and add 1 to the neg count if it appears before a pos word i.e this was not good

currently i have this method but it only seems to detect the not before a word once, how can i get it to detect through the whole text

$find = $review_text;
if (preg_match("/(?<=not) $negwords/i", $find)) 
{
echo $good++;
}
if (preg_match("/(?<=not) $poswords/i", $find)) 
{
echo $bad++;
}
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Dont understand well. Do you running this code in loop ? –  safarov Mar 21 '12 at 10:18
1  
Please show the contents of $negwords and $poswords –  DaveRandom Mar 21 '12 at 10:18
    
i have a database that contains a table of positive and negative words –  linda Mar 21 '12 at 12:56
    
so like this $pos = mysql_query("SELECT word FROM positive"); $neg = mysql_query("SELECT word FROM negative"); –  linda Mar 21 '12 at 12:57
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2 Answers

Assuming:

$negwords = array("bad","aweful");

If you want to check if there is any negative word preceded by not, you need to use alternatives in your query:

$words  = '(' + implode('|', $negwords) + ')'; // $words now contains (bad|aweful)
if(preg_match("/(?<=not) $words/i",$find)) {
     echo "match found!";
}

Note that $negwords must not contain any regexp special chars! ( like . * ? etc) - use preg_quote if needed.

To find out how many matches there were, you can use preg_match_all which returns the number of matches.

http://nl3.php.net/manual/en/function.preg-match-all.php

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will this method get a count for all the words that contain not in front of it ? –  linda Mar 21 '12 at 12:58
    
how can i do a loop ???? –  linda Mar 22 '12 at 11:30
    
as said above words are stored on a DB –  linda Mar 22 '12 at 14:56
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The Guy Of Doom shows a clever solution for checking the entire text with a single regex, rather than having to loop over your word list and do one search per word. However, the problem you asked about is that regexp in PHP defaults to finding only the first match. As he mentioned, for that you need preg_match_all(). Just do this:

preg_match_all("/(?<=not) $poswords/i", $find, $results);

$results does not need to be defined beforehand. After you call the function, PHP will put the results of the regexp into the variable $results as an array of arrays. The first array will contain what you want: the full string that was matched every time it found a match (the other arrays contain the parts of the string corresponding to your captured groups, i.e., parts of the expression in parentheses).

In some languages, you can use the g operator to get all matches (in the same place you put the case-insensitivity operator i), but in PHP this is the way you do it.

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but i want a count of how many times it appears not just once which is the same as what i already had e.g if you have not good not bad not great the pos count should be 1 and neg count should be 2 –  linda Mar 22 '12 at 11:19
    
Yes, the array $results[0] will have one element for every match it found. Conveniently, the function also returns that as a number. So, if there are three results and you do $resultcount = preg_match_all("/(?<=not) $poswords/i", $find, $results); then $resultcount will be equal to 3, and $results[0] will contain those three words. –  octern Mar 22 '12 at 17:33
    
Note that you'd have to do two searches for "good" and add the results together: one for good words without "not" in front of them, and one for bad words that do have "not" in front of them. –  octern Mar 22 '12 at 17:33
    
yes I already have a search for words without the not in front its just trying to do it with the not in front –  linda Mar 22 '12 at 20:03
    
the method just doesnt seem to work i have this $resultcount = preg_match_all("/(?<=not) $poswords/i", $find, $results); if ($resultcount) { $bad++; } –  linda Mar 23 '12 at 18:14
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