180 lines
8.1 KiB
Markdown
180 lines
8.1 KiB
Markdown
# EFI / The Boot Process
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## What EFI is
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**UEFI** (Unified Extensible Firmware Interface) is the software baked into your
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machine's flash chip that runs the instant it powers on — the modern successor
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to the legacy BIOS. Its job is to bring the hardware up to a sane state and then
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find and launch an operating system. From our point of view it's a small runtime
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that hands us a working CPU, a memory map, and a screen, and then gets out of the
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way.
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The key thing to understand: **UEFI is not our OS, it's a stepping stone.** It
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exists to load *us*. Our `src/efi.zig` is a UEFI *application* — a normal program
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that the firmware runs — and its entire purpose is to gather what the kernel needs
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and then jump into the kernel.
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## How the firmware finds us
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UEFI boots by looking for a FAT-formatted partition called the **EFI System
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Partition (ESP)** and running a file at a well-known fallback path:
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```
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esp/EFI/BOOT/BOOTX64.efi <- the "removable media" default for x86-64
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```
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That's exactly the layout `build.zig` assembles. It builds `src/efi.zig` for the
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`uefi` target, installs it to `esp/EFI/BOOT/BOOTX64.efi`, and drops the kernel ELF
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at `esp/danos`. The `run-efi` step then points QEMU at OVMF (UEFI firmware for
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virtual machines) and presents that `esp/` directory to the guest as a FAT drive.
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The firmware finds `BOOTX64.efi` and runs it — that's our `main()`.
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## Boot services: the firmware's API
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While a UEFI app runs, it has access to **boot services** — a table of function
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pointers the firmware provides for allocating memory, reading files, locating
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hardware protocols, and so on. In `boot()` this is the very first thing we grab:
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```zig
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const bs = uefi.system_table.boot_services orelse return error.NoBootServices;
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```
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Everything the firmware offers hangs off tables reachable from
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`uefi.system_table`: `boot_services`, `con_out` (the text console we `log()` to),
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and the various *protocols* (GOP for graphics, SimpleFileSystem for disk access).
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**The critical rule:** boot services are *temporary*. They stop existing the
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moment we call `ExitBootServices`. So the loader's structure is dictated by one
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constraint — **gather everything the kernel could ever need first, then exit.**
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The comment in `boot()` says exactly this:
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> Everything the kernel needs must be gathered *before* we exit boot services,
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> since afterwards none of these calls are usable.
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## What our loader actually does
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`boot()` runs four steps in order:
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### 1. Query the framebuffer (`queryFramebuffer`)
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We ask the firmware for the **Graphics Output Protocol (GOP)**, which describes
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the linear framebuffer — its address, resolution, pitch, and pixel format —
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and, when we can, switch the display to its native resolution first:
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- Locate GOP via its *handle* (not `locateProtocol`), because the same handle
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also carries the display's **EDID**.
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- Read the EDID (trying the `EDID_ACTIVE` then `EDID_DISCOVERED` protocol on each
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GOP handle) and parse the first Detailed Timing Descriptor — by convention the
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panel's preferred (native) resolution. This is best-effort: firmware installs
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these protocols inconsistently, and OVMF with QEMU's stdvga doesn't expose them
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at all.
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- If we got a native resolution, enumerate the GOP modes with `queryMode` and
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`setMode` to the one that matches it (must be a linear 32bpp layout we can
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paint into). If EDID gave us nothing, we **keep the firmware's current default
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mode** rather than guess — with a valid EDID the firmware normally defaults to
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the native mode itself, so its choice beats second-guessing it with, say, the
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largest advertised mode.
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- Copy the resulting address/resolution/pitch/format into our own `Framebuffer`.
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All of this *must* happen now, because after exit there's no GOP to ask. (See
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[framebuffer.md](framebuffer.md) for what those fields mean.)
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### 2. Load the kernel (`loadKernel` + `loadElf`)
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- Use the **LoadedImage** protocol to discover which device we booted from, then
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**SimpleFileSystem** to open that volume.
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- Open the file named `danos`, seek to the end to learn its size, rewind, and read
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the whole ELF into a firmware-allocated pool buffer. (`read` may return short, so
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we loop.)
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- Parse the ELF: validate the `\x7fELF` magic and the `x86_64` machine type, then
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walk the program headers. For every `PT_LOAD` segment we:
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- reserve the exact physical pages it's linked at (`p_paddr`) via
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`allocatePages`,
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- `@memcpy` the file-backed bytes to that address,
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- `@memset` the `.bss` tail (the part where `p_memsz > p_filesz`) to zero.
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The kernel is linked to load at physical `0x100000` (1 MiB) — set by
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`exe.image_base` in `build.zig` and the linker script. UEFI identity-maps memory,
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so the physical address the ELF asks for is the address it actually runs at. If a
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segment's `p_paddr` collided with firmware-reserved memory, `allocatePages` would
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fail and we'd need to move `image_base`.
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`loadElf` returns `e_entry`, the kernel's entry-point address.
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### 3. Exit boot services (`exitBootServices`)
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This is the handoff's trickiest step. To exit, the firmware demands the current
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**memory map** and its *key* — proof that we've seen the latest state of memory.
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But allocating the buffer to hold the memory map can itself *change* the map,
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invalidating the key. So it's a retry loop:
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```
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get map info -> allocate buffer (+ spare descriptors) -> get map
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-> try exit with map.key
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-> if it failed, the map moved: free, retry
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```
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Once `exitBootServices` succeeds, **the firmware's services are gone for good** —
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we must never touch `bs`, `con_out`, or any protocol again. The machine is now
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entirely ours.
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### 4. Jump to the kernel
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```zig
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const kernel: *const fn (*const BootInfo) callconv(danos.kernel_abi) noreturn =
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@ptrFromInt(entry);
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kernel(&boot_info);
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```
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We cast the entry address to a function pointer and call it, passing a pointer to
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the `BootInfo` we filled in. This never returns.
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## The ABI subtlety: RCX vs RDI
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There's a deliberate detail worth calling out. A UEFI binary is compiled with the
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**Microsoft x64** calling convention (first argument in register **RCX**). Our
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kernel is freestanding and uses the **SysV AMD64** convention (first argument in
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**RDI**). If we let each side use its target's default, the loader would place
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`boot_info` in RCX while the kernel looked for it in RDI — and the kernel would
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read garbage.
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So both sides pin the convention explicitly to SysV via the shared
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`danos.kernel_abi` (defined in `src/root.zig`). The loader's function-pointer type
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and the kernel's `_start` both reference it, so the pointer lands in the register
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the kernel expects. This is the whole reason `kernel_abi` lives in the shared
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`danos` module: it's a contract both binaries must agree on. See
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[sysv.md](sysv.md) for what "SysV" means and where else it shows up.
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## The handoff contract
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The loader and kernel are two *separate* binaries built for two different targets,
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so everything they exchange must have an identically-defined memory layout. That's
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what `src/root.zig` provides — imported by both as the `danos` module:
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- `BootInfo` — the top-level struct passed to the kernel (currently just the
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framebuffer; this is where future handoff data like the memory map will go).
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- `Framebuffer`, `PixelFormat`, `kernel_abi` — the shared field layouts and the
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calling convention.
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Both are `extern struct`, giving them a stable, C-compatible layout so the bytes
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the loader writes are the bytes the kernel reads.
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## The whole flow at a glance
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```
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power on
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-> UEFI firmware initialises hardware
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-> finds esp/EFI/BOOT/BOOTX64.efi, runs it (our efi.zig main)
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-> grab boot services
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-> queryFramebuffer (via GOP: EDID native res, setMode, describe fb)
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-> loadKernel (read danos ELF, load PT_LOAD segments to 0x100000)
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-> exitBootServices (retry until the memory-map key holds)
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-> jump to e_entry, boot_info pointer in RDI
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-> kernel _start (src/main.zig: framebuffer console, then halt)
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```
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Bottom line: **UEFI's job is to give us a CPU, memory, and a framebuffer, then
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disappear.** `src/efi.zig` is the thin bridge that collects those gifts into a
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`BootInfo`, tears down the firmware, and jumps into the kernel — after which we're
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on our own.
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