Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

i have some images that have a certain size and i want to scale them down.

i don't want to save them to scaled, i want to re size them each time the image load in the browser

i've took a look as the WideImage library and imagecopyresampled

if i use WideImage::load($_GET['img'])->resize(500, 300)->output('jpg', 90); and i echo this out i get the source code from the image and not the actual image.

i also fount this method

public function resizeImage($originalImage,$toWidth,$toHeight)
    {

        list($width, $height) = getimagesize($originalImage);
        $xscale=$width/$toWidth;
        $yscale=$height/$toHeight;

        if ($yscale>$xscale){
            $new_width = round($width * (1/$yscale));
            $new_height = round($height * (1/$yscale));
        }
        else {
            $new_width = round($width * (1/$xscale));
            $new_height = round($height * (1/$xscale));
        }


        $imageResized = imagecreatetruecolor($new_width, $new_height);
        $imageTmp     = imagecreatefromjpeg ($originalImage);
        imagecopyresampled($imageResized, $imageTmp, 0, 0, 0, 0, $new_width, $new_height, $width, $height);

        return $imageResized;
    }

and if i pass a image to it and echo the result i get resource(192) of type (gd) and not the image.

also im not sure what image path to pass to this methods, the http://.....jpg or /var/www/images/....jpg

can anyone shade some light on this? it looks like i don't really understand how this process works

thanks

share|improve this question

2 Answers 2

up vote 1 down vote accepted

I'm using SimpleImage, it's really easy. Look at: Resizing images with PHP. But that's not about your problem.

Your code: return $imageResized; returns only gd Object, not real image. You need to transform it and you can do 2 things:

  1. Load image by script url (ex: http://localhost/image_converter.php?img=my_img.jpg)
  2. Return image data as URI scheme (Using URI is not good practice, because you have to work with output buffering, etc... and HTML datas are enormous, because images are directly in it ... look at: http://en.wikipedia.org/wiki/Data_URI_scheme#Examples)

(example using your method)

You need to set proper header with header('Content-Type: image/jpeg');. And you have to use function imagejpeg ( resource $image [, string $filename [, int $quality ]] ) for GD object

<?php
/* image_converter.php */
$image = new Image(); //Will use method in unknown class found by you
$output = $image->resizeImage($_GET['my_img'],50,50); //We have gd object in $output
//!! DO NOT USE GET WITHOUT SECURING IT!
header('Content-Type: image/jpeg');
imagejpeg($output); //This displays image dataa converted in jpg
exit;
?>

Called: <img src="http://localhost/image_converter.php?img=my_img.jpg" alt="" />

share|improve this answer

Pass the local file name to the method not the url

You need to set the http headers for the image to be interpreted as an image

header('Content-Type: image/jpeg');
share|improve this answer
    
if i do that the page breaks –  Patrioticcow Jul 18 '12 at 22:09
    
@Patrioticcow You need to set the src of the image to the php file that returns only the image. –  jeroen Jul 18 '12 at 22:10
    
So your trying to output an image in an html page? If so thats what the <img> tag is for –  Musa Jul 18 '12 at 22:11
    
@Patrioticcow, if it isn't clear, the image needs to be at its own URL, you can't embed it in the page. –  Mark Ransom Jul 18 '12 at 22:42

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.