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Whenever I run this code, I get a resource id. How do I fix this:

function ct()
{
    $result = mysql_query("SELECT `Quantity` FROM `shopping cart` WHERE `Customer_id`=1") or die(mysql_error());
    mysql_fetch_array($result);   
    echo "$result";
}
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closed as too localized by deceze, Yogesh Suthar, Jocelyn, Mario, nickhar Apr 19 '13 at 12:29

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
PTEM (peruse the excellent manual) for how to use the mysql extension: php.net/manual/en/mysql.examples-basic.php Also don't miss php.net/manual/en/mysqlinfo.api.choosing.php. –  deceze Apr 19 '13 at 5:45
    
because it return resource id by which you can fetch data. you need to pass this variable in mysql_fetch_* to get data. –  Code Lღver Apr 19 '13 at 5:46
    
go to php.net and check the what this function returns. –  mithunsatheesh Apr 19 '13 at 5:46
1  
since you are using mysql_fetch_array it will return array so specify the field name –  obi NullPoiиteя kenobi Apr 19 '13 at 5:48
    
@Dewfer Fevsvfre please try my answer –  Praveen kalal Apr 19 '13 at 5:49

2 Answers 2

up vote 4 down vote accepted

you need to fetch result by mysql_fetch_array or mysql_fetch_assoc

$row = mysql_fetch_array($result);

and

what mysql_query return is

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.

Please, don't use mysql_* functions in new code. They are no longer maintained and are officially deprecated. See the red box? Learn about prepared statements instead, and use PDO or MySQLi - this article will help you decide which. If you choose PDO, here is a good tutorial.


after edit in question

this mysql_fetch_array($result); Returns an array that corresponds to the fetched row and moves the internal data pointer ahead. so you must assigned that array to any variable to use like

while($row = mysql_fetch_array($result)){   
 echo $row ['field_name'];
}

or

$row = mysql_fetch_array($result); // want to fetch only one row 
 echo $row ['field_name'];
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1  
success i did not place a field name –  user2281709 Apr 19 '13 at 5:59
$link = mysqli_connect("HOSTNAME", "USERNAME", "PASS", "DBNAME");    
$result = mysqli_query($link,"SELECT `Quantity` FROM `shopping cart` WHERE `Customer_id`=1") or die(mysql_error());
while($row = mysqli_fetch_array($result))
{
    echo $row['Quantity'];
    echo "<br />";
}
mysqli_close($con);
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