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I have a pretty basic forum template I am working on for testing purposes

When I create a topic, and press submit, the proccess updates the database but doesn't output on the screen. Why is this? and Why am I getting a Resource id #4 when I echo the $result from this code below:

<?php

$host="server"; // Host name 
$username="usernamehere"; // Mysql username 
$password=""; // Mysql password 
$db_name="forum"; // Database name 
$tbl_name="question"; // Table name 

// Connect to server and select databse.
mysql_connect("$host", "$username", "")or die("cannot connect"); 
mysql_select_db("$db_name")or die("cannot select DB");
$sql="SELECT * FROM $tbl_name ORDER BY id DESC";
// OREDER BY id DESC is order result by descending

$result=mysql_query($sql);
echo $result;
?>
<html>
<body>
<table width="90%" border="0" align="center" cellpadding="3" cellspacing="1" bgcolor="#CCCCCC">
<tr>
<td width="6%" align="center" bgcolor="#E6E6E6"><strong>#</strong></td>
<td width="53%" align="center" bgcolor="#E6E6E6"><strong>Topic</strong></td>
<td width="15%" align="center" bgcolor="#E6E6E6"><strong>Views</strong></td>
<td width="13%" align="center" bgcolor="#E6E6E6"><strong>Replies</strong></td>
<td width="13%" align="center" bgcolor="#E6E6E6"><strong>Date/Time</strong></td>
</tr>

<?php

// Start looping table row
while($rows=mysql_fetch_array($result)){
?>
<tr>
<td bgcolor="#FFFFFF"><? echo $rows['id']; ?></td>
<td bgcolor="#FFFFFF"><a href="view_topic.php?id=<? echo $rows['id']; ?>"><? echo $rows['topic']; ?></a><BR></td>
<td align="center" bgcolor="#FFFFFF"><? echo $rows['view']; ?></td>
<td align="center" bgcolor="#FFFFFF"><? echo $rows['reply']; ?></td>
<td align="center" bgcolor="#FFFFFF"><? echo $rows['datetime']; ?></td>
</tr>

<?php
// Exit looping and close connection 
}
mysql_close();
?>

<tr>
<td colspan="5" align="right" bgcolor="#E6E6E6"><a href="create_topic.php"><strong>Create New Topic</strong> </a></td>
</tr>
</table>
</body>
</html>
share|improve this question
    
because that's what $result is, a resource. –  Dagon Nov 2 '12 at 5:26
1  
Just remove echo $result –  Svetlio Nov 2 '12 at 5:27
    
shouldn't the while loop take care of the resource #4 error? and if I just remove the echo $result..I'm still left with my data not being displayed in the table.. –  noob123 Nov 2 '12 at 6:07

4 Answers 4

up vote 2 down vote accepted

You are getting resource id #4 because $result is an resource,you must extract the values contained in it by this way,

$result=mysql_query($sql);
$values = mysql_fetch_array($result);
var_dump($values);

More about resource variable

Update 2(From OP comments)

You are printing values using field name,In that case you will have to change to

while($rows=mysql_fetch_array($result,MYSQL_ASSOC))

Or you can directly use mysql_fetch_assoc(),which in your case will be

while($rows=mysql_fetch_assoc($result)){
      echo $rows['id'];
}
share|improve this answer
    
ok, my data shows in the var_dump but it won't show in the table in the above code. Why is this if the information is being passed? –  noob123 Nov 2 '12 at 5:45
    
have you enabled short tags on your server, replace <? with <?php and try –  Sibu Nov 2 '12 at 5:49
    
I still get the same result.. –  noob123 Nov 2 '12 at 6:31
    
@noob123 my mistake, i should have seen that earlier, check my updated answer –  Sibu Nov 2 '12 at 6:40
    
I used the mysql_fetch_assoc in the code above but it doesnt work..I don't know what I'm doing wrong.. –  noob123 Nov 2 '12 at 14:50

Problem is in your code:

$result=mysql_query($sql);
echo $result;

$result is resource type, since mysql_query($sql) returns resource Stop echoing $result.

share|improve this answer

If you check the link - 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

Hence you are seeing the Resource#4

. What is it you want to achieve?

share|improve this answer
    
I'm simply trying to output the data in the database into the table in the above code –  noob123 Nov 2 '12 at 5:40

You don't have to use mysql_fetch_array(). If you want, try something like this:

$sql="SELECT * FROM $tbl_name ORDER BY id DESC"; //that's your query
$result=mysql_query($sql);
$rows=mysql_num_rows($result);
$iteration=0;
echo "<table>";

while($iteration < $rows){
    $cell_in_your_html_table = mysql_result($result , $iteration , 'column_name_from_database');
    echo "<tr><td>".$cell_in_your_html_table."</td></tr>";
      $iteration++;
}
echo "</table>"
share|improve this answer
1  
Welcome to Stack Overflow. Please use code block for your code snippet in answers. Please double check your answers (yours does clearly have a $num variable being null which make your code useless). Please use relevant and readable name for your variable (tada ? Is that the result of an magical trick ?). Please make sure you are actually replying the OP question. –  b.enoit.be Apr 5 at 23:23

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