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rCore/src/lib.rs

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Rust
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#![feature(ptr_internals)]
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#![feature(lang_items)]
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#![feature(const_fn)]
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#![feature(alloc)]
#![feature(const_unique_new, const_atomic_usize_new)]
#![feature(unique)]
#![feature(allocator_api)]
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#![feature(global_allocator)]
#![feature(abi_x86_interrupt)]
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#![feature(iterator_step_by)]
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#![no_std]
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#[macro_use]
extern crate alloc;
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extern crate rlibc;
extern crate volatile;
extern crate spin;
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extern crate multiboot2;
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#[macro_use]
extern crate bitflags;
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extern crate x86_64;
#[macro_use]
extern crate once;
extern crate linked_list_allocator;
#[macro_use]
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extern crate lazy_static;
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extern crate bit_field;
#[macro_use] // print!
mod io;
mod memory;
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mod interrupts;
mod lang;
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mod util;
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#[macro_use] // test!
mod test_util;
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#[allow(dead_code)]
#[cfg(target_arch = "x86_64")]
#[path = "arch/x86_64/mod.rs"]
mod arch;
// The entry point of Rust kernel
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#[no_mangle]
pub extern "C" fn rust_main(multiboot_information_address: usize) {
// ATTENTION: we have a very small stack and no guard page
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test!(extern_fn);
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test!(find_mp);
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arch::driver::acpi::init();
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arch::driver::ioapic::init();
io::init();
println!("Hello World{}", "!");
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let boot_info = unsafe { multiboot2::load(multiboot_information_address) };
arch::init();
// set up guard page and map the heap pages
let mut memory_controller = memory::init(boot_info);
unsafe {
HEAP_ALLOCATOR.lock().init(HEAP_START, HEAP_START + HEAP_SIZE);
}
// initialize our IDT
interrupts::init(&mut memory_controller);
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test!(global_allocator);
test!(guard_page);
test_end!();
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}
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use linked_list_allocator::LockedHeap;
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pub const HEAP_START: usize = 0o_000_001_000_000_0000;
pub const HEAP_SIZE: usize = 100 * 1024; // 100 KiB
#[global_allocator]
static HEAP_ALLOCATOR: LockedHeap = LockedHeap::empty();
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mod test {
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extern {
fn square(x: u32) -> u32;
}
pub fn extern_fn() {
assert_eq!(unsafe{square(2)}, 4);
}
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pub fn global_allocator() {
for i in 0..10000 {
format!("Some String");
}
}
pub fn find_mp() {
use arch;
let mp = arch::driver::mp::find_mp();
assert!(mp.is_some());
}
pub fn guard_page() {
use x86_64;
// invoke a breakpoint exception
x86_64::instructions::interrupts::int3();
fn stack_overflow() {
stack_overflow(); // for each recursion, the return address is pushed
}
// trigger a stack overflow
stack_overflow();
println!("It did not crash!");
}
}