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mysql_fetch_array() expects parameter 1 to be resource, boolean given in select

Warning: mysql_fetch_assoc() expects parameter 1 to be resource, boolean given in home/public_html/ on line 36

Warning: mysql_fetch_assoc() expects parameter 1 to be resource, boolean given in home/public_html/ on line 42

on line 36 and online 42 in this two line code show error

please tell me how can i fix this error

this is my code

<?php

//get date
$button = $_GET['submit'];
$search = $_GET['search'];

if (!$button)
   echo "Type Name";
else
{
    if (strlen($search)<=3)
   echo "The item you searched for was to small";
    else
   {
     echo "You searched for <b>$search</b> <hr size='1'>";

     //connect to database

     mysql_connect('localhost','wh_num','password.');
     mysql_select_db('wh_num');

 //explode search term
           $search_exploded = explode(" ",$search);
           foreach($search_exploded as $search_each)
{
    $str = mysql_real_escape_string(substr($search_each, 0, 6));
    //construct query
    $x++;
    if ($x==1) $construct .= "keyword LIKE '$str%'";
    else       $construct .= " OR keyword LIKE '$str%'";
}

    $construct = "SELECT * FROM location WHERE $construct";
     $run = mysql_query($construct);

     $foundnum = mysql_num_rows($run);

     if ($foundnum==0)
        echo "No results found.";
     {

       echo "$foundnum results found.<p><hr size='1'>";

       while ($runrows = mysql_fetch_assoc($run))
       {

        //get data
        $email = $runrows['email']; 
        $area = $runrows['area'];
          echo "<b><font face=tahoma size=4 color=#600000> Name</b><b> <font face=tahoma size=4 color=#00AAFF> $search<BR></FONT></b>";
        echo "<b><font face=tahoma size=4 color=#600000> Email :</b><b><font face=tahoma size=4 color=#FF9933> $email<BR></FONT></b>
            <b><font face=tahoma size=4 color=#600000> Location :</b><b><font face=tahoma size=4 color=#FF0066> $area<BR></FONT></b>";



       }

     }



    }
}


?>
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marked as duplicate by Ja͢ck, Michael Berkowski, hotveryspicy, Nimit Dudani, Lafada Nov 28 '12 at 5:43

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
You have an error in your SQL syntax. Remove the OR –  Rafael Sedrakyan Nov 27 '12 at 6:16
    
echo $construct; you will know the query is proper or not –  Angelin Nadar Nov 27 '12 at 6:29
    
echo '<pre>'; print_r($run); echo '</pre>'; // to know do u get a result id –  Angelin Nadar Nov 27 '12 at 6:29

2 Answers 2

when the resource are false your query fails.... i think your mistake is the concat of your where...

play with arrays to create correct mysql where statements:

$where = array();
if ($x==1) $where[] = "keyword LIKE '$str%'";
else       $where[] = "keyword LIKE '$str%'";


$construct = "SELECT * FROM location";
if(count($where) > 0) {
    $construct .= ' WHERE '.implode(' OR ', $where);
}

your code

<?php

//get date
$button = $_GET['submit'];
$search = $_GET['search'];

if (!$button)
    echo "Type Name";
else
{
    if (strlen($search)<=3)
        echo "The item you searched for was to small";
    else
    {
        echo "You searched for <b>$search</b> <hr size='1'>";

        //connect to database

        $link = mysql_connect('localhost','wh_num','password.');
        mysql_select_db('wh_num');

        //explode search term
        $search_exploded = explode(" ",$search);
        $where = array();
        foreach($search_exploded as $search_each)
        {
            $str = mysql_real_escape_string(substr($search_each, 0, 6));
            //construct query

            if ($x==1) $where[] = "keyword LIKE '$str%'";
            else       $where[] = "keyword LIKE '$str%'";
        }

        $construct = "SELECT * FROM location";
        if(count($where) > 0) {
            $construct .= ' WHERE '.implode(' OR ', $where);
        }
        $run = mysql_query($construct);
                if(strlen(mysql_error($link)) > 0) {
                         echo 'SQL error: '.mysql_error($link); exit;
                    }
        $foundnum = mysql_num_rows($run);

        if ($foundnum==0)
            echo "No results found.";
        {

            echo "$foundnum results found.<p><hr size='1'>";

            while ($runrows = mysql_fetch_assoc($run))
            {

                //get data
                $email = $runrows['email'];
                $area = $runrows['area'];
                echo "<b><font face=tahoma size=4 color=#600000> Name</b><b> <font face=tahoma size=4 color=#00AAFF> $search<BR></FONT></b>";
                echo "<b><font face=tahoma size=4 color=#600000> Email :</b><b><font face=tahoma size=4 color=#FF9933> $email<BR></FONT></b>
            <b><font face=tahoma size=4 color=#600000> Location :</b><b><font face=tahoma size=4 color=#FF0066> $area<BR></FONT></b>";



            }

        }



    }
}


?>
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please edit on my code i dont understand how can i put ur code in to my code –  user1835767 Nov 27 '12 at 6:20
    
again same error your code is notworking –  user1835767 Nov 27 '12 at 6:32
    
you have a sql error i think... add an mysql error handler that output the error... check out –  silly Nov 27 '12 at 6:36
    
okay thanks dear –  user1835767 Nov 27 '12 at 6:39

Try after removing the OR from the else part: else $construct .= "keyword LIKE '$str%'";

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