Why does printing a pointer print the same thing as printing the dereferenced pointer?
From the Rust guide:
To dereference (get the value being referred to rather than the reference itself)
y, we use the asterisk (*)
So I did it:
fn main() {
let x = 1;
let ptr_y = &x;
println!("x: {}, ptr_y: {}", x, *ptr_y);
}
This gives me the same results (x=1; y=1) even without an explicit dereference:
fn main() {
let x = 1;
let ptr_y = &x;
println!("x: {}, ptr_y: {}", x, ptr_y);
}
Why? Shouldn't ptr_y print the memory address and *ptr_y print 1? Is there some kind of auto-dereference or did I miss something?
Answer
Rust usually focuses on object value (i.e. the interesting part of the contents) rather than object identity (memory addresses). The implementation of Display for &T where T implements Display defers directly to the contents. Expanding that macro manually for the String implementation of Display:
impl<'a> Display for &'a String {
fn fmt(&self, f: &mut Formatter) -> Result {
Display::fmt(&**self, f)
}
}
That is, it is just printing its contents directly.
If you care about object identity/the memory address, you can use the Pointer formatter, {:p}:
fn main() {
let x = 1;
let ptr_y = &x;
println!("x: {}, ptr_y: {}, address: {:p}", x, ptr_y, ptr_y);
}
Output:
x: 1, ptr_y: 1, address: 0x7fff4eda6a24