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Possible Duplicate:
PHP: Warning: sort() expects parameter 1 to be array, resource given

here is my code: I see nothing that should be causing this...ideas?

Warning: mysql_fetch_array() expects parameter 1 to be resource, boolean given.

 <?php

 include_once "mysql_connect.php";

 if ($_POST['parse_var'] == "contactform"){

 if(is_array($categories)) $whereCond = "in '".implode(",",$categories); else 
 $wherecond  = "= ".$categories;

       $dropdownValue = $_POST['dropdown'];

$dropdownValue = mysql_real_escape_string($dropdownValue);
$dropdownValue = eregi_replace("`", "", $dropdownValue);


$searchField= $_POST['searchinput'];
$searchField = mysql_real_escape_string($searchField);
$searchField = eregi_replace("`", "", $searchField);


if ($dropdownValue == "phone"){
$sql = mysql_query("SELECT * FROM pcparts WHERE phone='$searchField'");


    while($row1 = mysql_fetch_array($sql)){


        $arrayuserinfo[] = array(

            'phone' => $row1["phone"],
        'name' => $row1["name"],
        'city' => $row1["city"],
        'state' => $row1["state"],
        'address' => $row1["address"],
        'zip' => $row1["zip"],
    );
    };
                    for($i=0;$i < count($arrayuserinfo);$i++){

    $phone = $arrayuserinfo[$i]["phone"];
    $name = $arrayuserinfo[$i]["name"];
    $city = $arrayuserinfo[$i]["city"];
    $state = $arrayuserinfo[$i]["state"];
    $address = $arrayuserinfo[$i]["address"];
    $zip = $arrayuserinfo[$i]["zip"];
            echo"<table width='400' border='1' cellpadding='3'>
            <tr>
            <td>phone</td>
            <td>name</td>
            <td>address</td>
            <td>city</td>
            <td>state</td>
            <td>zip</td>
            </tr>
             <tr>
            <td>$phone</td>
            <td>$name</td>
             <td>$address</td>
             <td>$city</td>
            <td>$state</td>
           <td>$zip</td>
       </tr>
        </table><br />
        ";
        }
}

else if ($dropdownValue == "name"){
$sql = mysql_query("SELECT * FROM pcparts WHERE name='$searchField'");


    while($row1 = mysql_fetch_array($sql)){

        $arrayuserinfo[] = array(

        'phone' => $row1["phone"],
        'name' => $row1["name"],
        'city' => $row1["city"],
        'state' => $row1["state"],
        'address' => $row1["address"],
        'zip' => $row1["zip"],
    );
    };

        for($i=0;$i < count($arrayuserinfo);$i++){

    $phone = $arrayuserinfo[$i]["phone"];
    $name = $arrayuserinfo[$i]["name"];
    $city = $arrayuserinfo[$i]["city"];
    $state = $arrayuserinfo[$i]["state"];
    $address = $arrayuserinfo[$i]["address"];
    $zip = $arrayuserinfo[$i]["zip"];

    echo"<table width='400' border='1' cellpadding='3'>
        <tr>
        <td>phone</td>
        <td>name</td>
        <td>address</td>
         <td>city</td>
        <td>state</td>
        <td>zip</td>
        </tr>
         <tr>
        <td>$phone</td>
        <td>$name</td>
       <td>$address</td>
        <td>$city</td>
        <td>$state</td>
        <td>$zip</td>
       </tr>
       </table><br />
        ";
        }
}

else if ($dropdownValue == "city"){
    $sql = mysql_query("SELECT * FROM pcparts WHERE city='$searchField'");


    while($row1 = mysql_fetch_array($sql)){

        $arrayuserinfo[] = array(

        'phone' => $row1["phone"],
        'name' => $row1["name"],
        'city' => $row1["city"],
        'state' => $row1["state"],
        'address' => $row1["address"],
        'zip' => $row1["zip"],
    );
    };

        for($i=0;$i < count($arrayuserinfo);$i++){

    $phone = $arrayuserinfo[$i]["phone"];
    $name = $arrayuserinfo[$i]["name"];
    $city = $arrayuserinfo[$i]["city"];
    $state = $arrayuserinfo[$i]["state"];
    $address = $arrayuserinfo[$i]["address"];
    $zip = $arrayuserinfo[$i]["zip"];

    echo"<table width='400' border='1' cellpadding='3'>
     <tr>
     <td>phone</td>
     <td>name</td>
     <td>address</td>
     <td>city</td>
     <td>state</td>
     <td>zip</td>
     </tr>
       <tr>
    <td>$phone</td>
    <td>$name</td>
    <td>$address</td>
    <td>$city</td>
   <td>$state</td>
    <td>$zip</td>
    </tr>
    </table><br />
     ";
        }
}

      }
      ?>




     <html>
     <body>
      <h2>Customers Database Search</h2>

    <form action="file1.php" method="POST">
    <input type='hidden' name='parse_var' value='contactform'>
    Search fields:
 <select name="dropdown" id="dropdown" >
 <option value="<?php print "$dropdownValue"; ?>"><?php print "$dropdownValue"; ?></option>
  <option value="phone">phone</option>
  <option value="name">name</option>
  <option value="city">city</option>
</select>
 Search item:<input type="text" name='searchinput' id="searchinput" value="
 <?php print "$searchField"; ?>" size='20'><br><br>
 <input type="submit" name="button" id="button" value="Search" />
 </form>
 <br />
  <br />
 </body>
  </html>

mysql_connect:

   <?php

    $db_host = "localhost";
    $db_username = "user";

     $db_pass = "test1234";

    $db_name = "pcparts";

    @mysql_connect("$db_host","$db_username","$db_pass") or die ("Could not connect to MySQL");
    @mysql_select_db("$db_name") or die ("No database");

    ?>

if you find something i need to add, can you please tell me exactly where to put it?

share|improve this question

marked as duplicate by casperOne Jul 13 '12 at 15:12

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.

2  
Why are you ignoring the potential errors raised by mysql_connect and others? – Mat Jul 17 '11 at 12:47
    
Your query failed and therefore it did not return anything that function which gives error can work with. That easy it is. You need to deal with the failures that might happen when code relies on functions which might fail. – hakre Jul 17 '11 at 12:49

One of your queries is failing, or you never had a valid connection to begin with.

Remove the @ from the mysql_connect() and mysql_select_db() statements. Then after each call to mysql_query(), you need to check if it succeeded:

$sql = mysql_query("SELECT * FROM pcparts WHERE city='$searchField'");
if ($sql) {
  // query was valid -- fetch results.
}
else {
  // something went wrong.
  echo mysql_error();
}

Just a tip - you have piles and piles of unnecessary code copy/pasted. This whole block:

while($row1 = mysql_fetch_array($sql)){


        $arrayuserinfo[] = array(

            'phone' => $row1["phone"],
        'name' => $row1["name"],
        'city' => $row1["city"],
        'state' => $row1["state"],
        'address' => $row1["address"],
        'zip' => $row1["zip"],
    );
    };
                    for($i=0;$i < count($arrayuserinfo);$i++){

    $phone = $arrayuserinfo[$i]["phone"];
    $name = $arrayuserinfo[$i]["name"];
    $city = $arrayuserinfo[$i]["city"];
    $state = $arrayuserinfo[$i]["state"];
    $address = $arrayuserinfo[$i]["address"];
    $zip = $arrayuserinfo[$i]["zip"];
            echo"<table width='400' border='1' cellpadding='3'>
            <tr>
            <td>phone</td>
            <td>name</td>
            <td>address</td>
            <td>city</td>
            <td>state</td>
            <td>zip</td>
            </tr>
             <tr>
            <td>$phone</td>
            <td>$name</td>
             <td>$address</td>
             <td>$city</td>
            <td>$state</td>
           <td>$zip</td>
       </tr>
        </table><br />
        ";
        }

Can be simplified down to just this:

while($row1 = mysql_fetch_array($sql)) {
  echo"<table width='400' border='1' cellpadding='3'>
      <tr>
            <td>phone</td>
            <td>name</td>
            <td>address</td>
            <td>city</td>
            <td>state</td>
            <td>zip</td>
            </tr>
             <tr>
            <td>{$row1['phone']}</td>
            <td>{$row1['name']}</td>
             <td>{$row1['address']}</td>
             <td>{$row1['city']}</td>
            <td>{$row1['state']}</td>
           <td>{$row1['zip']}</td>
      </tr>
    </table><br />";
}

Another tip: Every time you enclose a variable in quotes like these:

mysql_select_db("$db_name")
<?php print "$searchField"; ?>

It's redundant and unnecessary. You just need

mysql_select_db($db_name)
<?php print $searchField; ?>
share|improve this answer
    
ok, thanks. ran that and got this error: the table 'mytablename.mytablename' doesn't exist. I know it does so any idea what that problem could be? – gregg Jul 17 '11 at 12:57
    
@gregg Both your database and table are named 'pcparts'? – Michael Berkowski Jul 17 '11 at 13:28
    
no...and that my be my problem i'm realizing. My database is named pcparts and my table is named people – gregg Jul 17 '11 at 13:35
    
So you want SELECT * FROM people WHERE.... – Michael Berkowski Jul 17 '11 at 13:38
    
yes, i've fixed that but now it seems for some reason my submit button is no longer working. If its not one thing, its another right? Any more suggestions? – gregg Jul 17 '11 at 13:46

Knowing which of the 3 mysql_fetch_array() calls is causing the warning would be helpful, as would knowing what value of $searchField is being passed, but looking at your code it suggests the SQL query you're forming is invalid. A failing query will return false instead of a mysql resource.

share|improve this answer

mysql_query returns FALSE when an error occurs. Make sure you deal with that situation before you try to use the $sql variable.

share|improve this answer

Your query failed, and you forgot to use mysql_error() to find out why.

share|improve this answer

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