I am trying to run a PHP function inside Bash... but it is not working.

#! /bin/bash

/usr/bin/php << 'EOF'
<?php echo getcwd(); ?>
EOF

In the reality, I needed to keep the return value in a bash variable... By the way, I am using the php's getcwd() function only to illustrate the bash operation.

UPDATE: Is there a way to pass a variable?

VAR='/$#'
php_cwd=`/usr/bin/php << 'EOF'
<?php echo preg_quote($VAR); ?>
EOF`
echo "$php_cwd"

Any ideas?

  • 2
    Please do not edit answers to add your question in it. Instead edit edit your own question and comment on the answer. – Lekensteyn Jun 3 '11 at 20:31
up vote 8 down vote accepted
php_cwd=`/usr/bin/php << 'EOF'
<?php echo getcwd(); ?>
EOF`
echo "$php_cwd" # Or do something else with it
PHP_OUT=`php -r 'echo phpinfo();'`
echo $PHP_OUT;

Alternatively:

php_cwd = `php -r 'echo getcwd();'`

replace the getcwd(); call with your php code as necessary.

EDIT: ninja'd by David Chan.

This is how you can inline PHP commands within the shell i.e. *sh:

#!/bin/bash

export VAR="variable_value"
php_out=$(php << 'EOF'
<?
    echo getenv("VAR"); //input
?>
EOF)
>&2 echo "php_out: $php_out"; #output

Use '-R' of php command line. It has a build-in variable that reads inputs.

VAR='/$#'
php_cwd=$(echo $VAR | php -R 'echo preg_quote($argn);')
echo $php_cwd

This is what worked for me:

VAR='/$#'
php_cwd=`/usr/bin/php << EOF
<?php echo preg_quote("$VAR"); ?>
EOF`
echo "$php_cwd"

I have a question - why don't you use functions to print current working directory in bash? Like:

#!/bin/bash
pwd # prints current working directory.

Or

#!/bin/bash
variable=`pwd`
echo $variable

Edited: Code above changed to be working without problems.

  • 4
    That really doesn't answer OP's question. The code also does not produce OP's expected output. Lastly, questions should be comments, not answers. – netcoder Jun 3 '11 at 20:05
  • Well, it was rhetorical question to be honest. Well, I have mistyped the second part of the code and going to edit it now to the point it will work. For the first part of your comment - yes, it does not answer the question absolutely strictly the same way it poster wants to, but - if he/she wants to save it as a bash variable, why use php?? – koressak Jun 3 '11 at 20:11
  • I used the php's getcwd() function only to illustrate the bash operation. It's just a cummon example to make the question simpler. – Roger Jun 3 '11 at 20:12
  • Oh, for that I'm sorry @netcoder, @Roger. It seemed to me little strange to use php in bash, so I thought you were looking for a way to get the path. – koressak Jun 3 '11 at 20:14
  • I am the one who has to apologize. – Roger Jun 3 '11 at 20:17

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