Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have the following code on one page

<?php
// Account for the possibility of time out
session_start();
$_SESSION['LoggedIn']=$_GET['LoggedIn'];
$_SESSION['SetName']=$_GET['SetName'];
    $setName=$_SESSION['SetName'];
$_SESSION['UserName']=$_GET['UserName'];
if (!isset($_SESSION['LoggedIn']) || !$_SESSION['LoggedIn']) header("Location: Home.php");
    php var_dump($_SESSION); 
    header("Location: uploadFiles.php"); // DEBUG
?>

If the header("Location: uploadFiles.php"); is commented out, this gives

array(3) { ["LoggedIn"]=> string(4) "TRUE" ["SetName"]=> string(4) "test" ["UserName"]=> string(5) "OtagoHarbour" } 

uploadFiles.php has the following code

<?php
// Account for the possibility of time out
session_start();
if (!isset($_SESSION['LoggedIn']) || !$_SESSION['LoggedIn']) {
    php var_dump($_SESSION);
    ?>
    <script type="text/javascript">
    alert("Not logged in.  Session log in=<?php echo $_SESSION['LoggedIn'] ?>");
    document.location.href="Home.php";
    </script>
    <?php
}
?>

I get the alert

Array(0) {}
Not logged in.  Session log in=
share|improve this question
3  
What's the URL by which you call the first page, ergo what's in $_GET['LoggedIn']? –  Wiseguy Jan 28 '14 at 3:14
    
echo "<script type=\"text/javascript\">" . "document.location.href=\"myPage.com/RunGraphicalUploader.php?LoggedIn=TRUE"; . "&SetName=" . $setName . "&UserName=" . $_SESSION['UserName'] . "\"" . "</script>"; –  OtagoHarbour Jan 28 '14 at 3:33

2 Answers 2

You won't see the session data in uploadFiles.php as you're not actually printing them out. You need to use echo or even better while debugging, var_dump as this will highlight null variables. Also your JS syntax is incorrect - the output of the PHP needs to be inside the quotes or it will cause a syntax error. Bare in mind that if the session var contains speech-marks, they will need escaping:

<?php
// Account for the possibility of time out
session_start();
if (!isset($_SESSION['LoggedIn']) || !$_SESSION['LoggedIn']) {
    ?>
    <script type="text/javascript">
    alert("Not logged in.  Session log in=<?php var_dump( $_SESSION['LoggedIn'] ); ?>");
    document.location.href="Home.php";
    </script>
    <?php
}
?>
share|improve this answer
    
I made the change, and made the appropriate edit above, but still get the same result. Thanks, –  OtagoHarbour Jan 28 '14 at 3:38
1  
OK, can you use var_dump to discover what is in $_GET['LoggedIn'] in your first file? –  n00dle Jan 28 '14 at 4:01
    
It returns string(4)"TRUE" –  OtagoHarbour Jan 28 '14 at 4:26
1  
Ok, in both files, please do <?php var_dump($_SESSION); ?> and edit your question to include the results (the output is likely to be too long for a comment). –  n00dle Jan 28 '14 at 4:29
    
I edited the question above. The former file gives array(3) { ["LoggedIn"]=> string(4) "TRUE" ["SetName"]=> string(4) "test" ["UserName"]=> string(5) "OtagoHarbour" } while the latter gives Array(0) {} –  OtagoHarbour Jan 28 '14 at 4:39
up vote 0 down vote accepted

I was remiss in not mentioning that I was using LAMP. I was also remiss in not checking

/var/log/apache2/error.log

It had the message

PHP Warning:  Unknown: Failed to write session data (files). Please verify that the current setting of session.save_path is correct (/var/lib/php5) in Unknown on line 0, referer: http://whatever.com/uploadFiles.php

The following fixed the problem

sudo chown www-data /var/lib/php5
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.