59

I'm new to Rust and have been looking through the source code a bit, and found this:

#[stable(feature = "fs_read_write_bytes", since = "1.26.0")]
pub fn write<P: AsRef<Path>, C: AsRef<[u8]>>(path: P, contents: C) -> io::Result<()> {
    fn inner(path: &Path, contents: &[u8]) -> io::Result<()> {
        File::create(path)?.write_all(contents)
    }
    inner(path.as_ref(), contents.as_ref())
}

Is there any reason this function defines an inner function like this? Why not just write:

File::create(path.as_ref())?.write_all(contents.as_ref())

1 Answer 1

65

Monomorphization costs.

write(), like most filesystem functions in Rust, takes AsRef<Path> instead of Path, for convenience (to allow you to pass e.g. a &str). But that also has a cost: it means that the function will be monomorphized and optimized separately for each type, while there is no real need for that. While it is very likely that LLVM will deduplicate all those instances, the time used for optimizing them is still wasted compile time.

To mitigate this cost, it calls an inner, non-generic function that does all the heavy lifting. The outer function contains only the necessarily-generic code - the conversion to Path.

4
  • 4
    Wait. A nested function defined inside a generic function is only instantiated once? How does that work?
    – TLW
    May 15 at 17:30
  • (As opposed to generated every time and deduped later.)
    – TLW
    May 15 at 17:31
  • 21
    @TLW Nested functions aren't closures: they don't have access to the outer function's environment (parameters [including type parameters] and local variables from the outer function). Thus, inner is not a generic function itself. The main difference between a nested function and a non-nested function is that the nested function is only in scope within the outer function. May 15 at 17:56
  • 3
    @TLW the nested function, despite looking like it's in the scope of the parent function, does not actually have access to it's generic parameters May 15 at 17:56

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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