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My website has an image in a certain place and when a user reloads the page he should see a different image on the same place. I have 30 images and I want to change them randomly on every reload. How do I do that?

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2  
how do you store the image path? database or from the file system? –  Lawrence Cherone May 27 '12 at 12:44
2  
in which language do you have those images; in js/php array, retrieve from database? also, what have you tried –  vlzvl May 27 '12 at 12:46
    
not from db. i just insert the pictures manually onto the page but when a user visit my site he see only one picture instead of all pictures. –  Umair Javed May 27 '12 at 12:47
    
$(document).ready(function() { $(".random-staff ul li").hide(); var elements = $(".random-staff ul li"); var elementCount = elements.size(); var elementsToShow = 1; var alreadyChoosen = ","; var i = 0; while (i < elementsToShow) { var rand = Math.floor(Math.random() * elementCount); if (alreadyChoosen.indexOf("," + rand + ",") < 0) { alreadyChoosen += rand + ","; elements.eq(rand).show(); ++i; } } }); –  Umair Javed May 27 '12 at 12:48
    
In PNG format.. –  Umair Javed May 27 '12 at 12:49

5 Answers 5

Make an array with the "picture information" (filename or path) you have, like

$pictures = array("pony.jpg", "cat.png", "dog.gif");

and randomly call an element of that array via

echo '<img src="'.$pictures[array_rand($pictures)].'" />';

Looks weird, but works.

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where i should make the array? in db? –  Umair Javed May 27 '12 at 12:53
1  
Before you guys ask: ;) => array_rand() gives back the INDEX KEY of an array, not the element itself ! see php.net/manual/en/function.array-rand.php –  Sliq May 27 '12 at 12:53
    
@UmairJaved: If the data is stored in a database, you would fetch it from the database into a PHP array. Then you can just randomly select from that array as in this answer. We don't know where/how your data is stored, though, so that's up to you. –  David May 27 '12 at 12:59
    
@UmairJaved to make this thing very simple and constructive: simply put the paths of your images directly into the php code, like in the above example. setting up a database etc might be a little bit too much for this situation. not sexy, but it will show you the way how to move forward. –  Sliq May 27 '12 at 13:01

The actual act of selecting a random image is going to require a random number. There are a couple of methods that can help with this:

You can think of the second function as a shortcut for using the first if you're specifically dealing with an array. So, for example, if you have an array of image paths from which to select the one you want to display, you can select a random one like this:

$randomImagePath = $imagePaths[array_rand($imagePaths)];

If you're storing/retrieving the images in some other way, which you didn't specify, then you may not be able to use array_rand() as easily. But, ultimately, you need to generate a random number. So some use of rand() would work for this.

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array_rand() just gives back the key/index, not the element itself. Correct me if i'm wrong, but i think oyur answer wouldnt work –  Sliq May 27 '12 at 12:52
    
@Panique: I think you may be right. Answer has been updated. Thanks! –  David May 27 '12 at 12:56
    
it worksss thankyou so much.... but how i can give another image path??? i am giving like this $images = glob("images/fb.png",GLOB_BRACE); $images = glob("images/ld.png",GLOB_BRACE); –  Umair Javed May 27 '12 at 13:11
    
@UmairJaved: What do you mean by "give another image path"? Do you mean just manually adding more image paths to the array returned by glob? You can add elements to an array, merge arrays together, etc. PHP has a lot of information about array manipulation: php.net/manual/en/language.types.array.php –  David May 27 '12 at 13:14
    
@david can you please give mein full code that how could i do this?? i am not clear that where i should store arayy??? i have given the path live lawrene said to me $images = glob("./images/*.{png,jpg}",GLOB_BRACE);like this.. now how i give the path of images??? –  Umair Javed May 27 '12 at 13:19

If you store the information in your database, you can also SELECT a random image:

MySQL:

SELECT column FROM table
ORDER BY RAND()
LIMIT 1

PgSQL:

SELECT column FROM table
ORDER BY RANDOM()
LIMIT 1

Best, Philipp

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Thank You so much .. it works!!! :) –  Umair Javed May 28 '12 at 8:56

An easy way to create random images on popup is this method below.

(Note: You have to rename the images to "1.png", "2.png", etc.)

<?php
//This generates a random number between 1 & 30 (30 is the
//amount of images you have)
$random = rand(1,30);

//Generate image tag (feel free to change src path)
$image = <<<HERE
<img src="{$random}.png" alt="{$random}" />
HERE;
?>

* Content Here *

<!-- Print image tag -->
<?php print $image; ?>

This method is simple and I use this every time when I need a random image.

Hope this helps! ;)

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it shows me 29 on my website.. :( no image.. –  Umair Javed May 27 '12 at 13:28
    
can you please elaborate your code??? –  Umair Javed May 27 '12 at 13:32
    
This piece of code should work. Make sure you have renamed the images like "1.png", "2.png", "3.png", etc. –  zeldarulez May 27 '12 at 13:52
    
ok i have folder named as images... make a code for this like how could i fetch from there?? –  Umair Javed May 27 '12 at 14:00
    
Sorry for the wait. But just change the path <img src="{$random}.png" alt="{$random}" /> to <img src="images/{$random}.png" alt="{$random}" />. –  zeldarulez May 30 '12 at 0:56

I've recently written this which loads a different background on every pageload. Just replace the constant with the path to your images.

What it does is loop through your imagedirectory and randomly picks a file from it. This way you don't need to keep track of your images in an array or db or whatever. Just upload images to your imagedirectory and they will get picked (randomly).

Call like:

$oImg = new Backgrounds ;
echo $oImg -> successBg() ;


<?php

class Backgrounds
{

  public function __construct()
  {
  }

  public function succesBg()
  {  
    $aImages = $this->_imageArrays( \constants\IMAGESTRUE, "images/true/") ; 
    if(count($aImages)>1)
    {
      $iImage   = (int) array_rand( $aImages, 1 ) ;
      return $aImages[$iImage] ;
    }
    else
    {
      throw new Exception("Image array " . $aImages . " is empty");
    }
  }


  private function _imageArrays( $sDir='', $sImgpath='' )
  {
    if ($handle = @opendir($sDir)) 
    {
      $aReturn = (array) array() ;
      while (false !== ($entry = readdir($handle))) 
      {
        if(file_exists($sDir . $entry) && $entry!="." && $entry !="..")
        {
          $aReturn[] = $sImgpath . $entry ;
        }
      }
      return $aReturn ;
    }
    else
    {
      throw new Exception("Could not open directory" . $sDir . "'" );
    }
  }

}

?>
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