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Is there a way to present a large record set in JSON format without consuming large amount of memory? For example I have the following query:

...
records = Records.where(query)
respond_to do |format|
  format.html
  format.json  { render :json => records.to_json }
end

There are times that records will contain thousands of entries and JSON is strictly used for getting the data without using pagination and such data must fit inside the memory for it to be returned. A Record entry will also contain a lot of fields (I am using MongoDB/Mongoid) and it is necessary to include such fields.

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1 Answer 1

It's almost always a bad idea to return every resource in a database.

You can respond with limited set of results and provide total number of records.

For example:

{
  total: 503
  records: [
    { id: 1 },
    { id: 2 }
  ]
}

And add possibility to use limit and offset parameters to iterate through all pages.

There is chapter named Pagination and partial response in free e-book Web API Design describes it.

I would recommend you to read that book. It contains only 30 pages.

upd: In your case you are able to paginate results using limit and skip mongoid's methods.

records = Records.where(query).limit(params[:limit]).skip(params[:offset])
respond_to do |format|
  format.html
  format.json  { render :json => { total: records.count, records: records }.to_json }
end
share|improve this answer
    
Um, I cannot use limit and offset since I am returning the data in JSON format not in paginated form –  nyde1319 Feb 28 '13 at 6:37
    
why not? I've added mongoid explanation –  ck3g Feb 28 '13 at 6:48
    
I mean, the requirement is that all matching records will have to be presented in plain JSON format. –  nyde1319 Feb 28 '13 at 6:52
    
OK, I tried to just reduce the fields that I am returning. But I am just confused about the eager/lazy loading of Mongoid. If one of the records references a another model with many documents, are these also being loaded into the memory too? –  nyde1319 Feb 28 '13 at 8:13

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