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

Ok I have this code.

<?//index.php
if(!defined('INCLUDE_CHECK')) die('You are not allowed to execute this file directly');


include('db.php');//include our database
//connecting to the database
$con = mysql_connect($dbhost, $dbusername, $dbpassword);
//if we cant connect
if (!$con)
{
die ('could not connect to the database' . mysql_error());
}
//if successfully connected then select db
mysql_select_db ($dbtable, $con);
//our query
$result = mysql_query("SELECT * FROM header");
//fetch our result
while($row = mysql_fetch_array($result)) //this is the line 18
{
//if type is meta then..
if ($row['type'] === "meta")
{
$meta .= "<meta name='".$row['name']."' content='".$row['content']."' />";
}
//if type is title then..
elseif ($row['type'] === "title")
{
$title = "<title>".$row['content']."</title>";
$title2 = "<div id='ti'>".$row['name']."</div>";
}
//if type is favicon then..
elseif ($row['type'] === "favicon")
{
$favicon = "<link rel='shortcut icon' href='".$row['content']."' />";
$imglogo = "<img class='imglogo' src='".$row['content']."' />";
}
//if type is description then..
elseif ($row['type'] === "description")
{
$des = "<div id='ti2'>".$row['content']."</div>";
}

}
mysql_close($con);
?>
<!DOCTYPE HTML PUBLIC "-//W3C//DTD HTML 4.01 Transitional//EN"
"http://www.w3.org/TR/html4/loose.dtd">
<html>
<head>
<? echo $title; //line 50 ?>
<? echo $favicon; //line 51 ?>
<? echo $meta; //line 52 ?>
<? echo (file_get_contents("cc.txt")); ?>
</head>

and I got this following errors, Warning: mysql_fetch_array() expects parameter 1 to be resource, boolean given in C:\xampp\htdocs\wr\header.php on line 18

Notice: Undefined variable: title in C:\xampp\htdocs\wr\header.php on line 50

Notice: Undefined variable: favicon in C:\xampp\htdocs\wr\header.php on line 51

Notice: Undefined variable: meta in C:\xampp\htdocs\wr\header.php on line 52

the error lines are specified along the code, please see the top code for error lines.

Can some help me into this? thanks in advance.

Juliver.

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marked as duplicate by hakre, PeeHaa, vascowhite, Marc B, jprofitt May 31 '12 at 19:56

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.

4 Answers 4

up vote 0 down vote accepted

The error persists in one of the below lines so add:

mysql_select_db ($dbtable, $con) OR DIE(mysql_error());

$result = mysql_query("SELECT * FROM header") OR DIE(mysql_error());

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Maybe your SELECT didn't succeed. You should check if $result is FALSE

if ($result === false)

and if so, you can get the error message with mysql_error().

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Before passing the $result into mysql_fetch_array, you should always check that it !== false, because this is the value of it if the query fails, which is what it looks is what happened in your case. See http://php.net/manual/en/function.mysql-query.php. If it did fail you might want to echo mysql_error() to see what went wrong.

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you beat me to it W00d5t0ck –  Bob Bobbio May 31 '12 at 18:52

From http://php.net/manual/en/function.mysql-query.php:

For SELECT, SHOW, DESCRIBE, EXPLAIN and other statements returning resultset, mysql_query() returns a resource on success, or FALSE on error.

For other type of SQL statements, INSERT, UPDATE, DELETE, DROP, etc, mysql_query() returns TRUE on success or FALSE on error.

mysql_query() will also fail and return FALSE if the user does not have permission to access > the table(s) referenced by the query.

Before further processing the result you should always make sure that it is not boolean FALSE (ie. !== FALSE)

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