Files
danos/system/configuration/protocol.csv
T
Daniel Samson 1d7850239d establishment: block stops being a name, and enumerate learns to page
P2 of docs/establishment-planes-plan.md. usb-storage serves nameless — one
process per stick cannot share an exclusive bind, and a second stick used to
die silently on -EBUSY before ever helloing. Its one hello now moves both
directions at once: the block-serving endpoint up, its controller channel
down. fat finds its volume through the manager — a new `.consumer` role asks
for the channel of the driver BOUND TO a device (distinct from the device's
reporter), found by enumerating the tree for the mass-storage identity.
fat stays single-volume; the boot-volume-by-content choice is M21.

The conversion immediately caught a live truncation of exactly the audit's
shape: ChildEntry grew to 32 bytes, one enumerate reply holds ~7, and a real
tree carries a dozen ACPI nodes before the first USB child — the storage
entry silently never fit (the protocol comment already said "paging joins
the protocol if a tree ever outgrows one packet"). enumerate is now paged:
Header.target is the start cursor, a short page is the end; device-list's
page-0 read is unchanged.

Grant rows move with the code: the block bind and fat's block open die, fat
gains open device-manager. Gate: 18 cases green including the registry
trio, device-list, and both IOMMU storage variants.
2026-08-09 12:24:25 +01:00

12 KiB

1# /system/configuration/protocol.csv — who may claim, and who may reach, a name
2# under /protocol (docs/os-development/protocol-namespace.md).
3#
4# init is the registrar: it serves /protocol, and every bind AND every open is
5# checked against this file. It is AUTHORITATIVE — a name no row grants cannot be
6# bound or reached, and a missing file means nothing may be bound or reached at
7# all.
8#
9# A refused open is answered exactly as a name nobody bound is: -ENOENT, and no
10# capability. That is not politeness, it is the model — the namespace IS the
11# restriction, so what a process may not open simply does not exist for it, and
12# Which is why a missing row here shows up as a client retrying forever rather
13# than as an error: check this file first, and `readdir /protocol` second.
14#
15# '#' starts a comment (whole-line or trailing); blank lines are ignored.
16# Whitespace around a field is trimmed, so columns may be padded. Four
17# comma-separated fields per row:
18#
19# binary the claimant's binary path, exactly as the kernel stamped it at
20# spawn (argv[0]) — unforgeable, read from the process records
21# supervisor the authorized supervising TASK, written as the binary it runs —
22# the path init was started as for its own services, the device
23# manager's path for the drivers it starts. The one word that is not
24# a path is 'kernel', because a kernel task has no binary; that is
25# what the test harness's direct spawns look like.
26# Matched by IDENTITY, not by spelling. Name alone is not identity —
27# spawn is ungated, so a hostile process can start a granted binary
28# itself and inherit its grants; and it can equally start its own
29# instance of the *supervisor's* binary and have that spawn the
30# granted one, at which point both names read correctly (the
31# laundering deputy). So init also asks which task the supervisor
32# is: 'kernel' means supervisor id 0, which only the kernel can
33# confer; init's own path means this init; any other path means a
34# task init spawned itself or one the kernel spawned. Task ids are
35# monotonic and never reused, so an id cannot be borrowed.
36# permission bind (provide this contract) | open (speak to it) |
37# supervise (stand in someone else's chain — see below)
38# name the contract, relative to /protocol
39#
40# A trailing '*' on any field matches any tail — how a subtree is granted whole.
41#
42# 'supervise' exists because attestation is one hop deep and the driver tree is
43# three: the device manager starts the PS/2 bus, and the bus starts the keyboard
44# and mouse drivers. Init never met the bus, so it cannot vouch for it by
45# acquaintance — and it must not vouch for it by name, or the laundering deputy
46# walks straight in. A 'supervise' row is the manifest saying it: a task running
47# this binary, under this supervisor, may be the supervising task an 'open' row
48# names, for this contract and no other. It grants the delegate nothing itself,
49# and it is deliberately open-only — a delegate may vouch for what its children
50# REACH, never for what they CLAIM, so every bind refusal is untouched by it.
51#
52# binary supervisor permission name
53# --- the services init spawns from init.csv ---------------------------------
54/system/services/input, /system/services/init, bind, input
55/system/services/device-manager, /system/services/init, bind, device-manager
56/system/services/fat, /system/services/init, bind, vfs
57/system/services/display, /system/services/init, bind, display
58# The discovery service ships under one neutral name per firmware (docs/discovery.md);
59# on x86 it is the acpi service, and what it provides is the power contract.
60/system/services/discovery, /system/services/device-manager, bind, power
61# --- the drivers, which the device manager spawns ---------------------------
62# usb-transfer and block have NO bind rows: several processes provide each (one
63# per controller, one per volume), so neither is ever a registry name —
64# consumers get their provider's channel from the device manager's hello,
65/system/drivers/ps2-bus, /system/services/device-manager, bind, ps2-bus
66/system/drivers/virtio-gpu, /system/services/device-manager, bind, scanout
67# --- the same providers when the kernel test harness starts them directly ---
68# A scenario boot spawns its own providers instead of letting init do it
69# (docs/security-track-plan.md, decision 9), so the same binaries appear with
70# 'kernel' as the supervisor. Nothing else changes: the binary must still match.
71/system/services/input, kernel, bind, input
72/system/services/device-manager, kernel, bind, device-manager
73/system/services/fat, kernel, bind, vfs
74/system/services/display, kernel, bind, display
75/system/services/discovery, kernel, bind, power
76# --- test fixtures ----------------------------------------------------------
77# The subtree rule, dogfooded: anything installed under /test may claim anything
78# under /protocol/test, and nothing above it — whether the harness spawned it or
79# another fixture did.
80/test/*, kernel, bind, test/*
81/test/*, /test/*, bind, test/*
82# ============================================================================
83# open — who may REACH each contract. One row per client per contract; a client
84# with no row here simply finds the name absent, forever.
85# ============================================================================
86# --- init's own services ----------------------------------------------------
87# fat reaches the device manager to be routed to its volume's block provider
88# (block is not a name — see the bind section); the compositor reaches the
89# scanout its driver announced, its own endpoint (the mouse-listener thread
90# opens /protocol/display like any other client — threads share no handles),
91# and the input stream that moves the cursor.
92/system/services/fat, /system/services/init, open, device-manager
93/system/services/display, /system/services/init, open, scanout
94/system/services/display, /system/services/init, open, display
95/system/services/display, /system/services/init, open, input
96/system/services/display-demo, /system/services/init, open, display
97# --- the same two when the kernel test harness starts them directly ---------
98/system/services/display, kernel, open, scanout
99/system/services/display, kernel, open, display
100/system/services/display, kernel, open, input
101/system/services/display-demo, kernel, open, display
102# --- the drivers, and the discovery service ---------------------------------
103# Every driver says hello to the manager that started it — one row for the whole
104# subtree, because that handshake is what being a driver means. The rest are per
105# driver: the storage and HID class drivers talk to their controller, the HID
106# drivers publish into the input stream, and the GPU driver announces its scanout
107# to the compositor.
108/system/drivers/*, /system/services/device-manager, open, device-manager
109/system/services/discovery, /system/services/device-manager, open, device-manager
110/system/drivers/usb-hid-keyboard, /system/services/device-manager, open, input
111/system/drivers/usb-hid-mouse, /system/services/device-manager, open, input
112/system/drivers/virtio-gpu, /system/services/device-manager, open, display
113# --- the PS/2 child drivers, one hop further down ---------------------------
114# The keyboard and mouse drivers are started by the BUS driver, not by the
115# device manager — the one three-deep chain in the tree. Init cannot vouch for
116# the bus by acquaintance (it never started it), so the manifest authorizes it
117# explicitly, and only for the two contracts its children need.
118/system/drivers/ps2-bus, /system/services/device-manager, supervise, ps2-bus
119/system/drivers/ps2-bus, /system/services/device-manager, supervise, input
120/system/drivers/ps2-keyboard, /system/drivers/ps2-bus, open, ps2-bus
121/system/drivers/ps2-keyboard, /system/drivers/ps2-bus, open, input
122/system/drivers/ps2-mouse, /system/drivers/ps2-bus, open, ps2-bus
123/system/drivers/ps2-mouse, /system/drivers/ps2-bus, open, input
124# --- test fixtures ----------------------------------------------------------
125# The /protocol/test subtree is theirs whole, the way the bind rows give it to
126# them. Everything ABOVE that subtree is named one fixture at a time, so a
127# fixture reaches a system contract only where a scenario needs it — which is
128# what leaves the rest genuinely absent for the rest of them (the protocol-denied
129# case asks for one it was not given, and is told there is no such thing).
130/test/*, kernel, open, test/*
131/test/*, /test/*, open, test/*
132/test/*, kernel, open, device-manager
133/test/*, /system/services/device-manager, open, device-manager
134/test/system/services/input-source, kernel, open, input
135/test/system/services/input-test, kernel, open, input
136# The guessable-id probe (test/system/services/badge-scope-test) runs as two
137# processes of one binary: the owner, which the scenario spawns, and the intruder,
138# which the owner spawns with the ids it holds. Both reach the compositor — the
139# owner to create the layer, the intruder to be refused it — so the binary is
140# named twice, once per supervisor. The second row needs no 'supervise'
141# delegation: the owner was spawned by the KERNEL, which is a chain init can
142# vouch for on its own.
143/test/system/services/badge-scope-test, kernel, open, display
144/test/system/services/badge-scope-test, /test/*, open, display
145# The conformance probe (test/system/services/protocol-conformance-test) asks
146# every provider its boot bound for the envelope's reserved verbs. It reaches
147# ONLY the two contracts its own scenario boots a provider for, named one at a
148# time exactly like the two rows above — no subtree, no wildcard. Everything else
149# under /protocol stays absent for it, which is the point: the fixture walks the
150# namespace listing and reports what it could not open rather than being handed
151# the tree to make the test look broad.
152/test/system/services/protocol-conformance-test, kernel, open, input
153/test/system/services/protocol-conformance-test, kernel, open, display
154# The laundering-deputy probe (test/system/services/protocol-registry-test) runs
155# a grandchild whose supervisor is a fixture nobody authorized — that is the
156# point of it, and its bind must stay refused. It still has to report the verdict
157# it got, so its reporting channel, and nothing else, is delegated.
158/test/*, /test/*, supervise, test/verdict