I have a Record struct and a Map struct like:

defmodule Foo.Bar do
  defstruct boo: nil, baz: nil
end

defmodule Foo do
  require Record
  Record.defrecord :bar, Foo.Bar, [boo: nil, baz: nil]
end

I can convert the Record to Map like this:

defp update_map({k, v}, map), do: Map.update!(map, k, fn(_) -> v end)
defp rd2map(rd) do
  Foo.bar(rd) |> Enum.reduce(%Foo.Bar{}, &update_map/2)
end

But how can I convert the Map to a Record?

  • For those who might see this question and look no further: Elixir records are deprecated. They're only present to allow Elixir to work with Erlang records. – Onorio Catenacci Mar 6 '15 at 13:28
up vote 12 down vote accepted

Elixir Records are deprecated. The Record module that now exists in Elixir is only used for two things:

  1. to work with short, internal data
  2. to interface with Erlang records

This means you should probably not be using them unless you are trying to extract record information from an Erlang file.

Regarding your original question, here's how I would convert Erlang Records and Elixir Structs back and forth. Once you realize that a struct is just a Map that contains __struct__: Foo.Bar, and that a Record ist just a tuple that starts with {Foo.Bar, ...} it's pretty straightforward. The only tricky bit is that the information about the record fields is only available at compile time. Therefore, there is no dynamic way of building a record by default. As far as I know, you can only work around this by storing the field definitions somewhere, and use it to generate the struct and record definition. Later, the same source is re-used to build an ordered tuple with default values (i.e. the record). Remember, you really shouldn't use records. So, be warned: ugly hacks ahead ;-)

defmodule Foo.Bar do
  @fields [boo: nil, baz: nil]
  def fields, do: @fields
  defstruct @fields
end

defmodule Foo do
  require Record
  Record.defrecord :bar, Foo.Bar, Foo.Bar.fields
end

defmodule Foo.Utils do
  require Foo

  def record_to_struct(record) do
    [{:__struct__, Foo.Bar} | Foo.bar(record)] |> Enum.into(%{})
  end

  def struct_to_record(struct) do
    map = Map.from_struct(struct)
    for {key, default} <- Foo.Bar.fields, into: [Foo.Bar] do
      Dict.get(map, key, default)
    end |> List.to_tuple
  end
end
  • Edit: I eliminated the extra helper module and added Foo.Bar.fields/1 instead. Inside the Foo.Bar module, we can use the module attribute @fields. – Patrick Oscity Mar 6 '15 at 14:02
  • Is it considered good style to rely on the tuple representations of records in Erlang/Elixir? – Flow Sep 9 '15 at 20:01
  • I'd say its up to you. For very simple tuples like date/time from erlang I'd use them directly as they are reasonably small and unlikely to change. For anything more complicated, or subject to future changes, I'd stick withe the method that @JoseValim linked to in his answer. – Patrick Oscity Sep 9 '15 at 21:01

All the disclaimers and information by Patrick is correct. You can't solve the problem at runtime without annotating the fields.

You can, however, solve this issue at compile time if you are converting from an Erlang record (which is mostly the only reason for using them). We do it on Elixir source code to convert Erlang's #file_info{} into %File.Stat{}:

https://github.com/elixir-lang/elixir/blob/master/lib/elixir/lib/file/stat.ex

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