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// Other variables
    $MAX_FILENAME_LENGTH = 260;
    $file_name = $_FILES[$upload_name]['name'];
    //echo "testing-".$file_name."<br>";
    //$file_name = strtolower($file_name);
    $file_extension = end(explode('.', $file_name)); //ERROR ON THIS LINE
    $uploadErrors = array(
        0=>'There is no error, the file uploaded with success',
        1=>'The uploaded file exceeds the upload max filesize allowed.',
        2=>'The uploaded file exceeds the MAX_FILE_SIZE directive that was specified in the HTML form',
        3=>'The uploaded file was only partially uploaded',
        4=>'No file was uploaded',
        6=>'Missing a temporary folder'
    );

Any ideas? After 2 days still stuck

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6 Answers 6

up vote 85 down vote accepted

Assign the result of explode to a variable and pass that variable to end:

$tmp = explode('.', $file_name);
$file_extension = end($tmp);

The problem is, that end requires a reference, because it modifies the internal representation of the array (i.e. it makes the current element pointer point to the last element).

The result of explode('.', $file_name) cannot be turned into a reference. This is a restriction in the PHP language, that probably exists for simplicity reasons.

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3  
Thanks so very much. Solved my problem. –  Frank Nwoko Jan 8 '11 at 21:33

Everyone else has already given you the reason you're getting an error, but here's the best way to do what you want to do: $file_extension = pathinfo($file_name, PATHINFO_EXTENSION);

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yup, that worked just fine. –  Diego Sagrera Jul 24 '13 at 20:00
    
I agree. There's no point in using string manipulation to parse file paths when you have appropriate APIs to do so. –  gd1 Jan 7 at 7:43

Adding an extra parenthesis removes the error:

$file_extension = end((explode('.', $file_name)));
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Weird. That works but how? Does it suppress the warning, similar to what the @ prefix does? –  Nigel Alderton Feb 5 at 15:31
    
@NigelAlderton No it does not suppress errors like @ does. Try $test = end((explode('.', array('Error!')))); Example –  Anthony Hatzopoulos Mar 17 at 20:34
1  
So why does adding an extra parenthesis remove the error? –  Nigel Alderton Mar 18 at 0:53
1  
I researched this quirk and it seems to be a bug? with the php parser where double parenthesis "(())" causes the reference to be converted to a plain value. More on this link. –  Callistino Apr 1 at 17:22

save the array from explode() to a variable, and then call end() on this variable:

$tmp = explode('.', $file_name);
$file_extension = end($tmp);

btw: I use this code to get the file extension:

$ext = substr( strrchr($file_name, '.'), 1);

where strrchr extracts the string after the last . and substr cuts off the .

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missing parameter in your substr. this way you will never get any extension –  Dwza Jul 23 at 8:39
    
@Dwza and what parameter is missing? substr requires only two: php.net/substr The code works as it should –  Floern Jul 23 at 9:12
    
sorry for my mistake... i saw something else :D my thinkingproblem was: i thought strrchr returns a pos number. and not the rest string as it does. edit your post pls so i can give it a vote up. –  Dwza Jul 23 at 9:49

Try this:

$parts = explode('.', $file_name);
$file_extension = end($parts);

The reason is that the argument for end is passed by reference, since end modifies the array by advancing its internal pointer to the final element. If you're not passing a variable in, there's nothing for a reference to point to.

See end in the PHP manual for more info.

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Just as you can't index the array immediately, you can't call end on it either. Assign it to a variable first, then call end.

$basenameAndExtension = explode('.', $file_name);
$ext = end($basenameAndExtension);
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