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I'm aware of how include? works, however not really clear using it with multidimensional array, or a hash (is this possible with a hash?)

For example, given I have a hash that looks like:

@user.badges => [{:id => 1, :name => 'blahh', :description => 'blah blah blah'}, {:id => 2, :name => 'blahh', :description => 'blah blah blah'}]

Can I see if it has an object with the id of 1 in it like this?

if @user.badges.include?(:id => 1)
  # do something
end

It doesn’t seem to work, how I can I write this method properly?

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1 Answer

up vote 8 down vote accepted

That's not valid Ruby syntax. You want:

@user.badges.any? { |b| b[:id] == 1 }
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Thanks bob! I guess it was wishful thinking that I could treat any hash as an array. –  Joseph Silvashy Nov 15 '09 at 9:11
1  
Well, the syntax you used was wrong for two reasons. First (:id => 1) does not resolve to an expression (or anything else for that matter). And second, you called Array#include?, rather than Hash#include?. And finally, Hash#include? is merely an alias for Hash#has_key? –  Bob Aman Nov 15 '09 at 9:16
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Actually, the (:id => 1) part is syntactically valid. Ruby recognizes this as a shortcut for ({:id => 1}), as you can see if you do badges.include?(:id => 1, :name => 'blahh', :description => 'blah blah blah'), which will return true. So the problem here, more precisely, was that Array#include? only does exact matching of elements, and you were trying to do a partial match. Thus any?, because you get to pass it a block instead of just a value. If you needed to return the matching hash, instead of just checking if one exists, you'd replace the any? with find. –  glenn mcdonald Nov 15 '09 at 19:19
    
I was thinking that he was trying to do: {:id => 1, :name => 'blahh', :description => 'blah blah blah'}.include?(:id => 1), and didn't notice that the syntax was still valid despite the assumed intent. You're right: if a :id => 1 appears as an argument to a method, it's assembled into a Hash and passed in as the last parameter. However, just to be clear, this is still not valid syntax outside of a method call. –  Bob Aman Nov 15 '09 at 20:45
    
any? was the route I went with, thanks for the help you guys! –  Joseph Silvashy Nov 15 '09 at 21:28
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