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I spent my last night to solve this problem.

I have a php file which is supposed to return a PNG image with relevant headers. The relevant file content is basically. (No previous output or whitespace before the header statement)

header('Content-Type: image/png');

$img = @imagecreatefrompng($path);

imagepng($img);
imagedestroy($img);

But the browser (Firefox) says sth like there is an error with the image, therefore it cannot be displayed.

If I save the file to another place and download it with FTP, it is shown. Like:

imagepng($img, "/tmp/hedede.png");

If I remove the header statement and printout the file content it shows PNG header with all the other garbage data. If I save this page on browser as a PNG file, browser again does not show the saved PNG file, but Irfanview shows it.

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1  
Remove "@" from imagecreatefrompng, you might have an error there you are missing. –  slash197 Mar 23 '12 at 9:05
    
Yes, you may get some notices like this :'abc' is not a valid PNG file –  butchi Mar 23 '12 at 9:11
    
I removed the "@" char. But still I didn't get any error even though error_reporting was set to (E_ALL). I am also sure that the input file is a valid PNG and I can display it if I directly call that file using a browser. –  noway Mar 23 '12 at 9:23

2 Answers 2

Please check your file (in the path) MIME type, don't trust the file type by its extension. Hope it helps. If your file is not a png image, the code does not run properly and doesn't display the given image.

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I am sure that the input file is a valid PNG and I can display it if I directly call that file using a browser. –  noway Mar 23 '12 at 9:24
    
haizz, you can not sure it is a valid png or not if you DON'T check its mime type. I can change a abc.gif file to abc.png and view it on a browser. –  butchi Mar 23 '12 at 9:26
    
thanks, but if I printout file content without any header parameter I can see the file content starting with ‰PNG . That's why I assume that it was a PNG file. Please let me know how to check mime type if I am not doing it in a right way. –  noway Mar 23 '12 at 9:34
    
@noway can you give me your code and your image, I will check it. :) –  butchi Mar 23 '12 at 9:38
    
@noway and which php version that you used? –  butchi Mar 23 '12 at 9:39

This is GD Library Version Problems.

imagepng($resource)

...work old version GD Libray. New Version Would be:

imagepng($resource,"php://output")
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Wut? Where did you get this from? –  deceze Mar 11 '13 at 8:03

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