问题
I'm wondering if something like this is possible
fn main() {
#[cfg(foo)] {
println!("using foo config");
}
}
The context is some code that cannot adequately be tested with just unit tests. I'll often have to run a "demo" cfg which displays information. I'm looking for alternatives to manually commenting in/out some portions of code.
回答1:
As of at least Rust 1.21.1, it's possible to do this as exactly as you said:
fn main() {
#[cfg(foo)]
{
println!("using foo config");
}
}
Before this, it isn't possible to do this completely conditionally (i.e. avoiding the block being type checked entirely), doing that is covered by RFC #16. However, you can use the cfg macro which evaluates to either true or false based on the --cfg flags:
fn main() {
if cfg!(foo) { // either `if true { ... }` or `if false { ... }`
println!("using foo config");
}
}
The body of the if always has name-resolution and type checking run, so may not always work.
回答2:
You may interested in the crate cfg-if, or a simple macro will do:
macro_rules! conditional_compile {
($(#[$ATTR:meta])* { $CODE: tt }) => {
{
match 0 {
$(#[$ATTR])*
0 => $CODE,
// suppress clippy warnning `single_match`.
1 => (),
_ => (),
}
}
}
}
fn main() {
conditional_compile{
#[cfg(foo)]
{{
println!("using foo config");
// Or something only exists in cfg foo, like a featured mod.
}}
}
}
来源:https://stackoverflow.com/questions/24396293/is-it-possible-to-conditionally-compile-a-code-block-inside-a-function