The kernel no longer folds AML Device objects into the device tree — the
ring-3 acpi service is the sole builder of _HID device nodes. The kernel
keeps building the namespace only for the \_S5 sleep type, and still
seeds the static tables (MADT, HPET, MCFG, FADT) and the acpi-tables node.
The device manager matches ps2-bus from the service's _HID reports
(PNP0303 / PNP0F13, singleton-deduped) instead of boot-snapshot nodes;
its dead boot-snapshot ps2 arm is gone. The service registers every
device before reporting any, so a driver the manager spawns on the first
report already sees the full set — no keyboard-before-mouse race. The
acpi-ps2 scenario proves the whole chain: report -> spawn -> ps2-bus
finds the controller and attaches its keyboard, entirely in ring 3. The
ioport test moved to the acpi-tables I/O window, since the kernel-built
PS/2 node it used to scan for no longer exists. The retired
device-building functions in acpi.zig are dead but retained (a botched
mechanical deletion is worse mid-migration than a follow-up sweep, which
is flagged as a task). Suite 58/58.
AML method evaluation now runs in userspace touching real hardware: the
service builds an interpreter with a ring-3 Hal (port I/O routed through
its claimed acpi-tables node; a scratch page backs SystemMemory maps so a
stray OperationRegion degrades to zeros instead of faulting a process
that cannot map arbitrary physical memory). It walks the namespace and,
for each present _HID device that is not a PCI root, evaluates _CRS,
registers it under acpi-tables, and reports it with its EISA-decoded hid.
Containment for this needed the broker's irq check to become range-based
— an interrupt line is still indivisible, but a parent may own a range,
so the acpi-tables node's broad irq window contains its children's legacy
lines (a length-1 range is exactly the old equality, so single-irq
parents are unaffected). ChildAdded gained a hid field for firmware
string identity. Matching those reports to drivers stays off until M20.3,
so ps2-bus still comes up via the kernel path — no regression. The
acpi-report scenario proves the PS/2 keyboard (io 0x60/0x64 + IRQ) and
mouse (IRQ) are reported with their resources. Suite 57/57.
The AML module becomes a build module compiled into both the kernel (for
the \_S5 sleep state it still needs) and the new acpi service — one
source, two builds, no fork. The kernel publishes a single acpi-tables
node: the DSDT/SSDT blobs as memory resources, a broad io_port grant (the
honest trust boundary — firmware AML names whatever ports it chose, known
only after parsing), and the SCI for the M21 event track. The acpi
service claims the node, maps each blob through the ordinary mmio grant
(which preserves the sub-page offset onto the bytecode), and runs the
same parser the kernel does. It self-verifies its namespace Device count
against the kernel's — 34 = 34 — deterministically via an argv the
acpi-parse test passes, so no racing the shared serial buffer. Parse-only
touches no hardware; OperationRegion evaluation waits for _CRS/_STA in
M20.2. The manager spawns 'discovery' (the neutral ramdisk name) at
startup. Suite 56/56.
enumeratePci, addBars, pciConfigurationPtr, and the PciHeader struct are
deleted; the kernel seeds only the host bridge, and the ring-3 pci-bus
driver's reports are the sole source of PCI function nodes. The manager
matches PCI drivers from reported identity, deduped by registered device
id so a bus restart never double-spawns.
The flip did its job by exposing a latent SMP race: ring-3
device_register made the broker table concurrent for the first time, and
mmio_map read it lock-free — under load a torn resource length mapped
hpet's window wrong (its user fault) and underflowed r.len-1 into a
kernel integer-overflow panic. Fixed: the broker read in mmio_map (and
claim) runs under the big kernel lock, the arithmetic rejects
zero-length and wrapping windows cleanly, and pci-bus no longer registers
unimplemented size-0 BARs. driver-restart hammered 6x, suite 55/55.
Each function is registered under the bridge with the config-space slice
and BARs sized by the same all-ones probe the kernel uses — byte-for-byte
equal descriptors, so the idempotent register returns the kernel's
existing node ids during coexistence instead of duplicating the tree.
The bridge gained the 16-bit io_port aperture that functions' I/O BARs
need to pass containment. Reports carry the registered device_id, and
the pci-scan scenario drills a forced restart: kill the enumerator after
its reports, watch the respawn re-scan, and assert the broker's PCI node
count never grew. The usb-restart test trigger is pinned to the xHCI
reporter (pci-bus racing it to two reports used to steal the kill).
Harness hardening: failing cases preserve their serial logs; the heavy
scenarios run at 150s.
The manager matches the pci_host_bridge node and spawns pci-bus with the
bridge id as its assignment — hello, supervision, restart, all the M18
contract for free. The driver claims the bridge, maps the ECAM window
(resource 0) through the ordinary mmio grant, and repeats the kernel's
brute-force bus/device/function walk from user space. The pci-scan
scenario builds its expected marker from the kernel's own function count,
so the two enumerations must agree exactly — the equivalence that
licenses retiring the kernel walk in M19.3.
The host bridge now carries MMIO apertures derived from the boot memory
map's gaps below 4 GiB (largest three, sort-merged; a single after-the-
last-region hole dies on OVMF's flash at the top) plus one aperture above
the described space — so a user-space device_register of PCI functions
with BAR resources can pass containment. The discovery test asserts
every PCI memory resource lies inside a bridge window and names any
escapee. device_register is idempotent on exact (parent, class, identity,
resources) match — a restarted registering bus cannot duplicate its
children; proven directly against the broker in the bus test.
ChildAdded gains device_id so a report can carry the registered kernel
id a matched driver needs as its assignment.
resilience.md: steps 1-4 of the ladder are built — supervision, exit
reasons, restart with backoff, crash-loop caps, all proven by scenario;
what remains is scope, not mechanism. README statuses follow. drivers.md
gains the driver-contract section (harness, hello, crash-freely). The
M19-M20 plan pre-settles three things the loop would otherwise have had
to decide alone: the memory-map pass-through for apertures, the manager
spawning 'discovery' from M20.1, and hid[8] riding ChildAdded for ACPI
string identity until the FDT widening.
system/services/acpi and system/services/fdt exist as documented
placeholders (silent clean-exit mains; the headers say exactly what each
becomes and why). The build's -Ddiscovery=acpi|fdt option fills the
ramdisk's neutral 'discovery' slot — the device manager will spawn
"discovery" by that name in M20.3 and never learn which firmware it is
on (m19-m20-plan.md decision 7). x86 defaults to acpi; the aarch64
target flips the default when it lands.
Discovery is one swappable process per firmware (acpi service on x86, an
fdt service on the Pis); everything at and above the device-manager
protocol stays generic. The manager owns the tree as data and never
touches hardware — firmware bytecode runs in a crashable, supervised
discoverer. Flagged now: hid[8] cannot hold an FDT compatible string,
and cross-firmware protocols are named by domain (power, not ACPI).
Battery, AC, lid, and the power button ride the acpi service as reported
children with small class drivers — the xHCI split repeated. QEMU can
only prove the power-button path (system_powerdown injects the real fixed
event), so battery/EC are interface-complete and hardware-validated on
the laptop. Per-device power states (D-states, suspend/resume) stay out
of scope: suspend has the shape of a lifecycle signal every driver must
answer, and it has no consumer until laptop sleep.
Applications ask the device manager for the tree (enumerate: a header
plus ChildEntry records) and subscribe to published add/remove events by
handing their endpoint over as the call's capability — the input-service
pattern; events are the same ChildAdded/ChildRemoved structs the bus
drivers send, one encoding in both directions. device-list is the first
client: it prints the tree, subscribes, and narrates the events through
a driver restart. The protocol's message maximum is capped at the
kernel's IPC MESSAGE_MAXIMUM (256 bytes, ten entries per reply; paging
joins the protocol when a tree outgrows one message). The startUserTask
debug print is gone: it wrote to serial unserialized against user-space
lines and sheared concurrent log markers in half — the root cause of the
scenario flakes.
child_added/child_removed join the device-manager protocol. The driver
maps its register BAR (resource 0 is the ECAM config space; the walk
starts at 1), reads CAPLENGTH and HCSPARAMS1, and reads one PORTSC per
port: the connect bit and speed class come straight from hardware, no
rings needed to see the devices. The manager mirrors reported children
keyed by (parent, port), remembers which instance reported each, and
prunes a dead reporter's children before deciding the restart — the
children describe protocol state that died with the process. The
usb-report scenario drives the whole loop: two QEMU devices reported,
reporter killed, children pruned, driver respawned with backoff, and the
new instance re-claims, re-scans, and re-reports.
The manager is now a harness service on the well-known .device_manager
endpoint. Every driver spawns supervised; drivers with an assignment must
hello (device-manager-protocol, versioned) within a deadline enforced by
a timer sweep. Exit reasons drive the restart decision: clean exits stay
down, faults restart with 300/600/1200ms backoff, and three fast deaths
mark a driver failed instead of respawning forever. usb-xhci-bus is the
first conforming driver; the crash-test fixture claims a device, hellos,
and faults on purpose — each respawn re-proving claim release on death
through the manager's own path. maximum_tasks grows 16 -> 32: the
initial-ramdisk sweep (15 binaries at once) was intermittently
overflowing the static pool.
Signals are statements delivered as coalescing notifications to the
endpoint a process nominates with signal_bind — never a hijacked stack,
never a question (liveness is the zero-length ping the harness answers).
process_signal is supervisor-or-self gated, like kill; unbound targets
accumulate a pending mask delivered on bind. timer_bind is the missing
timed wait: a one-shot deadline landing in the same replyWait as
everything else — what stop(), hello deadlines, and restart backoff are
built from. runtime.service.run folds requests, signals, and
notifications into callbacks; the VFS conversion deletes its hand-rolled
loop and gains the whole lifecycle contract. The signals scenario drives
ping, reload, terminate->exited, the timer, and the deaf-child
deadline->killed path from ring 3. docs/process-lifecycle.md increments
1-4 are now as-built.
process_subscribe adds an endpoint to a bounded, ref-counted subscriber
table; every death posts the same badge encoding a supervisor's exit
notification uses, equally late, so subscribers observe a fully-released
child. A dying subscriber's own subscriptions are removed first — it never
hears about itself. The VFS is the first subscriber: open handles now
record their owner and are swept when the owner dies, because a service
must never depend on clients cleaning up after themselves
(docs/process-lifecycle.md). Proven by the vfs-client-death scenario.
The kernel records an ExitReason at all three death sites — clean exit,
fault (classified by vector), and process_kill — into a bounded ring
before the exit notification posts, so a supervisor's query never races
the notice. process_exit_reason is gated by the same supervisor check as
kill; runtime.process.exitReason is the stable interface. This is the
input restart policy reads (docs/process-lifecycle.md iron rule 2).
Every path out of a process (exit, fault, kill) now releases its device
claims alongside its IRQ and MSI bindings, so a restarted driver can claim
its hardware again — the cleanup half of process-lifecycle.md's iron rule 1.
MSI vectors were already swept by irq.releaseOwner; claims were the gap.
The claim-release test proves kill -> release -> re-claim, plus the broker
release in isolation.
Signals over IPC (POSIX concepts, message delivery), published exit events,
the stable runtime.process interface, and the device manager as tree +
matcher + supervisor. All open questions settled; docs/m17-m18-plan.md is
the phase-by-phase execution plan.
Replace the mouse driver's synthetic stream with the real path, the
way the keyboard was wired:
- The auxiliary port's IRQ12 is enumerated on the mouse's own ACPI
node (PNP0F13), and the kernel only lets a device's claimer bind or
ack its IRQs — so ps2-bus now claims that node alongside the
controller whenever port 2 carries a device, binds IRQ12 to its one
endpoint, and re-arms whichever line the notification's badge names.
The forwarding loop already routed auxiliary bytes by status bit 5.
- mouse-packet.zig (new, pure, host-tested): three-byte stream-mode
packet assembly — bit-3 sync with resynchronization, ACK/BAT bytes
dropped at packet start, nine-bit two's-complement movement,
overflow packets discarded, and PS/2 positive-Y-up converted to the
screen convention (positive down).
- mouse.zig mirrors the keyboard driver: no hardware claim, attaches
to the bus as its mouse, and publishes button_down/button_up per
changed button plus motion events with the pressed-button mask.
Verified end to end in QEMU via monitor mouse_move/mouse_button:
motion round-trips in screen coordinates, buttons transition with the
right mask, and keyboard events keep flowing alongside. The follow-up
is the IntelliMouse magic-knock for a scroll wheel (four-byte packets)
and scroll events.
Replace the keyboard driver's synthetic stream with the real path:
- ps2-bus binds IRQ1 (interrupt bits set only after the bind), drains
port 0x60 on each interrupt, and forwards every byte to the attached
child driver over async ipc_send, routed by the status register's
auxiliary-output bit. Children attach via the new well-known ps2_bus
service, handing over their endpoint as a capability.
- scancode.zig (new, pure, host-tested): scancode set 2 -> USB HID
usage decoding (F0/E0/E1 prefix state machine) plus keyboard state —
pressed-key bitmap, typematic-repeat classification, modifier and
caps-lock tracking.
- keyboard.zig decodes the forwarded stream and publishes real
key_down/key_press/key_up events, filling key_press characters via
xkeyboard-config (layout from argv[2], default us) and synthesizing
ASCII control characters for Enter/Tab/Backspace/Escape.
- protocol.zig names the full HID usage set in Keycode; build.zig
threads the xkeyboard-config module into user binaries.
Verified end to end in QEMU via monitor sendkey: shift, caps lock,
and control-character synthesis all decode correctly. The mouse
driver still publishes its synthetic stream; attaching it to the
bus the same way is the follow-up.
Turn a keycode + modifiers into a character. The input module delivers HID
usage keycodes but nothing mapped them to characters; rather than hand-maintain
layout tables, vendor the X11 xkeyboard-config database and compile it to native
Zig at build time (no X11 runtime), the way make-initial-ramdisk.py packs the
ramdisk.
- tools/make-xkeyboard-config.py: `fetch` downloads the pinned xkeyboard-config
release (2.44, sha256-verified), resolves the include graph for the configured
layouts, and vendors only the reached symbols files + keysymdef.h + COPYING +
PROVENANCE into library/xkeyboard-config/vendor/. `generate` parses that
(keycodes via a HID->xkb-name table, symbols with include/augment/override and
per-key type, keysymdef for keysym->Unicode) and emits generated/layouts.zig
deterministically.
- library/xkeyboard-config/xkeyboard-config.zig: the API over the generated data
— map(layout, hid_usage, mods) -> { keysym, character }, byName, and the
level-selection semantics (the generated tables stay pure data). Host tests
assert US letters/digits with Shift/Caps, GB £ vs US # on Shift+3, and French
AZERTY q-where-US-has-a — the end-to-end proof of the parse->emit->lookup path.
- build.zig: `xkeyboard-config` + `layouts` modules, the test wired into
`zig build test`, and a `zig build gen-xkeyboard-config` convenience step.
- Layouts: us, gb, de, fr, es, dvorak. Scope (documented): group 1, no dead-key
composition, curated key types. Standalone library; wiring it into the input
path to fill KeyEvent.character is a documented follow-up.
zig build test green (incl. the new keymap tests); regeneration is byte-identical;
full QEMU suite 48/48 (unaffected — no kernel/runtime/service change).
Extend the input service beyond the keyboard so mouse and joystick/gamepad
drivers can broadcast too, with per-device publish and subscribe methods.
- protocol: KeyEvent joins MouseEvent (motion/buttons/scroll) and
JoystickEvent (axes/buttons), all carried in a common InputEvent envelope
tagged with a DeviceKind. A subscribe request carries a device_mask, so a
subscriber names the classes it wants and the service routes each event only
to interested subscribers (a mouse-only listener never wakes for keystrokes).
- runtime: per-device publish methods (publishKeyboardEvent/publishMouseEvent/
publishJoystickEvent) and subscribe helpers (subscribeKeyboard/Mouse/Joystick,
each typed, plus subscribe(mask)/subscribeAll returning the tagged envelope).
- service: subscriber table gains a device_mask; broadcast routes by the
event's device class.
- mouse driver now publishes (synthetic) mouse events like the keyboard driver;
input-source cycles all three classes; input-test subscribes to all and only
emits its "ok" marker once it has received one of each class — so the passing
test proves per-device routing, not just delivery. Real HID decoding stays a
follow-up.
No kernel changes: ipc_send is generic and the 36-byte InputEvent fits its
64-byte payload. Full QEMU suite 48/48; serial log confirms keyboard, mouse,
and joystick all reach one subscription.
Programs can now subscribe to keyboard events (key_down/key_up/key_press)
and drivers can broadcast them, through a new user-space input service.
The delivery model is forced by danos IPC: a synchronous rendezvous holds
one pending reply, so a server cannot park N subscribers blocked in a
"wait for next event" call — delivery must be push. But a synchronous push
has no timeout and the kernel never wakes a sender parked on a dead peer's
endpoint, so one dying subscriber would hang all input. So this lands the
roadmap's planned asynchronous buffered send and builds the service on it:
- ipc_send (syscall 26): non-blocking post to an endpoint's bounded payload
ring, delivered through reply_wait as a buffered message (notify_message_bit).
A full ring drops the oldest. It can never hang on a dead/slow peer.
- input-protocol + runtime.input helpers (subscribe/next, connectSource/
publish) — the first real consumer of M13 capability passing: a subscriber
hands the service its own endpoint as a capability.
- input service (fan-out via ipc_send, dead-subscriber pruning), a synthetic
input-source, and input-test; the ps2-bus keyboard driver publishes to it.
Real IRQ1 scancode decoding (which must live in the bus, the PNP0303 owner)
is a documented follow-up; the source is synthetic for now.
- build/init wiring, an `input` QEMU case, and docs/input.md.
Full QEMU suite 48/48, including the new input case and every IPC/endpoint
regression (ipc, ipc-call, ipc-cap, vfs, hpet, bus, irqfree).
process_enumerate snapshots the task table (the device_enumerate shape, so
ps is a user program); system_spawn returns the child id, records the caller
as supervisor, and takes an exit endpoint; process_kill is allowed only for
the supervisor. Every death — exit, fault, or kill — posts a child-exit badge
to that endpoint (the IRQ-as-IPC pattern as SIGCHLD). A target caught off-CPU
is reaped in place; a running one is condemned and finished at its next
system call or tick, guarded so teardown never lands mid-kernel-operation.
Tested by process-list, process-kill, and supervision (a ring-3 supervisor
exercising the whole surface); design notes in docs/process-management.md.
Processes now start with C-compatible arguments: the kernel builds the
System V AMD64 entry block (argc, argv, empty envp, auxiliary vector)
at the top of the stack, argv[0] is the path or initial-ramdisk name
the process was spawned as, and system_spawn carries an optional
NUL-separated blob that becomes argv[1..]. The runtime parses the block
(runtime.argumentCount/argument) and its spawn wrappers pass arguments
through. The name is also recorded on the task, so a fault report says
which binary died, not just its id.
The user stack grows from one page to eight (32 KiB,
parameters.user_stack_pages), with the page below left unmapped as a
guard so an overflow faults into a clean process kill rather than
corrupting the image. Task.name_buffer is zero-initialised, not
undefined: an undefined default is materialised as a 0xAA fill that
moved the static task pool out of .bss and made the whole kernel ~7x
slower under QEMU TCG (caught by the affinity test).
Proven end to end by the new args test: args-echo respawns itself with
arguments via the syscall blob, burns more stack than one page could
hold, and echoes its argv intact. Full suite: 44/44.
A CPU exception raised in ring 3 by a scheduled process now kills that
process - IRQ bindings, IPC handles, and address space reclaimed, a
client it owed a reply to failed with the new -EPEER instead of hung -
and the core reschedules (docs/resilience.md step 2). Kernel-mode
faults, NMI, double fault, and machine check stay terminal, as does the
borrowed-thread isolation probe. Proven by the new fault-recovery QEMU
test: init keeps heartbeating after a process page-faults to death.
Correct the abi.zig header (and the matching build.zig / README lines): the syscall ABI
is the private contract between the kernel and the runtime library, not something every
user program speaks. danos applications call the `runtime` (the stable, danos-native
ABI); the runtime is the only thing that issues system calls, and POSIX layers over the
runtime — the same split as libSystem on macOS or win32 over the NT syscalls. The call
numbers here are an implementation detail the runtime hides and may renumber, not a
public interface.
Ring 3 still has no direct in/out (no TSS I/O bitmap, IOPL never raised — a #GP), but a
driver no longer needs it: io_read(device_id, resource_index, offset, width) and
io_write(..., value) grant port access the same way mmio_map grants memory. The claim
plus the device's discovered io_port resource are the capability — resolveIoPort checks
the device is claimed by the caller, the resource is io_port, and [offset, offset+width)
stays inside it, then issues the in/out via architecture.pioRead/pioWrite. So a PS/2 or
16550 driver is now writable; the low-rate legacy hardware that needs port I/O is fine
with a syscall per access. io_port resources were recorded by discovery and ignored —
now they're used. Runtime: device.ioRead/ioWrite.
New `ioport` test claims QEMU's PS/2 controller (io_port 0x64, discovered via ACPI) and
checks the gate admits an in-range access, refuses over-wide / out-of-range / unclaimed,
and that the kernel actually reads the status port (0x1c). Suite 41/41 plus host tests.
Docs refreshed for the whole M13-M16 + port-I/O reality: drivers.md "Limits" no longer
lists port I/O, DMA memory, or barriers as missing (they exist) and its "what's next"
reflects that; the FSH doc's character-device and block-device sections are corrected
("cannot host a block driver at all" is no longer true — writable now, not yet memory-
safe pending IOMMU enforcement); device-interrupts.md unblocks the keyboard and narrows
the interrupt gap to MSI-X.
Detect the IOMMU: discovery now parses the ACPI DMAR table, finds the first VT-d
DMA-remapping unit (DRHD), maps its register block, and records its version and
capabilities (iommu_present/base/version/capabilities in the platform info). On QEMU's
emulated intel-iommu this reads back a real unit (base 0xfed90000, version 1.0).
This is detection only, and deliberately so. A full VT-d bring-up — per-device
translation domains that confine a driver's DMA to the buffers it dma_alloc'd — is the
real device-side safety guarantee, but it cannot be verified without a DMA-capable
device driver (none exist yet) and QEMU's intel-iommu to fault against. Writing that
enforcement now would be a large body of unverifiable page-table code; it belongs with
the first DMA driver, which is both the natural order and the only way to test it. Until
then the caveat stands in full: device_claim on a DMA-capable device is still equivalent
to granting ring 0. The docs say so plainly.
New `iommu` test (harness boots it with -device intel-iommu via a new per-case qemu_extra
hook) confirms the DMAR is parsed and the unit's registers read. Suite 40/40 plus host
tests.
Two parts, both blockers for real PCI drivers.
ECAM config space per function: enumeratePci now gives every pci_device its own 4 KiB
configuration window as resource 0. A claimed PCI driver mmio_maps that to reach its
command register, BARs, and — the point — its capability list (MSI/MSI-X, PCIe extended
caps), with no new syscall. Verified in the discovery test (QEMU q35's functions each
carry it).
MSI: msi_bind(device_id, endpoint) -> address (rax), data (rdx) allocates a per-device
edge-triggered vector, binds it to the endpoint, and returns the (address, data) the
driver programs into its own MSI capability. Unlike irq_bind there's no GSI, no I/O APIC
entry, no sharing, and no ack cycle — dispatch recognises an MSI vector (vector_gsi ==
none, msi_bound set), EOIs, and notifies. Owner-keyed release drops the binding on exit.
Legacy INTx (_PRT parsing + shared lines) is deliberately skipped; MSI is the real
answer.
QEMU's HPET has no MSI, so the new `msi` test proves the vector-routing path with a
self-IPI (new apic.selfIpi) standing in for the device's MSI write: bind a vector,
fire it, the bound endpoint is notified. The msi_bind syscall wraps irq.msiBind with
the claim check and lands its first real use with the first PCI driver. Suite 39/39
plus host tests.
An HCD programs a bus-master engine: it needs a descriptor ring that is physically
contiguous, at a physical address it knows, uncacheable, and pinned. mmap gives none
of those. Add dma_alloc(len, flags) -> vaddr (rax), paddr (rdx) and dma_free(vaddr,
len): grant contiguous, zeroed, pinned, strong-uncacheable memory in a per-process DMA
arena (PML4[228]) and hand back both addresses.
Pieces: pmm.allocContiguous(count, max_phys) finds a run of contiguous free frames
below a cap (dma_below_4g for 32-bit engines); mapUserDmaInto maps them uncacheable
(PCD|PWT) but WITHOUT device_grant, so unlike an MMIO grant these frames are real RAM
and freeSubtree returns them on teardown — a driver that dies leaks nothing. dma_free
is bounded to the DMA arena so it can never unmap the caller's stack/heap/MMIO.
dma_write_combining is accepted but falls back to coherent (WC needs PAT programming).
Runtime: runtime.dma.alloc/free (a two-return-value stub, like replyWait). New `dma`
kernel test drives the mechanism directly — contiguity, the below-4G cap, coherent
mapping, and reclaim-on-teardown (no leak). The thin syscall wrappers follow the tested
mmap/mmio_map shape and land their first real use with the first DMA driver. Suite
38/38 plus host tests.
ipc_call and ipc_reply_wait grow a `send_cap` argument (r9) and a `received_cap`
return (r8): an endpoint travels alongside a message, installed into the receiver's
handle table. The transfer is a share, not a move — the endpoint's refcount is bumped
and the sender keeps its handle. If the receiver's table is full the call fails
-ENOSPC and the message is NOT delivered (a half-delivered capability is worse than a
failed send); a bad handle fails -EBADF. Both directions carry a cap: a client's call
hands one to the server (seen in the server's replyWait), and the server's reply hands
one back (seen in the client's call return).
This is the "open" primitive the driver model was blocked on: a bus driver mints a
per-device endpoint and hands it to a class driver, giving it a private channel to one
device without the 8-slot global name registry.
Kernel: shareCapability in ipc-synchronous.zig at both copy points; new
setSystemCallResult3 (r8, saved/restored by the syscall stub); Task gains
ipc_send_cap / ipc_received_cap. Runtime: callCap + Reply, replyWait gains send_cap
and Received.cap; plain call/replyWait delegate with no_cap. New abi.no_cap.
New ipc-cap test (two kernel tasks exercise both directions, each verifying the
endpoint it received is the same object shared, refcount bumped to 2). No class driver
consumes callCap yet — it lands with the first one. Suite 37/37 plus host tests.
drivers.md gains a "How a driver gets started" section — the doc explained what a
running driver does but never who starts it. It lays out the three-level supervision
hierarchy (kernel spawns init; init spawns the services; the device-manager discovers,
matches, and spawns the drivers) and names the two user-space policies that "configure"
drivers today: init's service list and the device-manager's match table.
driver-model.md's "what exists today" adds system_spawn and the supervision model, and
the drivers.md restart bullet is refreshed: a spawning supervisor now exists, a
restarting one still doesn't.
The reorg moved user binaries under /system (init -> /system/services/init,
drivers -> /system/drivers/<name>, vfs-test -> /system/services/vfs/vfs-test), but
many comments and log strings still named the old /sbin/ home. Retarget them all:
kernel/loader/test comments and the two boot log lines, plus vision.md and the
driver-model.md proposed tree (also dropped the stale `d` suffixes and rt->runtime
there). The initial-ramdisk spawn log no longer fakes a /sbin/ prefix, since those
binaries live in different homes (services vs drivers).
Left the FSH design doc's /sbin and /lib rows alone — whether /sbin stays a
directory at all is a design call for its owner, not a stale-comment fix.
The `system` module (formerly `danos`) had become a grab-bag: it held the
loader<->kernel handoff *and* the kernel<->user ABI *and* the device wire types, in
one module three different audiences imported. Usage proved the seam — the
bootloader never touched the syscall/device ABI, and user space never touched the
boot handoff — so split it by audience, one module per contract:
system/boot-handoff.zig loader <-> kernel: BootInformation, Framebuffer,
MemoryMap, the VM layout + physicalToVirtual, kernel_abi
system/abi.zig kernel <-> user, core: SystemCall, mmap prot flags,
page_size, notify_badge_bit, ServiceId
system/devices/device-abi.zig kernel <-> user, devices: DeviceDescriptor,
DeviceClass, ResourceDescriptor, ResourceKind, ...
device-abi is the devices sub-project's public interface, exposed as its own module
the way vfs exposes vfs-protocol — importable by user space, unlike the
kernel-internal device model it also feeds. That collapses a real duplication:
DeviceClass and ResourceKind were defined twice (device-model.zig and the contract,
kept "in sync by hand"); device-model now re-exports them from device-abi, so the
enum a driver matches on and the one the kernel classifies with are one type.
Each import now declares which contract it speaks: the bootloader imports only
boot-handoff; a driver only abi + device-abi (via the runtime); the kernel all
three. This also retires the `system` / `runtime.system` name overlap. page_size
lands in abi (it's part of the mmap contract user space aligns to); the bootloader
keeps its own local 4 KiB constant so it depends on nothing but the handoff.
All 21 importers rewired, docs updated to keep /system mapping to source. Build,
host tests, and the QEMU suite (36/36) all green.
The device manager is the ring-3 process that turns the device tree into a running
system — the udev-analog. It is mechanism-vs-policy done right: the kernel
enumerates the hardware and enforces the claim capability; this decides which
driver serves which device, using no special privilege (the same device_enumerate
any process could call).
This first increment does the discovery + matching half: system/services/
device-manager enumerates /system/devices, matches each device to a driver by
class (a small static policy table), and logs the decision — finding the HPET
(a timer) and deciding `hpet` serves it. It does not spawn yet: spawning needs a
`system_spawn` system call (the kernel spawns every initial-ramdisk binary in a
loop today), which is the next increment. New `device-manager` test; suite 36/36
plus host tests.