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I am trying get data from a database and pasting it on a webpage in table form and in each table data there are names which have other details in database which I also have to show on other webpage if that name is clicked. I got stuck when anchor tag is not working.

NOT WORKING means that name in anchor tag is like normal text not link, though text turns blue with underline but its not acquiring its linking property.

Table in which I am getting data from database is working plus I am also trying to give anchor tag to table data which are simple names which would link to another file.

I am using 2 file one is .php and other is .html of same name.

Here are some of the LOC I am using and related to this. I have omitted other 3 columns.

file.php

<?php
...

$query="select name from table1 order by name";

$rs=mysql_query($query);

$table = '<table>';

while ($row = mysql_fetch_array($rs))
{
  $cname = $row["name"];

  $table .= '<tr>
             <td><a href="file3.php">'.$cname.'</a></td> /*<a></a> not working*/
             </tr>';
}
$table .= '</table>';
include_once 'file.html';
?>

file.html

<html>
<body>

<form>..</form> /*passes user input to PHP file1*/

<p><?php echo $table;?></p>
</body>
</html>

Html is rendered from html file.

file3.php is the page which I am trying to link through names.

I am using XAMPP 1.7.7 and PHP 5.3.8

Any useful suggestion?

share|improve this question
    
Maybe you could provide the HTML received by the browser as well. You can usually fetch this through some kind of "View Source" option within the browser. This will let everyone see what the result returned to the browser looks like. –  hall.stephenk Jan 31 '13 at 13:37
    
Is HTML setup to be parsed as PHP in the Apache configuration? Also, what is the resulting output as seen by your browser? –  icabod Jan 31 '13 at 13:38
    
Please re-open this question. I have edited this and clearly stating what I need. –  Kits Feb 6 '13 at 8:01
    
no solution yet :\ –  Kits Feb 15 '13 at 12:42

3 Answers 3

Look at your query, you are using cname as an index for $row and your query fetches name

$query="select name from table1 order by name";
              --^--

$cname = $row["cname"];
               --^--

Is your error reporting turned off? You should get an error for this.. FOR SURE

Note: You should stop using mysql_() as it will be deprecated soon, start using mysqli_() or PDO instead...

share|improve this answer
1  
+1 cuz you used arrows to explain –  Toping Jan 31 '13 at 13:39
    
correction done. No Error. –  Kits Jan 31 '13 at 13:41
    
@Kits why you are concatenating the strings??? just echo them out, and don't echo so much of html...just open close php brackets accordingly –  Mr. Alien Jan 31 '13 at 13:42
    
@Kits and also you cannot use echo statement in an html file :p –  Mr. Alien Jan 31 '13 at 13:44
    
Concatenation is needed. I have to that is table form. If you have any other code then please enlight me –  Kits Jan 31 '13 at 13:46

I prefer use 'mysql_fetch_assoc' to 'mysql_fetch_array. 2. Check if the table has values. 3. change '$row["cname"]' to '$row["name"]'

share|improve this answer

This is your code

$table .= '<tr>
           <td><a href="file3.php">'.$cname.'</a></td> /*<a></a> not working*/
           </tr>';

Just replace the single quote by double quotes

You just need to replace this code with following code: $table = "";

while ($row = mysql_fetch_array($rs))
{
  $cname = $row["name"];

  $table .= "<tr>
             <td><a href='file3.php'>$cname</a></td> 
             </tr>";
}
$table .= "</table>";

This code will print actual variable $cname value from your database Please try this.

share|improve this answer
    
this will echo out the variable name, he is using single quote ', you need double quotes " so -1 –  Mr. Alien Jan 31 '13 at 13:43
    
youre just printing $cname on html, not the actual variable. -1 –  Toping Jan 31 '13 at 13:44

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