Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I am currently creating an e-commerce website where I retrieve the vehicle details from the database and search for its image in a folder. I used the code below for searching the folder for the image, but it only show the name of the JPG file and not the image of it. Could anyone help to to determine how I could display the image of the vehicle

$imageName=$_POST['car'];
if ($handle = opendir('Images/$imageName')) {
   $dir_array = array();
   while (false !== ($file = readdir($handle))) {
  if($file!="." && $file!=".."){
$dir_array[] = $file;
}
}    
echo $dir_array[rand(0,count($dir_array)-1)];
 closedir($handle);
}
share|improve this question
    
you have to use normal HTML for this. eg. echo '<img src="'.$dir_array[rand(0,count($dir_array)-1)].'" />'; –  Rufinus Jun 9 '11 at 9:08
    
hi what im $imageName? Is the the image that you want to display? Is it unique for every image? –  Awais Qarni Jun 9 '11 at 9:11

3 Answers 3

up vote 2 down vote accepted

You have to put html tags around the result. Try:

echo "<img src='PATH_TO_IMAGE/".$dir_array[rand(0,count($dir_array)-1)]."'>";

where PATH_TO_IMAGE is the relative/absolute url address to your images folder

Ex

echo "<img src='/images/".$dir_array[rand(0,count($dir_array)-1)]."'>";

share|improve this answer

You need to print the path to the image inside an img HTML tag, otherwise it is just plain text.

echo '<img src="Images/' . $imageName . $dir_array[rand(0,count($dir_array)-1)] . '" alt="" />';

I hope you're doing some validation/sanitisation on $_POST['car'] somewhere?

share|improve this answer

Hmm... If you have the name of the JPG, use <img src="NAME_OF_THE_IMAGE.JPG" /> ...

share|improve this answer

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.