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I want to send an image from android and save it trought a php code in my server. Because I need to protect my server I need to reprocess the image so I have to use GD or Imagick. Image is sent encoded in base64. In the php file is decoded and if I use:

$img=base64_decode($img);
$file = fopen('test.jpg', 'wb');
fwrite($file, $img);
fclose($file);

image is saved in the server. If I use Imagick or GD my image isn't saved and the php files returns nothing, even if I insert an echo after it. Any help? In GD I was using:

$img=base64_decode($img);
$imageinfo = getimagesize($img);
if($imageinfo['mime'] == 'image/gif'{
    $img = @imagecreatefromjpeg($img);
    imagejpeg($img, ""testt.jpg", 80);
}

and in Imagick:

$img=base64_decode($img);
$img = imagick($img); //neither if I use a path of an image saved in my server 
                      //works
$mime = mime_content_type($img);
    switch ($mime):
        case 'image/jpeg':
            $ext = '.jpg';
            break;
    endswitch;

$img->stripImage();
$img->writeImage(""testt".$ext);
$img->clear();
$img->destroy();
share|improve this question
    
The 2nd and the 3rd code block have a syntax error. Do you have error reporting turned on? –  Pekka 웃 Jul 28 '12 at 16:39
1  
your code is full of syntax errors. –  dev-null-dweller Jul 28 '12 at 16:41
    
I see an " extra in imagick and gd code but it's only because I added accidentally while copying here. –  Learning from masters Jul 28 '12 at 16:47
    
Also if($imageinfo['mime'] == 'image/gif'{ is missing closing parenthesis. And why are you trying to create from jpg when you have gif ? Please post real code –  dev-null-dweller Jul 28 '12 at 16:52
    
Alright, my fault. I deleted the extra elseif and I put the wrong function. Anyway, the point wasn't that. The point was that with the simpliest function the result of the php page was "" (I know that because I see all the info that the php page replies in my android application. –  Learning from masters Jul 28 '12 at 23:31
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1 Answer

up vote 1 down vote accepted

imagick only works on files, you can't give a handle to it unfortunately, so:

$img=base64_decode($img);
$filename = tempnam(sys_get_temp_dir(), 'tempimage_'); 
$file = fopen($filename, 'wb');
fwrite($file, $img);
fclose($file);

$img = imagick($filename);  
$mime = mime_content_type($img);
    switch ($mime):
        case 'image/jpeg':
            $ext = '.jpg';
            break;
   endswitch;

$img->stripImage();
$img->writeImage("testt".$ext);
$img->clear();
$img->destroy();

This, in theory, should work.

share|improve this answer
    
Correcting the double " as dev-null pointed, it doesn't work. In my android app I get as response nothing, "", and the image is not create it. Is it because I use xampp? –  Learning from masters Jul 29 '12 at 0:29
    
Depends if you have the imagick module installed and enabled on that XAMPP - you can find it in the right click menu a.f.a.i.r. - do you have anything in the log files of XAMPP? –  Aadaam Jul 29 '12 at 1:04
    
I reinstall it all because I was very confused and I get the last version of XAMPP. Result: Imagick on windows works. Imagick on php no. I know I need to put an php file on ext folder and then modify php.ini and reboot apache server but where is the last version of that php file? –  Learning from masters Jul 29 '12 at 19:27
    
it's a module file, it should be already part of XAMPP. what about GD? –  Aadaam Jul 29 '12 at 19:40
    
With GD seems that it works with your code. I suppose that calling imagejpeg will be enough and I won't need to use the temp file but I haven't tried yet. Anyway, is it secure to use this function to prevent attacks like ha.ckers.org/blog/20070604/… ? –  Learning from masters Jul 29 '12 at 21:38
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