16

Why isn't Result<()> allowed when compiling this bit of Rust code? Is it a breaking change between Rust editions?

fn run() -> Result<()> {
    let (tx, rx) = channel();

    thread::spawn(move || {
        do_things_with_tx(&exit_tx);
    });

    match exit_rx.recv() {
        Ok(result) => if let Err(reason) = result {
            return Err(reason);
        },
        Err(e) => {
            return Err(e.into());
        },
    }

    Ok(())
}

The compiler says:

error[E0107]: wrong number of type arguments: expected 2, found 1
    --> src/main.rs:1000:18
     |
1000 | fn run_wifi() -> Result<()> {
     |                  ^^^^^^^^^^ expected 2 type arguments

When I tweak the return type to Result<(), Err>, it says:

error[E0107]: wrong number of type arguments: expected 2, found 0
    --> src/main.rs:1000:29
     |
1000 | fn run() -> Result<(), Err> {
     |                        ^^^ expected 2 type arguments

This is from the wifi-connect project.

4
  • Rust follow semver, breaking change would imply that Rust up the major version so if you really found a regression it's a bug. If you can create an minimal reproducible example and specify both Rust version that show the regression, summit an issue, I didn't find any one about your case currently open. – Stargateur Dec 2 '18 at 21:55
  • 2
    What Result type are you using here? std::result::Result<T, E> has always expected two types arguments, while std::io::Result<T> for example only needs one. – SirDarius Dec 2 '18 at 22:08
  • 1
    And what is the Err type you're feeding into this Result in the last case? – Cerberus Dec 3 '18 at 3:27
  • I just hit this in the Rust Cookbook's Directory Traversal example: rust-lang-nursery.github.io/rust-cookbook/file/dir.html – hippietrail Nov 28 '20 at 9:30
30

The definition of Result is, and has always been, the following:

pub enum Result<T, E> {
    Ok(T),
    Err(E),
}

This definition is even presented in the Rust Programming language, to show how simple it is. As a generic sum type of an OK outcome and an error outcome, it always expects two type parameters, and the compiler will complain if it cannot infer them, or the list of type arguments does not have the expected length.

On the other hand, one may find many libraries and respective docs showing a Result with a single type argument, as in Result<()>. What gives?

It's still no magic. By convention, libraries create type aliases for result types at the level of a crate or module. This works pretty well because it is common for those to produce errors of the same, locally created type.

pub type Result<T> = Result<T, Error>;

Or alternatively, a definition which can still purport as the original result type.

pub type Result<T, E = Error> = Result<T, E>;

This pattern is so common that some error helper crates such as error-chain, will automatically create a result alias type for each error declared. As such, if you are using a library that may or may not use error-chain, you are expected to assume that mentions of Result<T> are local type aliases to a domain-specific Result<T, Error>. In case of doubt, clicking on that type in the generated documentation pages will direct you to the concrete definition (in this case, the alias).

7

From The Rust Programming Language section The ? Operator Can Only Be Used in Functions That Return Result

use std::error::Error;
use std::fs::File;

fn main() -> Result<(), Box<dyn Error>> {
    let f = File::open("hello.txt")?;

    Ok(())
}

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