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I am trying to determine if image.php is valid picture file. It may be or may be not because if DB has information about resized picture it is going to be valid - image.php will resize original picture and print it to the screen. There is also alternative - there is no filename information in database and it can result error message or error picture. I'd like to get dimensions of image and if it is width = 0 and height = 0 then print error message. I was trying to do it with getimagesize but it produces error:

[function.getimagesize]: failed to open stream: No such file or directory in ...

Path is 100% correct. I've read that it is impossible to getimagesize of dynamically made picture via php. I always can check my database but i am curious if there is any hack to get image size that is dynamically created via php.

Code:

$file = "image.php?img=1";
$a = getimagesize($file);
echo 'aaaaaaaaa' . $a;

EDIT:

I did it another way because none of the solutions worked for me - i just check database for correct filename existance.

Thanks for help.

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doesn't getimagesize() return an array? If it does, echo won't be doing you any good. –  user849137 Jun 10 '12 at 18:40
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2 Answers

You'd have to use a full-blown absolute url for PHP to realize you're requesting a url. image.php?img=1 is just a local file-system-only request

$file = 'http://example.com/image.php?img=1'; // full-blown HTTP request
$file = 'image.php'; // local-only request

But this is somewhat inefficient, since you're doing a full-blown http round-trip request. if that url is password/session protected, you'll have to "log in" first, etc...

If that image is coming from a local database, then you should recreate the fetching logic or make it usable via function call so that it doesn't do the HTTP request, and simply works "internally" within your script, and then pass the data to GD's imagecreatefromstring(), which'll accept any known image type, then use the imagesx() and imagesy() functions to get the height/width.

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You need file_get_contents since image.php?img=1 isn't a real file on your system

$cont = file_get_contents($file);
$r = imagecreatefromstring($cont);
imagesx($r);
imagerx($r);

Of course you need full URL: http://etc

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Was writing the same but you finished first. Just note that for this to make a proper http request, use $file = 'http://127.0.0.1/image.php?img=1'; or whatever URL necessary to make the request. –  Michael Berkowski Jun 10 '12 at 18:41
    
You won't be able to get image.php?img=1 nor will it understand what you are trying to do there. Swap to full path or just define in your script $_GET['img'] and then file_get_contents('image.php'); –  judda Jun 10 '12 at 18:43
    
i like your advice most but i get imagecreatefromstring() [function.imagecreatefromstring]: Data is not in a recognized format in add_picture.php on line 398. thAt line is $r = imagecreatefromstring($cont). Paths are ok, picture is ok and is printed 2 lines below. Dont know why there is an error:( –  Kalreg Jun 10 '12 at 19:04
    
post your full code and where it makes the error in your question. Also if you like my answer please add +1 or mark it as the answer –  dynamic Jun 10 '12 at 21:09
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