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Possible Duplicate:
PHP: Obtaining Image Size

I have a directory called images, containing - surprise! - images in .jpg format.

Is it possible to determine the width and height of the image with PHP, and output these two values inside the img tag?

How can this be done, if yes?

More specifically, I have this:

while ($row = mysqli_fetch_array($r, MYSQLI_ASSOC)) { $image = $row['image_directory'] . '/' . $row['image'];

the $image variable now contains returns something like images/image1.jpg.

How can I apply getimagesize() function to that variable, receive width and height as two separate variables, and access those variables to output them within html tag?

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marked as duplicate by Ja͢ck, Charles, NullPoiиteя, Michael Berkowski, tereško Dec 12 '12 at 6:13

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
Also, feel free to try our search feature. – Ja͢ck Dec 12 '12 at 3:39
    
Thanks! I promise to give it a try! – Dimitri Vorontzov Dec 12 '12 at 3:44

Try getimagesize() it will give you the height and width http://php.net/manual/en/function.getimagesize.php

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Could you please show me, Rob? (Please see the edit in the body of the question.) – Dimitri Vorontzov Dec 12 '12 at 3:38
    
@DimitriVorontzov, there's example code on the manual page. Go read it. – Charles Dec 12 '12 at 3:39
    
There is an example in the link i pasted. We are not here to write your code for you. – Rob Dec 12 '12 at 3:39
    
Thank you Rob. I would gladly write a code for you if you asked, but I understand that you may be busy, so no problem. – Dimitri Vorontzov Dec 12 '12 at 3:45
up vote 0 down vote accepted

As there was no specific answer that I was looking for, and someone may be looking for similar information sometime in the future, I feel it would be fair if I unswer my own question.

So, I had this code:

while ($row = mysqli_fetch_array($r, MYSQLI_ASSOC)) { 
  $image = $row['image_directory'] . '/' . $row['image'];

To get the image info I need, I ended up using this simple bit of code:

$size = getimagesize ($image);

And to output the image with the corresponding width and height tags, I used this:

echo '<img src="'. $image . '" ' . $size[3] . ' />';

I agree that my question and answer can be perceived as duplicates of a couple of questions asked and answered in the past, but small nuances is what's important here. Hope my answer can help someone.

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