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I wanted to echo an image every after 3 post via XML here is my code :

<?php
// URL of the XML feed.
$feed = 'test.xml';
// How many items do we want to display?
//$display = 3;
// Check our XML file exists
if(!file_exists($feed)) {
  die('The XML file could not be found!');
}
// First, open the XML file.
$xml = simplexml_load_file($feed);
// Set the counter for counting how many items we've displayed.
$counter = 0;
// Start the loop to display each item.
foreach($xml->post as $post) {
  echo ' 
  <div style="float:left; width: 180px; margin-top:20px; margin-bottom:10px;">
 image file</a> <div class="design-sample-txt">'. $post->author.'</div></div>
';

  // Increase the counter by one.
  $counter++;
  // Check to display all the items we want to.
  if($counter >= 3) {
    echo 'image file';
    }
  //if($counter == $display) {
    // Yes. End the loop.
   // break;
  //}
  // No. Continue.
}
?>

here is a sample first 3 are correct but now it doesn't loop idgc.ca/web-design-samples-testing.php

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1  
Please use the StackOverflow code formatting mode. Your code is not readable right now. –  Lennart Koopmann Jun 1 '09 at 19:10
    
What is the question ? Also take a look to formating tools available in the textarea.. –  Boris Guéry Jun 1 '09 at 19:11
    
Suggest you change the question to something more descriptive like "Display image on every Nth loop" –  Greg B Jun 1 '09 at 19:17

6 Answers 6

up vote 71 down vote accepted

The easiest way is to use the modulus division operator.

if ($counter % 3 == 0) {
   echo 'image file';
}

How this works: Modulus division returns the remainder. The remainder is always equal to 0 when you are at an even multiple.

There is one catch: 0 % 3 is equal to 0. This could result in unexpected results if your counter starts at 0.

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Thanks it worked! –  kwek-kwek Jun 1 '09 at 19:18
    
another problem is that my lightbox doesn't worked anymore.... is there any xml php conflicts? –  kwek-kwek Jun 1 '09 at 19:28

use modulo to check if the counter is a multiple of 3.

E.g.

// this isn't php but you should be able to get it
int x =3;

for(int i=0; i<10; i++)
{
    if(i%x == 0)
    {
        // display image
    }
}

http://en.wikipedia.org/wiki/Modulo http://uk3.php.net/manual/en/language.operators.arithmetic.php

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every 3 posts?

if($counter % 3 == 0){
    echo IMAGE;
}
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Going off of @Powerlord's answer,

"There is one catch: 0 % 3 is equal to 0. This could result in unexpected results if your counter starts at 0."

You can still start your counter at 0 (arrays, querys), but offset it

if (($counter + 1) % 3 == 0) {
  echo 'image file';
}
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How about: if(($counter % $display) == 0)

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I am using this a status update to show a "+" character every 1000 iterations, and it seems to be working good.

if ($ucounter % 1000 == 0) { echo '+'; }
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