53ff15ba8650d1e1478d894f1b104707d484e825
5
Commits
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8a77b7ca68 |
Say how far a connection has got while it is still being made
The connecting card set its status string once, when the tab was created, and never touched it again. Every connection therefore looked identical from the outside: one three seconds into a key exchange, one waiting out a fifteen-second timeout against a machine that is asleep, and one that had hung all drew the same "connecting…". The card now draws the five steps of getting there, each lit at the moment the handshake reports reaching it, over an amber track that fills as they finish. ◆ NOTHING ON THE LIST IS INVENTED. Every row changes state because a layer below it said so, at the instant the thing it names actually began. That is the whole reason it is worth showing, and it is why most of this commit is plumbing rather than XAML: there was no progress reporting anywhere in the stack to hook a step list onto, and a card animating plausible progress would have been indistinguishable from one that had stopped receiving any. SshConnectionPhase names four phases and deliberately not more. SSH.NET runs the entire handshake inside one ConnectAsync and raises exactly one event from the middle of it — HostKeyReceived, once the key exchange has produced a key to show — so that event is the only interior moment there is to report. Everything before it is Reaching and everything after it is Authenticating. A fifth phase in that assembly would have to be a timer, so there is not one. OpeningShell is reported by TerminalWorkspace instead, because that is where it happens: the factory's work ends with an authenticated connection, and asking for a pseudo-terminal on one is a separate round trip. The SFTP path passes null — a second connection opened behind an already-open shell has nobody watching a step list for it. The card's fifth step, "Starting the terminal", is the renderer wait and lives in the shell rather than in the SSH assembly, which has never heard of a renderer. On the first connection after a cold start it is a real wait with a real failure mode of its own — a missing WebView2 runtime — so a list that began at "reaching the host" would leave the one wait most likely to hang unnamed. Amber for the step in flight, and that follows the palette's rule rather than bending it. Green is what is true and purple is what you can press; a step still happening is neither, and it is exactly the caveat-worth-reading that amber exists for. Steps behind it go green as they become true. Nothing animates, which is the argument TransfersScreen.axaml already makes for its own track, reaching a screen with far more reason to want a spinner: a spinner is furniture invented to fill a state nobody measured, and these states are measured, so the track fills to what has finished and then waits there. A refusal keeps the step it stopped on, in red, with the ones behind it still green. That is the half a progress bar could not do, and it is the difference between "that host is not there" and "that host is there and would not have me" — a question the reason sentence alone frequently does not settle. The strip's dot goes amber while a tab is connecting, on both heads. It was grey, and so is a tab whose shell has exited: the two states in that strip with the least in common, one worth waiting for and one over. PhoneShell's own comment already recorded half of this — the dot stopped being green before anything had answered — and this is the other half. Progress is raised inline rather than through System.Progress<T>, which captures whatever synchronisation context it was constructed on and posts to it. That reads like a convenience and is really a second place the marshalling decision gets made: silently, differently under a test with no context, and out of order with respect to the failure that follows a phase. The shell marshals once, in one handler, through a new optional post parameter on MainWindowViewModel — the same seam TransfersViewModel already uses, and for the reason its own remark gives. The three Dispatcher.UIThread.Post calls that predate it are the ones this suite's comments record as out of reach; they are left alone rather than swept in here. Both heads draw the list. They differ in one place: Phone.axaml's mono class sets a colour and a size along with the family, so the caption rule names its own family instead of composing the two and asking two rules for one Foreground. The desktop's mono sets the family alone, which is why ConnectingCard does compose them. Each head also gains SHOW LOGS beside the button that gives up — the step list is this attempt and the log is every other one, which is what a connection taking too long actually raises. Seven tests, and the two that matter most run against the container rather than a fake: a real handshake reports its phases in order, and a host-key refusal never claims to have authenticated. A fake asserting what it was written to assert would have established nothing about either. The rest cover the tab advancing while the connection is gated, the step a refusal stops on, and a phase reported after the user has given up on the tab. 1,861 tests, none failing. The Android head's layout is not verified by anything. It compiles, and compiled bindings mean every new binding path resolves, but that project is not in DodoSSH.slnx, there is no test project for it and no device here — so unlike the desktop card, whose shapes the layout harness measures, these rows have not been drawn. Vertical fit is reasoned, not observed. |
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4d1f07f253 |
Replay the live sessions to a renderer that just attached
Each live session gets its credit window reset — the unacknowledged bytes died with the old page, and their acknowledgement is never coming — and its SessionOpened frame again, flagged as a replay so the page can tell a reattach from a genuinely new session. A session whose shell already ended gets nothing: its scrollback lived only in the page that is gone, and a frame implying otherwise would lie. RendererReattached is the seam for what the workspace has no business owning: the font size and the selected tab live in the shell, which re-pushes them from its own subscription. |
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8209f15741 |
Let a session's transport say what it negotiated
ISshConnection and ISftpSession both carry Cipher now — the server-to-client algorithm off SSH.NET's own ConnectionInfo, captured once because a rekey is not an event that library raises — and TerminalWorkspace.GetSessionFacts hands that plus the host key's algorithm back per session, without ever handing over the connection itself. Nothing reads either yet; the status bar that will is the next commit. |
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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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eb354bcdd9 |
Add the SSH session layer and the terminal data plane
The throughput harness the plan requires before any UI, plus the SSH plumbing under it. 94 new tests, no WebView involved. Credit-based flow control is what makes `yes` survivable. A terminal renders at 60 Hz at best while a remote produces output as fast as the network allows, and the difference has to accumulate somewhere or be refused. Credit is reserved *before* reading, never after: because the pump cannot read more than the renderer has room for, the coalescing buffer is bounded by the window rather than by how fast the remote can talk. When credit runs out the pump stops reading, SSH's own receive window closes, and the remote sshd blocks -- backpressure to the source with no custom protocol. Verified by falsification, not just by passing: with the credit gate removed three tests fail, including the throughput harness's bounded-memory assertion. Acknowledgements are clamped because they cross into JavaScript, where a buggy or hostile page could otherwise claim to have rendered a gigabyte and talk the host into an unbounded read. Host key trust is enforced by *failing* the connection rather than prompting inside the handshake. SSH.NET raises verification synchronously, so consulting the user there would block the handshake on a UI round trip and deadlock the first time the prompt needed the UI thread. Unknown host and changed key become distinct exceptions the caller resolves asynchronously. A mismatch has no retry path at all: a dialog offering to continue is how users are trained to click through the one warning that actually indicates interception. A legitimately rebuilt server is handled by removing the pin in settings, away from the moment of connecting. The data plane serves the renderer page from the same loopback listener as the socket, which makes Origin predictable -- always http://127.0.0.1:{port} -- where a WebView virtual-host mapping would give a different origin per backend and nothing to validate. The token is substituted at serve time, so it never touches disk and never appears in a URL. Being clear about what that buys: not protection from a process running as this user, which can read our memory anyway, but from a page in the user's browser attempting WebSocket connections to loopback ports, which is a real and routine thing. Two bugs the tests caught. The accept loop handled connections serially, so an upgraded WebSocket parked it inside the receive loop and every later request went unanswered -- the page's own script among them. The suite hung rather than failed, which is how I found it. And SHA-1 is unavoidable here: RFC 6455 mandates it for Sec-WebSocket-Accept, where it authenticates nothing. Suppressed narrowly with that reasoning; the alternative, HttpListener.AcceptWebSocketAsync, throws PlatformNotSupportedException off Windows. |