I'm trying to insert an invoice struct along with its associated invoice items. I'm able to insert the invoice data, and call an anonymous function to validate, cast, and insert each item. Since insert/2 does not produce a return, how can I get the invoice_id for the items while still being able to roll back the entire transaction if one item fails validation or insertion?

I've put the code in my own repo, here it is:

def insertassoc(params) do
 Repo.transaction(fn ->    
  i = Invoice.changeset(params["data"], :create)
    if i.valid? do
      Repo.insert(i)
    else
      Repo.rollback(i.errors)
    end

  insert_include = fn k ->
    c = InvoiceItem.changeset(k, :create)
    if c.valid? do
      Repo.insert(c)
    else
      Repo.rollback(c.errors)
    end
  end

  for include <- params["includes"] do
    insert_include.(Map.merge(include, %{"invoice_id" => ????}))
  end

 end)
end

and here is how I use it from my controller:

def create(conn, params) do
 case InvoiceRepo.insertassoc(params) do
  {:ok, x} ->
    json conn, Map.merge(params, %{"message" => "OK"})
  {:error, x} ->
    json conn |> put_status(400), Map.merge(params, %{"message" 
    => "Error"})
 end
end

There aren't many up to date examples out there with Ecto, so sorry if these are noob questions ;-). Anyone have an idea? I tried putting the invoice insert in a private function, and using a case block to determine whether the main transaction should roll back, but I couldn't figure out how to get the invoice id back from that either.

up vote 27 down vote accepted

Repo.insert/1 actually returns the model you have just inserted. You also want to decouple the validation from the transaction handling as much as possible. I would suggest something as follows:

invoice = Invoice.changeset(params["data"], :create)
items   = Enum.map(params["includes"], &InvoiceItem.changeset(&1, :create))

if invoice.valid? && Enum.all?(items, & &1.valid?) do
  Repo.transaction fn ->
    invoice = Repo.insert(invoice)
    Enum.map(items, fn item ->
      item = Ecto.Changeset.change(item, invoice_id: invoice.id)
      Repo.insert(item)
    end)
  end
else
  # handle errors
end
  • Thank you, this is much more elegant. BTW, for those who will use this, here's how I handled the errors for them to be encoded into JSON: errors = Enum.map(items, & (&1.errors)) |> Enum.into([invoice.errors]) |> Enum.map(& (Enum.into(&1, %{}))){:errors, errors} – Dania_es Mar 29 '15 at 17:02
  • 2
    The API has changed now so that Repo.insert should be replaced with Repo.insert! to return the model or raise an error inside the transaction. – Arrel Mar 4 '16 at 0:25
  • 3
    On top of that, Ecto now also supports put_assoc which allows you to change the parent schema alongside its children, and that would make the code above much cleaner! – José Valim May 8 '16 at 20:20
  • @JoséValim - Could you please help elaborate how put_assoc will make the code simpler? I am trying to insert a model and its association at the same time. Model A has many Model Bs. I was thinking creating changesets for Model A and a changeset for model B and providing modelA's change set in put_assoc will do it. Nope. Didn't work. For example - csModelA = %ModelA{} |> change |> ModelA.create_changeset(params) and csModelB = %ModelB{} |> change |> put_assoc(:modelA, csModelA) |> ModelB.create_changeset. This barfs when adding model B complaining that the foreign key is not there – sat Aug 8 '16 at 19:40

In Ecto 2.0 you would be doing something like:

%My.Invoice{}
|> Ecto.Changeset.change
|> Ecto.Changeset.put_assoc(:invoice_items, [My.InvoiceItem.changeset(%My.InvoiceItem{}, %{description: "bleh"})])
|> My.Repo.insert!

(The accepted answer works pre 2.0, also, Valim mentions in the comments of that answer of the existence of put_assoc)

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.