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GetImageSize() not returning FALSE when it should

i currently have a filter system as follows:

   // Check to see if the type of file uploaded is a valid image type
function is_valid_type($file)
{
    // This is an array that holds all the valid image MIME types
    $valid_types = array("image/jpg", "image/JPG", "image/jpeg", "image/bmp", "image/gif", "image/png");

    if (in_array($file['type'], $valid_types))
        return 1;
    return 0;
}

but i have been told that it is better to check the filetype myself, how would i use the getimagesize() to check the filetype in a similar way?

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marked as duplicate by Baba, DCoder, Jake McGraw, SomeKittens Ux2666, Peter O. Oct 16 '12 at 4:15

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3 Answers

up vote 1 down vote accepted

getimagesize() returns an array with 7 elements. The index 2 of the array contains one of the IMAGETYPE_XXX constants indicating the type of the image.

The equivalent of the function provided using getimagesize() would be

function is_valid_type($file)
{
    $size = getimagesize($file);
    if(!$size) {
        return 0;
    }

    $valid_types = array(IMAGETYPE_GIF, IMAGETYPE_JPEG, IMAGETYPE_PNG, IMAGETYPE_BMP);

    if(in_array($size[2],  $valid_types)) {
        return 1;
    } else {
        return 0;
    }
}
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thankyou for your reply, but this code returns an error in dreamweaver on the if(!$size){ line –  neeko Oct 6 '12 at 16:41
    
The third line was missing a semicolon, should be alright now. –  user1704650 Oct 6 '12 at 16:46
    
now i get this error Warning: getimagesize() expects parameter 1 to be string, array given –  neeko Oct 6 '12 at 17:06
1  
You should be passing is_valid_type($file) function the filename as the parameter. You are probably giving it an $_FILES array. Try something like is_valid_type($file['name']). Or you could change the "getimagesize($file)" to "getimagesize($file['name'])" so you can call it the same way as the original function. But since the function needs only the filename, it doesn't make sense to have it expect an array. –  user1704650 Oct 6 '12 at 17:18
1  
The error is quite meaningful in this case: PHP can't find the file in question, most probably because it doesn't exist. You can try printing out the filename $file you're passing to is_valid_type($file) and see if it exists for yourself. My guess is that the uploaded image is either saved to another folder or it is renamed during the upload. This is up to your implementation of things and not something related to the is_valid_type function. That said, my take is that when you call the is_valid_type, the image hasn't yet been moved to it's final location: try $file['tmp_name']. –  user1704650 Oct 7 '12 at 0:26
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Firstly check if getimagesize returns false. If it does, then the file is not a recognised image format (or not an image at all).

Otherwise, get index 2 of the returned array and run it through image_type_to_mime_type. This will return a string like "image/gif" etc. See the docs for more info.

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You can use as below

$img_info   = getimagesize($_FILES['image']['tmp_name']);
$mime   = $img_info['mime']; // mime-type as string for ex. "image/jpeg" etc.
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Did you test this code ???? you can not use getimagesize on $_FILES['images']['tmp_name'] it would return false –  Baba Oct 6 '12 at 16:20
    
@Baba Yes it worked for me –  GBD Oct 6 '12 at 16:23
    
that is interesting ... codepad.viper-7.com/N96kma it returns Warning: getimagesize(): Filename cannot be empty ... it might be a PHP version specific issue –  Baba Oct 6 '12 at 16:29
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