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I use the function below to re-size pictures. But I tried it today and it kept giving me an error message that says that the name and path of the picture is not a valid resource although the name and path is quite correct.This is the function:

function createthumb($name, $filename, $new_w, $new_h) {
    $system = explode(".", $name);
    if (preg_match("/jpeg|jpg|JPG/", $system[1])) {
        $src_img = imagecreatefromjpeg($name);
    }
    if (preg_match("/png/", $system[1])) {
        $src_img = imagecreatefrompng($name);
    }
    $old_x = imageSX($src_img);
    $old_y = imageSY($src_img);
    if ($old_x > $old_y) {
        $thumb_w = $new_w;
        $thumb_h = $old_y * ($new_h / $old_x);
    }
    if ($old_x < $old_y) {
        $thumb_w = $old_x * ($new_w / $old_y);
        $thumb_h = $new_h;
    }
    if ($old_x == $old_y) {
        $thumb_w = $new_w;
        $thumb_h = $new_h;
    }
    $dst_img = ImageCreateTrueColor($thumb_w, $thumb_h);
    imagecopyresampled($dst_img, $src_img, 0, 0, 0, 0, $thumb_w, $thumb_h, $old_x, $old_y);
    if (preg_match("/png/", $system[1])) {
        imagepng($dst_img, $filename);
    } else {
        imagejpeg($dst_img, $filename);
    }
    imagedestroy($dst_img);
    imagedestroy($src_img);
}

I used it this way

$path = "photos/".$row->pic_name;
createthumb($path, $path, 350, 180);

I want it to resize the picture and overwrite the original (source).

The $row->pic_name is from the the database and the problem is not from it. I've been using the function that way and it works but not this time, maybe I should try a better one?

Thanks for any suggestions.

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What error message do you get exactly and in which line? –  Pekka 웃 May 17 '11 at 18:48
    
Your script have a bug if the filename contains a dot, consider foo.bar.jpg. Can you dump the actual filename? –  alexn May 17 '11 at 18:49
    
Check that $src_img isn't false after the imagecreatefrom...() calls. As well, what happens if someone uploads some random trash in a file named haha.pngpong? Checking file extension isn't a very good method of checking if you've got an image. –  Marc B May 17 '11 at 18:52
    
I've tried echoing the file name from the database, i got something like this - 34.jpg, I echoed the variable $path, I got photos/34.jpg –  Chibuzo May 17 '11 at 18:57

2 Answers 2

I would strongly advise you to use getimagesize() function, from which you could get $old_x (or more appropriately $old_w) and $old_y ($old_h?) and most importantly IMAGETYPE_XXX constant which indicates image type. This would rule out 2 possible causes of problems in your code:

  1. if file type is capitalised differently, your detection will fail (e.g. PNG or JpG)
  2. as mentioned by alexn if filename contains more dots your script will take a wrong part of the name.

If you prefer to stick with your own way, you could at least do

$type = strtolower(array_pop($system));
if ($type == 'jpg' || $type == 'jpeg') {    
    $src_img = imagecreatefromjpeg($name);
} elseif ($type == 'png') {
    $src_img = imagecreatefrompng($name);
}

Using RegExps like /png/ is an overkill here - strpos(...) !== false would do the same but much faster. You don't need regular expressions for simple substring search.

And finally, doesn't overwriting an image with its thumb cause you any problem?

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I know one simple way. It is ImageMagic

convert resize

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