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I'm trying to echo the width and height of an image into a looping array I have. Everything other than the width and height seems to be there. The images are displayed in a carousel that I have. For the carousel to work properly it likes to have the image width and height. I don't want to enter manual values and distort the images!!

Here is a snippet of my code.

 <?php do {
 $image = $_SERVER['DOCUMENT_ROOT'].$row_rs_imgpath['userimagespath'].$row_rs_smimg['thumbfile'];
 $x= imagesx($image);
 $y = imagesy($image);

 ?>


    <img src="<?php echo $row_rs_imgpath['userimagespath'].$row_rs_smimg['thumbfile']; ?>" alt="<?php echo $row_rs_smimg['imgname']; ?>" width="<?php echo $x;?>" height="<?php echo $y;?>" />


 <?php } while ($row_rs_smimg = mysql_fetch_assoc($rs_smimg)); ?>

And when you view the page source code you get the following:

<img src="/images/uploads/my-future-car-1358783315_thumb.jpg"width="" height="" />
<img src="/images/uploads/albert_docks_liverpool-1358872736_thumb.jpg" width="" height="" />

I have also tried

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

but that doesn't work either. Any ideas would be appreciated!

share|improve this question
    
You forgot to put a few code blocks in. Using the filename for the alt is extremely annoying for those that need it –  Ryan B Jan 22 '13 at 19:03
    
@RyanB the alt is the name of the image not the file name but yes I did forget to output it –  Daniel Robinson Jan 22 '13 at 19:08
    
It's totally okay to post your own answer, and then accept it as the solution! That way future searchers will learn from what you did. –  Nate Cook Jan 22 '13 at 19:08
    
@NateCook brill ill do that in future thanks nate –  Daniel Robinson Jan 22 '13 at 19:15

4 Answers 4

up vote 1 down vote accepted

Did you try using the full path to your file, when using getimagesize()? It doesn't work when it couldn't find the image.

share|improve this answer
    
thank you I had not referenced the full path like I though I had. You have solved my problem I have been on for hour thank you very much. I have updated my question to the solved version. I needed the $_SERVER['DOCUMENT_ROOT'] function. –  Daniel Robinson Jan 22 '13 at 19:12
    
I'm glad! You're welcome! –  joaobarbosa Jan 23 '13 at 13:04

imagesx and imagesy work on image resources, not file names. That line of code with getimagesize is the right one, but the way you're addressing images will only work in a browser, not in the file system.

/images/image.gif will work in the browser, but you need either a relative path (../../images/image.gif) or a file-system specific path (/users/joe/www/images/image.gif) for the getimagesize function to find the right file.

share|improve this answer
    
thanks for the answer. I have solved the issue and updated my code accordingly. –  Daniel Robinson Jan 22 '13 at 19:13

Get image size from Image object:

$source = imagecreatefrompng(...);
$width = imagesx($source);
$height = imagesy($source);

For imagesx and imagesy function, you need to pass a resource, not string like you are doing.

Get image size from path:

$size= getimagesize('sample-image.jpg');
$width = $gis[1];
$height = $gis[1];

Or

list($width, $height) = getimagesize($filename)
share|improve this answer

Your current $image is a string. The functions you are trying to use are meant to be used on a resources from the GD library.

The easier way to do things, if you just need the dimensions, is to not use the GD library at all (it's overkill for what you're doing). I would recommend using getimagesize. http://php.net/manual/en/function.getimagesize.php

$size = getimagesize($filename);
echo $size[0]; //width
echo $size[1]; //height
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