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I'm working on a new search script for my website that contains multiple dictionaries. First let me show you the problem piece of code and then explain....

$sql = mysql_query("SELECT * FROM $tbl_name WHERE $field = '%$trimmed%' ORDER BY $field ".$sort." LIMIT ".$limits.", $max")or die(mysql_error());
$count = mysql_result(mysql_query("SELECT COUNT($field) FROM $tbl_name WHERE $field = '%$trimmed%'"),0);

if ($count < 1){

$sql = mysql_query("SELECT * FROM $tbl_name WHERE $field LIKE '%$trimmed%' ORDER BY $field ".$sort." LIMIT ".$limits.", $max")or die(mysql_error());
$count = mysql_result(mysql_query("SELECT COUNT($field) FROM $tbl_name WHERE $field LIKE '%$trimmed%'"),0);

}

Okay, in theory, the first query should select results that are exact and display them without displaying the "LIKE" results. However, it does not do that. It simply always shows the LIKE results.

And when I remove all of that, and leave the first query - no results are returned - even though they are in the database.

For example, with everything after "if ($count <1 ) {" included, I can search "SHE" or "I" and get results - however it includes words like "informal", "singular", etc. But when I remove this, I can search "SHE" and "I" and get no result at all, even though they're in the database.

Any help would be greatly appreciated.

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1 Answer

up vote 2 down vote accepted

Remove the '%' characters around "$trimmed" in the first query.

See if that fixes it.

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It did! I feel kind of dumb that I didn't try that. You wouldn't believe how long I've been messing with this. Thanks! –  Cory Sep 15 '11 at 5:59
    
Oops, sorry about that. –  Cory Sep 15 '11 at 6:45
    
Couldn't see it for looking? We have all been there. Thanks. –  Phil Wallach Sep 16 '11 at 1:30
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