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So I need to check an array in my query:

$query = "SELECT * FROM post WHERE ".$select." LIKE '%".$search."%'  AND  ID NOT IN '" .$Lastvar."'";

$Lastvar is my array. I have no idea where to go from here an any help would be appreciated.

EDIT: Here's my full query:

$Lastvar = array();
mysql_select_db('submisions', $dbconn);
$query = "SELECT * FROM post WHERE ".$select." LIKE '%".$search."%' AND ID NOT IN (" . join(", ", $Lastvar) . ")";

$result = mysql_query($query);
$num_rows = mysql_num_rows($result);
if ($num_rows == 0) {
    echo 'No results were found';
    exit;
}
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What do you mean by 'an array to make in my query'? If you just want to retrieve the result as array, use mysql_fetch_array(mysql_query($query)); –  Dennis Hunink Aug 20 '12 at 8:45
    
Sorry that was bad English, fixed now. –  Follett Aug 20 '12 at 8:58
    
Right, that makes more sense. Don't worry about the English, can happy to all of use :) I've nothing to add to the answers below, should do the trick for you. Good luck! –  Dennis Hunink Aug 20 '12 at 9:02
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2 Answers

If the ID is of integer type:

$query = "SELECT * FROM post WHERE ".$select." LIKE '%".$search."%'  
AND ID NOT IN (" . join(", ", $Lastvar) . ")";
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Im not getting any results any more. Even if what I search is exactly word for word what I need. Any chance you could check and make sure I set up my array right? I posted the full query in OP. –  Follett Aug 20 '12 at 9:22
    
Well you do set your array up, but you don't add any data to it! Thus your query gets an error because of AND ID NOT IN () –  Andrius Naruševičius Aug 20 '12 at 9:40
    
Well that's actually encased in a for loop. At the end of the for loop I put the ID I got in the array and then the next time I go through it wont grab that ID. –  Follett Aug 20 '12 at 10:16
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Do it like this:

$query = "SELECT * FROM post WHERE ".$select." LIKE '%".$search."%'  AND  ID NOT IN ('" .join("', '", $Lastvar).")";
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