use crate::runtime::time::{TimerHandle, TimerShared};
use crate::time::error::InsertError;
mod level;
pub(crate) use self::level::Expiration;
use self::level::Level;
use std::{array, ptr::NonNull};
use super::entry::STATE_DEREGISTERED;
use super::EntryList;
#[derive(Debug)]
pub(crate) struct Wheel {
elapsed: u64,
levels: Box<[Level; NUM_LEVELS]>,
pending: EntryList,
}
const NUM_LEVELS: usize = 6;
pub(super) const MAX_DURATION: u64 = (1 << (6 * NUM_LEVELS)) - 1;
impl Wheel {
pub(crate) fn new() -> Wheel {
Wheel {
elapsed: 0,
levels: Box::new(array::from_fn(Level::new)),
pending: EntryList::new(),
}
}
pub(crate) fn elapsed(&self) -> u64 {
self.elapsed
}
pub(crate) unsafe fn insert(
&mut self,
item: TimerHandle,
) -> Result<u64, (TimerHandle, InsertError)> {
let when = unsafe { item.sync_when() };
if when <= self.elapsed {
return Err((item, InsertError::Elapsed));
}
let level = self.level_for(when);
unsafe {
self.levels[level].add_entry(item);
}
debug_assert!({
self.levels[level]
.next_expiration(self.elapsed)
.map(|e| e.deadline >= self.elapsed)
.unwrap_or(true)
});
Ok(when)
}
pub(crate) unsafe fn remove(&mut self, item: NonNull<TimerShared>) {
unsafe {
let when = item.as_ref().registered_when();
if when == STATE_DEREGISTERED {
self.pending.remove(item);
} else {
debug_assert!(
self.elapsed <= when,
"elapsed={}; when={}",
self.elapsed,
when
);
let level = self.level_for(when);
self.levels[level].remove_entry(item);
}
}
}
pub(crate) fn poll_at(&self) -> Option<u64> {
self.next_expiration().map(|expiration| expiration.deadline)
}
pub(crate) fn poll(&mut self, now: u64) -> Option<TimerHandle> {
loop {
if let Some(handle) = self.pending.pop_back() {
return Some(handle);
}
match self.next_expiration() {
Some(ref expiration) if expiration.deadline <= now => {
self.process_expiration(expiration);
self.set_elapsed(expiration.deadline);
}
_ => {
self.set_elapsed(now);
break;
}
}
}
self.pending.pop_back()
}
fn next_expiration(&self) -> Option<Expiration> {
if !self.pending.is_empty() {
return Some(Expiration {
level: 0,
slot: 0,
deadline: self.elapsed,
});
}
for (level_num, level) in self.levels.iter().enumerate() {
if let Some(expiration) = level.next_expiration(self.elapsed) {
debug_assert!(self.no_expirations_before(level_num + 1, expiration.deadline));
return Some(expiration);
}
}
None
}
pub(super) fn next_expiration_time(&self) -> Option<u64> {
self.next_expiration().map(|ex| ex.deadline)
}
fn no_expirations_before(&self, start_level: usize, before: u64) -> bool {
let mut res = true;
for level in &self.levels[start_level..] {
if let Some(e2) = level.next_expiration(self.elapsed) {
if e2.deadline < before {
res = false;
}
}
}
res
}
pub(crate) fn process_expiration(&mut self, expiration: &Expiration) {
let mut entries = self.take_entries(expiration);
while let Some(item) = entries.pop_back() {
if expiration.level == 0 {
debug_assert_eq!(unsafe { item.registered_when() }, expiration.deadline);
}
match unsafe { item.mark_pending(expiration.deadline) } {
Ok(()) => {
self.pending.push_front(item);
}
Err(expiration_tick) => {
let level = level_for(expiration.deadline, expiration_tick);
unsafe {
self.levels[level].add_entry(item);
}
}
}
}
}
fn set_elapsed(&mut self, when: u64) {
assert!(
self.elapsed <= when,
"elapsed={:?}; when={:?}",
self.elapsed,
when
);
if when > self.elapsed {
self.elapsed = when;
}
}
fn take_entries(&mut self, expiration: &Expiration) -> EntryList {
self.levels[expiration.level].take_slot(expiration.slot)
}
fn level_for(&self, when: u64) -> usize {
level_for(self.elapsed, when)
}
}
fn level_for(elapsed: u64, when: u64) -> usize {
const SLOT_MASK: u64 = (1 << 6) - 1;
let mut masked = elapsed ^ when | SLOT_MASK;
if masked >= MAX_DURATION {
masked = MAX_DURATION - 1;
}
let leading_zeros = masked.leading_zeros() as usize;
let significant = 63 - leading_zeros;
significant / NUM_LEVELS
}
#[cfg(all(test, not(loom)))]
mod test {
use super::*;
#[test]
fn test_level_for() {
for pos in 0..64 {
assert_eq!(0, level_for(0, pos), "level_for({pos}) -- binary = {pos:b}");
}
for level in 1..5 {
for pos in level..64 {
let a = pos * 64_usize.pow(level as u32);
assert_eq!(
level,
level_for(0, a as u64),
"level_for({a}) -- binary = {a:b}"
);
if pos > level {
let a = a - 1;
assert_eq!(
level,
level_for(0, a as u64),
"level_for({a}) -- binary = {a:b}"
);
}
if pos < 64 {
let a = a + 1;
assert_eq!(
level,
level_for(0, a as u64),
"level_for({a}) -- binary = {a:b}"
);
}
}
}
}
}