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i want to put some fields from my database into select options. Therefore i made a function, nl showProjects. I want to show these options but my form isn't showing that values. I don't know where my mistake is...

public function showProjects() {
    $db = new Db();
    $select = "SELECT project_title FROM tblprojects ORDER BY project_title ASC";
    $result = $db -> conn -> query($select);
    $option ="";
    while ($row = mysql_fetch_assoc($result)) {
        $option .= '<option  value = "' . $row['project_title'] . '">' . $row['project_title'] . '</option>';
    }   
    return $option;     
}

I want to show it in this way:

<div class="control-group">
    <label class="control-label" for="Bug_Project">Project</label>
    <div class="controls">
        <select name="Bug_Project" class="span5" >
        <?php if(isset($bug)) $bug->showProjects(); ?>
        </select>
    </div>
</div>
share|improve this question
    
you created $option but never printed it. Neither inside the function nor where you have called it. – Praveen Puglia May 9 '13 at 13:46

Unless you're using some kind of framework I have never seen, you need echo your results for them to be visible on the page.

<?php if(isset($bug)) echo $bug->showProjects(); ?>
share|improve this answer
    
Unfortunately it isn't working with the echo (I use twitter bootstrap for the css...) – Marnix Verhulst May 9 '13 at 13:48
1  
is the obj $bug set? – jtavares May 9 '13 at 13:52
1  
how about the mysql table? does it have values? can you check with mysql_num_rows()? – jtavares May 9 '13 at 13:54
1  
Did you try return "hello"; then? – woz May 9 '13 at 14:03
1  
'num_rows' => null your query is empty somehow. – jtavares May 9 '13 at 14:13

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