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starry_kernel/
entry.rs

1use alloc::{
2    string::{String, ToString},
3    sync::Arc,
4};
5
6use ax_fs_ng::vfs::current_fs_context;
7use ax_runtime::hal::cpu::user::UserContext;
8
9use crate::{
10    file::{FD_TABLE, FileTable, new_file_table_scope},
11    mm::{MmHandle, load_user_app, new_user_image_builder},
12    namespace::NsProxy,
13    pseudofs::{self, dev::tty},
14    sync::{Mutex, RwLock},
15    task::{
16        PidReservation, PidReservationKind, Process, ProcessData, ProcessDataInit, ProcessImage,
17        ROOT_PID_NS, Tgid, Thread, Tid, TidNumber, UserThreadOptions, kernel_thread_builder,
18        new_user_task, prepare_user_thread, sleep, spawn_alarm_task,
19    },
20    tracepoint::tracepoint_init,
21};
22
23/// Initialize and run initproc.
24pub fn init(args: &[String], envs: &[String]) {
25    crate::stop_machine::init();
26    crate::trap::init_handlers();
27    static_keys::global_init();
28    crate::cgroup::init();
29
30    tracepoint_init().expect("Failed to initialize tracepoints");
31
32    crate::ebpf::init_ebpf();
33    crate::perf::perf_event_init();
34    crate::kmod::init_kmod();
35
36    pseudofs::mount_all().expect("Failed to mount pseudofs");
37    spawn_alarm_task();
38    crate::mm::spawn_reclaimer_task();
39    // DVFS: a one-shot OPP-calibration boot runs the sweep and skips the governor;
40    // otherwise start the ondemand governor. Both run here (early init, before the
41    // console tty handoff) so their kernel logs reach the serial console.
42    if ax_driver::cpufreq::calibrate_wanted() {
43        run_opp_calibration();
44    } else {
45        spawn_cpufreq_governor();
46    }
47    // Read-only cluster frequency snapshot for CPU-bound workload triage.
48    ax_driver::cpufreq::log_frequency_readout();
49    pseudofs::usbfs::start_event_pump();
50
51    ax_alloc::register_page_reclaim_fn(ax_fs_ng::vfs::page_cache_reclaim);
52
53    let loc = current_fs_context()
54        .lock()
55        .resolve(&args[0])
56        .expect("Failed to resolve executable path");
57    let path = loc
58        .absolute_path()
59        .expect("Failed to get executable absolute path");
60    let name = loc.name().into_owned();
61
62    let mut image_builder =
63        new_user_image_builder().expect("Failed to create unpublished user address space");
64    let loaded_image = load_user_app(
65        &mut image_builder,
66        loc,
67        &args[0],
68        args,
69        envs,
70        &crate::task::Cred::root(),
71    )
72    .unwrap_or_else(|error| panic!("Failed to load user app: {error}"));
73    let prepared_image = image_builder
74        .finish(loaded_image)
75        .expect("loaded init image token no longer matches its address space");
76    let (uspace, entry_vaddr, ustack_top, auxv) = prepared_image.into_parts();
77
78    let uctx = UserContext::new(entry_vaddr.into(), ustack_top, 0);
79
80    // PID 1 must really be 1: the init process is the root of the process
81    // hierarchy and userspace (e.g. systemd's `getpid() == 1` system-manager
82    // check) relies on it. The scheduler task id is an internal counter that is
83    // already past 1 by the time we spawn the user init (kernel helper tasks
84    // took the low ids), so we pin the user-visible pid/tid to 1 and leave the
85    // scheduler id untouched. `Thread::tid` is already decoupled from the
86    // scheduler id (see its field doc), so this only requires the table keys to
87    // follow the thread tid rather than `task.id()`.
88    const INIT_PID: u32 = 1;
89    let reservation = PidReservation::reserve(&ROOT_PID_NS, PidReservationKind::ProcessLeader)
90        .expect("failed to reserve init PID identity");
91    let pid = reservation
92        .number_in(&ROOT_PID_NS)
93        .expect("init PID reservation has no root binding")
94        .get();
95    assert_eq!(pid, INIT_PID);
96    let identity = reservation.identity();
97    let tid_lease = identity
98        .acquire_role::<Tid>()
99        .expect("failed to acquire init TID role");
100    let tgid_lease = identity
101        .acquire_role::<Tgid>()
102        .expect("failed to acquire init TGID role");
103    let proc = Process::new_init(identity.clone()).expect("failed to prepare init process");
104    proc.add_thread(TidNumber::try_from(pid).expect("init TID must be non-zero"));
105
106    if let Err(error) = tty::bind_console_to(&proc) {
107        warn!("Failed to bind console tty: {error:?}");
108    }
109
110    let proc = ProcessData::new(
111        proc,
112        identity.clone(),
113        tgid_lease,
114        ProcessDataInit::new(
115            ProcessImage::new(
116                path.to_string(),
117                Arc::new(args.to_vec()),
118                Arc::new(envs.to_vec()),
119                auxv,
120                "/".to_string(),
121                "/".to_string(),
122            ),
123            MmHandle::from_arc(Arc::new(Mutex::new(uspace)))
124                .expect("init MM identity must be unique"),
125            Arc::default(),
126            NsProxy::new_root(),
127            None,
128            TidNumber::try_from(pid).expect("init TID must be non-zero"),
129        ),
130    );
131    // SAFE-EXPECT: failing to attach init would violate the kernel's process accounting invariant.
132    crate::cgroup::attach_initial_process(&identity)
133        .expect("Failed to attach init process to cgroup root");
134
135    let mut scope = scope_local::Scope::new();
136    let mut fd_table = FileTable::new();
137    crate::file::add_stdio(&mut fd_table).expect("Failed to add stdio");
138    *FD_TABLE.scope_mut(&mut scope) = new_file_table_scope(Arc::new(RwLock::new(fd_table)));
139
140    let thr = Thread::new(
141        identity.clone(),
142        tid_lease,
143        proc,
144        None,
145        starry_signal::SignalSet::default(),
146        scope,
147    )
148    .expect("failed to prepare init thread state");
149    let prepared_task = prepare_user_thread(
150        new_user_task(
151            uctx,
152            0,
153            TidNumber::try_from(pid).expect("init TID must be non-zero"),
154        ),
155        thr,
156        UserThreadOptions::new(&name).expect("failed to prepare init thread name"),
157    )
158    .expect("failed to prepare init task");
159    let staged_task = prepared_task.stage().expect("failed to stage init task");
160    let published_identity = reservation
161        .publish()
162        .expect("failed to publish init PID identity");
163    debug_assert!(Arc::ptr_eq(&published_identity, &identity));
164    staged_task.with_task(|task| task.as_thread().attach_pid_task(task));
165    tty::arm_console_irq();
166    let task = staged_task.activate();
167
168    // TODO: wait for all processes to finish
169    let exit_code = task.join();
170    info!("Init process exited with code: {exit_code:?}");
171
172    let fs_context = current_fs_context();
173    let cx = fs_context.lock();
174    // Best-effort teardown, matching Linux's shutdown path. A process that exited while
175    // holding a mount namespace (bind mounts, pivot_root) can leave the mount tree in a
176    // state `unmount_all` rejects; at shutdown that must be logged, not turned into a
177    // kernel panic that fails an otherwise clean run. The rootfs flush below is what
178    // matters for on-disk integrity.
179    if let Err(err) = cx.root_dir().unmount_all() {
180        warn!("shutdown: unmount_all failed (best-effort): {err:?}");
181    }
182    cx.root_dir()
183        .filesystem()
184        .flush()
185        .expect("Failed to flush rootfs");
186}
187
188/// Run the one-shot DVFS OPP calibration sweep (gated by the driver's `CALIBRATE`
189/// const). Each cluster's (voltage x ring) sweep must execute ON a core of that
190/// cluster to read that core's own PMU cycle counter, so we pin a task per cluster
191/// (cpu0=A55, cpu4=A76 big0, cpu6=A76 big1) before run-queue publication and run
192/// them sequentially (the two A76 rails share one I2C bus). Synchronous: it
193/// blocks init briefly so the `CAL` log lines land before the console tty handoff.
194fn run_opp_calibration() {
195    info!("cpufreq: running OPP calibration sweep (governor disabled this boot)");
196    for &(cluster_idx, cpu) in &[(0usize, 0usize), (1, 4), (2, 6)] {
197        let mut affinity = ax_runtime::task::sched::CpuSet::empty(ax_runtime::hal::cpu_num());
198        let cpu_id =
199            u32::try_from(cpu).unwrap_or_else(|_| panic!("cpufreq CPU id {cpu} is out of range"));
200        assert!(
201            affinity.insert(ax_runtime::task::sched::CpuId::new(cpu_id)),
202            "cpufreq calibration CPU {cpu} is outside the runtime topology"
203        );
204        let task = kernel_thread_builder(String::from("cpufreq-cal"))
205            .affinity(affinity)
206            .spawn(move || ax_driver::cpufreq::calibrate_cluster(cluster_idx, cpu))
207            .expect("failed to spawn kernel thread");
208        let _exit_code = task.join().expect("failed to join kernel thread");
209    }
210    info!("cpufreq: OPP calibration sweep complete");
211}
212
213/// Start the CPU DVFS ondemand governor.
214///
215/// The frequency/voltage policy and the SCMI+PMIC apply live in the cpufreq
216/// driver (`ax_driver::cpufreq`); this kernel task is only the driver's periodic
217/// *loop*. The loop must live here, not in the driver, because ax-driver sits
218/// below ax-task/ax-hal in the dependency graph (they pull ax-driver back in via
219/// axplat-dyn), so spawning a task inside the driver would be a cyclic dep. Each
220/// period we snapshot the scheduler's cumulative per-CPU non-idle runtime and
221/// hand it to `governor_poll`, which decides and applies any OPP change.
222///
223/// No-op unless the driver armed the governor (feature on and both CPU-rail PMIC
224/// buses up); otherwise every cluster stays on its boot OPP.
225fn spawn_cpufreq_governor() {
226    if !ax_driver::cpufreq::governor_wanted() {
227        return;
228    }
229    info!("Initialize cpufreq ondemand governor...");
230    let _ = kernel_thread_builder(String::from("cpufreq-gov"))
231        .spawn(cpufreq_governor_loop)
232        .expect("failed to spawn kernel thread");
233}
234
235/// Periodic body of the DVFS governor task: sleep, sample every CPU's cumulative
236/// non-idle runtime, and let the driver scale each cluster to match load. The
237/// slow work (SCMI SMC + PMIC I2C/SPI voltage ramp) happens inside
238/// `governor_poll`, which is why this runs in a sleepable task rather than the
239/// scheduler tick.
240fn cpufreq_governor_loop() {
241    let period = core::time::Duration::from_millis(ax_driver::cpufreq::governor_period_ms());
242    loop {
243        sleep(period);
244        // RK3588 has 8 CPUs; an offline or topology-excluded core contributes
245        // zero runtime and therefore reads as idle.
246        let mut busy = [0u64; 8];
247        for (cpu, slot) in busy.iter_mut().enumerate() {
248            *slot = ax_runtime::task::sched::cpu_busy_runtime_ns(
249                ax_runtime::task::sched::CpuId::new(cpu as u32),
250            )
251            .unwrap_or(0);
252        }
253        ax_driver::cpufreq::governor_poll(&busy);
254    }
255}