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In our rails 3.2.12 app, there is situation in which two variables (stored a subset of a table with the same data structure) returned and need to be combine to be rendered in index view. Let's take @project1 and @project2 for example. Both @project1 and @project2 have a subset of data retrieved from project table. Before rendering, a few things needs to be done:

1. merge @project1 and @project2 into @project
2. get rid of duplicate record in @project. like @project.uniq
3. render @project as json

For merge, we probably can do @project = @project1.to_json + @project2.to_json. Then @project is a json object.

How to get rid of identical records in @project? We don't know how to do.

For rendering @project, can we do render :json => @project in controller index (response_to do |format| format.json { render :json => @project })?. Can we use the same index.html.erb to render json @project without any change (we have a helper method applied to each of @project in index view)?

Can someone comment on the steps above (working or not) and shed the light on how to get rid of duplicate records in a json object?

Also is there any solution like @project = @project1 + @project2 existing? That's may be a wild imagination.

Thanks for the help.

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What do you mean by "get rid of identical records in @project?" –  Fred Apr 2 '13 at 21:48
    
For example, if project id 1 is in both /@project1 and /@project2, only one copy of project id1 needs to present and another identical copy needs to be removed in @project. –  user938363 Apr 2 '13 at 22:11

1 Answer 1

up vote 1 down vote accepted

Turn the record objects into hashes and then merge the hashes.

h1 = @project1.attributes;
h2 = @project2.attributes;
@project.attributes = h1.merge(h2);

Added: correct answer was found after some exchange in comments below.

@project = @project1.merge(@project2).uniq
share|improve this answer
    
h1.merge(h2) == h2 return true. Only one hash left. Not working. –  user938363 Apr 2 '13 at 23:45
    
h1.merge(h2) returns a hash that has all the keys in h2 and their value, plus any keys in h1 that are not in h2 and their values. If you are finding h1.merge(h2) == h2, then h1 had no keys not found in h2. If you want different behavior, please explain what behavior you want. –  Fred Apr 3 '13 at 17:03
    
Ah! I see what (I think) you want in the edited question. Let me think a bit... –  Fred Apr 3 '13 at 18:12
    
Is uniqueness determined only by the record id? In other words, if record p1 has id 50, record p2 has id 55, and record p3 has id 50 (and so is a duplicate of p1), and records p2 and p1 are identical except for the id field, should the union be only record p1, or should it be p1 and p2? –  Fred Apr 3 '13 at 18:21
    
yes, uniq record id means they are not the same. The records stored in variables are pulling from the same table and share the exact same structure. –  user938363 Apr 4 '13 at 17:42

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