Two problems in the remote signer, both about a client getting something
without the user meaningfully agreeing to it.
**`get_public_key` and `get_relays` answered anyone.** Every other method
runs through `ifAuthorized`; these did not, and nothing required a prior
successful `connect`. The service decrypts and dispatches any well-formed
kind-24133 envelope, so anyone holding the `bunker://` URI — pasted into a
malicious app, posted for support, leaked in a screenshot — could ask it
which account it belongs to, without the secret and without connecting.
`get_relays` additionally handed over the inbox relay set. That defeated
the transport/identity split, which otherwise works: the relay-visible
traffic really is anonymous, since the p-tag and author are a transport
key and the payload is NIP-44.
Both now require the client to be paired. The authorizer interface gains
`isPaired` with NO default, so a future authorizer has to state its own
rule rather than silently inheriting "everyone is paired".
`ping` is deliberately left open. It reveals nothing the caller does not
already have — a signer is alive at a pubkey they hold — and first-party
behaviour could be confirmed but third-party clients that ping before
connecting could not be ruled out. Breaking a legitimate handshake to
close a minor oracle is a bad trade. The choice is pinned by a test that
also asserts the pairing check is never consulted, so it stays deliberate
rather than drifting back by accident.
**Decrypt consent showed nothing at all.** The bridge populated the
content preview and raw data only for signing requests, so a decrypt
request produced an empty preview block — no ciphertext, no counterparty,
not even the "Show event" toggle — leaving "AppName wants to read your
private messages" with *Allow always* as the primary button. Meanwhile
the coordinator documented the opposite: "Amethyst decrypts first, then
asks permission to expose." That was never implemented.
Now:
- The counterparty is resolved and shown, so the prompt reads "…read your
private messages **with Alice**". It never degrades to nothing —
cached name, else a shortened npub. Knowing *whose* messages is a
categorically different decision.
- The message is decrypted BEFORE prompting and the plaintext is the
preview, as documented. It is a local operation and nothing is exposed
until approval. Failure, blank and hang all collapse to an explanatory
string under a timeout, so the dialog is never empty and cannot stall.
- A narrower grant is offered ALONGSIDE the broad one, not instead of it:
`DecryptFrom(counterparty)` keyed `decrypt:<hex>` next to `Decrypt`.
The dialog's primary button becomes "Always allow for Alice" with the
broad option demoted. Because the ledger stores an opaque op key, no
persisted decision migrates and the storage format is untouched.
Scoping decrypt per counterparty *instead* would have been worse than
the bug: a DM client would prompt once per conversation, training users
to approve everything. A narrow option beside the broad one gives
granularity without the prompt explosion.
Also fixes a latent bug found on the way: `AllowForSession` recorded the
*requested* op rather than the *granted* one, which would have widened a
narrow session grant back to broad.
Verified by three sabotage passes; the tests that stayed green under them
are the intended negative guards. One existing test asserted the buggy
behaviour outright ("public reads are never gated") and was rewritten.
Not done: the batched consent sheet still records the broad op for
"remember" — offering the narrow choice per row there is a UX design
question, not a mechanical change.
Needs a device check before release: the decrypt preview runs the account
signer before consent. That is free for a local key, but an account backed
by an external NIP-55 signer (Amber) may show Amber's own prompt ahead of
Amethyst's.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Quartz Guide for Clients
Here's how to structure a new Twitter-like client.
Architecture
Set up a Context class to wire Quartz components together. Usually there is only one instance of this class.
object AppGraph {
// application-wide scope
private val scope = CoroutineScope(Dispatchers.IO + SupervisorJob())
// the local db
val sqlite = EventStore(dbName = "demo-events.db")
// the local cache that keeps only one copy of each event in memory
val interned = InterningEventStore(sqlite)
// the observable db, that you can produce flows that auto update
val db = ObservableEventStore(interned)
// the client to access relays
val client = NostrClient(websocketBuilder = KtorWebSocket.Builder())
// sends all events, regardless of the subscription, to the local db
val collector = EventCollector(client) { event, _ ->
runCatching {
db.insert(event)
}
}
// update this variable when a user logs in, starts with a guest
var signer: NostrSigner = NostrSignerInternal(KeyPair())
init {
// Periodic NIP-40 sweep — drops expired events from SQLite and
// emits StoreChange.DeleteExpired so live projections drop them
// too. Without this the on-disk store grows monotonically.
scope.launch {
while (isActive) {
delay(15.minutes)
runCatching { db.deleteExpiredEvents() }
}
}
}
}
Then use a view model to subscribe to relays and the local db at the same time, like this:
class NotesFeed(
private val db: ObservableEventStore,
private val client: NostrClient,
) {
private val subId = newSubId()
private val filter = Filter(kinds = listOf(TextNoteEvent.KIND), limit = 100)
private val relays =
setOf(
"wss://relay.damus.io".normalizeRelayUrl(),
"wss://nos.lol".normalizeRelayUrl(),
"wss://relay.nostr.band".normalizeRelayUrl(),
)
val notes: Flow<ProjectionState<TextNoteEvent>> =
db
.project<TextNoteEvent>(filter)
.filterItems { it.value.isNewThread() }
.onStart { client.subscribe(subId, relays.associateWith { listOf(filter) }) }
.onCompletion { client.unsubscribe(subId) }
}
class FeedViewModel(
private val db: ObservableEventStore,
private val client: NostrClient,
) : ViewModel() {
val notesFeed = NotesFeed(db, client)
val feed = notesFeed
.flow
.stateIn(viewModelScope, SharingStarted.WhileSubscribed(5_000), ProjectionState.Loading)
fun send(text: String, signer: NostrSigner) {
viewModelScope.launch {
val signed = signer.sign<TextNoteEvent>(TextNoteEvent.build(text))
// Hits the bus → projection picks it up alongside any inbound relay copy.
db.insert(signed)
client.publish(signed, relays)
}
}
}
Notice that the notes flow is ready for the UI and automatically subscribes
and unsubscribes to any group of relays and filters the user wants. Similarly,
the send function updates both the local db and the relay.
NostrClient connects on-demand: the first subscribe(...) or publish(...) to a relay triggers the socket. There's no need to call client.connect() at startup — it's only useful for resuming after a prior disconnect().
Building a reactive feed UI
A feed screen reads from the view model's feed flow, which only updates when new events arrive or are deleted due to kind 5 deletions, vanish requests or expirations.
fun main() {
application {
val state = rememberWindowState(size = DpSize(560.dp, 720.dp))
Window(onCloseRequest = ::exitApplication, state = state, title = "Nostr Kind 1 Demo") {
MaterialTheme {
val viewModel = remember {
FeedViewModel(AppGraph.db, AppGraph.client, AppGraph.signer)
}
val noteState by viewModel.feed.collectAsStateWithLifecycle()
when (noteState) {
is ProjectionState.Loading -> LoadingFeed()
is ProjectionState.Loaded -> Feed(noteState.items)
}
}
}
}
}
@Composable
private fun LoadingFeed() {
Box(modifier = Modifier.fillMaxSize(), contentAlignment = Alignment.Center) {
CircularProgressIndicator()
}
}
@Composable
private fun Feed(items: List<MutableStateFlow<TextNoteEvent>>) {
LazyColumn(modifier = Modifier.fillMaxSize()) {
items(items = items, key = { it.value.id }) { handle ->
NoteRow(handle)
HorizontalDivider()
}
}
}
@Composable
private fun NoteRow(handle: MutableStateFlow<TextNoteEvent>) {
val event by handle.collectAsStateWithLifecycle()
Text(
text = event.content,
style = MaterialTheme.typography.bodyMedium,
modifier = Modifier.padding(top = 4.dp),
)
}
Notice how each how also subscribe for changes. This is important to receive updates from replaceable and addressable events.
Appendix A
Quartz doesn't offer a Ktor websocket, but you can use this one as reference.
/**
* Ktor-based [WebSocket] for talking to a Nostr relay.
*
* Quartz exposes [WebsocketBuilder] as the only seam between its relay-pool
* and the underlying transport, so all this class has to do is open a Ktor
* websocket session, forward incoming text frames to [out], and let Quartz
* drive sends.
*/
class KtorWebSocket(
private val url: NormalizedRelayUrl,
private val httpClient: HttpClient,
private val out: WebSocketListener,
) : WebSocket {
private val scope = CoroutineScope(Dispatchers.IO + SupervisorJob())
private var session: DefaultWebSocketSession? = null
private var readerJob: Job? = null
override fun needsReconnect(): Boolean = session == null
override fun connect() {
readerJob =
scope.launch {
try {
val s = httpClient.webSocketSession(urlString = url.url)
session = s
out.onOpen(0, false)
for (frame in s.incoming) {
if (frame is Frame.Text) {
out.onMessage(frame.readText())
}
}
val reason = s.closeReason.await()
out.onClosed(
code =
reason?.code?.toInt() ?: CloseReason.Codes.NORMAL.code
.toInt(),
reason = reason?.message ?: "",
)
} catch (t: Throwable) {
out.onFailure(t, null, null)
} finally {
session = null
}
}
}
override fun disconnect() {
val s = session
session = null
readerJob?.cancel()
readerJob = null
if (s != null) {
runBlocking { s.close(CloseReason(CloseReason.Codes.NORMAL, "client disconnect")) }
}
scope.cancel()
}
override fun send(msg: String): Boolean {
val s = session ?: return false
scope.launch { s.send(msg) }
return true
}
/**
* The factory Quartz hands to [com.vitorpamplona.quartz.nip01Core.relay.client.NostrClient].
* One [HttpClient] is shared by every relay in the pool.
*/
class Builder(
private val httpClient: HttpClient = defaultClient(),
) : WebsocketBuilder {
override fun build(
url: NormalizedRelayUrl,
out: WebSocketListener,
): WebSocket = KtorWebSocket(url, httpClient, out)
companion object {
fun defaultClient() =
HttpClient(CIO) {
install(WebSockets)
}
}
}
}