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When performing a block like:

<% @user.favoured_user.each do |user| %>

  <li><%= user.name  %></li>

<% end %>

With the favoured_user method returning a limit of 5 users, how would I manipulate the block so that even when there are only 3 users available, I could still return 5 li elements?

I'm guessing a helper would come in to play, and maybe the 'first, second, third, etc.' array methods, but I can't think how to write it.

Any help?

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2 Answers 2

up vote 2 down vote accepted

You can try this,

<% 5.times do |i| %>
     <li> <%= @user.favoured_user[i].try(:name) %> </li>
<% end %>
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Only one of the five users is being shown, and then 4 blank li elements? –  Darcbar Feb 24 '12 at 19:53
    
it should work as it is, is your @user.favoured_user generating an array of 5 ? –  Rishav Rastogi Feb 24 '12 at 20:07
    
Yes it's generating the array as the method in my first post works fine, the changes you made still return only the first user. –  Darcbar Feb 24 '12 at 20:15
    
It does work!!! I was calling the wrong method which was returning one user, Thanks a lot Rishav. –  Darcbar Feb 24 '12 at 20:17

You can use in_groups_of

Like:

<% @user.favoured_user.in_groups_of(5).each do |favored_user| %>
  <% favored_user.each do |user| %>
    <li><%= user.try(:name)  %></li>
  <% end %>
<% end %>

The first 3 users will come through, and the last two entries will be nil

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in_groups_of produces an array-of-arrays so won't user be an array in your example? –  mu is too short Feb 24 '12 at 19:22
    
Your right, made minor modification above. –  Rob Di Marco Feb 24 '12 at 20:13
    
s/Your/You're/ :) You could also use in_groups_of(5).first.each in this case since favoured_user is specified to return at most 5. –  mu is too short Feb 24 '12 at 20:27
    
You're right again :) –  Rob Di Marco Feb 24 '12 at 21:59

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