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I'm kinda confused right now with this function I'm trying to edit. I would like to add the mysql_fetch_array to the feedback string. I'm pretty sure it's possible but can somebody point out the problem for me? The piece of code I'm trying to execute is in comments. And where's PRINTHERE, that where I want the mysql_fetch_array to spit out the results. Thx a lot!

foreach($_FILES as $k => $v){ 

    $img_type = "";

    ### $htmo .= "$k => $v<hr />";  ### print_r($_FILES);

    if( !$_FILES[$k]['error'] && preg_match("#^image/#i", $_FILES[$k]['type']) && $_FILES[$k]['size'] < $max_image_size ){

        $img_type = ($_FILES[$k]['type'] == "image/jpeg") ? ".jpg" : $img_type ;
        $img_type = ($_FILES[$k]['type'] == "image/gif") ? ".gif" : $img_type ;
        $img_type = ($_FILES[$k]['type'] == "image/png") ? ".png" : $img_type ;

        $img_rname = $_FILES[$k]['name'];
        $img_path = $upload_dir.$img_rname;

        copy( $_FILES[$k]['tmp_name'], $img_path ); 
        if($enable_thumbnails) make_thumbnails($upload_dir, $img_rname);
        /*
        mysql_connect("localhost", "", "") or die(mysql_error());
        mysql_select_db("");        
        $result = mysql_query("SELECT * FROM gallery_main ORDER BY datetime DESC");
        while($row = mysql_fetch_array($result))
          {
            $name=$row['name'];
            echo "<option value='$name'>$name</option>";
          }
         */ 
        $feedback .="<style>.stap1{display:none;}.stap2{display:block;}</style>
        <input name='src' style='width:400px;' type='hidden' value=\"$img_rname\"><br />
        <input name='thumbsrc' style='width:400px;' type='hidden' value=\"thumb_$img_rname\"><br />
        <select name='galleryname' id='galleryname'>PRINTHERE";
    }
}
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Are you the Andrew Ng of Stanford machine learning fame? –  hackartist Feb 19 '12 at 0:00
1  
No, Im not. Just another guy with same name. hehehe –  Andrew Ng Feb 19 '12 at 0:13

1 Answer 1

up vote 1 down vote accepted

Instead of echoing, store the results into a variable, like you did with $feedback.

$options = '';

while($row = mysql_fetch_array($result)) {
    $name=$row['name'];
    $options .= "<option value='$name'>$name</option>";
}

Then, append to $feedback

$feedback .= "<style>.stap1{display:none;}.stap2{display:block;}</style>
        <input name='src' style='width:400px;' type='hidden' value=\"http://www.djpassa.com/gallery/$img_rname\"><br />
        <input name='thumbsrc' style='width:400px;' type='hidden' value=\"http://www.djpassa.com/gallery/thumb_$img_rname\"><br />
        <select name='galleryname' id='galleryname'>" . $options;

Also, you need to select a database.

mysql_select_db("database_name");   
share|improve this answer
    
Hmm somehow it's still not working i've added the whole php file to this address: codepad.org/Y505gazf –  Andrew Ng Feb 19 '12 at 0:20
    
it starts at line 76 –  Andrew Ng Feb 19 '12 at 0:26
    
Assuming your query is correct and retrieves at least 1 result, you need to select a database. –  Josh Feb 19 '12 at 0:27
    
I've removed the info for security reasons. Even with the correct login info it wont parse the list out. Any more clues??? –  Andrew Ng Feb 19 '12 at 0:37
    
Can you confirm any content is concatenated to $feedback? If there is none, then there may be an issue with your SQL credentials or query. Also, add </select> to close off the select tag, but this shouldn't make a difference. –  Josh Feb 19 '12 at 0:43

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