123 lines
6.1 KiB
Markdown
123 lines
6.1 KiB
Markdown
# SysV: the kernel's calling convention
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Several places in danos say "the kernel is SysV" — most visibly `system/boot-handoff.zig`:
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```zig
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pub const kernel_abi: std.builtin.CallingConvention = .{ .x86_64_sysv = .{} };
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```
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**SysV** is short for the **System V AMD64 ABI**, the calling convention that
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Unix-like systems (Linux, the BSDs, macOS) use on x86-64. This page explains what
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that means and why danos has to pin it explicitly.
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## What a calling convention is
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At the machine level there's no language keeping two functions honest when one
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calls the other — just registers and a stack. So there has to be a shared
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agreement on the mechanics:
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- which registers carry the **arguments**, and in what order,
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- where the **return value** goes,
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- which registers the callee must **preserve** versus may freely clobber,
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- the **stack alignment** required at a call,
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- how larger things (structs, floats, varargs) are passed.
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That agreement is the calling convention. Both sides of a call must be compiled to
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the *same* one, or they read arguments out of the wrong registers and get garbage.
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("ABI" — Application Binary Interface — is the broader term, also covering type
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sizes and object-file format; here we mean the calling-convention part.)
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## What SysV specifies (the parts that matter here)
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Integer and pointer arguments go in this register sequence:
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| arg | 1 | 2 | 3 | 4 | 5 | 6 |
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|------|---------|-----|-----|-----|----|----|
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| reg | **RDI** | RSI | RDX | RCX | R8 | R9 |
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The return value comes back in **RAX**. RBX, RBP and R12–R15 are **callee-saved**
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(a function must restore them before returning); the rest are caller-saved. The
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stack must be 16-byte aligned at a `call`. And there's a **red zone** — 128 bytes
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below RSP that a function may use as scratch without adjusting RSP.
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The name is historical: it descends from AT&T's *System V* Unix, whose ABI
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documents this lineage comes from. The modern spec is the "System V Application
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Binary Interface, AMD64 Architecture Processor Supplement."
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## Why danos pins it: RDI vs RCX
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The reason this is called out explicitly is a clash with the *other* common x86-64
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convention, **Microsoft x64** — used by Windows **and UEFI** — where the first
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argument arrives in **RCX**, not RDI.
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danos's two binaries default to different conventions:
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- `boot/efi.zig` is built for the UEFI target, so its default C convention is
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Microsoft x64 (first argument → RCX).
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- The kernel is freestanding, so its convention is SysV (first argument → RDI).
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When the loader jumps to the kernel passing the `BootInformation` pointer, both sides have
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to agree *which register that pointer lands in*. Left to their defaults, the loader
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would place it in RCX while the kernel looked in RDI — and the kernel would read
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garbage. So both sides reference the same `boot_handoff.kernel_abi` (SysV): the loader's
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function-pointer type and the kernel's `_start` both carry
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`callconv(boot_handoff.kernel_abi)`, and the pointer reliably arrives in RDI. That is the
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whole reason `kernel_abi` lives in the shared contract — see [efi.md](efi.md) for
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the handoff it governs.
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## The process-entry stack (argc/argv)
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The SysV ABI also fixes what a *fresh process* finds on its stack — and danos
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follows it, so its own runtime and any future C libc read arguments the same way.
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At the first user instruction, `rsp` is 16-byte aligned and points at (addresses
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growing upward):
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```
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rsp → argc u64
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argv[0] … argv[argc-1] pointers into the strings area below
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NULL argv terminator
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NULL envp terminator (no environment yet)
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{AT_PAGESZ, page size} auxiliary vector
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{AT_NULL, 0} auxiliary-vector terminator
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argv string bytes NUL-terminated
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───────────────────────── stack top (stack_top_virtual)
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```
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The kernel builds this block at the top of the process's stack — 8 pages (32 KiB,
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`parameters.user_stack_pages`) mapped RW+NX below a fixed top, with the page below
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them left unmapped as a **guard**, so a stack overflow faults (killing only that
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process) instead of silently corrupting the image
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(`buildEntryStack` in `system/kernel/process.zig`); `argv[0]` is always the path
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or initial-ramdisk name the process was spawned as, and `system_spawn`'s optional
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argument blob becomes `argv[1..]`. The runtime's `_start`
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(`library/kernel/start.zig`) hands the block to `rt_start`, which builds a
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`process.Init` from it and passes that to the program's `main`
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(`pub fn main(init: process.Init)`; a parameterless `main()` is also
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accepted). A C runtime's `crt0` would walk
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the identical layout unmodified — that's the compatibility being bought. The
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`args` test proves the round trip.
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## Where else it surfaces
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- **The red zone → `red_zone = false`.** `build.zig` disables the red zone for the
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kernel. Interrupts push their frame onto the current stack; if the interrupted
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code was using its 128-byte red zone, that push would stomp it. Turning the red
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zone off is the standard fix for kernel code — a direct consequence of SysV
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*having* a red zone. (See [interrupts.md](interrupts.md).)
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- **`callconv(.c)` == SysV here.** The exception/interrupt dispatcher
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(`interruptDispatch`) is declared `callconv(.c)`, which resolves to SysV on this
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target. That's why the assembly stub in `isr.s` moves the `CpuState` pointer into
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**RDI** before `call`ing it — the same first-argument rule.
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So "the kernel is SysV" means: its functions pass arguments in RDI/RSI/RDX/…,
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return in RAX, preserve the SysV callee-saved registers, and assume a red zone —
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and every boundary that calls into the kernel (the loader, the interrupt stubs)
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has to speak that same convention at the point of the call.
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## A note on other architectures
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This is x86-64-specific. An AArch64 port ([architecture.md](architecture.md)) has its own calling
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convention (arguments in X0–X7, and so on) — a different ABI entirely. `kernel_abi`
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would be set per-architecture, but the *principle* is the same: the loader/entry
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boundary and the kernel must agree on how arguments are passed.
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