Commit Graph
4 Commits
Author SHA1 Message Date
jaap-jan db4a8ed3d3 Let an already-enrolled account register a device key
The first of the three pieces ADR 0007 needs, and the one that was a discovery
rather than a plan. EnrollmentService.AddDevice runs only during enrollment, so
without an endpoint the device-unlock feature would have reached accounts created
after it shipped and no others — which is to say none of the ones that exist. The
code even said so: "the devices endpoint sets it properly when it lands."

POST /api/v1/me/devices takes a name, an X25519 public key and the bundle sealed
to it, and writes a device row plus a UserKeyWrapKind.Device wrap.

Possession is proved by construction, so there is no challenge. The wrap is the
secret bundle sealed to the supplied public key, and only something that has
opened that bundle can produce it. A caller who seals the wrong bytes registers a
device that cannot unlock, which harms nobody else; the server cannot tell the
difference and must not pretend to, because it holds no key that opens either.
That is also why the client must be unlocked to call this at all.

It is the one endpoint in the /me group that requires enrollment, and it says so
itself rather than relying on the group. The group deliberately does not: GET /
and POST /enrollment are how a client discovers it needs to enroll and then does
so, and gating those on enrollment would make enrollment unreachable. Adding the
stricter policy to this route alone means an unenrolled caller is told
"enrollment-required" by the authorization handler rather than getting a 400 about
the shape of a request that was fine.

Idempotent on the public key, and 200 rather than 201 for the reason enrollment
gives: a retry of an identical request returns the same body, so there is no
single moment of creation to point a Location header at. A second row for one key
would mean a device list with a duplicate in it and two wraps to revoke instead
of one. Mutation tested — removing the lookup fails
RegisterDevice_TwiceWithTheSameKey_ReturnsTheSameDeviceAndAddsNoSecondWrap and
nothing else.

That test also found a real defect, in the way these usually surface: two
timestamps that print identically and are not equal. TimeProvider reports
100-nanosecond ticks and PostgreSQL's timestamp with time zone keeps microseconds,
so the first call returned a value that no later read of the row would ever
produce, and the idempotent retry answered with a different timestamp for the same
device. Nothing breaks, which is what makes it worth fixing: the service now
truncates to the precision the column actually holds, so the response is the same
value every time it is asked for. The repo already had a precedent for this class
of thing in KeyLogChain.TruncateTimestamp; it just had not been applied here.

The platform is deliberately not carried on the wire, which leaves
Device.Platform unreported and the stale comment corrected rather than fulfilled.
It would be a display-only field, and a Contracts enum mirroring the domain's
DevicePlatform is exactly the shape of duplication that has produced three
self-consistent bugs in this repository. A device list that wants it can add a
mapping table and a test pinning the two together, which is what the sync entity
types already do.

Its own problem code and exception rather than reusing enrollment's, whose rules
it largely shares. Registering a device is not enrolling, and a client showing
"your enrollment was rejected" because somebody set up a fingerprint reader would
be describing the wrong thing. The validation shares the limit constants —
MaximumWrapBytes, MaximumDeviceNameLength, PublicKeySize — and not the four-line
guards, which would have had to be parameterised over which exception to throw for
less than they cost.

Both in-memory fakes implement it properly rather than throwing: they record the
wrap so a test can assert it arrived, and refuse before enrollment as the real
endpoint's policy does. A fake that answered where the server refuses is a fake
that can make a real bug pass.

866 tests green, 8 of them new. Zero warnings, dotnet format clean.

Still to come: the protector seam with the wrap cached locally so device unlock
works offline, then the Windows Hello implementation and the unlock-screen UI —
which is where the Windows target framework lands and where automated testing
stops.
2026-07-30 13:18:09 +02:00
jaap-jan 1d262b7ccc Run M1's end-to-end slice, and fix the two bugs it found
The whole vertical slice now runs against a real Keycloak, a real API, a
real PostgreSQL and a real sshd: sign in through the browser flow, enroll
with the identity-provider key binding, unlock, create a host, sync it,
read it back on a second machine, unlock again with no network, accept an
unseen host key, and open an interactive shell. Opt-in, because it needs
the development stack; skipped with a message naming the commands.

It found two bugs on its first run, and both are the same class: two
sides of a stub agreeing with each other about something the
specification never said.

**The API never applied DodoSshJsonContext to its HTTP JSON options.**
Minimal APIs therefore used the framework's web defaults, which write an
enum as a number. Every request DTO carrying one failed to bind against a
client writing the specified string form — which is the entire sync
surface, unreachable from the real client, with a 400 naming only the
parameter. The documented guarantee that request bodies reject unmapped
members was likewise not in effect anywhere.

Nothing caught it because the API tests posted with PostAsJsonAsync's
defaults, so they and the server had independently settled on integers.
Those tests now serialise through the contract, which is the deeper fix:
removing the new configuration fails 13 of them. Copying settings into
options a host owns is itself the hazard the context warns about, so
ApplyTo lives beside the settings it mirrors and ApplyToTests pins the
transformation, including that inserting the resolver leaves the caller's
own in place.

**The realm registered a loopback redirect URI Keycloak rejects.**
`http://127.0.0.1:*/callback` looks more explicit than the RFC 8252 form
and is broken: Keycloak's wildcards are trailing-only, so the `*` parses
as a literal port and every authorization request came back "Invalid
parameter: redirect_uri". Providers ignore the port for loopback hosts,
which is the whole mechanism, so the correct registration is
`http://127.0.0.1/callback` — path pinned, port free. The value the
server advertises through the discovery document said the same wrong
thing and now says the right one.

Two smaller things, both documented in docs/platform-flags.md:

- --import-realm skips a realm that already exists, so editing the realm
  file and restarting Keycloak changes nothing and serves stale
  configuration. The container has to be recreated. The compose comment
  claimed the opposite.
- Keycloak marks its session cookies Secure even over plain HTTP, because
  SameSite=None requires it. A spec-conformant client drops them and the
  login POST answers 400 with no message; browsers complete the flow only
  because they exempt loopback. Harmless for the product, fatal for
  automation, so ScriptedBrowser carries the cookies by hand and says why.

Also: the server enforces a 64 MiB floor on the passphrase KDF, so this
suite cannot use the 8 MiB profile the other client suites take for
speed. Those only get away with it because their in-memory servers have
no policy — worth knowing rather than rediscovering.

638 tests. The solution-wide run stays green with the stack down: exit
code 8 means "no tests ran", which the platform reports as failure, so
the opt-in project ignores exactly that code.
2026-07-29 11:37:49 +02:00
jaap-jan 8d2416a602 Add the encrypted local cache and the sync client
Three new client projects, and the wire-contract fix they needed.

DodoSSH.Client.Domain holds the decrypted item model and the three-way
merge, with no I/O at all — so the suite that decides whether a
credential can be lost runs in milliseconds with nothing to mock.
Scalars defer to the server on a genuine clash so every replica resolves
the same triple identically and two clients cannot ping-pong; directives
merge per name so two people each adding one both keep theirs; the jump
chain merges as a whole value because its order is the route. Whatever
loses is returned rather than dropped.

DodoSSH.Client.Storage is EF Core on SQLite, no SQLCipher: the rows are
already ciphertext, so an encrypted file would protect protected bytes
at the cost of a native dependency. It keeps the server's state and the
outbox in separate tables, which is what preserves the common ancestor a
merge needs. One pending operation per item, enforced by a unique index.

DodoSSH.Client.Sync is the pull/apply/push loop. Pulling never decrypts
— a change with no local work pending is plumbed as ciphertext — so a
first sync of thousands of items does not run twice as many AEAD
operations for nothing.

Contracts: EncryptedPayload gains WrappedDataKey and DataKeyId. The
specification has required a per-item data key since crypto.md §3, the
columns have existed since the first migration and DshAad.ItemPayload
binds the id, but this record had nowhere to put either — so a
spec-compliant item could not be transmitted at all. Found by writing
the client that has to produce one. Also closes a hole in
AadResourceType, which had no value for the HostTag and HostCredential
that SyncEntityType has always listed.

Four bugs the tests found, not review:

- SQLite refuses to order or compare its own DateTimeOffset mapping, and
  throws at execution rather than model build. Collecting tombstones and
  listing conflicts are both that shape, so this was a crash waiting for
  the first user with a deleted host. Timestamps are integers now, by
  convention so a later field cannot be the one left unconverted.
- SQLitePCLRaw 2.1.11, which EF resolves, is covered by
  GHSA-2m69-gcr7-jv3q. Pinned forward as a family.
- Resurrecting content from a remote deletion cleared the original
  before queueing the copy. Two transactions, so a crash between them
  lost the work; reversed, and the rescued id is derived from the
  tombstone so a replay coalesces instead of duplicating.
- Several equality assertions went through Shouldly's ShouldBe, which
  compares IEnumerable element-wise and so tested nothing about the
  Equals these types exist to provide. Corrected; the falsification that
  caught it went from 2 failures to 6.

The push response's cursor is deliberately ignored. It sits after this
client's own writes, so adopting it skips anything another client
committed at a lower sequence in the window between a pull and a push —
permanently. Re-reading one's own writes is idempotent and costs a page.
The Contracts doc that invited the shortcut now says so.

593 tests, up from 448. The delete-versus-edit rules, the ancestor
retention, the fresh operation id on coalesce and the cursor safeguard
were each verified by breaking them and watching the right test fail.
2026-07-29 10:27:37 +02:00
jaap-jan a628762cd1 Add /me and enrollment with the identity-provider key binding (M1)
The last backend piece of M1. A client can now log in, discover it must
enroll, publish its identity key, and get a usable personal vault.

Enrollment is one indivisible act. One transaction writes the key, its
wraps, the device, the key log entry, the vault and the vault key grant,
because none of them is useful alone: a key with no vault leaves a user
unable to store anything, and a vault with no grant is a container nobody
can ever open -- including its owner, since only the client can wrap the
key and it has already moved on.

Two independent checks run, and neither substitutes for the other. The
Ed25519 self-signature proves possession of the private key. The
identity-provider binding proves whose key it is: the client hashed its
statement, used the hash as an OIDC nonce, and the resulting ID token is
the provider's signature over exactly those public keys. This server
cannot mint that signature, so it cannot invent a key for a user who never
enrolled -- which is the attack that would otherwise let an operator read
every vault by publishing its own key as yours.

The binding token is stored verbatim, not just summarised. Clients must
repeat the check against the provider's JWKS fetched directly, and storing
only our conclusion would ask them to trust the server about the one
question the design exists to avoid trusting it about.

Key log appends take a deployment-wide advisory lock. The falsification
matters more than the passing test: with the lock removed,
Enroll_ConcurrentEnrollmentsByDifferentUsers_LeaveAnUnbrokenChain fails
with entry 11 linked to the wrong predecessor. Different users trip no
unique index, so without serialising they all read the same head and the
chain forks -- indistinguishable from the key substitution the log exists
to make detectable, and permanent, because the log is append-only.

Enrollment is idempotent. Vault ids and keys are client-chosen, so a
client whose response was lost re-sends the identical body and gets the
identical result. Without that, a lost response leaves a user enrolled
against a vault they never learned the id of.

Contract change, breaking the v0.1 freeze deliberately. EnrollmentRequest
had DevicePublicKey but no wrap to go with it, which is unsatisfiable:
only the holder of the secret bundle can seal it, so the server could
never fill the gap. Added DeviceWrappedPrivateKey, and PersonalVault so
enrollment can be atomic rather than leaving an unopenable vault behind
two endpoints that do not exist yet. No client exists and no package is
published, which is exactly when PublicAPI.Unshipped.txt expects this.

Sync now requires the Enrolled policy, which until now was a stub whose
name promised a check it never made. The sync denial tests use enrolled
intruders instead of unenrolled ones -- an unenrolled caller is stopped
before the vault check runs, which would have left those tests passing
without exercising the thing they exist to prove.

Also fixed: omitting kdfParameters from the JSON body was a 500. A
record's non-nullable parameters are a compile-time promise, not a runtime
one.

268 tests pass, zero warnings on a clean rebuild, format clean.
2026-07-28 16:06:35 +02:00