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I try to output my .php files from the command line and I want to be able to simulate $_SESSION values for this output.

I tried php test.php --define $_SESSION["id"]=1 but it does not set the global variable $_SESSION.

I am obviously not using the command line correctly but I cannot find how I should do.

Any idea to make it work?

Thanks a lot

EDIT: for my example test.php is the following:

<? echo $_SESSION['id'];?>
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1  
So you're not doing a session_start() anywhere in the php file? –  Jonathan M Jun 19 '12 at 21:28
    
Nope, I figured it would over ride a preset value of $_SESSION and wondered if I could use this global variable as a regular variable. I will try with it. –  Mad Echet Jun 19 '12 at 21:30
    
After testing, if I do session_start(), the $_SESSION variable is set to array(), which is not the cas if I do not do it (I checked with print_r. Everything looks like my --define does not do anything (or at least not what I expect) –  Mad Echet Jun 19 '12 at 21:33
    
What are you trying to accomplish by doing this? –  Jonathan M Jun 19 '12 at 21:34
    
I serve a different page if the user is logged in and if he is not (which I know from the $_SESSION variable). Now I am trying to output a static version of my connected page to build a native app with phone gap, that does not know PHP. I want to write a script that exports the logged in version of the page to a standard HTML I use in my phonegap app. Does it make sense? Any easier way to achieve this? –  Mad Echet Jun 19 '12 at 21:35

2 Answers 2

up vote 1 down vote accepted
$ cat setsession.php 
<?php
//fixed session:
session_id("fixed");
session_start();
?>
$ cat checksession.php 
<?php
if(!isset($_SESSION['counter'])) $_SESSION['counter'] = 0;

$_SESSION['counter']++;

var_dump($_SESSION);
$ php -d auto_prepend_file=setsession.php checksession.php 
array(1) {
  ["counter"]=>
  int(1)
}
$ php -d auto_prepend_file=setsession.php checksession.php 
array(1) {
  ["counter"]=>
  int(2)
}
$ php -d auto_prepend_file=setsession.php checksession.php 
array(1) {
  ["counter"]=>
  int(3)
}
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Thanks! Works just like magic. It definitely makes more sense that all the shaky workarounds I tried so far. –  Mad Echet Jun 19 '12 at 21:56

You cannot use sessions on the command line in any meaningful way – the session identifier gets stored in a cookie. The command line doesn't do cookies, so the normal way of sessions doesn't work. Of course, you can use the $_SESSION superglobal during the run of the script. Just don't expect it to persist between different calls of the same script.

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Thank you, your answer makes perfect sense but I did not expect any persistence. I just wanted to preset the $_SESSION variable (as any variable) before running the script. I tried -B and -d options but with no luck. –  Mad Echet Jun 19 '12 at 21:40
    
Ah, then I think I begin to understand. -d defines ini keys, not variables. php test.php -B '$_SESSION["abc"]="test";' might achieve what you want to be doing. –  Konrad Neuwirth Jun 19 '12 at 21:46
    
Thanks, I misunderstood -d however -B '$_SESSION["abc"]="test";' does not seem to be properly setting the variable, neither does -B '$_SESSION=array("abc"=>"test");', not sure why :-/ –  Mad Echet Jun 19 '12 at 21:53
    
The -B would work equally well as the prepend file I proposed, but (1) we need a session-ident, (2) a session_start destroys a previously set $_SESSION, so, it would be -B 'session_id("fixedorsomething");session_start();$_SESSION["abc"]="test";'. I just prefer to put that stuff in a file so my command line isn't so cluttered (and I don't have to remember every setup, just use the same file next time). –  Wrikken Jun 19 '12 at 22:00

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