The xHCI driver scans its root-hub ports and reports the tree (M18.2)
child_added/child_removed join the device-manager protocol. The driver maps its register BAR (resource 0 is the ECAM config space; the walk starts at 1), reads CAPLENGTH and HCSPARAMS1, and reads one PORTSC per port: the connect bit and speed class come straight from hardware, no rings needed to see the devices. The manager mirrors reported children keyed by (parent, port), remembers which instance reported each, and prunes a dead reporter's children before deciding the restart — the children describe protocol state that died with the process. The usb-report scenario drives the whole loop: two QEMU devices reported, reporter killed, children pruned, driver respawned with backoff, and the new instance re-claims, re-scans, and re-reports.
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@@ -140,6 +140,8 @@ pub fn run(case: []const u8, boot_information: *const BootInformation) void {
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signalsTest(boot_information);
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} else if (eql(case, "driver-restart")) {
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driverRestartTest(boot_information);
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} else if (eql(case, "usb-report")) {
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usbReportTest(boot_information);
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} else if (eql(case, "initial-ramdisk")) {
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initialRamdiskTest(boot_information);
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} else if (eql(case, "vfs")) {
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@@ -1694,6 +1696,40 @@ fn driverRestartTest(boot_information: *const BootInformation) void {
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result();
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}
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/// M18.2: bus tree reports, end to end. The manager (test-usb-restart mode)
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/// spawns the xHCI driver; the driver maps its BAR, scans the root-hub ports,
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/// and reports the two QEMU devices; the manager mirrors them, kills the
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/// reporter (the test trigger), prunes both children, restarts the driver with
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/// backoff, and the respawned instance re-claims, re-scans, and re-reports.
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/// The harness's ordered expect regex is the assertion; this test only
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/// orchestrates the spawn.
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fn usbReportTest(boot_information: *const BootInformation) void {
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log("DANOS-TEST-BEGIN: usb-report\n", .{});
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if (boot_information.initial_ramdisk_len == 0) {
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check("bootloader handed over an initial_ramdisk", false);
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result();
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return;
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}
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const image = @as([*]const u8, @ptrFromInt(boot_handoff.physicalToVirtual(boot_information.initial_ramdisk_base)))[0..boot_information.initial_ramdisk_len];
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const rd = initial_ramdisk.Reader.init(image) orelse {
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check("initial_ramdisk image is valid", false);
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result();
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return;
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};
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process.setInitialRamdisk(image);
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var manager: u32 = 0;
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var i: u32 = 0;
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while (i < rd.count) : (i += 1) {
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const item = rd.entry(i) orelse continue;
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if (!eql(item.name, "device-manager")) continue;
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manager = process.spawnProcessSupervised(item.blob, 4, &.{ "device-manager", "test-usb-restart" }, scheduler.currentId(), null) catch 0;
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break;
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}
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check("device-manager spawned in test-usb-restart mode", manager != 0);
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result();
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}
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/// The whole user-side surface at once: spawn process-test's supervisor role,
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/// which — entirely from ring 3 — creates an exit endpoint, spawns its two
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/// children supervised, sees them in process_enumerate, kills them (one blocked,
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