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success: function(usernames){
           //alert(usernames); ["adam","adam","adam","adam","adam"]
           //alert(usernames.length); 36
           var participants_list= eval(usernames); //adam,adam,adam,adam,adam
           //alert(participants_list.length);5
           var username= '';
           for(var i=0; i<participants_list.length; i++){

               username += participants_list[i] + "\n";

           }
           $("#usernames").html(username);
       }
    });

I am trying to add line breaks to #usernames so that each adam will be displayed on a new line but I don't know how to do it. Thanks.

<td><div id="usernames">cindy</div></td>
share|improve this question
5  
You can either use <br/> generally a bad practice or modify the HTML structure in a way that makes sense: <ul id="usernames"><li>cindy</li><li>adam</li></ul> You can then use CSS to change how this would be displayed. –  Shmiddty Aug 21 '12 at 17:58
    
Would it be a better way if I can somehow create a new tr/td with each "adam"? You got some pointers? –  Jian Short Aug 21 '12 at 18:03
1  
You should generally be avoiding tables like Jersey Shore. –  sudowned Aug 21 '12 at 18:06
2  
That would depend on the purpose of this display. Generally speaking, tables should be used only for tabular data. So yes, it could be appropriate to generate a new row for each User. If you're just listing the users, it is better to use a list. <ul> or <ol> –  Shmiddty Aug 21 '12 at 18:08

2 Answers 2

up vote 3 down vote accepted

You'll want to wrap each user name in a block level element to force them onto their own separate lines. For instance,

username = "<p>" + participants_list[i] + "</p>";

Perhaps even better in your case would be

username = "<tr class='user'><td>" + participants_list[i] + "</td></tr>";

$("your table id or class").append(username);
share|improve this answer
    
Would it be a better way if I can somehow create a new tr/td with each "adam"? You got any ideas? –  Jian Short Aug 21 '12 at 18:06
    
thanks. I haven't thought of that. lol. –  Jian Short Aug 21 '12 at 18:15

Not to critisize you, but please allow me to improve your code a little:
- try avoiding the use of eval. eval is evil! In stead you should always try to return valid data by using jsonencode or serialize on the server side.
- in stead of building that for loop, it would be much easier to use the .each() function in jQuery

Your code would become something like this:

jQuery.each(usernames, function(index, value) {
  $('#usernames').append($('<tr><td>' + value + '</td></tr>'));   
});

I set up a small example for you here: http://jsfiddle.net/YsrWs/

Hope this helps!

share|improve this answer
    
Hi I am very glad to have someone to help me improve my coding skills. Thanks! –  Jian Short Aug 21 '12 at 18:46
    
I did use json_encode on my php page. Is this what you mean? –  Jian Short Aug 21 '12 at 19:00
1  
jep, if you tell the ajax call that it should expect json as dataType your eval should be not required. –  PeterVR Aug 21 '12 at 19:06
1  
thanks I learn another new thing again :-) –  Jian Short Aug 21 '12 at 19:11

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