The load-bearing step. The FAT service stops acquiring its own volume: the volume manager spawns it (per volume), defines its partition range on the storage driver BEFORE it runs, and answers its startup hello with the range-confined block channel over a new volume-manager protocol. fat never finds its storage by name and never sees the whole device — establishment by lineage, one layer up from the driver tree. - New library/protocol/volume-manager: one verb, hello(volume-id) -> the block channel as the reply capability (the P0 reply-cap path). - The volume manager becomes the confinement CONTROLLER: it defines the first range on usb-storage, so no other party can confine a filesystem. It supervises the filesystems it spawns and respawns one on death (the reap- and-rebuild the device manager proved, one layer up). - fat: drops acquireVolume(device-manager); hellos the volume manager for its channel; reads its volume id from argv[1]. main takes process.Init now. - init.csv no longer spawns fat (the volume manager does); protocol.csv rewires fat to be supervised by the volume manager (bind vfs, open volume-manager) and drops fat open device-manager. - The block-range fixture boots registry + device-manager only (not the full tree), so the volume manager is absent and the fixture stays the sole confinement definer — otherwise the volume manager would take the controller first and refuse it. Verified end to end (VM probes -> spawns fat -> confines it -> hands over the channel -> fat mounts) and neutral: 18/18 across the fat family, logging, shutdown, both IOMMU variants, usb restart, vfs, conformance, confinement.
35 lines
1.3 KiB
Zig
35 lines
1.3 KiB
Zig
//! The fat service as a binary package (docs/build-packages-plan.md):
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//! this file names the binary and EXACTLY the modules its source imports —
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//! build-support resolves each name from the domains this zon declares.
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const std = @import("std");
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const build_support = @import("build-support");
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pub fn build(b: *std.Build) void {
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const exe = build_support.userBinary(b, .{
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.name = "fat",
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.root_source_file = b.path("fat.zig"),
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.imports = &.{
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"block", "channel", "envelope", "file-system-harness",
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"ipc", "logging", "memory", "process",
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"time", "volume-manager-protocol",
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},
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});
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b.installArtifact(exe);
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// Standalone `zig build test`; the root aggregate depends on this step.
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const test_step = b.step("test", "Run the fat unit tests");
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for ([_][]const u8{
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"on-disk.zig", // FAT on-disk struct sizes + type detection
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"engine.zig", // FAT read/write over a RAM-backed image
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}) |test_root| {
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const unit_tests = b.addTest(.{
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.root_module = b.createModule(.{
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.root_source_file = b.path(test_root),
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.target = b.resolveTargetQuery(.{}),
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}),
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});
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test_step.dependOn(&b.addRunArtifact(unit_tests).step);
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}
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}
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