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I included an html file like this, so that it is not displayed when the site loads:

<div id="menugrp0" class="menuhide">
<?php include 'menugrp0.html';  ?>
</div>

Now I want it to be shown at a specific spot. I am using this php code, to get some variables which are transported with the $_SESSION. I am using this kind of question for some simple html links, in which case it works perfectly:

if ($_SESSION['gruppe'] == $h['gruppe']) {     
  printf(' menugrp0.html');
}

I know that this is not working at all at the moment for this included html. I also tried to add the <?php [...] ?> tag inside the printf, which is also not working.

Is it possible to show a hidden included html file with a printf tag?

  • Just include it in the spot where you want the content shown instead? Seems a lot simpler. – Qirel Jan 3 '17 at 12:31
  • But there are like 4 different include files. Only the one should be shown, which matches with the $_SESSION. – pr0cz Jan 3 '17 at 12:31
  • Then use a condition to only load the file which is needed instead? if ($_SESSION['gruppe'] == $h['gruppe']) { include 'menugrp0.html'; }? – Qirel Jan 3 '17 at 12:32
  • 4
    Please do not use include for this, but echo file_get_contents('menugrp0.html'); – Daan Meijer Jan 3 '17 at 12:33
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    Alternatively store it in a variable, but then the content of that file needs to be returned, see example 5 php.net/manual/en/function.include.php – Qirel Jan 3 '17 at 12:34
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Try this one.

<?php
if($_SESSION['gruppe'] == $h['gruppe']){
    echo 'Foo';
    include ('/path/to/menugrp0.html');
    echo 'Example: one';
}

?>
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readfile('menugrp0.html'); // Reads a file and writes it to the output buffer. It is like read then "echo"

How to echo the whole content of an .html file in php?

0

Thanks to Daan Meijer, this works.

  echo file_get_contents('...');    
                    }

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