422d5ca10ec02b62eb8a71f3ad548ebf28615f5b
132
Commits
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0b261c4d39 |
Stay signed in, come back online by itself, and let a machine be given up
Three things a machine that has been set up could not do. Unlock now takes Enter, which is the gesture everybody makes after typing a password and which did nothing until they found the button. Signing in survives a relaunch. The refresh token is kept in the local cache, sealed under the vault's own cache key, so a later launch resumes the session through the refresh grant with no browser and nobody present — and because it is sealed under that key, only an unlocked vault can resume it. A locked client therefore cannot reach the server at all, which is a consequence worth stating rather than working around; docs/crypto.md §3.2 records it. Every sync pass asks the shell for a connection rather than reading one captured at unlock, so a laptop that unlocked on a train is online within a minute of finding a network, with nothing pressed. Unlocking itself still never waits on a socket. Signing out empties this machine: the profile, the cached items, the outbox and this machine's device key, with the account's row withdrawn when the server can be reached. It asks first and says what it costs — the outbox count when the vault is open, an admission that it cannot be counted when it is not, and the shells that keep running either way. The vault is on the server and is untouched, which is what makes the same button the only honest answer to a forgotten passphrase, so it is on the unlock screen as well as in preferences. It cannot end the session at the identity provider, and says so. Two defects surfaced on the way. The synchronisation pass that runs when the vault opens never ran at all: the loop is started from inside the unlock command, so the busy flag it yields to was raised by that command — the first sync was a minute late on every launch. And signing in from preferences while unlocked threw an unlock screen over an open vault whose keys were still in memory. The unlock card and the new confirmation live in their own controls because MainWindow cannot be laid out headless, so markup left inside it is markup no test can measure; both are now measured at the window's minimum size in the shapes that grow. What is still unverified is the composed window itself. |
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04faef6597 |
Move files to and from a host over SFTP
M2's file transfer, built bottom-up: an SFTP session on the SSH layer, a transfer queue in a project of its own, and the two-pane browser the design asked for replacing the screen that said it did not exist. Remote listings carry names, sizes, modification times and a real drwxr-xr-x — nothing in this repository could render a POSIX mode before — and the queue moves one file at a time with progress, throughput and resume. The design import assumed this would be an SFTP subsystem channel on ISshConnection, beside the shell on a transport that is already up. SSH.NET does not offer that: SftpClient derives from BaseClient and owns its own transport, and there is no supported way to hand it an SshClient's session. So file transfer opens a second authenticated connection, and it is named for that rather than dressed up as a channel — OpenSftpAsync is on ISftpSessionFactory, not on a connection. The difference is visible to a user: the host records a second login, and a host whose password is typed each time asks for it again on this screen. It goes through the same host key gate, the same pin and the same two refusals a shell does, so a fingerprint approved for a terminal is approved here and one approved here reaches the other machines with the next sync. docs/design-import-gaps.md is corrected, and marked as the one row where what shipped differs from what it predicted. Nothing is written at its final name until it is complete. Every transfer goes to a .dodossh-part file beside its destination and is renamed into place at the end, so an interrupted transfer can never be mistaken for a finished one — which matters most for what this screen is actually for, which is copying a build artefact onto a server and then running it. A destination that already exists is refused outright rather than overwritten: the queue has no way to ask, and silently replacing a file somebody's process is serving is the worse of the two failures. The remote pane has DELETE and MKDIR so that refusal is not a dead end. A test against the container pins the assumption underneath all of this — that SFTP's rename does not clobber. Resume works within a run of the application and not across a restart, and the limit is deliberate rather than unfinished. Nothing records which source wrote a part file, and resuming one on the strength of its name matching is how a corrupt artefact gets delivered with nothing reporting a failure; a part file found at startup is started over. Making it survive a restart needs the preferences store this client still has not got. The offset a resume starts at is the part file's own length rather than the transfer's recorded progress: a cancellation can land between a write completing and the counter moving, and only one of those two is a fact about the bytes that are there. The queue and its connection outlive a lock, as shells do. LockAsync already argues that locking must not destroy work in flight — it is what somebody does when they walk away from the machine, which is exactly when a long transfer is most likely to be running — so TransfersViewModel is created once and the vault is attached on unlock and detached on lock. What locking takes is the host list, and it has to: those rows carry decrypted secrets. DodoSSH.Client.Transfer is a new project rather than more of Client.Ssh. The two answer different questions — one is about reaching a host, the other about moving bytes and what to do when moving them stops halfway — and this is the only client project that deliberately touches the local filesystem. Three defects the tests found, none of which review would have. SftpPath.Name answered an empty string for the root. NavigateRemoteAsync wrapped itself in the busy guard, so navigating from inside another command did nothing at all and the remote pane simply stayed empty after connecting, with no failure anywhere to explain it. And opening an SFTP session per test made two handshakes per test — this client learns a host key by being refused — which pushed the SSH assembly past sshd's MaxStartups and failed a different few unrelated tests each run; the session is shared through the fixture now, with the reason written where the next person will hit it. 1004 tests green across 18 projects, 24 of them new: the SFTP subsystem against the OpenSSH container, the queue against a real temporary directory and a fake host, and three more layout measurements because a screen this window has never laid out is a screen never checked. Not verified: the screen has not been looked at running. The layout harness measures it at the window's minimum in three shapes, which is the class of defect that has shipped here before, but reaching it in the application needs the compose stack, the migrations, the API and a browser sign-in. What is still absent — the status bar's transfer count, dragging between the panes, transferring a directory, and sftp over a bastion — is in docs/design-import-gaps.md. |
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0b49cfb3c6 | Merge branch 'claude/api-fastendpoints-migration-020431' | ||
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9a76eced14 |
Give hosts and terminals their own screen, and the rest of the vault another
Rebuilds the client's shell from an imported design: a titlebar and nav rail it draws itself, real multi-session tabs over the one WebView, a Ctrl+K host search, and a vault screen that merges keys, passwords and pinned host keys into one table. Hosts left the vault column for their own screen beside the terminal, which is what the design asks for and turned out to be the better split anyway. Two screens the design shows have nothing behind them yet — file transfer and teams — and say so plainly rather than rendering invented data; every other gap between the design and this build is recorded in docs/design-import-gaps.md. |
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9bc28f1c0f |
Move the API onto FastEndpoints, without moving the wire
Eight endpoints today, around sixty planned. The minimal-API shape — a static
class per area holding static local functions, route and policy and name
asserted in one fluent chain with the handler somewhere below it — has not hurt
yet, and would. A handler's dependencies are parameters rather than injected, a
group's RequireAuthorization sits far from the handler it governs, and there is
no type to hang an endpoint's own documentation on. FastEndpoints is one class
per endpoint, its route and authorization in Configure(), its handler a method
on the same type.
Nothing about the wire moves, and the evidence is that the 94 existing HTTP
tests pass with zero edits to any of them. Same routes, verbs, route
constraints, status codes, operation ids, and the same RFC 9457 bodies with the
same code values. Every place the idiomatic FastEndpoints answer would have
changed one of those, it was refused:
Endpoints are registered from an explicit List<Type>, not found by scanning.
ADR 0002 rejected reflection discovery by name, and the reason it gave is
sharper here than in general — under WebApplicationFactory the scan reaches the
test assembly, so an endpoint written in a test would be registered into the
host under test. The cost is a line per endpoint that can be forgotten, which is
what the endpoint-inventory test is for. That test is the one ADR 0002 promised
and never got.
Handlers still return Results<Ok<T>, NotFound, ProblemHttpResult> from
ExecuteAsync. The union executes as an ordinary IResult, which is what keeps
problem bodies going through the host's serialiser and IProblemDetailsService,
and what keeps the compile-time record of which statuses an endpoint can
produce. No Send.* call appears anywhere; the moment one does, a response has
left the host's serialiser.
Validation stays in the feature services. A Validator<T> short-circuits before
the handler and answers with FastEndpoints' own envelope, which carries no code
— and the code is the only part of an error the client branches on. Twenty-odd
tests assert a specific code on a 400. It is banned in BannedSymbols.txt rather
than merely avoided, because the framework's documentation leads straight to it
and it looks like an improvement.
Three defects arrived with the framework and were caught in review. All three
were green at the time, which is the part worth remembering. FastEndpoints maps
GET /_test_url_cache_ unconditionally, in every environment, with no policy and
no way to opt out; it answers with the whole endpoint-name-to-route table. It is
short-circuited to 404 — by asking routing which endpoint it selected, after the
first attempt compared the request path with Ordinal and was therefore bypassable
at /_TEST_URL_CACHE_, certified by a test that only ever tried one spelling. The
default request binder writes query-string values over the deserialised body,
which would have let ?identityProviderToken=... put an ID token in a URL and from
there into every proxy log on the path; every endpoint now binds from the body
alone. And a route value read with Route<T>() is invisible to ApiExplorer, so the
generated document named {vaultId} in a path template with nothing declaring it —
invalid OpenAPI, and unusable by the client generators the document exists for.
Two changes to the surface, both deliberate. A body that cannot be deserialised
now answers with a problem document carrying malformed-request, rather than an
empty 400: FastEndpoints' default announces application/problem+json while
sending something else, and names the failing .NET type on the wire, in a
codebase that sets IncludeErrorDetails = false to prevent exactly that. And the
route table above returns 404 where it would otherwise have answered any
authenticated caller.
Each of the three fixes has a regression test that was checked by reverting the
fix and watching it fail — four failures for the route table and the binder, four
for the document. That check is the whole reason to trust them, since all three
defects passed a full green suite on the way in.
950 tests green across 16 projects, 14 of them new and no existing test edited.
Zero warnings, format clean, locked restore clean. FluentValidation, JobQueues
and Messaging are in the graph now and none is used.
Not verified: the generated document's response schemas, which differ from
before — FastEndpoints contributes its own Produces metadata. Nothing consumes
the document yet, and MapOpenApi runs only in Development behind the fallback
policy. It needs pinning if ADR 0002's build-time artifacts/openapi/v1.json is
ever built.
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f86791e817 |
Finish revoking a device, instead of half of it
ForgetDeviceAsync stopped this machine unlocking without a passphrase and left
the server's row exactly where it was, so the account went on listing a device
nobody could account for. ADR 0007 recorded that as a deliberate gap needing an
endpoint. This is the endpoint, and the two things that turned up behind it.
DELETE /api/v1/me/devices/{id}. The device row is not the dangerous half: a
kind=device wrap is the user's identity bundle sealed to a key somebody may be
holding, and that is what has to go. It goes on the foreign key's cascade rather
than a second statement, and RevokeDevice_TakesItsWrapWithIt asserts the cascade
rather than trusting the configuration to keep saying so.
Scoped to the caller's own account, which is the only authorisation check there
is. The id is an unguessable v7 GUID, but unguessable is not a permission —
without the scope one user could withdraw another's device key by pasting an id
they saw once, and the victim's next launch would ask for a passphrase with no
explanation. 404 rather than 403 for somebody else's device, so a stranger does
not learn the id exists.
Never refused for being the last device. ADR 0001 makes an enrolled device a
recovery path, so removing the last one does cost the user something — but the
machine being revoked is most likely the one they have just lost, and a server
that argued about it would be refusing the one request that has to work
immediately. The passphrase wrap is untouched either way, which
RevokeDevice_LeavesThePassphraseWrapAlone pins.
--- Two things found on the way ---
Registering twice from one machine left two devices on the account. The server
is idempotent on the public key, but the client generates a fresh key pair every
call and the keystore holds one — so the second registration orphaned a wrap
whose private half had just been overwritten, which is precisely the leftover
this change exists to remove. Registering now withdraws the previous device.
Found by a test that asserted the property and failed.
And the fakes were lying about it. FakeAccountServer's comment claimed the real
service's idempotence while handing back a fresh Guid on every call, which is
invisible until something revokes by id — at which point a test would be
revoking an id the server never issued, and passing. Both fakes now issue one id
per public key and drop the wrap with the device, as the cascade does.
--- Reachable at all ---
ForgetDeviceAsync had exactly one caller and it was a test, so "Stop unlocking
here" now sits in the account bar where "Use Windows Hello here" was. Its own
flag rather than the negation of that one: a machine with no TPM and a machine
that is already registered are both "cannot register", and only the second has
anything to take back.
No confirmation prompt, deliberately. The cost of pressing it by accident is one
passphrase and one re-registration; the cost of a dialog is a moment's
hesitation at the point somebody has realised a machine is in the wrong hands.
Offline it does the local half and says so rather than refusing. Whether this
machine may unlock itself is decided entirely by the local cache and the local
keystore — the unlock path never asks the server — so forgetting here is what
actually revokes, and "you are offline, so this machine will go on unlocking
itself" would be the worst available answer. DeviceRevocation.LocalOnly is what
the interface reports and the status line explains what is left to do.
The local half runs first for the same reason, and the keystore call is the
first thing in the method that can yield: on Windows it raises a consent dialog,
and a dialog wants the thread it was called from. That ordering is currently
load-bearing and shakier than it looks — see the open device-unlock hang.
Four mutations, all caught: dropping the user scope from the server query
(1 test), skipping the stale-device revoke on re-registration (2), skipping the
server call in ForgetDeviceAsync (2), and the earlier version of the client that
never called it at all.
930 tests green across 16 projects, 13 of them new. Zero warnings, format clean.
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573f5d5668 |
Keep the device key in the TPM, behind a consent Windows enforces
The last of ADR 0007's three pieces, and it does not implement what that ADR originally decided — because writing it exposed a flaw in the decision. The ADR said "a Windows Hello gesture gating a protected blob". That does not deliver what the rest of the document claims for it: a gate inside the process is not a gate. A store that showed a prompt and then read a DPAPI blob would be bypassed by malware that skipped the prompt, read the file and called CryptUnprotectData itself — which is exactly the attacker the whole decision was made against, and exactly the reason DPAPI alone was rejected. The presence requirement has to be a condition of using the key, enforced below the application, or it is decoration. So the device key is encrypted to an RSA key created in the Microsoft Platform Crypto Provider — the TPM — under CngUIProtectionLevels.ProtectKey. Windows requires consent to use that key, so the prompt is not something this code can be talked out of showing. Malware can ask for the key; it cannot answer the dialog. That is strictly stronger than the ADR described, and most of what option D was being saved for: the wrapping key genuinely never leaves hardware. The X25519 device key still lands in memory to open the wrap, because DSH1 fixes that wrap at a curve the TPM cannot do — the remaining gap, and now a smaller step than it was. CngKey is in-box, so this needed no WinRT projection and no Windows target framework. Which is worth stating plainly because the opposite was planned: the piece was scoped as "where the Windows TFM lands", and it turned out a platform guard on one class was enough. Client.App and its two test projects stay on net10.0. Two things were measured on real hardware rather than assumed, and the second changed the shape of the work. The platform provider works here and holds an RSA key — confirmed by creating and deleting one before writing anything that depended on it. And ProtectKey prompts at key *creation*, not only at use. The comment in the first draft of this file said the opposite, with a confident explanation: sealing uses only the public half, so it should be silent. It is not. CngKey.Create blocks on a dialog, because the policy means "protect this key with a PIN" and Windows asks the user to set that up there and then. Found by writing tests around save and forget and watching the suite hang for ten minutes waiting for somebody to type one. That has two consequences worth knowing before touching this file. SaveAsync is user-facing code — it belongs on a UI thread, behind a button somebody pressed, never on a background pass. And almost nothing in the store can be covered automatically: two tests remain, availability and the empty-blob case, both of which provably reach no dialog. Disabling the UI policy to make the rest testable would remove the one property worth having. The interface offers two things and hides both where they cannot work. "Use Windows Hello" appears on the unlock screen only when this machine has a cached wrap and a keystore still willing to release the key; "Use Windows Hello here" appears in the account bar only when the machine can keep a key and has not already registered one, so it is spent once used. Absent rather than disabled, in both cases: a greyed-out button on a machine that never had a TPM reads as something broken, and the passphrase box beside it is not a fallback — it is the ordinary way in. Both unlock paths now share AdoptAsync rather than each opening the known-host store, building the vault and starting auto-sync. The ordering in there is load-bearing and a second copy would be a second chance to get it wrong. The shell's tests drive a fake keystore. Not for speed: the real one prompts on every save and load, so a suite using it would block forever. What the shell has to get right is which buttons appear and what happens when one is pressed, and a fake answers exactly that. It is shared from Client.Session.Tests by source link rather than reimplemented. 882 tests green, 6 of them new. Zero warnings, dotnet format clean. Not verified, and not verifiable here: the dialogs. Whether the consent prompt appears at the right moments, reads sensibly, and returns to a usable window when declined needs the application run by a person on a machine with a TPM. That is the remaining half of outstanding item #7, and it is now the only thing between this feature and being finished. |
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7016ce36f1 |
Key the local cache to the identity, not to the door it was opened through
Groundwork for a device key, and a spec change rather than a feature. ADR 0007 records the decision it clears the way for: a Windows Hello gesture guarding a protected blob, with the passphrase kept as a permanent fallback. The reason that decision needed this first is that a device key cannot open a session on its own. SessionOpener derived two things from the passphrase master key — the bundle, and the local cache key — and a device wrap is SealTo(device_x25519_pk), which yields the bundle and never computes a master key at all. A device unlock could therefore have opened the identity and still not read the cache it had itself written. So LocalCacheKey now derives from the bundle: dsh1/localcache/v1 → v2, specified in crypto.md §3.2. Every wrap that opens a vault ends up holding the bundle, so every door reaches the same cache. Extract-and-expand, not expand alone. Everything derived from the master key uses HKDF-Expand directly, which is sound because an Argon2id output is uniformly random over its whole length. The bundle's encoding is not — it opens with a fixed 14-byte label and carries a version, a generation and a timestamp before reaching any key material — so it needs the extract step to become a pseudorandom key first. Two consequences fell out, both improvements and neither the point: - A passphrase change no longer discards the local cache. The bundle is unchanged by a re-wrap, so the cache key is too. Under v1 changing a passphrase silently orphaned every cached row and the next launch re-pulled the whole vault. - Recovery-code unlock is fixed before it ships. It derives a different master key from a different secret and a different salt, so under v1 it would have had the same defect as the device path, and nobody would have noticed until it landed. The cache becomes unreadable exactly when the identity is rotated, which is the correct moment to discard it. Existing caches are discarded and re-pulled on upgrade — already the specified behaviour for a stale cache, and the reason the label is versioned rather than reused: a v1 cache must fail to open rather than decrypt to nonsense. One stated guarantee got weaker and now says so. crypto.md §10 claimed locking meant "nothing on disk can be read again without the passphrase." Where a device wrap exists that is no longer true, and it would have been untrue under either candidate design — the alternative was storing a copy of the cache key in the device blob, which is the same door with an extra key lying next to it. The wording now points at ADR 0007, because what guards the device key is a platform decision and not a property of this specification. A golden vector was quietly lying, which is the part worth reading twice. The "local-cache" entry pinned HKDF-SHA512-Expand over a fixed PRK — a construction the cache key no longer uses. Regenerating it would have produced a green suite describing a derivation this code does not perform. It is replaced by a vector over a bundle whose every byte is pinned: the label, version 1, generation 1, a fixed timestamp and two recognisable key scalars, all visible in the fixture so a second implementation can check itself against it. UserSecretBundle.TryDecode is internal for this, because Create draws fresh randomness and so can never produce a reproducible input. Mutation tested, and this one earns its keep: dropping the extract step now fails CommittedVectors_MatchCurrentImplementation. The vector it replaced could not have caught that, because it never touched the bundle at all. One test became false and says so. ARecordSealedUnderAnotherPassphrase is now ARecordSealedByAnotherIdentity: a different passphrase deliberately no longer changes the cache key, and TheLocalCacheKey_SurvivesAPassphraseChange pins that. What must still be unreadable is another user's cache. CacheHarness therefore generates an identity rather than deriving from a passphrase, and has no passphrase parameter left — the cache key is not a question about passphrases any more. SyncHarness's two simulated machines now derive the same cache key, which is what keying on the bundle means: they are the same user holding the same identity. They still have separate cache databases, so nothing is shared between them but the key that would open either. Both harnesses lost a MasterKey field that existed only to make a protector. 858 tests green. Zero warnings, dotnet format clean. Not done: the device key itself. Three pieces remain, and the middle one was a discovery rather than a plan — EnrollmentService.AddDevice runs only during enrollment, so every already-enrolled account, which is all of them, needs an endpoint to add a device wrap while unlocked. The client proves possession by producing the wrap, so that shape falls out of the crypto. After that: the protector seam with the wrap cached locally for offline unlock, then the Hello implementation and the unlock-screen UI, which is where the Windows TFM lands and where automated testing stops. |
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e3fd3e1728 |
Sync and authenticate with SSH keys on the client
Completes the client half of SSH keys: they sync alongside hosts, appear in their own list, and can be selected to authenticate a connection instead of typing a password. The reconciler and the repository were Host-typed throughout, so the choice was to generalise them or to keep a second copy per item type. Generalised, because ItemReconciler's whole premise is that the pull and the push paths must answer the same collision the same way — two copies would drift the first time one of them was fixed. What is genuinely per-type now arrives through IItemKind<TSecret>: the cipher, the merge, the plaintext columns, and the noun to use when telling a person what happened to their item. Generic where the server's IItemKind is not, and for the reason that reverses there — the client needs the concrete type, because it merges field by field. The pull filter is derived from the same registry that builds the reconcilers. That is the specific failure being designed out: an item type that encrypts, merges and lists perfectly and is never once requested from the server, so it works on the machine that made it and exists nowhere else. No client cache migration. The item table's primary key and the outbox's unique index already carry the entity type, and AadResourceTypes already mapped SshKey — so a host and a key may share an id and never see each other's rows, which SshKeySyncTests now arranges deliberately. A key hands the server nothing in plaintext. There is a public_key_fingerprint column and it would be accepted; leaving it null is deliberate. A fingerprint is not secret but it is a stable identifier for a key pair, so filling it would let an operator tell which of their users hold the same key and correlate one across vaults, for a column nothing reads. The design allows itself one plaintext concession — the relay address, which the relay cannot work without — and this is not that. A key is chosen per connection rather than bound to a host, which works the way ssh -i does. Binding one needs a field on HostSecret and therefore a payload schema bump, which makes every host written afterwards read-only on an older build; worth doing deliberately rather than as a side effect of adding keys. Three things this found, all of them by being falsified rather than by review: - Making the reconciler generic silently turned a record comparison into reference equality, because == on a type parameter is not value equality. The effect would have been a conflict recorded on every pass for an unacknowledged create that had in fact landed. Sabotaging the fix left all 73 tests passing — nothing covered that branch — so ConflictMatrixTests now has AnUnacknowledgedCreateThatDidLand_IsDroppedQuietly, which fails without it. - A test asserting that a blank passphrase reaches SSH.NET as null was vacuous: it exercised the editor, not the credential path, and passed with the guard deleted. Resolved by making SshKeySecret.Passphrase normalise an empty string to null, so there is one spelling of one state — which also keeps two clients from producing different payload bytes for an identical key. That exposed a wider gap: SshKeySecret, its codec and its merge had no direct unit tests at all. They have 25 now. - The reason first given for that normalisation was false. It claimed SSH.NET rejects a passphrase supplied for an unprotected key; measured against a real sshd it ignores it and authenticates anyway. Corrected everywhere it was stated and recorded in docs/platform-flags.md. The same test file also closes a real hole: SshPrivateKeyCredential had never been exercised against a server, because the existing key test builds SSH.NET's auth method directly and bypasses the path a vault-held key actually takes. Only one editor may be open at a time. Both sit in the same 340-pixel column as Auto rows and their heights together exceed it at the window's minimum size, so two open editors put the lower one's Save and Cancel past the bottom edge — the same failure this window already shipped once with the setup screens. Expressed as a state rule because that is the only form of it this repository can check: nothing here loads a .axaml. The refusal keeps what was typed, since in the key editor that is a pasted private key the user may have nowhere else. The end-to-end slice now carries a key as well as a host, so both item types go through the real API, the real PostgreSQL and the real crypto in one pass — the three hand-kept mappings between enums that do not line up are the reason that is worth doing rather than trusting the unit suites. 735 tests green, including the container-backed SSH and end-to-end suites. Zero warnings, dotnet format clean. |
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586cb303d5 |
Merge branch 'claude/gallant-brahmagupta-1f8244'
Writes down that locking the vault leaves shells running, and shows the count on the unlock screen rather than leaving it to be inferred. Conflict resolution: - ShellFlowTests' fixture keeps main's FakeSshConnectionFactory. The branch added an IdleSshConnectionFactory for exactly what main's fake already does — a shell that is open, silent and never closes on its own — so FakeSshConnections.cs is dropped rather than merged, leaving one fake SSH stack in the suite instead of two that would drift apart. - MainWindowViewModel and TerminalWorkspace: both sides added their own members, so both are kept. - TerminalWorkspaceTests was added by both branches, with the renderer gate on one side and session lifetime on the other. Merged into one class over one set of helpers; the gate tests now use FakeConnectionFactory rather than an NSubstitute stub, since the suite already has the fake. gallant's polling Timeout constant is PollTimeout, which no longer reads as the renderer's. - platform-flags.md keeps main's measured focus section and drops the short "nothing hands the terminal keyboard focus" entry the branch still carried, which that section supersedes. One genuine disagreement between the branches, left visible rather than flattened: this branch measured that a collapsed WebView cannot be typed into and attributed it to a hidden WS_CHILD window being ineligible for keyboard focus, while main's focus work measured Win32 focus still held by that hidden window and added a lock path that moves the keyboard off it. Both results stand; the mechanism sentence now defers to the focus entry, which makes the input barrier something the lock path maintains rather than something the platform guarantees. Full suite green, including the container-backed SSH tests. |
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74341d41e0 |
Merge branch 'claude/distracted-ritchie-53fc70'
Bounds the renderer wait, so a WebView2 that never initialises reports itself instead of hanging Connect with the busy flag stuck. Conflict resolution, all of it in the App test suite, which main had changed under the branch when sleepy-chebyshev landed: - The workspace fixture keeps main's fake SSH factory and its FakeRenderer-aware page, and takes the branch's RendererTimeout on top. One second rather than the branch's 250 ms, because the timeout now also bounds FakeRenderer's own wait for the attach it just made. - FakeRenderer arrived on main after the branch was cut and still called the no-argument WaitForRendererAsync. Both sides merged cleanly and left the build broken; it now passes its own token. - ConnectingWithNoRenderer's remark claimed the suite never starts the workspace and never attaches a renderer. Both are false here, so it now says what is true of the test: it is the one connect test that attaches no renderer. |
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9270d0cba5 | Merge branch 'claude/sleepy-chebyshev-cda68d' | ||
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d459dac600 |
Stop a dead WebView2 hanging Connect with the busy flag stuck
VaultViewModel.ConnectAsync awaited TerminalWorkspace.WaitForRendererAsync
with no timeout and no token, and RunAsync clears IsBusy only after the
work returns. Whether the renderer attaches at all depends on a runtime
this application does not install: with a missing or policy-blocked
Evergreen runtime, or an AppContainer that cannot reach loopback, the
socket never arrives — so Connect never returned, the window stayed
disabled on "Connecting…" for the rest of the session, and nothing on
screen said why. Left out of
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5a899afd78 |
Decide what Lock does to a running shell, and say it
Pressing Lock nulled and disposed the vault view model and touched nothing else. TerminalWorkspace is injected from App.axaml.cs and outlives every lock, so the SSH connection, the pty and the pump all kept running while the window said "Unlock your vault" — and since |
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dbddbcd711 |
Hand the terminal the keyboard on connect, and take it back on lock
After a successful connect the first keystrokes went to the shell's UI rather
than the remote shell. The page's own term.focus() focuses the textarea inside
the document, which does nothing while the window's keyboard focus is still on
the Connect button, so the terminal had to be clicked before it would accept
anything.
The obvious guess about the fix — that reaching a native child window needs
SetFocus through P/Invoke — is backwards, and measuring it first is what kept
this small. NativeWebView overrides Focusable to true and its OnGotFocus calls
the adapter's Focus(), which on Windows is
ICoreWebView2Controller::MoveFocus(PROGRAMMATIC). So a plain Avalonia
Terminal.Focus() really does move Win32 focus into WebView2. Measured in a
standalone harness with no DodoSSH code, on the same 340,* grid as the shell,
reporting GetFocus() and the page's own document.hasFocus() at each step: focus
lands on the Chrome_WidgetWin_1 child and the page reports hasFocus: true.
It is the return trip the package does not implement. OnLostFocus calls the
adapter's ResignFocus(), and on Windows that method body is empty, so Avalonia's
focus and Win32's diverge: after textBox.Focus() the focused element is the text
box while the keyboard is still on WebView2 — a caret that silently receives
nothing. Window.Activate() and Window.Focus() were both measured and neither
recovers it, so the hand-back is a SetFocus on the top-level, in
Views/NativeKeyboardFocus.cs. A real mouse click does recover it, because
Avalonia's window sets focus on pointer input, which is why this is invisible to
anyone who clicks before typing.
That turned up a worse defect than the one being fixed, and it shipped in
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ea271d980a |
Give the realm's users their roles, and sign in as one in the E2E suite
Signing in failed at the token exchange with `400 Offline tokens not allowed
for the user or client`. A user declared in a realm import gets no role
mappings at all unless realmRoles lists them — not even the realm's own
default-roles composite, which Keycloak grants automatically to a user created
through the admin API or the registration form. alice and bob had none, and
offline_access lives inside that composite, which the desktop client requests.
Verified against the running Keycloak: alice's role-mappings were {} before and
resolve to default-roles-dodossh, offline_access, uma_authorization after.
The authorization request succeeds and the failure lands one step later, at the
code redemption, which makes it read like a client bug. It is not.
The E2E suite could not catch this because it created its own account through
the admin API — exercising a provisioning path no real user takes, and passing
while the account the README tells you to use could not sign in at all. It now
signs in as the realm's own alice, which is sound because the Keycloak and
PostgreSQL containers are per-run so the account is pristine, and this assembly
holds one test. Removing the roles again fails it with exactly the reported
message; that is what makes the coverage real rather than nominal.
Two traps recorded in docs/platform-flags.md, the second found by shipping it
for a moment: Keycloak's RealmRepresentation deserialises with
FAIL_ON_UNKNOWN_PROPERTIES enabled, so the "_comment" key I first used to
explain the roles inside the JSON did not get ignored — the import threw and
the container refused to start. Explanations go in the docs, not in the realm
file.
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f80b3d4351 |
Harden the WebView collapse, and replace its evidence with a measurement
An adversarial review of
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7226e70b8a |
Record that a sub-path server URL is silently dropped
Found while sweeping for the stale default. The client uses the typed address only as HttpClient.BaseAddress and every request path is root-absolute, so https://example.test/dodossh reaches https://example.test/api/v1/... with the prefix discarded and no error — which rules out hosting under a sub-path, the usual arrangement behind a proxy fronting several services. The server already publishes a canonical apiBaseUrl the client could normalise against and ignores. Recorded rather than fixed: it is a deployment-shape decision, not a bug in the screen that prompted this. |
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0500e43e02 |
Stop the terminal's WebView painting over the setup screens
The shell layered its setup and unlock screens over the terminal, which does not work: NativeWebView attaches a real Win32 child HWND through NativeControlHost, and a child window composites above everything its parent paints regardless of visual-tree z-order. The cards rendered sliced at the terminal column's left edge; at the window's default width every one of their buttons fell inside the WebView's rectangle, so the flow could only be completed by keyboard, and a click in that region handed Win32 focus to WebView2 so the text boxes silently stopped accepting keystrokes. The WebView is now collapsed while the vault is not unlocked. The comment that previously forbade this — hiding it means never realising it — was wrong: NativeControlHost creates the native attachment on attach to the visual tree, never consulting layout or visibility, and NativeWebView replays a Source assigned before its adapter exists. A collapsed WebView still starts WebView2, loads the page and lets the renderer attach. Confirmed: 35 msedgewebview2 processes with the control collapsed. What the first connection after unlocking actually depends on is the existing await on WaitForRendererAsync, since the data plane drops frames when no renderer is attached. Also fixes the second visible defect: the default server URL was https://localhost:7217, the API's *second* launch profile, while the README, its appsettings and a plain `dotnet run` all use http://localhost:5233 — so nothing was listening, and an HTTPS client against a plaintext port reports "The SSL connection could not be established", which reads as a certificate problem. The default now matches, a missing scheme is rejected by name instead of parsing as scheme "localhost", and that specific TLS failure now suggests http://. Both new tests fail when the fixes are reverted. Corrections to claims I made earlier and should not have: - docs/platform-flags.md asserted the opposite of the mechanism above and cited an established msedgewebview2 connection as verification. That observation was taken while the overlay was showing but, because of this very bug, the WebView was uncovered and in plain view — so it confirmed only that a visible WebView is realised. A process-level check cannot verify a rendering claim. The entry was also filed under "Local cache". - ITerminalHost was documented as the live seam the app plugs into, with a stub standing in for headless tests. It has no implementation anywhere and no test uses it; the view navigates the control directly. It also counted Avalonia.Controls.WebView and NativeWebView as two interchangeable backends when they are one component, with the Linux backend backwards. - The README claimed the shell's whole path was covered by tests. Its state machine is; its layout is covered by nothing, and a headless test could not have caught this — headless has no native window, so it would have rendered correctly and confirmed the wrong belief. Verified by screenshotting the running app: the card renders complete and centred at the default size, with the button clickable. |
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34304b989b |
Make the end-to-end suite self-contained with Testcontainers
It needed a hand-started stack and an opt-in flag, so it ran on one machine and never in CI. It now brings up PostgreSQL, Keycloak and an OpenSSH server itself, applies the committed migrations and starts the API as a child process, which makes it part of the ordinary test run at ~25s. The API runs as a process rather than through WebApplicationFactory. The client builds its own HttpClient for a URL the user typed, so there is no seam to hand a test handler through without inventing one that exists only for tests — and a test host would replace the entry point, Kestrel and the content root, so it would never prove that Program.cs composes or that the committed appsettings is found and layered in the documented order. Running out of the API's own output directory is what makes its configuration real. The suite still consumes what ships: the realm file from deploy/keycloak, the EF migrations, the API's own appsettings. Only Oidc:Authority is overridden, because the container's port is assigned at start. Falsified by reintroducing the wildcard-port redirect URI the realm once had — Keycloak rejects the authorization request and the suite fails at sign-in, which is what proves the committed file is the one imported. Skipping the migration step likewise fails, and the failure names the pending migration. A fresh Keycloak per run also sidesteps the --import-realm trap: editing the realm file and rerunning now always tests the edit. DodoDbContextFactory gains a Create(connectionString) so the fixture and dotnet ef place the migrations history table in exactly one place. If they disagreed the API would report every migration pending, which is how the readiness gate catches it. |
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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. |
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49f617b450 |
Wire the Avalonia shell to the vault
The host list now comes from the vault instead of from a form. A fresh machine takes a server URL, signs in through the browser, enrolls, and from then on opens with the passphrase alone. DodoSSH.Client.Session is the composition layer: where a profile lives, how it unlocks, and how a machine gets one. ClientPaths picks a non-roaming per-OS directory — %LOCALAPPDATA% and never %APPDATA%, because a SQLite cache that roams between two machines is a corrupt one, and each machine's outbox is its own. SessionOpener needs no transport at all and could not reach one if it wanted to; that is the offline unlock, asserted rather than asserted about. A wrong passphrase, a stale KDF and a grant revoked by a rekey are three different answers, because the remedies are three different things and telling someone to retype a passphrase that was never the problem is worse than saying nothing. The shell's states are the onboarding story. The recovery code gets its own state that cannot be clicked past: it exists for one moment, losing it with the passphrase loses the vault, and there is no server-side reset by design. It is dropped from memory on confirmation rather than merely hidden. Sign-in is a delegate over IVaultServer, so the whole state machine runs in a test against an in-memory server — no browser, no identity provider, no toolkit. The view models are plain observable objects, which is what makes that possible. What it does not cover is whether the XAML binds to the right names; that needs a rendered tree and Avalonia.Headless, and is its own piece of work. Three things found by doing it rather than by reading it: - Pooled SQLite connections keep the database file open after the last context is disposed. On Windows that means locked, so the application could never replace its own cache — and a test could not clean up after itself, which is how it surfaced. Dispose now clears the pool. - EF's SQLite provider puts the database in WAL mode, so the cache is three files. A comment in ClientCacheFactory claimed the opposite; reading PRAGMA journal_mode off a real launch settled it. WAL is the right mode here — a sync pass writes while the interface reads — so the comment was wrong on the merits as well as on the fact. - Enrolling a device key with nowhere to keep the private half would put a wrap on the server nobody can open and make the device list claim this machine can unlock without a passphrase. Device binding is now optional and the shell declines it until the OS keystore is wired. Verified on Windows: the client created %LOCALAPPDATA%\DodoSSH\cache.db and migrated it on first launch, and msedgewebview2 held an established connection to the data plane while the unlock overlay covered it — which is the point of covering the WebView rather than collapsing it, since a NativeWebView that is never laid out is never realised. 630 tests, up from 593. The recovery-code gate and the offline unlock were each verified by breaking them and watching the right test fail. Still to do for M1's actual definition of done: the manual run against the real API and a real Keycloak. Credentials are not a synced entity type yet, so a connection still asks for a password, and the interface says so rather than implying otherwise. |
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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. |
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a878c2b6bb |
Add the server client and client-side enrollment
A typed client over DodoSSH.Contracts, and the orchestration that turns a passphrase into an enrolled identity: generate keys, have the identity provider sign over them, wrap the bundle three ways, create the personal vault, publish. Ordering here is forced, not chosen. The secret bundle's AAD binds to the server-assigned user id, so /me has to be read before anything can be wrapped -- which is exactly why /me provisions the account and returns its id even while reporting that enrollment is required. That constraint was designed into the server earlier; this is the first code that depends on it. The grant tuple now has a real canonical encoding (crypto.md 7.3) rather than the placeholder signature I would otherwise have had to invent and then keep. §7 named the tuple without specifying how to encode it; this fills that in with the same conventions as 7.1, and the self-grant at enrollment is already in its final format. The signature covers SHA-256(wrappedKey) rather than the key, so a verifier can check attribution without holding the vault key at all. The most valuable tests are the negative ones about the request body: the server is meant to be unable to read what it stores, and a refactor that put a passphrase or a private key into the enrollment request would be invisible to every other test in the repository. So one asserts the body contains neither the passphrase, the recovery code, nor any private key in base64 or hex. Another opens the same bundle three ways -- passphrase, recovery code and device key -- which is what makes a passphrase change a one-row update. ClientEnrollment depends on IKeyBindingAuthorizer rather than the whole OidcClient. It needs exactly one capability, and depending on the full client would drag discovery and token exchange into every test of key binding. Two things fixed while building it. The recovery code buffer was sized one separator short, so every enrollment threw IndexOutOfRange -- caught immediately because nine of ten tests failed identically. And the crypto enum collided with Domain.GrantKind in the server, so it is GrantPurpose there; the numeric values still have to match, which the doc and a test both say. 448 tests pass, zero warnings on a clean rebuild, format clean. |
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5fccd53824 |
Add the Avalonia app and the xterm renderer, and fix two real bugs
The terminal works end to end. A new integration test drives a real sshd in a container through a real PTY, the real pump, the real loopback WebSocket with its token and origin checks, and a ClientWebSocket standing in for the page: the login banner arrives, typed input round-trips, and `stty size` reports the 100x30 the session asked for. The only untested link left is xterm drawing bytes it was handed. The WebView is de-risked on Windows, which was the plan's largest risk. Not by assertion: with the app running there is an established TCP connection from msedgewebview2 to the data plane port, so WebView2 launched, navigated to the loopback page, executed terminal.js, and completed the WebSocket handshake against the real token and origin checks. Linux remains unproven and the package's own release notes now corroborate the concern -- Linux uses a WPE backend, and it ships a NativeWebDialog described as useful where embedded WebViews may be unavailable. Two bugs found by building it, both of which would have shipped: - ShellStream.Write buffers and needs an explicit Flush. Without one a keystroke is accepted, reported as written, and never reaches the remote: the terminal displays output perfectly and simply stops responding to input. SSH.NET's own WriteLine flushes, which is why the earlier spike never hit it. Found by isolating the pump against real SSH and reading BytesRead=51 -- banner and prompt through, nothing after. - The Windows app manifest needs a supportedOS list, or Avalonia's native control host fails outright and the terminal never starts. Also fixed a genuinely flaky test I happened to catch: SyncCursorTests tampered with the *last* base64url character, whose low bits the decoder ignores when the input length is not a multiple of three -- so a tampered cursor sometimes decoded to identical bytes and verified. It failed roughly one run in thirty, depending on a random key. Now tampers the penultimate character, which is fully significant at every length; 40 consecutive runs are clean. xterm 6.0.0 plus the fit and webgl addons are vendored as UMD bundles rather than built with npm, so a clean clone needs only the .NET SDK. Provenance and licences are recorded next to them, along with the UMD global names terminal.js depends on -- a bundle that switched to ES modules would load without error and leave Terminal undefined. The renderer acknowledges output from term.write's completion callback, not on receipt. Acknowledging early would return flow-control credit for bytes the screen has not caught up with, which is the one thing the credit window exists to measure. TerminalWorkspace moved into DodoSSH.Client.Terminal: it has no Avalonia dependency, and having it there is what let the end-to-end test exist at all. 404 tests pass, zero warnings on a clean rebuild, format clean. |
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94f66be5e8 |
Add the OIDC client: PKCE loopback sign-in and the key binding flow
Authorization Code with PKCE on a loopback redirect, per RFC 6749, RFC 7636 and RFC 8252. Zero package references: the flow is fully specified, and the one thing a library would own for us -- nonce generation and validation -- is exactly what the key binding needs to control. Duende's OidcClient generates and validates its own nonce as an internal detail, and the binding requires the nonce be a specific value: the hash of the key statement being enrolled. Fighting that is worse than owning the flow. AuthorizeKeyBindingAsync is the client half of the primary trust anchor. It runs a second authorization with nonce set to the statement hash and prompt=login, so the ID token that returns is the provider's signature over exactly those public keys, attesting to a user present now rather than to a session opened at some unknown earlier time. It requests only openid -- a second refresh token would be one more long-lived credential for no benefit -- and rejects a token whose nonce is not the one it asked for, because enrolling that would store evidence verifying against keys we are not publishing. The nonce is read without validating the ID token's signature. Sanctioned by OIDC Core 3.1.3.7: for a token received by direct communication with the token endpoint, TLS server authentication may stand in for signature checking. That reasoning does not extend to another user's binding, which arrives via the DodoSSH server and must be verified against JWKS fetched directly -- the directory work in M3. Raw TcpListener rather than HttpListener for the redirect: an ephemeral port can be bound and read atomically instead of picking one and hoping it is still free, there is no HTTP.SYS URL-ACL question on Windows, and the whole surface is one request line. It answers 404 on other paths and keeps waiting, because a browser asks for /favicon.ico first and treating that as the callback would abort every sign-in. 127.0.0.1 rather than localhost: RFC 8252 permits either, but the name resolves through the hosts file. 20 tests, driving the real listener over TCP with a fake browser that actually fetches the redirect -- injecting a fabricated callback would skip the parsing, path filtering and response writing that can break. Mostly negative, because the loopback port is reachable by every local process: a response with the wrong state is rejected *and* never reaches the token endpoint, metadata declaring an issuer other than its own authority is rejected (RFC 8414 3.3, without which a mix-up attack works), a provider offering only 'plain' is fatal rather than a silent downgrade, and the verifier sent is checked against the challenge advertised so PKCE is not theatre that only fails in production. Two bugs caught by writing the tests: the authorize URL builder dropped client_id entirely after a refactor, and CancellationTokenSource.CancelAfter has no TimeProvider overload -- so the browser timeout is now constructed with the clock and a test can advance it instead of waiting five minutes. |
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e65d738912 |
Add the client key hierarchy: bundle, master key, vault and item keys
Everything crypto.md section 3 describes below the identity key, which is what the desktop client needs before it can enroll or store anything. DshAad gives every descriptor in the specification a named constructor. The AAD binding is the most valuable structural property in the design -- it is what stops a server holding every ciphertext from pasting one row's bytes onto another, rolling a row back to a superseded generation, or replaying a revoked grant -- and all of it depends on callers getting purpose, resource type and ids right at every single call site. Hand-constructing descriptors makes that a matter of care; picking a method name makes it a matter of spelling. UserSecretBundle holds private keys in libsodium's guarded, mlocked allocations rather than a byte[], so they are not paged out and do not land in a core dump. They are created exportable, deliberately: re-wrapping the same bundle for a passphrase change or a new device needs to re-encode it, and the alternative -- a long-lived managed array so the keys need not be exportable -- keeps the identical secret in strictly worse memory. Every export is into a buffer zeroed before the method returns. Two spec changes, both found by implementing it, which is the argument for writing code before calling a spec frozen: - MK is 64 bytes, not 32. Skipping HKDF-Extract is correct for an Argon2id output (RFC 5869 3.3), but it means MK *is* the PRK, and .NET's HKDF.Expand rejects a PRK shorter than the hash output -- so a 32-byte MK cannot be expanded with SHA-512 at all. Widening it keeps the specified primitive; the alternatives were dropping to SHA-256 or adding an Extract step that conditions nothing. - The bundle encoding is a fixed 92-byte layout rather than canonical CBOR. Canonicality is not load-bearing here -- unlike a key statement the bundle is never hashed or signed, only encrypted -- so CBOR's one advantage does not apply, while its canonicalisation rules are a real source of cross-implementation disagreement. It also costs a dependency System.Formats.Cbor is not in the shared framework. Safe to change now and not later: no bundle has ever been stored. 53 new tests. The encoding is checked against an independent codec written in the test rather than by round-tripping production code against itself -- a round trip passes just as happily when both directions are wrong the same way, and this format cannot change after one bundle is stored. The pinned 92-byte hex constant is the golden vector for the layout. Most of the rest are negative, because a binding is only demonstrated by the substitutions that fail: a wrap for another user, a grant from a superseded generation, a payload pasted onto another item, a metadata blob offered as a payload, a version rolled back. |
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885fb17bdc |
Clear the SSH gate: window-change reaches the remote, and licence as MIT
Licence is MIT, set solution-wide rather than only on the packable project: DodoSSH.Contracts is published so clients can build against it, and a package with no licence expression is one a corporate policy scanner rejects outright. The SSH.NET spike is the M1 client gate and it passes. SSH.NET 2025.1.0 exposes ShellStream.ChangeWindowSize, but a method existing is not the remote observing it, so the tests read `stty size` back from a real sshd after resizing rather than asserting the call did not throw. Repeated resizes each take effect too, which matters because dragging a window edge produces a stream of them. The IChannelSession fallback is not needed. Also verified against a real sshd: password and public-key auth, that the host key arrives as a raw blob we can fingerprint ourselves rather than reading SSH.NET's MD5 property, and that refusing the key via CanTrust actually aborts the connection -- without which the TOFU dialog would be decoration. Kept as a permanent suite, not deleted after the spike. An upgrade that silently stopped sending the request would present as wrapped output only after a resize, which is easy to misattribute to the terminal emulator. Two bugs in the test itself, both worth naming because either would have been read as "resize does not work": - A PTY emits CRLF, and the anchored regex rejected the CR. The output visibly contained `24 80` while the match failed. - Each read can begin with output still buffered from the previous command, including its size line. Taking the first match would have reported the pre-resize size. platform-flags.md now records window-change as resolved rather than unverified -- a stale flag is worse than none -- plus the three real SSH.NET limits found on the way: ShellStream does not override ReadAsync so every idle session parks a pool thread, one connection cannot serve both SshClient and SftpClient, and agent forwarding needs an upstream change. |
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b7325b78ca |
Record the platform flags that were only in conversation
Development and testing are Windows-only, so anything unverified elsewhere needs to be written down or it gets assumed to work. Several of these have already cost time once: PostgreSQL 18 moving its data directory silently gives a carried-over compose file an empty volume, and a loopback-bound Tomcat beat Docker's 0.0.0.0 publish for `localhost`, making every Keycloak realm 404 while the container looked healthy. The largest entry is the Avalonia WebView on Linux, which remains the biggest risk in the plan and is why the terminal sits behind ITerminalHost. Also records two things this milestone deliberately left undone -- no rate limiting on the enrollment and sync write paths until M2, and /me not touching last_seen_at_utc -- so neither reads later as an oversight. |
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d2a2ed8a29 |
Specify the key statement encoding and key log chain (crypto.md 7.1, 7.2)
Section 7 always required "a canonical, length-prefixed encoding" for signatures without ever specifying one. That gap had to be closed before enrollment could exist: the client hashes the key statement and uses the result as an OIDC nonce, so the provider signs over those exact bytes. Two implementations disagreeing by one byte produce two nonces and an enrollment nobody can verify -- and it only shows up against a real provider, never in a local test. JSON cannot be the hashed form. Property order, number formatting, Unicode escaping and whitespace all vary between serialisers. So the statement is transmitted as JSON and hashed as a fixed binary encoding, and the two are independent by construction. Three details are load-bearing rather than stylistic: - The presence byte before each string is what makes the encoding injective. Without it an absent email and an empty one encode identically, and two different statements share a binding. - Timestamps truncate to milliseconds. PostgreSQL stores microseconds, so a statement that has been through the database must still hash to what the client hashed. The same applies to the key log, where an entry that cannot reproduce its own hash after being read back makes the chain unverifiable. - The key log entry hash deliberately excludes the database sequence. It is unknown until the insert runs, and order already follows the hash links -- so a renumbered or gapped sequence column cannot silently reorder history. KeyStatementFields is separate from Contracts.KeyStatement on purpose: one may gain JSON fields freely, the other cannot change without invalidating every stored binding, and Crypto must not depend on the contract assembly. KeyStatementDriftTests makes a field added to one and not the other a build failure, because a wire field outside the binding is unauthenticated data the server can change undetected. 54 new tests and two new golden vector sections. The vectors pin the absent-versus-empty email case and confirm that an offset-bearing sub-millisecond timestamp encodes identically to its truncated UTC form. Only additions to vectors.json; nothing existing moved. |
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b15af836a3 |
Freeze DSH1 crypto specification and implement the core (M1)
docs/crypto.md is now the normative, frozen specification. This had to land before anything else in M1: the server holds ciphertext and no keys, so it can never re-encrypt, and a format change after users hold data is a coordinated client rewrite with no rollback. Specification: - DSH1 envelope layout, canonical 64-byte AAD encoding, SealTo construction, key hierarchy, Argon2id profiles, fingerprints, and the change rules for each version field. - AAD encoding is fixed-width binary rather than delimited string concatenation, so no field value can forge a field boundary. This supersedes the illustrative form sketched in ADR 0001, which now points here. - UUIDs are RFC 4122 big-endian. Guid.ToByteArray() emits the first three groups little-endian and would have made our ciphertext unreadable by any other implementation of this spec, failing only at a cross-implementation boundary. Verified rather than assumed: - PrimitiveAvailabilityTests proves X25519, Ed25519, XChaCha20-Poly1305, Argon2id and HKDF-SHA512 all function on net10.0. NSec 26.4.0 targets net9.0 and is consumed by forward compatibility; this closes one of the two package questions the plan flagged. - Argon2Profile exists because NSec's MemorySize is in KIBIBYTES, not bytes. Passing bytes gives either a 256 GiB allocation or a 256 KiB KDF that cracks instantly. The type takes mebibytes so the unit cannot be got wrong at a call site. Found by benchmarking: the first measurements were ~1000x too slow, which turned out to be 19 GiB of work. - Parameters measured, not guessed: 256 MiB/t=4 is 323 ms on this machine; the table of candidates is in the spec. Implementation and tests (83 total, up from 17): - AadDescriptor, DshEnvelope, DshCrypto (Seal/Open/SealTo/OpenSealed/fingerprints). - Decryption returns null rather than throwing: ciphertext comes from a server that is explicitly not trusted, so a failed tag is an expected outcome. - Envelope readers reject unknown algorithms and any non-zero flag bit, so an envelope that is not fully understood fails closed. - Executable form of the spec's substitution claims: a server cannot move ciphertext between resources, roll back a key generation or item version, repurpose a payload as metadata, or confuse the two constructions. - Golden vectors in tests/fixtures/crypto/vectors.json guard the format. Mutation-checked: a one-byte schema version change trips four tests including the guard. Two build-infrastructure bugs found and fixed along the way: - .editorconfig forced camelCase on const and static readonly fields. PascalCase is the .NET convention for both; the config was wrong, not the code. - The golden fixture was resolved with [CallerFilePath], which ContinuousIntegrationBuild rewrites to /_/... under deterministic source paths. It passed locally and would have failed only in CI. Now copied to the output directory and read from there. |
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ce43f397a6 |
Add ADRs 0001-0006 and README (M0)
Records the decisions the milestone plan already made, with their costs stated rather than only their benefits: - 0001 e2ee-trust-model: key hierarchy, the AAD-to-row binding that stops the server moving ciphertext between rows, and the four-layer public-key trust story. States plainly that revocation is not retroactive, that Connect cannot be a security boundary, and that the IdP becomes a key-distribution trust root. - 0002 minimal-apis: feature modules with explicit registration; capability negotiation instead of Asp.Versioning, since client and server upgrade independently when self-hosted. - 0003 sync-protocol: single write path, revision cursors, and the bigserial pre-commit sequence gap that silently corrupts sync — plus the per-vault advisory lock that fixes it and the test that must prove it. - 0004 relay-authorization: relay forwards bytes rather than terminating SSH, so zero-knowledge survives; server-resolved target IPs in the ticket to defeat DNS rebinding; why host addresses must be plaintext when relay is enabled. - 0005 no-application-layer: why the usual Application/mediator layer earns nothing here, with the trigger that would make us revisit it. - 0006 observability-stack: OTel plus built-in ILogger; liveness excludes dependencies so a database blip cannot restart the container and kill live SSH sessions. Also adds a README covering layout, build, enforced conventions and milestones. |