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The user table is setup as: ID | Name | Email | Password

and they login with:

Email | Password

I'm wondering how I can display their 'Name' when they login with their e-mail. What I have so far that works with email is:

session_start();

if (!isset($_SESSION['email'])) {
    header('location: ');
}

include_once('config.php');

$email = $_SESSION['email'];

<!doctype html>
<body> 
    <p><?php echo $email; ?>

and that works, but when I try something like

$sql = "SELECT name FROM $table WHERE email='$_SESSION["email"]'";
$result = mysql_query($sql);

<!doctype html> 
<body>
    <p><?php echo $result; ?></p>

that doesn't work. Any help is appreciated

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4 Answers 4

up vote 1 down vote accepted

mysql_query() only returns a resource, this needs to be passed to mysql_fetch_array() to deal with the returned records; http://php.net/manual/en/function.mysql-query.php has some examples

share|improve this answer
    
Got an error: "mysql_fetch_array(): supplied argument is not a valid MySQL result resource in line 13" –  Ator Oct 1 '11 at 15:46
    
I assume you did something like $resultsArray = mysql_fetch_array($result);? As you're only expecting to return 1 row, this is good enough (with SELECT statements that return multiple rows, you'd want to use a while loop). $resultsArray is now an array, and doing echo $resultsArray['name']; should print the name. –  ChrisW Oct 1 '11 at 15:50
    
should I make a while loop after I run the query? I'm still getting result resource errors –  Ator Oct 1 '11 at 16:00
    
No - a while loop just allows you to go through all returned records. Without a loop, you just see the 1st record (which in your case will be all you need to do). Can you pinpoint down the problem? Have you tried looking at the SQL statement you're sending to the server to make sure it's what you're expecting, by doing echo $sql;? –  ChrisW Oct 1 '11 at 16:05
    
Yeah, $sql returns "SELECT name FROM table WHERE email=userone@live.com" The errors I'm getting are result resource errors from $resultsarray = mysql_fetch_array(); $row = mysql_fetch_assoc(); –  Ator Oct 1 '11 at 16:10

tyou did not fetch the result from database use the following line

mysql_result($result ,0);

You can use above function .see the php manual to fetch result from database

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You really should include more information, for example what error you're presented with when you attempt the code you included. However,

It would look like you have not correctly escape the string $sql. Try something like:

$sql = "SELECT name FROM $table WHERE email='" . $_SESSION["email"] . "'";

Note the dot (.) which concatenates strings instead of evaluating inside a string as you attempted to do.

If you really want to input an array index into the string, you could enclose the variable using {}

$sql = "SELECT name FROM $table WHERE email='{$_SESSION["email"]}'";
share|improve this answer
    
I'm not sure if this works yet or not since I'm getting errors from mysql_fetch_array() and mysql_result(). I used the first one since I only want the 'name' value. And I don't get any errors previously, it just wouldn't show up. –  Ator Oct 1 '11 at 15:47

Do it like this:

$sql = "SELECT name FROM $table WHERE email=".$_SESSION['email'];
$result = mysql_query($sql);
$row = mysql_fetch_assoc($result);
$name = $row['name'];

<!doctype html> 
<body>
    <p><?php echo $name; ?></p>

Regards,

Akke

share|improve this answer
    
mysql_fetch_assoc($result) threw a result resource error –  Ator Oct 1 '11 at 16:01
    
Whoops. Should be $sql = "SELECT name FROM '".mysql_real_escape_string($table)."' WHERE email='".msyql_real_escape_string($_SESSION['email'])."'"; –  Akke Jun 25 '12 at 8:19

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