This is a link from another php file which directs to update.php file. I got the id of the link from this link. Now i want to use that id to retrieve data from database how can i do that?

echo '<a href="update.php?id= "'.$row['id'].'">Modify</a>';

Now This is my update.php file

echo "<form method=\"POST\" action=\"\">\n"; 
include_once 'dbconnect.php';
$id= $_GET['id'];
$query  = "SELECT * FROM promoter where id=$id ";// this code is not retrieving value from database
$result = mysql_query($query);
while($row = mysql_fetch_array($result, MYSQL_ASSOC))
{   $user_id=$row['user_id'];
$full_name=$row['full_name'];
$qualification=$row['qualification'];
$locality=$row['locality'];
$description=$row['description'];
}

echo "<td>User Id</td><td> <input type=\"text\" name=\"user_id\" value=\"$user_id\"></td>\n"; 
echo "</tr>\n"; 
echo "<tr>\n"; 
echo "<td>Full Name</td><td> <input type=\"text\" name=\"full_name\" value=\"    $full_name\"></td>\n"; 
echo "</tr>\n"; 
echo "<tr>\n"; 
echo "<td>Qualification</td><td> <input type=\"text\" name=\"qualification\" value=\" $qualification\"></td>\n"; 
echo "</tr>\n"; 
echo "<tr>\n"; 
echo "<td>Locality</td><td> <input type=\"text\" name=\"locality\" value=\" $locality\"></td>\n"; 
echo "</tr>\n"; 
echo "<tr>\n"; 
echo "<td>Description</td><td> <input type=\"text\" name=\"description\"     value=\" $description\"></td>\n"; 
echo "</tr>\n";

echo "</form>\n"; 

Now I want to retrieve the data from data base having id= the id value that i have got from the link so that i can display the value according to id

  • please describe what is not working. are you getting an error? – ughai Aug 2 '16 at 10:53
  • I am not able to display the value from database in the table since the where id=$id is not providing value to the query – Pittz Aug 2 '16 at 10:55
  • please put all the echo ' ' ; after the while loop,please place inside the while loop. – Jees K Denny Aug 2 '16 at 10:56
  • var_dump($query) might help. You have some issues with your db access (untested user input, deprecated functions) but start by checking whether $query is what you want, then move on to fix the rest. – Chris Lear Aug 2 '16 at 10:56
  • when i put where id=1 or 2 or some value i am able to display the data in the table but i want to display value with the link id number – Pittz Aug 2 '16 at 10:58
up vote 1 down vote accepted

here is your solution working code is.

  echo '<a href="update.php?id='.$row['id'].'">Modify</a>';

Replace above code with this line. Actually your mistake is you have completed " before URL completed so your dynamically passed value is not consider as parameter i just remove that double ("). hope it will help you.

First of all you check id retrieve to the update.php check that.

echo $id;

if that is displayed then you have to check any values are retrieve from the db with your SQL query.

print_r($result);

After replacing your code with below

echo "<form>\n"; 
include_once 'dbconnect.php';
$id= $_GET['id'];
$query  = "SELECT * FROM promoter WHERE id='$id'";
$result = mysql_query($query);
if ($row = mysql_fetch_array($result))
{
    $user_id=$row['user_id'];
    $full_name=$row['full_name'];
    $qualification=$row['qualification'];
    $locality=$row['locality'];
    $description=$row['description'];

    echo "<td>User Id</td><td> <input type=\"text\" name=\"user_id\" value=\"$user_id\"></td>\n"; 
    echo "</tr>\n"; 
    echo "<tr>\n"; 
    echo "<td>Full Name</td><td> <input type=\"text\" name=\"full_name\" value=\"    $full_name\"></td>\n"; 
    echo "</tr>\n"; 
    echo "<tr>\n"; 
    echo "<td>Qualification</td><td> <input type=\"text\" name=\"qualification\" value=\" $qualification\"></td>\n"; 
    echo "</tr>\n"; 
    echo "<tr>\n"; 
    echo "<td>Locality</td><td> <input type=\"text\" name=\"locality\" value=\" $locality\"></td>\n"; 
    echo "</tr>\n"; 
    echo "<tr>\n"; 
    echo "<td>Description</td><td> <input type=\"text\" name=\"description\"     value=\" $description\"></td>\n"; 
    echo "</tr>\n";
    echo "</form>\n"; 
}
  • what have you changed? – Pittz Aug 2 '16 at 11:04
  • The while is probably misused in the OP's code - make this an if instead, and then move all the HTML code inside the if block. In order words, consider the case of when a row does not exist. – halfer Sep 17 '16 at 20:06
  • Thanks for the edit. However you don't need an additional block, just do if ($row = mysql_fetch_array($result)) { ... set vars ... html ... }. – halfer Sep 18 '16 at 8:29
  • Thanks For the Info. Changed. @halfer – Jees K Denny Sep 18 '16 at 8:33
  • I've made a suggested edit - there is no need for the while at all. You can only call mysql_fetch_array once anyway, since it consumes a row every time you call it - and there is a maximum of one row to read. – halfer Sep 18 '16 at 8:37

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