A protocol is reached by name now, not by a compile-time integer. Init is PID 1 and already knows which binary it started, so init serves /protocol as a vfs backend: bind claims a contract with the provider's endpoint attached, open answers with that endpoint as the reply's capability, and readdir lists what is bound with the task and binary behind it. The kernel reserves the prefix — nothing may mount over it, under it, or unmount it — and ServiceId, ipc_register and ipc_lookup are gone, their syscall numbers left vacant. A bind is authorized by who the caller *is*: the kernel-stamped binary together with the supervising task's identity, matched against /system/configuration/protocol.csv. Identity, not spelling — spawn is ungated, so an attacker can run any bundled binary, and a name-only rule would have let it launder grants through an init of its own making. A name a live process holds is refused to everyone else; a dead one's is released. Three review rounds against a hostile ring-3 process found what 108 green tests could not, because the suite contains no attacker. Publishing init's supervision endpoint as the registry put PID 1's mailbox in every process's hands, where two forged bytes reached the shutdown path: privileged traffic is now believed only from the task that holds the contract it speaks for. A capability arriving on a request outlived every path that ignored it, one handle per call until the table was full — in init, and in the harness ten services share — so the arriving capability is owned by the turn and released unless a handler says otherwise. And the kernel let anyone holding an endpoint handle aim signals, timers, exit notices and interrupts at it: binding now requires having created it. Suite 108/108. The new protocol-registry case asserts eleven properties, each one an attack that must fail.
140 lines
5.5 KiB
Zig
140 lines
5.5 KiB
Zig
//! PS/2 Mouse Driver
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//!
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//! Spawned by the ps2-bus driver once the controller is initialized and the port
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//! has passed its interface test and device reset. The bus driver hands us our
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//! device HID as argv[1].
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//!
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//! Like the keyboard, this driver never touches the hardware: the 8042's ports
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//! and both port IRQs are owned by the ps2-bus driver (the auxiliary port's
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//! IRQ12 lives on the PNP0F13 node, which the bus claims alongside the
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//! controller). The driver **attaches** to the bus and receives every byte the
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//! mouse sends as a forwarded asynchronous message. The bytes assemble into
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//! three-byte packets, and each packet becomes input-protocol events:
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//!
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//! packet -> button transitions -> button_down / button_up
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//! -> movement -> motion (dx/dy, screen convention)
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const std = @import("std");
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const device = @import("driver");
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const channel = @import("channel");
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const ipc = @import("ipc");
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const process = @import("process");
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const time = @import("time");
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const input = @import("input-client");
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const memory = @import("memory");
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const logging = @import("logging");
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const ps2 = @import("ps2-library.zig");
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const mouse_packet = @import("mouse-packet.zig");
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const input_protocol = @import("input-protocol");
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/// Open `/protocol/ps2-bus`, retrying while the bus (which spawned us before
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/// binding) is still coming up.
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fn lookupBus() ?ipc.Handle {
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var attempts: usize = 0;
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while (attempts < 100) : (attempts += 1) {
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if (channel.openEndpoint("ps2-bus")) |handle| return handle;
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time.sleepMillis(50);
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}
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return null;
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}
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/// The protocol's pressed-button bitmask for a packet.
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fn buttonMask(packet: mouse_packet.Packet) u32 {
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var mask: u32 = 0;
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if (packet.left) mask |= input_protocol.mouse_button_left;
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if (packet.right) mask |= input_protocol.mouse_button_right;
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if (packet.middle) mask |= input_protocol.mouse_button_middle;
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return mask;
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}
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pub fn main(init: process.Init) void {
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const hid = init.arguments.get(1).?;
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if (hid.len == 0) {
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_ = logging.write("/system/drivers/ps2-bus/mouse: no HID argument\n");
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return;
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}
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std.log.info("starting for hid {s}", .{hid});
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const buffer = memory.allocator().alloc(device.DeviceDescriptor, 64) catch {
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_ = logging.write("/system/drivers/ps2-bus/mouse: out of memory\n");
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return;
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};
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if (ps2.findMouseDescriptor(buffer) == null) {
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std.log.info("no device for hid {s}", .{hid});
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return;
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}
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// Attach to the bus: hand it our endpoint, and it forwards every byte the
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// mouse sends (it owns the controller; we own the decoding).
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const bus = lookupBus() orelse {
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_ = logging.write("/system/drivers/ps2-bus/mouse: ps2-bus service unavailable\n");
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return;
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};
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const endpoint = ipc.createIpcEndpoint() orelse {
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_ = logging.write("/system/drivers/ps2-bus/mouse: no endpoint\n");
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return;
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};
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var attach = ps2.AttachRequest{ .device_type = @intFromEnum(ps2.DeviceType.mouse) };
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var attach_reply: [@sizeOf(ps2.AttachReply)]u8 = undefined;
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const attached = ipc.callCap(bus, std.mem.asBytes(&attach), &attach_reply, endpoint) catch {
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_ = logging.write("/system/drivers/ps2-bus/mouse: attach call failed\n");
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return;
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};
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if (attached.len < @sizeOf(ps2.AttachReply) or
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std.mem.bytesToValue(ps2.AttachReply, attach_reply[0..@sizeOf(ps2.AttachReply)]).status != @intFromEnum(ps2.AttachStatus.ok))
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{
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_ = logging.write("/system/drivers/ps2-bus/mouse: attach refused\n");
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return;
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}
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// Broadcast mouse events through the input service so programs can listen
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// for them (docs/input.md).
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var source = input.connectSource() orelse {
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_ = logging.write("/system/drivers/ps2-bus/mouse: input service unavailable\n");
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return;
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};
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_ = logging.write("/system/drivers/ps2-bus/mouse: ok\n");
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var assembler = mouse_packet.Assembler{};
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var buttons: u32 = 0;
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var receive: [@sizeOf(ps2.ForwardedByte)]u8 = undefined;
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while (true) {
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const got = ipc.replyWait(endpoint, &.{}, &receive, null);
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if (!got.isMessage() or got.len < @sizeOf(ps2.ForwardedByte)) continue;
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const forwarded = std.mem.bytesToValue(ps2.ForwardedByte, receive[0..@sizeOf(ps2.ForwardedByte)]);
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const packet = assembler.feed(@intCast(forwarded.byte & 0xFF)) orelse continue;
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const new_buttons = buttonMask(packet);
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// A button transition per changed button, carrying the new whole mask.
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const changed = buttons ^ new_buttons;
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for ([_]u32{ input_protocol.mouse_button_left, input_protocol.mouse_button_right, input_protocol.mouse_button_middle }) |button| {
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if (changed & button == 0) continue;
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const kind: input_protocol.MouseEventKind = if (new_buttons & button != 0) .button_down else .button_up;
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_ = source.publishMouseEvent(.{
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.kind = @intFromEnum(kind),
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.button = button,
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.dx = 0,
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.dy = 0,
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.scroll_x = 0,
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.scroll_y = 0,
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.buttons = new_buttons,
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});
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}
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buttons = new_buttons;
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if (packet.dx != 0 or packet.dy != 0) {
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_ = source.publishMouseEvent(.{
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.kind = @intFromEnum(input_protocol.MouseEventKind.motion),
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.button = 0,
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.dx = packet.dx,
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.dy = packet.dy,
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.scroll_x = 0,
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.scroll_y = 0,
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.buttons = new_buttons,
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});
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}
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}
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}
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