Rename the shared contract module danos -> system; QEMU logs to /var/log/system

The shared kernel<->user ABI contract (BootInformation, the SystemCall numbers,
DeviceDescriptor, page_size, ...) is now the `system` module at
system/system.zig, following the convention that a directory's root file takes
the directory's name.

One overlap to note: the runtime's syscall wrappers are already `runtime.system`,
so the single file that uses both the contract and those wrappers
(library/runtime/heap.zig) aliases the wrappers locally as `system_calls`. The
two are distinct (top-level `system` vs `runtime.system`); everywhere else the
contract is just `system`.

Also: the QEMU run's serial capture now lands in the FHS log location,
zig-out/var/log/system/serial0-<timestamp>.log — a stand-in for the kernel's own
logging system, which will eventually write there itself.

Suite 35/35 plus host tests green.
This commit is contained in:
Daniel Samson
2026-07-10 14:09:38 +01:00
parent 3d1de37d0e
commit d19a0ae38d
38 changed files with 202 additions and 198 deletions
+2 -2
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@@ -9,7 +9,7 @@
//! map). Every interrupt must be acknowledged with an end-of-interrupt write, or
//! the LAPIC won't deliver the next one.
const danos = @import("danos");
const system = @import("system");
const io = @import("io.zig");
const paging = @import("paging.zig");
@@ -121,7 +121,7 @@ pub fn init() void {
const msr = io.rdmsr(ia32_apic_base_msr);
// Reach the LAPIC through the physmap (paging.init maps its page there).
base = @intCast(danos.physicalToVirtual(msr & 0xFFFFF000)); // physical base is bits 12+
base = @intCast(system.physicalToVirtual(msr & 0xFFFFF000)); // physical base is bits 12+
io.wrmsr(ia32_apic_base_msr, msr | (1 << 11)); // global enable
write(register_spurious, 0x100 | spurious_vector); // bit 8 = software enable
+2 -2
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@@ -4,7 +4,7 @@
//! build.zig — no change to the generic code. Keep everything CPU-specific here
//! (halt, the descriptor tables, later paging), and nothing generic.
const danos = @import("danos");
const system = @import("system");
const parameters = @import("parameters");
const gdt = @import("gdt.zig");
const tss = @import("tss.zig");
@@ -132,7 +132,7 @@ pub fn init() void {
/// Build the kernel's own page tables (with real permissions) and switch onto
/// them. Needs the frame allocator and the boot info (for the memory map and the
/// kernel's segment layout). Call once the frame allocator is up.
pub fn enablePaging(allocFrame: *const fn () ?u64, freeFrame: *const fn (u64) void, boot_information: *const danos.BootInformation) void {
pub fn enablePaging(allocFrame: *const fn () ?u64, freeFrame: *const fn (u64) void, boot_information: *const system.BootInformation) void {
paging.init(allocFrame, freeFrame, boot_information);
}
+10 -10
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@@ -10,10 +10,10 @@
//! Everything is 4 KiB pages — precise and simple; the extra table memory is
//! negligible against available RAM.
const danos = @import("danos");
const system = @import("system");
const io = @import("io.zig");
const page_size = danos.page_size;
const page_size = system.page_size;
// Page-table entry bits.
const present: u64 = 1 << 0;
@@ -58,7 +58,7 @@ const bootstrap_physmap_limit: u64 = 4 << 30;
/// both the loader's bootstrap tables and the kernel's own, which share the
/// physmap base.
fn tableAt(physical: u64) *[512]u64 {
return @ptrFromInt(danos.physicalToVirtual(physical));
return @ptrFromInt(system.physicalToVirtual(physical));
}
fn allocTable() u64 {
@@ -102,12 +102,12 @@ fn mapRangePhysmap(pml4: u64, physical_base: u64, len: u64, flags: u64) void {
var address = physical_base & ~@as(u64, page_size - 1);
const end = physical_base + len;
while (address < end) : (address += page_size) {
mapPage(pml4, danos.physicalToVirtual(address), address, flags);
mapPage(pml4, system.physicalToVirtual(address), address, flags);
}
}
fn regions(mm: danos.MemoryMap) []const danos.MemoryRegion {
return @as([*]const danos.MemoryRegion, @ptrFromInt(danos.physicalToVirtual(mm.regions)))[0..mm.len];
fn regions(mm: system.MemoryMap) []const system.MemoryRegion {
return @as([*]const system.MemoryRegion, @ptrFromInt(system.physicalToVirtual(mm.regions)))[0..mm.len];
}
/// Enable the NX bit in the page-table format (EFER.NXE). Must happen before we
@@ -118,7 +118,7 @@ fn enableNx() void {
}
/// Build the address space and switch onto it.
pub fn init(allocFrame: *const fn () ?u64, freeFrame: *const fn (u64) void, boot_information: *const danos.BootInformation) void {
pub fn init(allocFrame: *const fn () ?u64, freeFrame: *const fn (u64) void, boot_information: *const system.BootInformation) void {
alloc_frame = allocFrame;
free_frame = freeFrame;
enableNx();
@@ -136,7 +136,7 @@ pub fn init(allocFrame: *const fn () ?u64, freeFrame: *const fn (u64) void, boot
// the kernel touches directly), RW + NX.
const fb = boot_information.framebuffer;
mapRangePhysmap(pml4, fb.base, @as(u64, fb.height) * fb.pitch, present | writable | no_execute);
mapPage(pml4, danos.physicalToVirtual(0xFEE00000), 0xFEE00000, present | writable | no_execute);
mapPage(pml4, system.physicalToVirtual(0xFEE00000), 0xFEE00000, present | writable | no_execute);
// 3. The kernel's own segments at their higher-half link addresses, mapped
// to their low physical load addresses with real ELF permissions: code
@@ -206,11 +206,11 @@ pub fn mapMmio(physical: u64, len: u64, writable_page: bool) u64 {
const last = physical + (if (len == 0) 1 else len) - 1;
var address = first;
while (address <= (last & ~@as(u64, page_size - 1))) : (address += page_size) {
const virtual = danos.physicalToVirtual(address);
const virtual = system.physicalToVirtual(address);
mapPage(kernel_pml4, virtual, address, flags);
invalidate(virtual);
}
return danos.physicalToVirtual(physical);
return system.physicalToVirtual(physical);
}
/// Like `descend`, but also sets the U/S bit on the intermediate entry (new or
+4 -4
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@@ -13,7 +13,7 @@
//! Once a core has its own descriptor tables, LAPIC, and timer, it calls the generic
//! scheduler entry and joins the run loop — mechanism here, policy there.
const danos = @import("danos");
const system = @import("system");
const io = @import("io.zig");
const gdt = @import("gdt.zig");
const tss = @import("tss.zig");
@@ -85,7 +85,7 @@ fn arm() void {
const start = @extern([*]const u8, .{ .name = "ap_trampoline_start" });
const end = @extern([*]const u8, .{ .name = "ap_trampoline_end" });
const len = @intFromPtr(end) - @intFromPtr(start);
const destination: [*]u8 = @ptrFromInt(danos.physicalToVirtual(tramp_physical));
const destination: [*]u8 = @ptrFromInt(system.physicalToVirtual(tramp_physical));
@memcpy(destination[0..len], start[0..len]);
}
@@ -95,7 +95,7 @@ fn arm() void {
/// reported in — it's long past the trampoline by then, in the kernel image; a
/// core that never answered is dead and can't be mid-climb.
fn disarm() void {
const destination: [*]u8 = @ptrFromInt(danos.physicalToVirtual(tramp_physical));
const destination: [*]u8 = @ptrFromInt(system.physicalToVirtual(tramp_physical));
@memset(destination[0..page_size], 0);
paging.unmap(tramp_physical); // drop the transient low identity mapping
}
@@ -107,7 +107,7 @@ fn disarm() void {
fn param(comptime name: []const u8) *align(1) volatile u64 {
const start = @intFromPtr(@extern([*]const u8, .{ .name = "ap_trampoline_start" }));
const sym = @intFromPtr(@extern([*]const u8, .{ .name = name }));
return @ptrFromInt(danos.physicalToVirtual(tramp_physical + (sym - start)));
return @ptrFromInt(system.physicalToVirtual(tramp_physical + (sym - start)));
}
/// Wake the core with Local APIC id `apic_id` as dense CPU `index`, hand it