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I am not sure how I do this, But baiscly what I want is to show an error message if the user does not have any friends. asking them to add some friends.

The PHP part of this code is returning [false] instead of the error message when it cant find any results in the first mysql.

Here is my jquery code

function fetchfriends(){
$.getJSON('sys/classes/core.php?task=fetchfriends&userid='+sessionparts[1], function(data) {



$.each(data, function(key, val) {
    if(val.error)
    {
    $('<div class="myfriendsbar">'+val.error+'</div>').appendTo('#mycontacts');
    return false;
    }
    else
    {

    $('<div class="myfriendsbar"><div id="friendsimage'+val.to_userid+'" style="width:32px; height:32px; float:left; margin:3px;"></div>'+val.firstname+' '+val.lastname+'<br/>'+val.username+'</div>').appendTo('#mycontacts');

    $('#friendsimage'+val.to_userid).css("background-image", "url(http://bonush.com/beta/sys/classes/photofetch.php?pic="+val.to_userid+":9177156176671)"); 

    }
  });


    });

and this is the PHP code

$number_check = mysql_query("SELECT * FROM user_contact WHERE from_userid = '{$this->userid}'");

    if(!mysql_num_rows($number_check))
    {

            $arr = array('error' => "No Friends?<br/>Search above for New users or invite some friends.");
            print json_encode($arr);
    }
    else
    {
            $friendlook = mysql_query("%PRIVATECODE%");

            $row = mysql_fetch_assoc($friendlook);
            $rows[] = $row;
            print json_encode($rows);
    }
share|improve this question
1  
Bad formatting aside, you fail, in a fundamental sense, by not even stating what the error is. –  Grant Thomas Oct 5 '11 at 13:22
    
What's the error? –  Skilldrick Oct 5 '11 at 13:23
    
THE Error is that they have no friends on our site. we want them to invite new users –  RussellHarrower Oct 5 '11 at 13:23
5  
How is having no friends an error? For me it's a life choice. –  Grant Thomas Oct 5 '11 at 13:24
    
you just started something, got stuck and are requesting for someone to take a look at where you could be improving? can't help as i'm no php god, but it would help if you provide more info on what goes wrong, what works and where you run into problems –  Sander Oct 5 '11 at 13:27
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2 Answers 2

up vote 0 down vote accepted

the way i see it you don't need the each on your return data if there is an error, first check for an error then if its not available run an each on it to print the friends...

function fetchfriends(){
$.getJSON('sys/classes/core.php?task=fetchfriends&userid='+sessionparts[1], function(data) {
    if(data.error)
    {
        // your data is an array of friends, unless you have an error, then it is no array, so no need for the each to print the error.
        $('<div class="myfriendsbar">'+data.error+'</div>').appendTo('#mycontacts');
        return false;
    }
    else
    {
        //only when data.error does not exist it is filled as an array of friends you return i presume... 
        $.each(data, function(key, val) {
            $('<div class="myfriendsbar"><div id="friendsimage'+val.to_userid+'" style="width:32px; height:32px; float:left; margin:3px;"></div>'+val.firstname+' '+val.lastname+'<br/>'+val.username+'</div>').appendTo('#mycontacts');
            $('#friendsimage'+val.to_userid).css("background-image", "url(http://bonush.com/beta/sys/classes/photofetch.php?pic="+val.to_userid+":9177156176671)"); 
        });
    }
});
share|improve this answer
    
Thank You! Very MUCH –  RussellHarrower Oct 5 '11 at 23:22
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In the "error" state, the JSON result will look like this:

{
  "error": "No friends? ... etc."
}

So when you do $data.each you'll get one iteration where key is "error" and val is "No friends? ..." etc. So, when you do val.error you're accessing the error property of a string, which doesn't exist.

share|improve this answer
    
for some reason the PHP code is returning [false] –  RussellHarrower Oct 5 '11 at 13:27
    
@RussellHarrower Well, that's some useful information that should be in the question. The question is about the PHP, not the jQuery. –  Skilldrick Oct 5 '11 at 13:28
    
Sorry I only just found that out, after I wrote this questions. –  RussellHarrower Oct 5 '11 at 13:30
    
The first thing to do when debugging JSON is to view the JSON - assuming you know what it will look like is always a problem. –  Skilldrick Oct 5 '11 at 13:46
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