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I'm a PHP newbie, so please be considerate.

I'm trying to pass the doc_id (in the codes below) through the url to another page. Unfortunately, what shows up in the address bar when I click this link, is doc_id=

echo'<td><a href="view_profile.php?doc_id='.$row[doc_id].'" onclick="return confirm(\'Do you wish to view this record?\');">View Profile</a></td>';

This link actually works on other pages. I can't figure why it won't work on the one I'm using it on right now. Any ideas?

Any suggestions will be greatly appreciated.

that line is from this:

if($SearchBySpec) { $query="SELECT * FROM doctor where specialization='$SearchBySpec'"; $result=mysql_query($query) or die('Error executing select query'.mysql_error());



echo'<table border="1" cellspacing="1">'; echo'<tr align="center">'; echo'<td bgcolor=#81F7D8 width="80" class="auto-style2"><strong>Specialization</strong></td>'; echo'<td bgcolor=#81F7D8 width="80" class="auto-style2"><strong>Last Name</strong></td>'; echo'<td bgcolor=#81F7D8 class="auto-style2" style="width: 103px"><strong>First Name</strong></td>'; echo'<td bgcolor=#81F7D8 width="80" class="auto-style2"><strong>Middle Initial</strong></td>'; echo'<td bgcolor=#81F7D8 width="90" class="auto-style2"><strong>School</strong></td>'; echo'<td bgcolor=#81F7D8 width="80" class="auto-style2"><strong>Hospital Assigned</strong></td>';

while($row=mysql_fetch_array($result)) { echo "<tr align=center>"; echo "<td>$row[specialization]"; echo "<td>$row[last_name]"; echo "<td>$row[first_name]"; echo "<td>$row[middle_name]"; echo "<td>$row[school]"; echo "<td>$row[hospital_assigned]";

}

//echo"<td><a href='view_profile.php?doc_id=".$row[doc_id]."'>View Profile</a></td>";    echo'<td><a href="view_profile.php?doc_id='.$row[doc_id].'" onclick="return confirm(\'Do you wish to view this record?\');">View Profile</a></td>'; //echo'<td><a href="view_profile.php?doc_id='.$row[doc_id].'" onclick="return confirm(\'Do you wish to view this record?\');">View Profile</a></td>'; echo "<tr><td>There are ". mysql_num_rows($result). " record(s)found.</td></tr>"; echo "</table>"    ;

}
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well, $row doesn't contain what you think it contains - var_dump($row) and see what you get, and also ensure you have all error reporting enabled. –  Paul Dixon Mar 11 '12 at 10:18
    
It sounds like $row[doc_id] is empty. What do you get if you var_dump($row)? –  Christofer Eliasson Mar 11 '12 at 10:18
    
Try to display $row[doc_id]. What does it show? –  Oleg Mar 11 '12 at 10:19
    
Hey guys, this is what I get: bool(false) –  user1242749 Mar 11 '12 at 10:22
    
@user1242749 I assume this data is coming from a mysql query and your query is returning 0 rows. –  nickf Mar 11 '12 at 10:24

2 Answers 2

doc_id needs to be in quotes.

$row['doc_id'];

Also, where are you defining $row? If it's something like this:

$row=$_GET; // or
$row['doc_id']=$_GET['doc_id'];

Then you're fine.

share|improve this answer
    
PHP will assume that since there's no constant named doc_id that you meant 'doc_id'. There'd be a warning too, something like: PHP Notice: Use of undefined constant doc_id - assumed 'doc_id', but it would still give you the same return value. –  nickf Mar 11 '12 at 10:23
    
Unless there is a constant names doc_id. You're right, but either way, he still should take away the ambiguity and use quotes, good habit. –  DanRedux Mar 11 '12 at 10:25

Well, clearly the $row variable doesn't have a doc_id (which you should be quoting, by the way: $row['doc_id']). It sounds like there's probably something going wrong before this line. Try executing print_r($row) to see what data you actually have.

Also, make sure that you have error reporting turned on. PHP tries to be a little too friendly to new users by ignoring errors for you -- nice at first, but ultimately just hides real issues from you.

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