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I get the width and height of image with getimagesize function, like below:

list($width,$height) = getimagesize($source_pic);

How can I use IF condition to check that the getimagesize function executed without error and $width and $height got non-empty, non-zero values?

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4 Answers 4

up vote 6 down vote accepted
if ($size = getimagesize($source_pic)) {
    list($width,$height) = $size;
    if($height > 0 && $width > 0) {
        // do stuff
    }
}
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Please note that this answer does not conform to all question requirements. In particular, it won't detect zero values. –  Álvaro G. Vicario Jul 6 '11 at 10:06
    
@Álvaro G. Vicario - thanks, edited my answer –  Sascha Galley Jul 6 '11 at 10:09
if ($width === NULL) {
    //handle error
}

If there's an error getimagesize returns FALSE, not an an array, so the list assignment will result in the variables being NULL.

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You still need to test against zero. According to the manual, there are cases when you can get such value. –  Álvaro G. Vicario Jul 6 '11 at 10:07

This should be enough:

list($width, $height) = getimagesize($source_pic);
if( $width>0 && $height>0 ){
    // Valid image with known size
}

If it isn't a valid image, both $width and $height will be NULL. If it's a valid image but PHP could not determine its dimensions, they'll be 0.

A note from the manual:

Some formats may contain no image or may contain multiple images. In these cases, getimagesize() might not be able to properly determine the image size. getimagesize() will return zero for width and height in these cases.

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$size = getimagesize('image.jpg');
list($height,$width) = getimagesize('image.jpg');

if($height>0 && $width>0){
   //it comes into if block if and only if both are not null
}
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