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I am trying to build some javascript function and I need to check if the users are logged in or not. When a user log in to my site I set a variable in session array named is_logged. I want to reach that variable in javascript is it possible??? I tried some ways but did not work like following:

var session = "<?php print_r $_SESSION['is_logged']; ?>";
alert(session);

and:

var session = '<?php echo json_encode($_SESSION['is_logged']) ?>';
alert(session);

It is either show a text or never alert at all

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Is that a js file or php file where you are alerting the value..?? –  웃웃웃웃웃 Jun 24 '13 at 8:25
    
How about setting a cookie instead and have the javascript check the cookie? –  gmaliar Jun 24 '13 at 8:26
    
it is a js file where I alert the value –  Basel Shbeb Jun 24 '13 at 8:27
    
is it better with cookies?? –  Basel Shbeb Jun 24 '13 at 8:28
1  
I hope the value of this variable doesn't determine access to personal or sensitive information because it's trivial to open the console and start manipulating it. All the logic about whether someone is logged in or not should be performed on the server side where it can't (easily) be tampered with. –  Matt Harrison Jun 24 '13 at 8:31

6 Answers 6

up vote 2 down vote accepted

If you want to reach all elements of $_SESSION in JavaScript you may use json_encode,

<?php
session_start();
$_SESSION["x"]="y";
?>

<script>
 var session = eval('(<?php echo json_encode($_SESSION)?>)');
 console.log(session);

//you may access session variable "x" as follows
alert(session.x);
</script>

But note that, exporting all $_SESSION variable to client is not safe at all.

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I am working on js file and want to show a php variable not the reverse,I use your code but it shows me a syntax error –  Basel Shbeb Jun 24 '13 at 8:44
    
You cannot test my code fragment on js file, since they bypass php execution. Paste export section in index.php or what ever script you use to load js files, then use session.x to refer the session variables. –  Kemal Dağ Jun 24 '13 at 8:46
    
for now I used your code in my index file I hope it will work fine. thank you –  Basel Shbeb Jun 24 '13 at 10:20

Just echo it:

var session = <?php echo $_SESSION['is_logged']?'true':'false'; ?>;
alert(session);

You need tertiary operator, as false is echoed as empty string so it would lead to var session = ; which is a JS syntax error.

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1  
Good work Voitcus. at least you know whats going on ^^ –  EaterOfCode Jun 24 '13 at 8:31

Try the following code:

var session = "<?php echo $_SESSION['is_logged'] ?>";
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In a js file you cant get the value of a php variable or php code doesnt works on a js file because php code will works in a .php extension file. So one method is to set the session value as a hidden element value and in your js file get the value of the hidden element.

In the html:

<input type="hidden" id="sess_var" value="<?php echo $_SESSION['is_logged']; ?>"/>

In your js:

var session = document.getElementById('sess_var').value;
alert(session);
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it is just alert the session as text not giving the value of the variable –  Basel Shbeb Jun 24 '13 at 8:31

You can do things like this

Just insert the $_SESSION['is_logged'] in a hidden field like

<input type = "hidden" value = "<?php echo $_SESSION['is_logged']; ?>" id = "is_logged" />

Then you can access that in your jquery like this

var is_logged = jQuery.trim($('#is_logged').val());
//then do validation here
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Awful way. jQuery is 100% useless here. –  Utopik Jun 24 '13 at 8:45
    
Why you said so. –  Nesmar Patubo Jun 24 '13 at 9:10
    
1) "is_logged" is a boolean, no trim needed, 2) document.getElementById("is_logged").value is by far faster (jsperf.com/getelementbyid-vs-jquery-id/13). –  Utopik Jun 24 '13 at 9:56
   var get_session=<?php echo $_SESSION['is_login'] 

  alert(get_session);
    ?>

## *Just try this * ##

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Syntax error. no ; and alert is not a function in PHP –  EaterOfCode Jun 24 '13 at 8:32

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