Files
amethyst/quartz
Claude 954560666a perf: stop the wallet paying per-bundle signer round-trips and per-mint rescans
Audit of the paths the proof backfill makes hot, plus two bugs it makes
reachable.

/v1/checkstate went out unchunked. scrubStaleProofs checks every proof
held at a mint in one call and that set is unbounded — it grows with the
wallet's history, and a client that pages its whole proof set back off
the relays reaches four figures in one sweep. Mints run the same Pydantic
list caps there that they do on /v1/restore, which this file already caps
at 500 for exactly that reason, so the sweep failed with a validation
error at the moment the wallet had the most to reconcile. Chunked, and
the hash-to-curve derivation now happens once per proof instead of twice
(it was computed separately for the request list and the response
lookup — a discarded EC operation per proof, every sweep).

The auto-redeem sweep paid two NIP-44 decrypts of kind:17375 before
checking whether it had anything to redeem, and p2pkPubkeyHex re-decrypts
the same event walletPrivkeyHex just read. That sweep fires from every
relevant cache bundle, so a wallet whose nutzaps were all redeemed months
ago still paid two out-of-process round-trips per bundle on a NIP-46
bunker or a NIP-55 external signer. The candidate filter needs no key, so
it now runs first, and the pubkey is derived from the privkey in hand.

A kind:7375 we cannot decrypt hides money exactly as effectively as one a
relay never delivered, and looked identical to an empty wallet.
recomputeUnspent caches only successes, so failures are retried — but
only when something else marks tokens dirty, which in a quiet wallet may
be never. Failures are now counted and logged, and a forced resync
retries them even when the relay walk found nothing new.

Two quadratic scans that were invisible while truncation kept the entry
list tiny: peekNutzapFunding filtered the whole entry list once per
shared mint, allocating a list each time, from inside a composable
remember (so per rendered note); and cleanupDuplicateProofs compared all
pairs before every Resync. Both are single-pass/indexed now — a superset
of B must share all of B's secrets, so only entries indexed under B's
first secret can cover it.

Finally, scanning every keyset made Resync N times slower by
construction: each keyset costs at least three /v1/restore round-trips
with 500-item bodies, so a mint that has rotated ten times turned a
three-request scan into thirty run end to end. The walks are independent
and read-only, so they run three at a time — bounded to stay polite to
the mint's rate limiter.

Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01HaZ8RprmKC3sidsq6W8dKY
2026-08-17 00:09:40 +00:00
..
2026-04-30 17:37:29 -04:00

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)
                }
        }
    }
}