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i'm creating my first PHP/MySQL site and i'm having difficulty figuring out how to generate dynamic links and creating a new page for those links.

My index page is pulling in certain details from my database as a preview, and when the visitor clicks on that item, i want them to be taken to a page which shows the full information from the database for that row.

The code on my index page for displaying the previews is below, any help on amending it to generate the link and page would be greatly appreciated.

<?php
$query="SELECT * FROM $tbl_name ORDER BY job_id DESC";
$result=mysql_query($query);

$num=mysql_numrows($result);

mysql_close();

$i=0;
while ($i < $num) {

$f1=mysql_result($result,$i,"company_name");
$f2=mysql_result($result,$i,"job_title");
$f3=mysql_result($result,$i,"city");
$f4=mysql_result($result,$i,"country");
$job_id=mysql_result($result,$i,"job_id");
?>

<div class = "hjl">
<ul>
<li id = "jobtitle"><?php echo $f2; ?></li><br />
<li id = "compname"><?php echo $f1; ?></li>
</ul>

<ul>
<li id = "city"><?php echo $f3; ?>, <?php echo $f4; ?></li><br />
</ul>

</div>

<?php
$i++;
}
?>

I'm pretty sure what i'm asking is really simple, i just can't get my head around acheieving it.

share|improve this question
    
you aren't using mysql_query properly, have a look here: php.net/manual/en/function.mysql-query.php but also check out PDO, which is generally a better approach if your PHP supports it. –  ldg Jun 18 '11 at 21:38
    
@ldg thanks, i'm not having a problem getting the information through on the index page though, where am i going wrong with query? Should i just be pulling in the fields i want to display on that page rather than the whole table? –  Dan Jun 18 '11 at 21:48

3 Answers 3

put mysql_close after you use mysql_result, but once you get it working you might look into a more modern approach like PDO.

share|improve this answer
    
Thanks for the help LDG, i'll take a look at PDO, but i don't want to walk before i can crawl :) Dan –  Dan Jun 18 '11 at 22:08

to your code add link (which I think you already have somewhere):

//...................
<li id = "jobtitle">
   <a href="<?php echo '?id='.$job_id; ?>">
       <?php echo $f2; ?>
   </a>
</li>
//...................
<a href="<?php echo '?id='.$job_id; ?>">Read more...</a>
//...................

then your code must check for variable $_GET['id'], so put IF in the beginning of your code:

$where = '';

if( isset($_GET['id']) && strlen($_GET['id']) > 0 ) {
    $where = ' job_id = "'. mysql_real_escape_string( $_GET['id'] ) .'"' ;
}

<?php
$query="SELECT * FROM $tbl_name $where ORDER BY job_id DESC";
$result=mysql_query($query);

$num=mysql_numrows($result);

mysql_close();

$i=0;
while ($i < $num) {

$f1=mysql_result($result,$i,"company_name");
$f2=mysql_result($result,$i,"job_title");
$f3=mysql_result($result,$i,"city");
$f4=mysql_result($result,$i,"country");
$job_id=mysql_result($result,$i,"job_id");
?>

<div class = "hjl">
  <ul>
    <li id = "jobtitle">
        <a href="<?php echo '?id='.$job_id; ?>">
              <?php echo $f2; ?>
        </a>
    </li><br />
    <li id = "compname"><?php echo $f1; ?></li>
  </ul>

<ul>
   <li id = "city"><?php echo $f3; ?>, <?php echo $f4; ?></li><br />
</ul>

<a href="<?php echo '?id='.$job_id; ?>">Read more...</a>

</div>

<?php
$i++;
}
?>

edit: Try changing the following line:

$where = " job_id = '". mysql_real_escape_string( $_GET['id'] ) ."'" ;
share|improve this answer
    
thanks for the reply, i've added that and it gives me this error: Warning: mysql_numrows() expects parameter 1 to be resource, boolean given ... on line 21 –  Dan Jun 18 '11 at 21:57
    
ok can you also give as an example of $job_id, is it numeral? –  WooDzu Jun 18 '11 at 22:56
    
hi, job_id is the unique identifier for each entry in my table and yes it's numeral, i just assumed this was the best way of identifying each unique entry, thanks –  Dan Jun 19 '11 at 0:30
    
is the line I've added working, I'm quite sure it should –  WooDzu Jun 19 '11 at 9:08
up vote 0 down vote accepted

Thanks to you both for your answers, but i have managed to fix it (or work-around it) with this on my index page:

<?php

$query="SELECT * FROM $tbl_name ORDER BY job_id DESC";
$result=mysql_query($query) or die(mysql_error());
$rsjobinfo=mysql_fetch_assoc($result);

mysql_close();

do {?>
<div class = "hjl"><a href="paging.php?job_id=<?php echo $rsjobinfo['job_id'];?>">
<ul>
<li id = "jobtitle"><?php echo $rsjobinfo['job_title'];?></li><br />
<li id = "compname"><?php echo $rsjobinfo['company_name'];?></li>
</ul>
<ul>
<li id = "city"><?php echo $rsjobinfo['city'];?>, 
    <?php echo    $rsjobinfo['country'];?></li>
</ul>
</a>
</div>
<?php } while ($rsjobinfo=mysql_fetch_assoc($result))?>

</div>

Followed by this on my content page:

<?php
$job_id = $_GET['job_id'];

$query="SELECT * FROM $tbl_name WHERE job_id = $job_id";
$result=mysql_query($query) or die(mysql_error());
$rsjobinfo=mysql_fetch_assoc($result);

mysql_close();

?>

Thanks for your help everyone.

Dan

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