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Is it possible to load a image using:

<img src="image.php?image_id=1">

?

for image.php:

$image_id = $_GET['image_id']; 
echo "image".$image_id.".png"; 
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Don't you mean src? I just corrected it. –  Shamim Hafiz May 17 '11 at 8:56
    
answer to your question is yes –  Loz Cherone ツ May 17 '11 at 8:57
    
Are you sure you want to use server's resources to read then echo an image? I wouldn't be so sure about that... –  Bogdan Constantinescu May 17 '11 at 9:34
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6 Answers

up vote 5 down vote accepted

you must return a valid image, use file_get_contents or readfile for get the conent of image then output to browser

 header("Content-Type:image/png");

    $image_id = $_GET['image_id']; 

    if(is_file($file = "image".$image_id.".png") ||  is_file($file = "no_image.png"))
        readfile($file); 
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1  
Don't serve up images with a text/html content-type. –  Quentin May 17 '11 at 8:59
1  
output still needs the headers –  Loz Cherone ツ May 17 '11 at 8:59
    
Or, if this is not to hide the true image location, or if the image is not created on the fly, one could easily use the Location header to redirect to the image. (If it's accessable through http) –  Yoshi May 17 '11 at 9:10
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If you have the png contents in the database, follow the other answers. If all you need is the id from the database, simply <img src="image<?=$image_id?>.png">

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No, this is not possible that way. You would have to write the contents of the image file to the output stream instead.

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Is it possible to load a image use: <img src="image.php?image_id=1">

Yes. URLs are URLs. It is content-type that determines content, not any characters in the URL itself.

$image_id = $_GET['image_id']; echo "image".$image_id.".png";

Not like that. You either have to read the image file in and then output it with a suitable content-type, or redirect (with a location header) to a static image.

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You have to change the header content-type and print the contents of the image file. Here is an example for your image.php file:

$image_id = $_GET['image_id']; 
$filename = "image".$image_id.".png"; 
header('Content-Type: image/png');
print file_get_contents($filename);
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one liner....

echo (file_exists($_GET['image_id'])) ? header("Content-Type:image/png").readfile($_GET['image_id']).die() : false;
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