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I'm having an issue with the code below, for some reason I get the following error:

**Warning: imagejpeg() expects parameter 1 to be resource**

Using the following code:

$image = "image1.png";
$output = "filename.jpg";

// Call function
$img = resize_image($image, $output);

function resize_image($file, $output) {
  imagejpeg($img, $output, 60);
}

I'm basically trying to pass in the output filename ($output = "filename.jpg";) into the imagejpeg() function but getting the above error.

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you couldn't do that, imagejpeg requires resource parameter, not string –  vlcekmi3 Nov 30 '12 at 19:30
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3 Answers 3

It looks like your input parameter is the issue. Try this:

$image = "image1.png";
$output = "filename.jpg";

// Call function
$img = resize_image($image, $output);

function resize_image($file, $output) {
  imagejpeg(imagecreatefromjpeg($img), $output, 60);
}
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It says in the documentation that you need to pass a parameter to that function that is of type resource. In other words, you need to create an image resource object using an image creation function, such as imagecreatetruecolor():

image - An image resource, returned by one of the image creation functions, such as imagecreatetruecolor().

http://php.net/manual/en/function.imagejpeg.php

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Painfully simple, issue wasn't with $output but the input variable. I convert the image and resize in which is the $dst result.

imagejpeg($dst, "$output", 60);
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