Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Given the command:

/usr/bin/php -c /path/to/custom/php.ini /path/to/script.php

I'd like to get the internal options:

-c /path/to/custom/php.ini

Things I've tried that do not work:

  • $argv contains ['/path/to/script.php']
  • getopt('c') contains []
  • $_ENV does not contain it
  • $_SERVER does not contain it

I've also looked for a PHP_* constant (such as PHP_BINARY but cannot find one for these arguments.

Is there any way to get these arguments? Note that I am not trying to obtain the loaded ini file but any arguments that might be present here.

share|improve this question
    
would suggest var_export($_SERVER) as first port of call, also, that isnt a script argument, so i doubt you will see it, i seem to remember you will only ever see any args that come AFTER the script. also, are you trying to get the custom INI only? or any argument passed to php? if you just want the ini, look at php.net/manual/en/function.php-ini-loaded-file.php –  bizzehdee Mar 21 '13 at 21:47
    
echo shell_exec('ps -p '.getmypid().' -o args='); –  salathe Mar 21 '13 at 23:16

4 Answers 4

PHP has no internal way of doing this, so you are going to have to rely on certain system information and permissions.

$pid = getmypid();
$ps = `ps aux | grep $pid`;
$command = substr($ps, strpos($ps, '/usr/bin/php'));
$args = explode(' ', $command); //not pretty, should probably use preg
share|improve this answer
    
It will do unless -H is passed as php argument. Also no need to you can pass -p pid to ps for specific pid - no need for greping. –  dev-null-dweller Mar 21 '13 at 22:22
    
ps aux | grep pid | grep -v grep | awk '{for(i=11;i<=NF;i++) printf $i" ";printf "\n"}' –  Dejan Marjanovic Mar 21 '13 at 22:32

-c /path/to/custom/php.ini is an option passed to the PHP parser, interpretator and other internall stuff before even starting your script.

/path/to/script.php is an actual argument passed not only to the PHP executable, but to your script.

Following arguments like /usr/bin/php -c /path/to/custom/php.ini /path/to/script.php A B C would also be passed to your script.

Unfortunately the -c option is not one of them.

You could get the used php.ini file within the executed PHP script by using get_cfg_var.

echo get_cfg_var('cfg_file_path');

If you are passing the -c option you would get the path to your php.ini file. Otherwise you would get the default php.ini file.

share|improve this answer

Unfortunately, because of how command line BASH arguments are parsed, you won't be able to access the arguments before your script call. Right now, the program /usr/bin/php has

argv[0]=/usr/bin/php
argv[1]=-c
argv[2]=/path/to/custom/php.ini
argv[3]=/path/to/script.php

And that's where your arguments are landing. Your script on the other hand has:

argv[0]=/path/to/script.php

Just because the arguments are processed right to left, and there are no arguments after your script call.

share|improve this answer

I'd use something as follows since it doesn't require any parsing.

$ (ARGS="-c /path/to/custom/php.ini"; /usr/bin/php $ARGS /path/to/script.php $ARGS)
share|improve this answer
    
Some other script might call it on the command line. An external script is not likely to pass the options as an argument. –  Haralan Dobrev Mar 21 '13 at 22:54
    
@HaralanDobrev, Yeah, it should be used in a controlled environment –  Alexander Mar 22 '13 at 16:36

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.