2

Why does Dialyzer check only the first case of the function?

-spec f(integer()) -> integer().
f(0) -> 0;
f(_) -> test.

Proceeding with analysis... done in 0m0.25s done (passed successfully)

The version with "case" also passes the check:

-spec f(integer()) -> integer().
f(N) -> 
    case N of
      0 -> 1;
      _ -> test
    end.

Dialyzer version is 4.4.3

1
  • 2
    Although the example is in Elixir and not Erlang, this issue is quite similar. Using the missing_return flag should catch this.
    – sabiwara
    Jul 17 at 8:19

1 Answer 1

0

If passes, because you have just told it what the function is supposed to do. If you try and call the function with different arguments from the specification, then you would get a warning:

test() -> f(not_an_integer).

gives the dialyzer output:

   f.erl:8:13: The call f:f    
         ('not_an_integer') breaks the contract.   
          (integer()) -> integer()
4
  • This is ridiculous, but yeah, the typing takes usage into account
    – radrow
    Aug 5 at 6:46
  • Although, your answer doesn't explain why f(123) doesn't throw a warning
    – radrow
    Aug 5 at 6:49
  • ...because 123 is an integer? Aug 5 at 11:50
  • But test is not, which breaks the return type promise if you run f(123)
    – radrow
    Aug 5 at 13:42

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