27

I am trying out some examples in the The Rust Programming Language book, and have the following code snippet:

fn main() {
    let mut map: HashMap<&str, i32, RandomState> = HashMap::new();
    let hello: String = String::from("hello");
    map.insert(&hello, 100);
    println!("{:?}", map); //{"hello": 100}
    let first_hello_score: Option<&i32> = map.get("hello"); // This compiles
    let hello_score: Option<&i32> = map.get(&hello); // This does not compile
}

On running cargo check, I see:

error[E0277]: the trait bound `&str: Borrow<String>` is not satisfied
  --> src/main.rs:26:27
   |
26 |     let hello_score = map.get(&hello);
   |                           ^^^ the trait `Borrow<String>` is not implemented for `&str`

error: aborting due to previous error

For more information about this error, try `rustc --explain E0277`.

Could someone explain why this happens?

1 Answer 1

38

.get looks for &Q as the parameter, where the key type K is Borrow<Q>. Since there's a blanket implementation that borrows &T into &T, &str (the key type) can be borrowed into &str (the argument type)

However, when doing &hello, you actually have an &String, which means Rust infers String to be Q, so it tries to borrow &str into &String, which is obviously not possible. So, be explicit about the deref coercion so that Rust knows it should deref the &String into &str:

let hello_score: Option<&i32> = map.get(&hello as &str);

Or,

let hello_score: Option<&i32> = map.get(&*hello);
3
  • 4
    Shouldn't deref coersion take care of &String -> &str? Commented Feb 8, 2022 at 17:08
  • get() is a generic method. Without a type parameter, the type of key is determined to that of the value passed to the method. In order to activate deref coercion, a call for the method should be HashMap::<&str, i32>::get::<str>(&map, &hello)
    – JUSEOK KO
    Commented Nov 29, 2022 at 16:22
  • Would another option be to use the as_str method? map.get(hello.as_str())
    – mentics
    Commented Apr 26 at 21:28

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