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.

I am making an attachments system for my website. In a form-based upload method, you can get the image size using:

$SizeResult = getimagesize($_FILES['file']['tmp_name']);

But using a Drag&Drop upload system via HTML5's File API, the files are uploaded not by form post, but by black magic & wizardry.

$File = file_get_contents('php://input');

In this case $File is not a name, but the actual binary contents of the file.

How can I get the size of said $File, when getimagesize() only seems to accept file names? Internally, getimagesize wants to open the file from disk itself. It doesn't want to accept $File.

Anyone know how I can get around this issue? I'm hoping to avoid saving the file to disk.

share|improve this question
1  
This may be of help: stackoverflow.com/questions/2024789/…. Basically: use imagesx and imagesy on an image resource. –  Eduardo Ivanec Mar 2 '12 at 3:46
    
Eduardo, thanks for replying, that is a useful link. I followed Alix Axel's post and it works... sorta. getimagesize() and exif_imagetype() do work if you pass them the URL directly. So for example, this works: $SizeResult = getimagesize('php://input'); But then, my problem is... in order to get the actual file, I'd have to run $File = file_get_contents('php://input'); ... essentially download the file twice (right?) That doesn't seem efficient :( –  Lakey Mar 2 '12 at 4:10
    
I think you should be fine with a single read. I'll post an example. –  Eduardo Ivanec Mar 2 '12 at 4:20
add comment

3 Answers

up vote 4 down vote accepted

This is what I meant, please try it:

$File = file_get_contents('php://input');
$image = ImageCreateFromString($File);
echo ImageSX($image); // width
echo ImageSY($image); // height
share|improve this answer
    
Eduardo, I will edit my post to clarify, but I'm not trying to get the size (in bytes) of the file. I'm trying to get the size (in width and height -- as in pixels) of the file (assuming it's an image). getimagesize() is a function in PHP that returns this info, as well as MIME type and other useful info. But you are correct that strlen() would certainly get the size (in bytes) –  Lakey Mar 2 '12 at 3:42
    
Argh, my mistake! I'm sleepier than I thought it seems : ) Sorry about that. –  Eduardo Ivanec Mar 2 '12 at 3:43
    
Did this work out for you? –  Eduardo Ivanec Mar 2 '12 at 16:52
    
Sorry about the delay. Yes, this did work, although I'm a bit sad because ImageCreateFromString uses GD and can take a lot of memory. Nevertheless it works so I appreciate the help. Thank you. –  Lakey Mar 3 '12 at 17:40
add comment

I made a solution that I think is best. I must confess that the primary reason for using the getimagesize() function was to get the MIME type of the file (to ensure it is an image). Obtaining the size is an added bonus, but I could have just as easily framed the question around the exif_imagetype() function. The problem would have been the same, because both functions only accept a file name; not file contents.

So what I did was basically look in the PHP sourcecode and see how exif_imagetype() read MIME information. It turns out it only reads the first 12 bytes of the file. I replicated its functionality like so:

function GetConstMimeArray()
{
    // MIME type markers (taken from PHP sourcecode consts in \ext\standard\image.c starting at line 39).
    return array
    (
        'gif' => array(ord('G'), ord('I'), ord('F')),
        'psd' => array(ord('8'), ord('B'), ord('P'), ord('S')),
        'bmp' => array(ord('B'), ord('M')),
        'swf' => array(ord('F'), ord('W'), ord('S')),
        'swc' => array(ord('C'), ord('W'), ord('S')),
        'jpg' => array(0xff, 0xd8, 0xff),
        'png' => array(0x89, 0x50, 0x4e, 0x47, 0x0d, 0x0a, 0x1a, 0x0a),
        'tif_ii' => array(ord('I'), ord('I'), 0x2a, 0x00),
        'tif_mm' => array(ord('M'), ord('M'), 0x00, 0x2a),
        'jpc' => array(0xff, 0x4f, 0xff),
        'jp2' => array(0x00, 0x00, 0x00, 0x0c, 0x6a, 0x50, 0x20, 0x20, 0x0d, 0x0a, 0x87, 0x0a),
        'iff' => array(ord('F'), ord('O'), ord('R'), ord('M')),
        'ico' => array(0x00, 0x00, 0x01, 0x00)
    );
}

And

// Get an array of known MIME headers.
$MimeTypeConsts = GetConstMimeArray();

// Get first 12 bytes of file from stream to do a MIME check.
$File = file_get_contents('php://input', null, null, 0, 12);
if(strlen($File) < 12)
    return;

// Scan first 12 bytes of file for known MIME headers.
$MatchedMime = '';
foreach($MimeTypeConsts as $Type => $Bytes)
{
    $NumMatching = 0;
    $NumBytes = count($Bytes);
    for($i = 0; $i < $NumBytes; $i++)
    {
        if(ord($File[$i]) == $Bytes[$i])
            $NumMatching++;
        else
            break;
    }
    if($NumMatching == $NumBytes)
    {
        $MatchedMime = $Type;
        break;
    }
}

// Check if the file does NOT have one of the known MIME types.
if(strlen($MatchedMime) <= 0)
    return;

// If we fix up TIF_TT and TIF_MM, you can use $MatchedMime in lieu
// of the extension on the file name.
if($MatchedMime == 'tif_ii' || $MatchedMime == 'tif_mm')
    $MatchedMime = 'tif';

// What's the max size allowed to upload?
$MaxSize = min(ReturnBytes(ini_get('post_max_size')), MAX_UPLOAD_SIZE);

// Get full file.
$File = file_get_contents('php://input', null, null, 0, $MaxSize + 8);

// Get file size.
$Size = strlen($File);
if($Size > $MaxSize)
    return;

// Get hash of the file contents.
$Hash = hash('SHA1', $File, true);

file_put_contents(UPLOADS_DIR.'/'.bin2hex($Hash).'.'.$MatchedMime, $File);

The file will now be saved in UPLOADS_DIR using the hash as it's name and the MIME type as its extension. (Whatever extension was originally on the file name is ignored and not used.)

share|improve this answer
add comment

Hope this helps

<?php
list($width, $height, $type, $attr) = getimagesize("img/flag.jpg");
echo "<img src=\"img/flag.jpg\" $attr alt=\"getimagesize() example\" />";
?>
share|improve this answer
add comment

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.