Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have two lists in a dialog - one bubble count list and one thumbs list. The bubble count list looks fine, but the thumbs list is displayed as separate list items.

enter image description here

I'm not used to writing the html output this way, maybe I'm missing something simple. The code for the bubble count list is below "//assign movie folder to child" and the code for the thumbs list is below "//display image count, encode url path":

private function _makeoutput($folder_index) {

$html = '';

    $query = 'dir§'.$this->session->userdata('uid').'§'.$folder_index;

    //api query, create listview for images
    if($xml = $this->api->query($query)){
    $xml = simplexml_load_string($xml);
    $html .= '<ul data-role="listview" data-inset="true" text-align:center;>';

    //assign movie folders to child
    foreach($xml->COM->MOVIE_FOLDER as $child){
       $html .= '<li>';
       //count number of images in each root folder
       $bubble_count = $child->MOVIE->count();
       $html .= '<a href="'.$child->attributes()->indexI.'" data-rel="dialog" data-transition="slide">'.$child->attributes()->nameS.'<span class="ui-li-count">'.$bubble_count.'</span></a>';
       $html .= ' </li>';
    }
    $html .= '</ul>';

    //display image count, encode url/path
    for($i = 0, $c = $xml->COM->MOVIE->count(); $i < $c; $i++ ){
        $html .= '<ul data-role="listview" class="ui-listview" data-inset="true">';
        $html .= '<li>';
        $html .= '<a>
        <img src="https://[url]'.rawurlencode($this->_decode_path($xml->COM->MOVIE[$i]->attributes()->dbIcoFilename)).'" id="imgThumb" alt="'.$xml->COM->MOVIE[$i]->attributes()->nameS.'" />
        <h1>'.$xml->COM->MOVIE[$i]->attributes()->nameS.'</h1>
        </a>';
        $html .= ' </li>';
        $html .= '</ul>';
    }
    }
    else{
    $data['output'] = $this->_makeoutput($folder_index);
    }
return $html;
}
share|improve this question

2 Answers 2

up vote 2 down vote accepted

first off.. Why 'private'?

the issue at hand is you need the ul tag outside of the for loop else you generate new lists (and that's what you're seeing):

$html .= '<ul data-role="listview" class="ui-listview" data-inset="true">';
for($i = 0, $c = $xml->COM->MOVIE->count(); $i < $c; $i++ ){

    $html .= '<li>';
    $html .= '<a>
    <img src="https://[url]'.rawurlencode($this->_decode_path($xml->COM->MOVIE[$i]->attributes()->dbIcoFilename)).'" id="imgThumb" alt="'.$xml->COM->MOVIE[$i]->attributes()->nameS.'" />
    <h1>'.$xml->COM->MOVIE[$i]->attributes()->nameS.'</h1>
    </a>';
    $html .= ' </li>';

}
$html .= '</ul>';
share|improve this answer
    
+1 : same answer as me :) –  Th0rndike Apr 5 '12 at 9:08
    
Silly newbie mistake, I suppose. Thanks! Why not private? –  Karin Apr 5 '12 at 9:39
    
private function is not valid javascript (yet). private IS a reserved keyword, but it is reserved for future implementation javascript.about.com/library/blreserved.htm –  VDP Apr 5 '12 at 11:18

The problem is that you are creating new ul for each image. In this loop:

     //display image count, encode url/path
for($i = 0, $c = $xml->COM->MOVIE->count(); $i < $c; $i++ ){
    $html .= '<ul data-role="listview" class="ui-listview" data-inset="true">';
    $html .= '<li>';
    $html .= '<a>
    <img  src="https://[url]'.rawurlencode($this->_decode_path($xml->COM->MOVIE[$i]->attributes()->dbIcoFilename)).'" id="imgThumb" alt="'.$xml->COM->MOVIE[$i]->attributes()->nameS.'" />
    <h1>'.$xml->COM->MOVIE[$i]->attributes()->nameS.'</h1>
    </a>';
    $html .= ' </li>';
    $html .= '</ul>';
}

Create the ul outside the loop, so each li is put inside the same unordered list

share|improve this answer
    
+1 : same answer as me :) (I was first :p) –  VDP Apr 5 '12 at 9:10
    
only 33 seconds, but yeah, you were :) –  Th0rndike Apr 5 '12 at 9:10
    
Doh! of course, thanks! –  Karin Apr 5 '12 at 9:38
    
And +1 to both of you. –  Karin Apr 5 '12 at 9:43

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.