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I have been struggling with this issue for some time; Reading, researching the possible problem(s). Still, I cannot produce the desired result:

  1. User enters data into form fields
  2. User submits data
  3. Page redirects
  4. User input needs to be displayed in a table on the resulting page

It is number 4. that I'm having trouble with.

 

No matter what I've tried, I cannot get the form data, input, to display on the redirected page.

 

Here is the sloppy, redundant code:

<?php
session_start();

ini_set('display_errors', 'On');
error_reporting(E_ALL | E_STRICT);

$con = mysql_connect("localhost","admin****","*Bridlepath*","test*");
if (!$con)
  {
  die('NEIN!' . mysql_error());
  }
//Connect to DB
//(Possible offender below)
$res = mysql_query("SHOW DATABASES");

while ($row = mysql_fetch_assoc($res)) {
    echo $row['testTable1'] . "\n";
}
mysql_select_db(test1, $con)
or die("Lost");

echo "<table border='1'>
<tr>
<th>Employee Name</th>
<th>Employee Address</th>
</tr>";

$result = mysql_query("SELECT * FROM testTable1 LIMIT 1") or die (mysql_error());

while($row = mysql_fetch_array($result))
  {
  echo $row['emp_name'] . " " . $row['emp_address'];
  echo "<br>";
  }
  
  
$result = mysql_query("SELECT * FROM testTable1 LIMIT 1") or die (mysql_error());
while($row = mysql_fetch_array($result))
  {
echo '<table><tr>';
  echo '<td>';
    echo '<Strong>Name:</strong><br/>';
    echo $row;
  echo '</td>';
echo '</tr></table>';
}

echo '<p>The session value for test is now: ' . $_SESSION[test] . '</p>';

mysql_close($con);

?>

Thank you in advance for any advice or help.

Edited by The_Thorn
Link to comment
https://forums.phpfreaks.com/topic/285414-submitted-form-data-will-not-display/
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What code are you using to redirect?

 

What is wrong with it? What should it be doing?

 

Form/Redirect Page:

<?php
session_start();
$_SESSION['test'] = $row;

ob_start();
?>

<html>
<body>
<form method="post" action="<?php $_PHP_SELF ?>">
<table width="400" border="0" cellspacing="1" cellpadding="2">
<tr>
<td width="100">Employee Name</td>
<td><input name="emp_name" type="text" id="emp_name"></td>
</tr>
<tr>
<td width="100">Employee Address</td>
<td><input name="emp_address" type="text" id="emp_address"></td>
</tr>
<tr>

<td width="100"> </td>
<td> </td>
</tr>
<tr>
<td width="100"> </td>
<td>
<input name="add" type="submit" id="add" value="Add Employee">
</td>
</tr>
</table>
</form>

<?php
$con = mysql_connect("localhost","admin1000","2Bridlepath2","test1");
if (!$con)
  {
  die('N0! ' . mysql_error());
  }
//Connect to DB

$res = mysql_query("SHOW DATABASES");

while ($row = mysql_fetch_assoc($res)) {
    echo $row['Database'] . "\n";
}
mysql_select_db(test1, $con)
or die("Lost");
//Detect DB

$sql="INSERT INTO testTable1 (emp_name, emp_address)
VALUES
('$_POST[emp_name]','$_POST[emp_address]')";

if (!mysql_query($sql,$con))
  {
  die('Error:' . mysql_error());
  }
//Add entry to DB
?>

<?php
$redirect_page = 'http://redlinedown.com/revDisp4.php';
$redirect = true;

if ($redirect == true AND !empty($_POST)) {
	header("Location:$redirect_page");
exit();	
}

ob_end_flush();
?>

When User submits form (This page, above), the page redirects and displays User input.

 

Thank you.

in that case in revDisp4.php you need to get the newest record (which will be the last)

SELECT * FROM testTable1 ORDER BY id DESC LIMIT 1

I assume you have an id column.

 

 

or when you insert the record, get the records id and pass that to your script

$sql="INSERT INTO testTable1 (emp_name, emp_address)
VALUES
('$_POST[emp_name]','$_POST[emp_address]')";
 
if (!mysql_query($sql,$con))
  {
  die('Error:' . mysql_error());
  }

$record_id = mysql_insert_id(); // get the id of the record that was inserted

// pass the records id to the redirect page
$redirect_page = 'http://redlinedown.com/revDisp4.php?id='.$record_id;

Now in revDisp4.php you'd get the records id  from $_GET['id']. example

<?php
session_start();
 
ini_set('display_errors', 'On');
error_reporting(E_ALL | E_STRICT);
 
$con = mysql_connect("localhost","admin****","*Bridlepath*","test*");
if (!$con)
  {
  die('NEIN!' . mysql_error());
  }
//Connect to DB
//(Possible offender below)

mysql_select_db(test1, $con)
or die("Lost");
 
// does the id exist?
if(isset($_GET['id']))
{
    // get the record id
    $record_id = intval($_GET['id']);

    echo "<table border='1'>
    <tr>
    <th>Employee Name</th>
    <th>Employee Address</th>
    </tr>";
     
    // fetch the record that matches the id
    $result = mysql_query("SELECT * FROM testTable1 WHERE id = $record_id") or die (mysql_error());


    $row = mysql_fetch_array($result)

    echo '<table><tr>';
      echo '<td>';
        echo '<Strong>Name:</strong><br/>';
        echo $row;
      echo '</td>';
    echo '</tr></table>';
}
 
mysql_close($con);
 
?>
Edited by Ch0cu3r

Thank you, Ch0cu3r.

 

But when I edited all the code via your suggestions, I received a blank page, where the data should be displayed, 

<?php
session_start();
 
ini_set('display_errors', 'On');
error_reporting(E_ALL | E_STRICT);
 
$con = mysql_connect("localhost","admin****","*Bridlepath*","test*");
if (!$con)
  {
  die('NEIN!' . mysql_error());
  }
//Connect to DB

mysql_select_db(test1, $con)
or die("Lost");
 
// does the id exist?
if(isset($_GET['id']))
{
    // get the record id
    $record_id = intval($_GET['id'])
    or die("STOPPED!");

    echo "<table border='1'>
    <tr>
    <th>Employee Name</th>
    <th>Employee Address</th>
    </tr>";
     
    // fetch the record that matches the id
    $result = mysql_query("SELECT * FROM testTable1 WHERE id = $record_id") or die (mysql_error());

    $row = mysql_fetch_array($result)

    echo '<table><tr>';
      echo '<td>';
        echo '<Strong>Name:</strong><br/>';
        echo $row;
      echo '</td>';
    echo '</tr></table>';
}
 
mysql_close($con);
 
?>

Please visit the following URL if you get the chance and give it a try: http://redlinedown.com/ob_res5.php

 

Thank  you so much!

Edited by The_Thorn

Now I am getting the following when redirecting page:

Notice: Use of undefined constant test1 - assumed 'test1' in /home/admin1000/public_html/revDisp5.php on line 14

Employee Name	Employee Address
Name:

Notice: Array to string conversion in /home/admin1000/public_html/revDisp5.php on line 39
Array

 

 

Notice: Array to string conversion in /home/admin1000/public_html/revDisp5.php on line 39

Array

   echo $row;   should be    echo $row['emp_name'];

 

 

Notice: Use of undefined constant test1 - assumed 'test1' in /home/admin1000/public_html/revDisp5.php on line 14

test1 needs to be wrapped in quotes on line 14

mysql_select_db('test1', $con)

Hi.

 

Ok, did that. Thank you.

 

Please look at and submit:  http://redlinedown.com/ob_res5.php

 

The result displays converted arrays (This is the closest I've come to getting anything to display).

 

I do not understand why this is displaying all elements TWICE; I do not need the row ID displayed.

 

Please comment if you get the chance.

You most probably are querying the database and echo'ing the data twice. Without seeing the code for revDisp5.php we cannot specifically tell you why.

 

This is the current code for revDisp5.php:

<?php
session_start();
 
ini_set('display_errors', 'On');
error_reporting(E_ALL | E_STRICT);
 
$con = mysql_connect("localhost","admin1000","2Bridlepath2","test1");
if (!$con)
  {
  die('NEIN!' . mysql_error());
  }
//Connect to DB

mysql_select_db('test1', $con)
or die("Lost");
 
// does the id exist?
if(isset($_GET['id']))
{
    // get the record id
    $record_id = intval($_GET['id'])
    or die("STOPPED!");

    echo "<table border='1'>
    <tr>
    <th>Employee Name</th>
    <th>Employee Address</th>
    </tr>";
     
    // fetch the record that matches the id
    $result = mysql_query("SELECT * FROM testTable1 WHERE id = $record_id") or die (mysql_error());

    $row = mysql_fetch_array($result);
    
//test1
$arraystring = print_r($row, true); 
$arraystring = '<pre>'.print_r($row, true).'</pre>';
 
   
//test2
$comma_separated = implode(",", $row);
echo $comma_separated; // 

    echo '<table><tr>';
      echo '<td>';
        echo '<Strong>Name:</strong><br/>';
       echo $comma_separated; 
      echo '</td>';
    echo '</tr></table>';
}
 
mysql_close($con);
 
?>

http://redlinedown.com/revDisp5.php?id=105

 

Thank you, Ch0cu3r

fetch_array() gets the data twice in the array (one with numeric indexes and also with field names as indexes). Use fetch_assoc() or fetch_row() to only get the data once, or use optional parameter with fetch_array()

fetch_array() gets the data twice in the array (one with numeric indexes and also with field names as indexes). Use fetch_assoc() or fetch_row() to only get the data once, or use optional parameter with fetch_array()

 

Thank you, Sir!

 

I learn so much from this fine site.

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