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I tried:

$test = include 'test.php';

But that just included the file normally

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3  
Can you be more verbose? –  The Pixel Developer Jan 27 '10 at 20:59
1  
What do you want to achieve? That the content of test.php is stored in $test? –  Boldewyn Jan 27 '10 at 21:00
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6 Answers

You'll want to look at the output buffering functions.

//get anything that's in the output buffer, and empty the buffer
$oldContent = ob_get_clean();

//start buffering again
ob_start();

//include file, capturing output into the output buffer
include "test.php";

//get current output buffer (output from test.php)
$myContent = ob_get_clean();

//start output buffering again.
ob_start();

//put the old contents of the output buffer back
echo $oldContent;

EDIT:

As Jeremy points out, output buffers stack. So you could theoretically just do something like:

<?PHP
function return_output($file){
    ob_start();
    include $file;
    return ob_get_clean();
}
$content = return_output('some/file.php');

This should be equivalent to my more verbose original solution.

But I haven't bothered to test this one.

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2  
Why is it necessary to stop any existing buffers? Output buffers in PHP stack: php.net/ob_start –  jeremy Jul 15 '10 at 20:09
1  
It isn't -- I just hadn't noticed the stackability. Editing my answer. –  timdev Jul 16 '10 at 17:20
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Try something like:

ob_start();
include('test.php');
$content = ob_get_clean();
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Try file_get_contents().

This function is similar to file(), except that file_get_contents() returns the file in a string.

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While this link may answer the question, it is better to include the essential parts of the answer here and provide the link for reference. Link-only answers can become invalid if the linked page changes. –  todofixthis Aug 25 '12 at 1:57
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you can use this function:

file_get_contents

http://www.php.net/manual/en/function.file-get-contents.php

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1  
I wonder why you people would suggest output buffering when this is so much simpler. –  Juan Mendes Jan 10 '11 at 18:29
11  
Perhaps because file_get_contents doesn't execute the PHP code in the file? –  fool4jesus Apr 15 '11 at 14:29
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Have a look at the answers to this similar question.

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Solution #1: Make use of include (works like a function): [My best solution]

File index.php:

<?php
$bar = 'BAR';
$php_file = include 'included.php';
print $php_file;
?>

File included.php:

<?php
$foo = 'FOO';
return $foo.' '.$bar;
?>
<p>test HTML</p>

This will output FOO BAR, but Note: Works like a function, so RETURN passes contents back to variable (<p>test HTML</p> will be lost in the above)


Solution #2: file_get_contents():

File index.php:

<?php
$bar = 'BAR';
$test_file = eval(file_get_contents('included.php'));

print $test_file;
?>

File included.php:

$foo = 'FOO';
print $foo.' '.$bar;

This will output FOO BAR, but Note: Include.php should not have <?php opening and closing tags as you are running it through eval()


Solution #3: op_buffer(): [Not a solution]

File index.php:

<?php
$bar = 'BAR';
ob_start();
include 'included.php';

$test_file = ob_get_contents();
print $test_file;
?>

File included.php:

<?php
$foo = 'FOO';
print $foo.' '.$bar;
?>
<p>test HTML</p>

This will output FOO BAR<p>test HTML</p> TWICE; despite the answers suggesting op_buffer as a solution, it does pass the included file output to $test_file, but it also outputs when including the file.

?? Am I doing something wrong here on ob_ ??

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