//! Shared definitions that form the contract between a bootloader //! (boot/, e.g. efi.zig built as BOOTX64.efi) and the kernel (system/kernel/kernel.zig). //! //! Both binaries import this as the "danos" module, so the handoff layout is //! defined in exactly one place. const std = @import("std"); /// Calling convention for the bootloader→kernel jump. Pinned to SystemV so it does /// not depend on each binary's target default: the UEFI bootloader's C /// convention is Microsoft x64 (first arg in RCX), the freestanding kernel's is /// SystemV (first arg in RDI). Both reference this to agree on where `*BootInformation` /// is passed. pub const kernel_abi: std.builtin.CallingConvention = .{ .x86_64_sysv = .{} }; /// Pixel byte order of the linear framebuffer the firmware handed us. pub const PixelFormat = enum(u32) { /// Byte 0 = Red, 1 = Green, 2 = Blue, 3 = reserved. rgbx, /// Byte 0 = Blue, 1 = Green, 2 = Red, 3 = reserved. bgrx, }; /// A linear framebuffer: `width`x`height` pixels, each a 32-bit value, with /// `pitch` bytes between the start of one row and the next (which may be larger /// than `width * 4` due to hardware padding). /// /// A `base` of 0 means **no framebuffer** — the firmware exposed no Graphics /// Output Protocol (a headless server, say). The kernel must treat on-screen /// output as optional and never assume a framebuffer exists. pub const Framebuffer = extern struct { base: usize, // the memory address where pixel data starts (0 = none) width: u32, // visible pixels per row (e.g. 1920) height: u32, // visible rows (e.g. 1080) pitch: u32, // bytes from the start of one row to the start of the next format: PixelFormat, /// Whether a usable framebuffer was handed over. pub fn present(self: Framebuffer) bool { return self.base != 0 and self.width != 0 and self.height != 0; } }; /// Page size the memory map is measured in. 4 KiB on every architecture danos /// targets so far. pub const page_size = 4096; /// The kernel's virtual-memory layout (higher-half). The kernel is linked at /// `kernel_virt_base` but loaded at a low physical address; all of RAM (and the /// device MMIO windows) is also mapped at `physmap_base + physical`, so the kernel /// can reach any physical address by adding a constant. The low half is left /// entirely to user space. /// /// user image + stack : 0x0000_7000_0000_0000 (PML4[224], low half) /// kernel heap : 0xFFFF_8000_0000_0000 (PML4[256]) /// physmap : 0xFFFF_8800_0000_0000 (PML4[272]) + physical /// kernel image : 0xFFFF_FFFF_8000_0000 (PML4[511]) pub const physmap_base: u64 = 0xFFFF_8800_0000_0000; pub const kernel_virt_base: u64 = 0xFFFF_FFFF_8000_0000; /// The kernel system_call numbers — the single source of truth shared by the kernel /// dispatcher (system/kernel/process.zig) and the user runtime library, so the two /// can never drift. The set is deliberately microkernel-minimal: file/device I/O /// is not here — it lives in user-space servers reached through the IPC calls. /// The table grows one milestone at a time; see docs/syscall.md. pub const SystemCall = enum(u64) { exit = 0, // exit(code): end the calling process yield = 1, // yield(): give up the rest of this quantum debug_write = 2, // debug_write(ptr, len): raw bytes to the kernel log (bring-up only) sleep = 3, // sleep(ms): block the caller for ms milliseconds mmap = 4, // mmap(len, prot) -> base: grant zeroed, page-aligned user pages munmap = 5, // munmap(base, len): release pages from a prior mmap create_endpoint = 6, // create_endpoint() -> handle: a new IPC endpoint ipc_register = 7, // ipc_register(service_id, handle): publish an endpoint by well-known id ipc_lookup = 8, // ipc_lookup(service_id) -> handle: find a published endpoint ipc_call = 9, // ipc_call(h, message, len, reply, cap) -> reply_len: send + block for reply ipc_reply_wait = 10, // ipc_reply_wait(h, reply, len, receive, cap) -> receive_len (+badge in rdx) device_enumerate = 11, // device_enumerate(buffer, maximum) -> count: snapshot the device table device_claim = 12, // device_claim(id) -> ok: take exclusive ownership of a device mmio_map = 13, // mmio_map(id, resource_index) -> vaddr: map a claimed device's MMIO into this AS irq_bind = 14, // irq_bind(id, resource_index, endpoint): deliver a device IRQ as an IPC notification irq_ack = 15, // irq_ack(id, resource_index): re-arm a bound IRQ after servicing it device_register = 16, // device_register(parent_id, descriptor) -> id: publish a child of a device you claimed _, }; /// Set in the badge returned by `ipc_reply_wait` when what arrived is an /// **asynchronous notification** (today: a device interrupt bound with `irq_bind`) /// rather than a message from a client. There is no payload and no reply owed; the /// low bits carry the source, a GSI. Shared so the kernel's ISR and the driver's /// event loop can't disagree about which bit means "the hardware spoke". pub const notify_badge_bit: u64 = 1 << 63; /// A device class, mirroring system/devices/device-model.zig's `DeviceClass` **in order** /// (its `@intFromEnum` values cross the system_call boundary in `DeviceDescriptor.class`). /// Keep the two in sync. pub const DeviceClass = enum(u32) { root, processor, interrupt_controller, timer, pci_host_bridge, pci_device, acpi_device, unknown, }; /// A resource kind, mirroring system/devices/device-model.zig's `ResourceKind` in order. pub const ResourceKind = enum(u32) { memory, io_port, irq, bus_range, }; /// One device resource, as handed to a user-space driver (flat, extern). pub const ResourceDescriptor = extern struct { kind: u64, // a ResourceKind value start: u64, len: u64, }; pub const maximum_device_resources = 8; /// `DeviceDescriptor.parent` for a device with no parent — a root of the device tree. pub const no_parent: u64 = ~@as(u64, 0); /// A device, as snapshotted for user space by `device_enumerate`. A driver scans /// these to find the hardware it owns, claims it, and maps its MMIO. /// /// `parent` makes the table a tree rather than a list, which is what a **bus driver** /// needs: it claims the bus, finds the devices below it, and publishes any it /// discovers itself with `device_register`. A registered child's resources must lie /// within its parent's (the kernel enforces this) — that containment is what makes /// delegation safe, since a device descriptor is otherwise a licence to map physical /// memory. pub const DeviceDescriptor = extern struct { id: u64, parent: u64, // a device id, or `no_parent` class: u64, // a DeviceClass value hid_len: u64, resource_count: u64, hid: [8]u8, resources: [maximum_device_resources]ResourceDescriptor, }; /// Well-known IPC service ids for the bootstrap name registry (create_endpoint + /// ipc_register/ipc_lookup). Small integers, so no string interning is needed /// during bring-up. The VFS server registers under `vfs`; clients look it up. pub const ServiceId = enum(u32) { vfs = 1, _, }; /// Protection flags for `mmap` (matching the usual C bit values). pub const prot_read: u64 = 1; pub const prot_write: u64 = 2; pub const prot_exec: u64 = 4; /// Physical address -> its virtual address in the physmap. The single way the /// kernel dereferences a physical address once paging is up. /// /// **Hazard:** valid only once the (bootstrap or final) page tables are live. /// The bootloader may use the *constant* `physmap_base` to build those tables, /// but must not call this to dereference memory before its own CR3 is loaded — /// it runs under the firmware's identity map, where these addresses are unmapped. pub inline fn physicalToVirtual(physical: u64) u64 { return physical + physmap_base; } /// Physmap virtual address -> physical. Inverse of `physicalToVirtual`; for producing /// the physical address of something the kernel holds a physmap pointer to /// (e.g. a page-table frame for CR3, a post-mortem breadcrumb's RAM location). pub inline fn virtualToPhysical(virtual: u64) u64 { return virtual - physmap_base; } /// danos's own classification of a span of physical memory — deliberately not /// UEFI's vocabulary. Each boot path (UEFI now, device tree later) translates its /// native memory description into these kinds, so the kernel never learns what /// booted it. [[architecture]] keeps the same discipline for CPU code. pub const MemoryKind = enum(u32) { /// Free RAM the kernel may allocate. Each boot path folds its own transient /// memory into this once it's genuinely free (e.g. the UEFI loader classifies /// boot-services memory as usable after ExitBootServices), so the kernel never /// has to know about boot-protocol-specific "reclaimable" states. usable, /// Firmware, MMIO, the kernel image, our own boot buffers, the boot stack — /// never hand out. reserved, /// ACPI tables: parse, then reclaim. acpi_tables, /// ACPI non-volatile storage: preserve across sleep, do not allocate. acpi_nvs, /// Not backed by RAM: memory-mapped device registers or a reserved /// address-space window (e.g. PCIe configuration space). Kept distinct from /// `reserved` so RAM accounting doesn't count device address space. mmio, }; /// One contiguous span of physical memory. Because danos defines this layout /// itself (unlike the UEFI descriptor it's built from), `@sizeOf` is /// authoritative — the kernel walks a plain `[]MemoryRegion`, with none of the /// firmware's variable descriptor-stride to worry about. pub const MemoryRegion = extern struct { base: u64, // physical start address pages: u64, // length in `page_size` units kind: MemoryKind, _pad: u32 = 0, }; /// The physical memory layout handed to the kernel: a pointer to an array of /// `len` `MemoryRegion`s, in a buffer that outlives the loader. pub const MemoryMap = extern struct { regions: usize, // address of a `[len]MemoryRegion` len: usize, }; /// One PT_LOAD segment of the kernel image, so the kernel can re-map itself with /// correct permissions (code R+X, rodata R, data R+W+NX). `flags` are raw ELF /// segment flags: PF_X=1, PF_W=2, PF_R=4. `virtual` is the higher-half link address; /// `physical` is where the loader actually placed the segment (they differ once the /// kernel links high — the loader records the real load address here). pub const KernelSegment = extern struct { virtual: u64, physical: u64, pages: u64, flags: u32, _pad: u32 = 0, }; /// Handoff structure the bootloader fills in and passes to the kernel's /// `_start` in RDI (the first argument under the SystemV AMD64 C ABI). pub const BootInformation = extern struct { framebuffer: Framebuffer, memory_map: MemoryMap, /// The kernel's own PT_LOAD segments (it has three: text, rodata, data). kernel_segments: [8]KernelSegment, kernel_segment_count: u32, /// Physical address of the ACPI RSDP the firmware exposed, or 0 if none. The /// kernel's device layer parses the ACPI tables from here to discover hardware. /// A device-tree boot path leaves this 0 and (later) fills a `device_tree_blob` /// field instead, so the kernel discovers devices without knowing what booted it. acpi_rsdp: u64 = 0, /// The raw `/sbin/init` ELF image, read off the boot volume by the loader /// into memory that survives the handoff (classified reserved, so the kernel /// identity-maps it and never allocates over it). 0/0 = no init found — the /// kernel boots without user space. Grows into a full initial_ramdisk handoff later. init_base: u64 = 0, init_len: u64 = 0, /// The initial_ramdisk image (a bundle of extra user binaries — the VFS server and /// device drivers), read off the boot volume into memory that survives the /// handoff, same as `init` above. 0/0 = no initial_ramdisk. See system/initial-ramdisk.zig. initial_ramdisk_base: u64 = 0, initial_ramdisk_len: u64 = 0, };