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e827deb806
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e827deb806 | ||
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0e3360e4a0 |
16 changed files with 662 additions and 221 deletions
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@ -10,7 +10,7 @@ android {
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defaultConfig {
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applicationId = "dev.dtrentin.chart.demo"
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minSdk = 26
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minSdk = 24
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targetSdk = 35
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versionCode = 1
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versionName = "0.1.0"
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@ -23,6 +23,20 @@ android {
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buildFeatures { compose = true }
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buildTypes {
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release {
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isMinifyEnabled = true // R8 — the perf lever
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isShrinkResources = true // strip unused resources
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isDebuggable = false // let ART fully optimize (perf test)
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// debug key so the release apk installs on a dev device (profiling build, not store build)
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signingConfig = signingConfigs.getByName("debug")
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proguardFiles(
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getDefaultProguardFile("proguard-android-optimize.txt"),
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"proguard-rules.pro"
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)
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}
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}
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sourceSets["main"].kotlin.srcDirs("src/main/kotlin")
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}
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12
app/proguard-rules.pro
vendored
Normal file
12
app/proguard-rules.pro
vendored
Normal file
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@ -0,0 +1,12 @@
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# Release R8 rules for :app (profiling build).
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#
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# Intentionally minimal. Consumer rules ship with the libraries:
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# - Jetpack Compose (androidx.compose.*) — bundled consumer R8 rules
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# - kotlinx-coroutines — bundled consumer R8 rules (keeps ServiceLoader/volatile)
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# - AGP auto-keeps the manifest entry point (.MainActivity)
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#
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# No kotlinx.serialization in this app (chart-realtime does not apply the
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# serialization plugin), so no @Serializer keep rules are required.
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#
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# App-specific keeps are added below ONLY when a build/run failure proves them
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# necessary. Do NOT blanket-keep.
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@ -1,9 +1,11 @@
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package dev.dtrentin.chart.demo
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import dev.dtrentin.chart.RealtimeChartState
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import kotlinx.coroutines.CoroutineScope
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import kotlinx.coroutines.Dispatchers
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import kotlinx.coroutines.delay
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import kotlinx.coroutines.isActive
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import kotlinx.coroutines.CoroutineScope
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import kotlinx.coroutines.withContext
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/**
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* Synthetic multi-signal producer. Single coroutine pushes one sample per active signal
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@ -34,9 +36,13 @@ suspend fun CoroutineScope.runSignalGenerator(
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val tickIntervalMs = (1_000L / sampleRateHz).coerceAtLeast(1L)
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val dt = 1f / sampleRateHz.toFloat()
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// Push work off Main: sample generation + state.push run on Dispatchers.Default so they
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// don't contend with Compose draw on the Main dispatcher. withContext inherits the caller's
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// Job → cancelling the caller (e.g. leaving the composable) cancels this loop (no leak).
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withContext(Dispatchers.Default) {
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val startMs = System.currentTimeMillis()
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var t = 0f
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while (isActive) {
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val ts = startMs + (t * 1000f).toLong()
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for (i in signalNames.indices) {
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@ -49,3 +55,4 @@ suspend fun CoroutineScope.runSignalGenerator(
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delay(tickIntervalMs)
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}
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}
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}
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@ -26,7 +26,7 @@ import dev.dtrentin.chart.RealtimeChart
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import dev.dtrentin.chart.RealtimeChartState
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import dev.dtrentin.chart.interaction.InteractionConfig
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import dev.dtrentin.chart.interaction.rememberChartInteractionState
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import dev.dtrentin.chart.lod.MinMaxLodStrategy
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import dev.dtrentin.chart.lod.MinMaxLttbLodStrategy
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import dev.dtrentin.chart.model.AxisConfig
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import dev.dtrentin.chart.model.AxisLabelMode
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import dev.dtrentin.chart.model.ChartConfig
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@ -39,8 +39,10 @@ import dev.dtrentin.chart.render.DecimalAxisFormatter
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import dev.dtrentin.chart.render.TimeAxisFormatter
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import kotlin.math.PI
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import kotlin.math.sin
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import kotlinx.coroutines.Dispatchers
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import kotlinx.coroutines.delay
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import kotlinx.coroutines.isActive
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import kotlinx.coroutines.withContext
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private const val STRESS_SIGNAL_COUNT = 8
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private const val STRESS_SAMPLE_HZ = 200
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@ -58,8 +60,9 @@ private val STRESS_COLORS = listOf(
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/**
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* Stress test: 8 simultaneous signals @ 200 Hz each (1600 pushes/sec total). Uses
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* MinMax LoD (preserves peaks under heavy throughput). 10 s window — 16k samples
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* visible at once.
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* MinMaxLTTB LoD (preserves min/max envelope, output capped at pixelWidth). 10 s window —
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* 16k samples visible at once. Producer runs on [Dispatchers.Default] to keep sample
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* generation off the Main dispatcher (away from Compose draw).
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*/
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@Composable
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fun StressTestScreen() {
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@ -81,7 +84,7 @@ fun StressTestScreen() {
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),
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render = RenderConfig(
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theme = chartTheme,
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lodStrategy = MinMaxLodStrategy(),
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lodStrategy = MinMaxLttbLodStrategy(),
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),
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),
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)
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@ -96,6 +99,10 @@ fun StressTestScreen() {
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SignalConfig(color = STRESS_COLORS[i], strokeWidth = 1.5f),
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)
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}
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// Push work off Main: generation + state.push run on Dispatchers.Default so they
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// don't contend with Compose draw on the Main dispatcher. withContext inherits the
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// effect's Job → leaving the composable cancels this loop (no leak).
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withContext(Dispatchers.Default) {
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val tickIntervalMs = (1_000L / STRESS_SAMPLE_HZ).coerceAtLeast(1L)
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val startMs = System.currentTimeMillis()
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var n = 0L
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@ -115,6 +122,7 @@ fun StressTestScreen() {
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delay(tickIntervalMs)
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}
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}
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}
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var pushPerSec by remember { mutableIntStateOf(0) }
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var totalPushes by remember { mutableLongStateOf(0L) }
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@ -64,7 +64,7 @@ android {
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compileSdk = 35
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defaultConfig {
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minSdk = 26
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minSdk = 24
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}
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compileOptions {
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@ -5,7 +5,9 @@ import androidx.compose.foundation.background
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import androidx.compose.foundation.gestures.detectDragGestures
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import androidx.compose.foundation.gestures.detectTapGestures
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import androidx.compose.foundation.gestures.detectTransformGestures
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import androidx.compose.foundation.layout.Box
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import androidx.compose.runtime.Composable
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import androidx.compose.runtime.mutableFloatStateOf
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import androidx.compose.runtime.remember
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import androidx.compose.ui.Modifier
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import androidx.compose.ui.geometry.Offset
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@ -27,11 +29,16 @@ import dev.dtrentin.chart.model.ChartTheme
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import dev.dtrentin.chart.render.AxisRenderer.drawXAxis
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import dev.dtrentin.chart.render.AxisRenderer.drawYAxis
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import dev.dtrentin.chart.render.AxisRenderer.resolveYRange
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import dev.dtrentin.chart.render.AxisRenderer.stabilizeYRange
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/**
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* Renders all signals held by [state] on a Canvas. Recomposition is driven by Compose
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* snapshot observation of `state.dataVersion`, so the Canvas redraws only when new data
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* arrives (batched per frame by the Compose snapshot system).
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* Renders all signals held by [state] into a [Box] of two stacked Canvas layers: a COLD
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* layer (Y-axis line / grid / labels, redrawn only when the stabilized Y range or size
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* changes) and a HOT layer above it (signal polylines, X-axis / grid / time-labels,
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* crosshair). The hot layer reads `state.dataVersion` INSIDE its draw lambda → draw-phase
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* invalidation (no recomposition), coalesced to one draw per frame by the Compose snapshot
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* system; it publishes a tick-stabilized Y range (see [stabilizeYRange]) to the cold layer
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* so per-frame Y-label layout stops running every frame.
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*
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* v0.5.0 wiring:
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* - Decimation strategy from `state.config.render.lodStrategy` (default MinMaxLTTB).
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@ -42,7 +49,7 @@ import dev.dtrentin.chart.render.AxisRenderer.resolveYRange
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* chart behaves identically to v0.4.0 (read-only).
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*
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* @param state holds all signal data and config.
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* @param modifier applied to Canvas.
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* @param modifier applied to the container [Box].
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* @param xWindowSeconds visible X window in seconds; overrides `state.config.data.xWindowSeconds` at call site.
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* @param theme visual theme; overrides `state.config.render.theme` at call site.
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* @param interaction optional state holder enabling user gestures. Create via
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@ -75,15 +82,32 @@ public fun RealtimeChart(
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// T9: zero-alloc Y-range out param. Layout: [0] = yMin, [1] = yMax.
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val yRangeOut = remember { FloatArray(2) }
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// ── Cold-layer Y-range state (T-split) ────────────────────────────────────
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// Stabilized (tick-quantized) Y range published to the COLD canvas. Written ONLY by
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// the hot draw lambda, ONLY when the quantized bounds actually change. The cold canvas
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// reads these two states → its Y-label TextMeasurer layout + Y-axis/grid draw run only
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// on that change (or a resize), NOT every frame. Init NaN → cold skips drawing until
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// the first hot frame publishes a real range.
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val stableYMin = remember { mutableFloatStateOf(Float.NaN) }
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val stableYMax = remember { mutableFloatStateOf(Float.NaN) }
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// Plain (non-snapshot) mirror of the last-published stabilized range. Lets the hot draw
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// detect a change WITHOUT reading the Compose state — so writing it invalidates the COLD
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// draw only, never the hot draw itself (no self-invalidation). Layout: [0]=yMin, [1]=yMax.
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val lastStable = remember { floatArrayOf(Float.NaN, Float.NaN) }
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// Zero-alloc scratch for stabilizeYRange output. [0] = yMin, [1] = yMax.
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val stableRangeOut = remember { FloatArray(2) }
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// Cross-frame caches read by pointer-input lambdas. Plain LongArray slots (NOT Compose
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// state) — writes inside draw must NOT invalidate composition. Pointer-input lambdas
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// read the most recently-rendered values (1-frame lag is acceptable for gestures).
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// Layout: [0] = latestMs, [1] = windowStartMs, [2] = windowMs.
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val interactionCache = remember { longArrayOf(Long.MIN_VALUE, 0L, 0L) }
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val baseModifier = modifier.background(theme.backgroundColor)
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// Gestures + background live on the container Box (was the single Canvas). The two
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// stacked child canvases (cold below, hot above) fill it via matchParentSize().
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val containerModifier = modifier.background(theme.backgroundColor)
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val gestureModifier = if (interaction != null) {
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baseModifier
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containerModifier
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.pointerInput(interaction) {
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detectTransformGestures { _, _, zoom, _ ->
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if (zoom != 1f) interaction.applyZoom(zoom, fallbackXWindowSeconds = xWindowSeconds)
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@ -135,9 +159,32 @@ public fun RealtimeChart(
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)
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}
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}
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} else baseModifier
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} else containerModifier
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Canvas(modifier = gestureModifier) {
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Box(modifier = gestureModifier) {
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// ── COLD layer (drawn first → below) ───────────────────────────────────
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// Y-axis line + Y grid + Y labels. Reads ONLY the stabilized Y range + size +
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// insets — never dataVersion. Re-executes (re-measuring Y labels via TextMeasurer)
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// only when the stabilized Y range or the canvas size changes. Eliminates the
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// per-frame Y-label layout that previously ran inside the single hot draw pass.
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Canvas(modifier = Modifier.matchParentSize()) {
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val yMin = stableYMin.floatValue
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val yMax = stableYMax.floatValue
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if (yMin.isNaN() || yMax.isNaN() || yMax <= yMin) return@Canvas
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val chartBottom = size.height - chartBottomInsetPx
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drawYAxis(
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yMin, yMax, theme, textMeasurer,
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config.axis.yLabelMode, config.axis.yLabelDecimals,
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chartLeftPx, chartBottom, showGrid = config.axis.showGrid,
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)
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}
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// ── HOT layer (drawn second → above) ───────────────────────────────────
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// Signal polyline + X-axis/grid/time-labels + crosshair. Reads state.dataVersion
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// → draw-phase invalidation (composition NOT invalidated), coalesced per frame.
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// X labels stay hot on purpose: in Following mode windowStartMs advances every
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// frame so X ticks/labels scroll — caching them would freeze the scroll.
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Canvas(modifier = Modifier.matchParentSize()) {
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val currentVersion = state.dataVersion
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// Recompose may run when interaction state (crosshair / mode) changes even if
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// dataVersion did not — so still draw when interaction is non-null and crosshair
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@ -185,7 +232,9 @@ public fun RealtimeChart(
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for (i in signalsArr.indices) {
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val entry = signalsArr[i]
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if (!entry.config.visible) { entry.scratchCount = 0; continue }
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val n = entry.buffer.snapshot(windowStartMs, windowMs, entry.scratchTs, entry.scratchV)
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// O(log n) bisect + in-window walk (T2). Does NOT copy the full tier ring per
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// frame — see TieredBuffer.snapshotWindow / CircularBuffer.copyWindow.
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val n = entry.buffer.snapshotWindow(windowStartMs, windowMs, entry.scratchTs, entry.scratchV)
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entry.scratchCount = n
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for (j in 0 until n) {
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val v = entry.scratchV[j]
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@ -198,11 +247,26 @@ public fun RealtimeChart(
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}
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if (!hasData) { dataMin = -1f; dataMax = 1f }
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resolveYRange(config, dataMin, dataMax, yRangeOut)
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val yMin = yRangeOut[0]
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val yMax = yRangeOut[1]
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// Stabilize (quantize to the axis-tick grid). SHARED by the signal projection
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// below AND the cold Y grid/labels, so gridlines and signal stay pixel-aligned.
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// The hot signal uses THIS frame's freshly-computed stable range (so data never
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// clips); the cold canvas reads the published Compose state and therefore trails
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// by at most one frame on the rare transition where the range crosses a tick —
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// imperceptible (both layers then re-converge on the identical numeric range).
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stabilizeYRange(yRangeOut[0], yRangeOut[1], stableRangeOut)
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val yMin = stableRangeOut[0]
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val yMax = stableRangeOut[1]
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// Publish to the cold layer ONLY when the quantized bounds change. Compared
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// against a plain (non-snapshot) mirror so this hot lambda never READS the
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// Compose state → the write invalidates the COLD draw only, never itself.
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if (stableRangeOut[0] != lastStable[0] || stableRangeOut[1] != lastStable[1]) {
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lastStable[0] = stableRangeOut[0]
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lastStable[1] = stableRangeOut[1]
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stableYMin.floatValue = stableRangeOut[0]
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stableYMax.floatValue = stableRangeOut[1]
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}
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drawXAxis(windowStartMs, windowMs, theme, textMeasurer, config.axis.xLabelMode, chartLeftPx, chartBottom, t0, showGrid = config.axis.showGrid)
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drawYAxis(yMin, yMax, theme, textMeasurer, config.axis.yLabelMode, config.axis.yLabelDecimals, chartLeftPx, chartBottom, showGrid = config.axis.showGrid)
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for (i in signalsArr.indices) {
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val entry = signalsArr[i]
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@ -236,7 +300,8 @@ public fun RealtimeChart(
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}
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}
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// Crosshair overlay (drawn last → above signals + axes).
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// Crosshair overlay (drawn last → above signals + axes). Uses the same
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// stabilized range as the signal so dot markers land on the polyline.
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val crosshair = interaction?.crosshair
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if (crosshair != null) {
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drawCrosshair(
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@ -255,6 +320,7 @@ public fun RealtimeChart(
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lastRenderedVersion[0] = currentVersion
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}
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}
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}
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/**
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* Draw vertical guide line at `crosshair.pixelX`, per-signal dot markers at the inverse-
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|
|
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@ -43,6 +43,76 @@ internal class CircularBuffer(val capacity: Int) {
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return currentSize
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}
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/**
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* Copy only the samples whose timestamp lies in `[fromMs, toMs)` into the caller's arrays,
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* appended starting at [outOffset], in chronological (ascending) order. Returns the count
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* written (0 when empty / window outside data).
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*
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* Locates the first in-window sample via O(log n) binary search over the ring's logical
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* order, then walks ONLY the in-window subrange — NO full-buffer copy (unlike
|
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* [snapshot] + linear filter). Respects ring wrap-around via the same physical-index
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* mapping as [snapshot].
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*
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* Bounds match the linear per-tier filter in `TieredBuffer.snapshot`:
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* - lower bound inclusive (`ts >= fromMs`)
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* - upper bound exclusive (`ts < toMs`)
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*
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* Writing stops early if the caller's arrays fill (`outIdx >= outTimestamps.size`),
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* mirroring the bounds guard in the linear path.
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*
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* Thread safety: single-writer/single-reader. `writeIndex`/`size` are read once (volatile)
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* for a consistent view — identical contract to [snapshot].
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*/
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fun copyWindow(
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fromMs: Long,
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toMs: Long,
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outTimestamps: LongArray,
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outValues: FloatArray,
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outOffset: Int,
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): Int {
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val currentWrite = writeIndex
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val currentSize = size.coerceAtMost(capacity)
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if (currentSize == 0) return 0
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val startIdx: Long = if (currentSize < capacity) 0L else currentWrite - capacity
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// First logical index with ts >= fromMs. When not wrapped, logical == physical and
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// timestamps[0, currentSize) is already chronological → reuse the contiguous
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// bisectStart primitive. When wrapped, bisect over the ring's logical order.
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val startLogical: Int =
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if (currentSize < capacity) bisectStart(timestamps, currentSize, fromMs)
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else bisectStartRing(startIdx, currentSize, fromMs)
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var outIdx = outOffset
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var i = startLogical
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while (i < currentSize) {
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val src = (((startIdx + i) % capacity + capacity) % capacity).toInt()
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val ts = timestamps[src]
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if (ts >= toMs) break
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if (outIdx >= outTimestamps.size) break
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outTimestamps[outIdx] = ts
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outValues[outIdx] = values[src]
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outIdx++
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i++
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}
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return outIdx - outOffset
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}
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/**
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* Ring-aware lower-bound bisect over logical indices `[0, count)`: first `i` where
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* `timestamps[phys(i)] >= targetMs`, else `count`. `phys(i) = (startIdx + i) mod capacity`.
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* Assumes the ring's logical order is non-decreasing (chronological push). O(log count).
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*/
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private fun bisectStartRing(startIdx: Long, count: Int, targetMs: Long): Int {
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var lo = 0
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var hi = count
|
||||
while (lo < hi) {
|
||||
val mid = (lo + hi) ushr 1
|
||||
val src = (((startIdx + mid) % capacity + capacity) % capacity).toInt()
|
||||
if (timestamps[src] < targetMs) lo = mid + 1 else hi = mid
|
||||
}
|
||||
return lo
|
||||
}
|
||||
|
||||
fun latestTimestampMs(): Long {
|
||||
if (size == 0) return -1L
|
||||
return timestamps[((writeIndex - 1L + capacity) % capacity).toInt()]
|
||||
|
|
@ -66,8 +136,8 @@ internal class CircularBuffer(val capacity: Int) {
|
|||
* - `count` must be `<= ts.size`
|
||||
* - `count == 0` → returns 0
|
||||
*
|
||||
* O(log count). Zero-alloc. Used by `TieredBuffer.snapshotWindow` to locate the
|
||||
* window-start index in each tier's snapshot instead of linear-scanning all n samples.
|
||||
* O(log count). Zero-alloc. Used by `CircularBuffer.copyWindow` for the non-wrapped ring
|
||||
* (logical == physical order) to locate the window-start index without a linear pre-scan.
|
||||
*/
|
||||
internal fun bisectStart(ts: LongArray, count: Int, targetMs: Long): Int {
|
||||
if (count <= 0) return 0
|
||||
|
|
|
|||
|
|
@ -200,13 +200,16 @@ internal class TieredBuffer {
|
|||
}
|
||||
|
||||
/**
|
||||
* Bisect-based variant of [snapshot]. Returns identical content + ordering for the
|
||||
* same (windowStartMs, windowMs) args, but locates the window-start index in each
|
||||
* tier's chronologically-sorted snapshot via O(log n) bisect instead of an
|
||||
* O(n) linear pre-scan. Linear walk runs only over the in-window subrange.
|
||||
* Window read used by the draw hot path. Returns content + ordering IDENTICAL to
|
||||
* [snapshot] for the same (windowStartMs, windowMs) args, but reads each tier via
|
||||
* [CircularBuffer.copyWindow] — an O(log n) bisect to the window start plus a walk over
|
||||
* ONLY the in-window subrange. Unlike [snapshot] it does NOT copy the full ring into a
|
||||
* scratch array before filtering (which grows to 60k samples/tier0 and dominated the
|
||||
* per-frame cost).
|
||||
*
|
||||
* Output ordering: tier2 oldest first, then tier1, then tier0 newest — same as [snapshot].
|
||||
* Tier boundary clamps (tier0BoundaryMs / tier1BoundaryMs) preserved verbatim.
|
||||
* Tier boundary clamps (tier0BoundaryMs / tier1BoundaryMs) and guards preserved verbatim.
|
||||
* Edge inclusion matches [snapshot]: lower bound inclusive, upper bound exclusive.
|
||||
*
|
||||
* Returns 0 on empty buffer or window entirely outside data.
|
||||
*/
|
||||
|
|
@ -226,48 +229,21 @@ internal class TieredBuffer {
|
|||
var outIdx = 0
|
||||
|
||||
if (windowStartMs < tier1BoundaryMs) {
|
||||
val n2 = tier2.snapshot(t2Ts, t2Vs)
|
||||
// Tier2 records satisfy ts < tier1BoundaryMs (older than tier1 horizon),
|
||||
// so upper clamp is min(windowEndMs, tier1BoundaryMs).
|
||||
val tier2UpperExclusive = if (windowEndMs < tier1BoundaryMs) windowEndMs else tier1BoundaryMs
|
||||
val start = bisectStart(t2Ts, n2, windowStartMs)
|
||||
var i = start
|
||||
while (i < n2) {
|
||||
val ts = t2Ts[i]
|
||||
if (ts >= tier2UpperExclusive) break
|
||||
if (outIdx >= outTimestamps.size) return outIdx
|
||||
outTimestamps[outIdx] = ts; outValues[outIdx] = t2Vs[i]; outIdx++
|
||||
i++
|
||||
}
|
||||
outIdx += tier2.copyWindow(windowStartMs, tier2UpperExclusive, outTimestamps, outValues, outIdx)
|
||||
}
|
||||
|
||||
if (windowStartMs < tier0BoundaryMs && windowEndMs > tier1BoundaryMs) {
|
||||
val n1 = tier1.snapshot(t1Ts, t1Vs)
|
||||
// Tier1 records satisfy tier1BoundaryMs <= ts < tier0BoundaryMs.
|
||||
val tier1Lower = if (windowStartMs > tier1BoundaryMs) windowStartMs else tier1BoundaryMs
|
||||
val tier1UpperExclusive = if (windowEndMs < tier0BoundaryMs) windowEndMs else tier0BoundaryMs
|
||||
val start = bisectStart(t1Ts, n1, tier1Lower)
|
||||
var i = start
|
||||
while (i < n1) {
|
||||
val ts = t1Ts[i]
|
||||
if (ts >= tier1UpperExclusive) break
|
||||
if (outIdx >= outTimestamps.size) return outIdx
|
||||
outTimestamps[outIdx] = ts; outValues[outIdx] = t1Vs[i]; outIdx++
|
||||
i++
|
||||
}
|
||||
outIdx += tier1.copyWindow(tier1Lower, tier1UpperExclusive, outTimestamps, outValues, outIdx)
|
||||
}
|
||||
|
||||
val tier0Start = if (windowStartMs > tier0BoundaryMs) windowStartMs else tier0BoundaryMs
|
||||
val n0 = tier0.snapshot(t0Ts, t0Vs)
|
||||
val start0 = bisectStart(t0Ts, n0, tier0Start)
|
||||
var i = start0
|
||||
while (i < n0) {
|
||||
val ts = t0Ts[i]
|
||||
if (ts >= windowEndMs) break
|
||||
if (outIdx >= outTimestamps.size) return outIdx
|
||||
outTimestamps[outIdx] = ts; outValues[outIdx] = t0Vs[i]; outIdx++
|
||||
i++
|
||||
}
|
||||
outIdx += tier0.copyWindow(tier0Start, windowEndMs, outTimestamps, outValues, outIdx)
|
||||
|
||||
return outIdx
|
||||
}
|
||||
|
|
|
|||
|
|
@ -33,8 +33,8 @@ internal object InverseProjection {
|
|||
|
||||
/**
|
||||
* Returns the value of the sample closest to [targetTsMs] in [entry]'s already-populated
|
||||
* scratch arrays. Caller must have invoked `entry.buffer.snapshot(...)` for the current
|
||||
* frame (i.e. `entry.scratchCount`, `entry.scratchTs`, `entry.scratchV` are populated).
|
||||
* scratch arrays. Caller must have invoked `entry.buffer.snapshotWindow(...)` for the
|
||||
* current frame (i.e. `entry.scratchCount`, `entry.scratchTs`, `entry.scratchV` are populated).
|
||||
*
|
||||
* Uses binary search on the chronologically-sorted `scratchTs` (snapshot output ordering
|
||||
* is documented in `TieredBuffer.snapshot`).
|
||||
|
|
|
|||
|
|
@ -211,4 +211,33 @@ internal object AxisRenderer {
|
|||
}
|
||||
}
|
||||
|
||||
/**
|
||||
* Quantizes an exact Y range to the axis-tick grid so downstream (cold-layer) Y-label
|
||||
* layout runs only when the tick-aligned bounds actually change — not every frame.
|
||||
*
|
||||
* Expands OUTWARD to a multiple of the range's own nice step (via
|
||||
* [NumberFormat.niceInterval]; [drawYAxis] re-derives the same — equal in-band, never
|
||||
* finer), so:
|
||||
* - the stabilized range always CONTAINS the exact range → a signal projected with it
|
||||
* never clips, and
|
||||
* - signal and Y gridlines/labels share the identical `[yMin, yMax]` → never mutually
|
||||
* misalign (the cold layer draws off the same stabilized bounds).
|
||||
*
|
||||
* Under small frame-to-frame data wobble the result is IDENTICAL (bounds only move when
|
||||
* the data crosses a tick line or the range crosses a niceInterval band), which is what
|
||||
* keeps the cold layer cold. Non-finite / non-positive-range input passes through
|
||||
* unchanged. Writes `out[0] = yMin`, `out[1] = yMax` (caller owns the 2-element array).
|
||||
*/
|
||||
internal fun stabilizeYRange(exactMin: Float, exactMax: Float, out: FloatArray) {
|
||||
val range = (exactMax - exactMin).toDouble()
|
||||
if (!exactMin.isFinite() || !exactMax.isFinite() || range <= 0.0) {
|
||||
out[0] = exactMin
|
||||
out[1] = exactMax
|
||||
return
|
||||
}
|
||||
val step = NumberFormat.niceInterval(range, targetTickCount = 5)
|
||||
out[0] = (floor(exactMin / step) * step).toFloat()
|
||||
out[1] = (ceil(exactMax / step) * step).toFloat()
|
||||
}
|
||||
|
||||
}
|
||||
|
|
|
|||
|
|
@ -1,10 +1,12 @@
|
|||
package dev.dtrentin.chart.render
|
||||
|
||||
import androidx.compose.ui.graphics.Color
|
||||
import androidx.compose.ui.graphics.Paint
|
||||
import androidx.compose.ui.graphics.PaintingStyle
|
||||
import androidx.compose.ui.graphics.Path
|
||||
import androidx.compose.ui.graphics.drawscope.DrawScope
|
||||
import androidx.compose.ui.graphics.drawscope.Stroke
|
||||
import androidx.compose.ui.graphics.drawscope.clipRect
|
||||
import androidx.compose.ui.graphics.drawscope.drawIntoCanvas
|
||||
|
||||
/**
|
||||
* Default [SignalRenderer] impl: stroked polyline through pre-decimated points.
|
||||
|
|
@ -15,32 +17,42 @@ import androidx.compose.ui.graphics.drawscope.clipRect
|
|||
* Implementation is stateless from the caller's perspective — all scratch (Path, FloatArrays)
|
||||
* is caller-owned and passed in per call.
|
||||
*
|
||||
* v0.5.0 T8: a process-wide [Stroke] cache keyed by `strokeWidth` eliminates the per-frame
|
||||
* `Stroke(width = ...)` allocation. Cache assumes single-threaded Compose UI access (the
|
||||
* renderer is only ever invoked from the UI thread during Canvas draw). Capped at
|
||||
* [STROKE_CACHE_MAX] entries (sane upper bound: typical apps use < 8 distinct widths).
|
||||
* When the cap is hit the cache is cleared rather than running an LRU eviction (simpler;
|
||||
* a chart that uses > 16 widths is already pathological).
|
||||
* Anti-aliasing is disabled on the signal stroke. `DrawScope.drawPath` forces AA on with no
|
||||
* opt-out, which pins Skia to CPU coverage-mask rasterization (aaa_fill_path / blitAntiH). We
|
||||
* therefore draw through a common [Paint] (`isAntiAlias = false`) via [drawIntoCanvas], flipping
|
||||
* Skia to GPU tessellation and removing that CPU cost. Configured stroke width is preserved.
|
||||
*
|
||||
* A process-wide [Paint] cache keyed by `strokeWidth` eliminates the per-frame `Paint(...)`
|
||||
* allocation. Cache assumes single-threaded Compose UI access (the renderer is only ever
|
||||
* invoked from the UI thread during Canvas draw). Capped at [PAINT_CACHE_MAX] entries (sane
|
||||
* upper bound: typical apps use < 8 distinct widths). When the cap is hit the cache is cleared
|
||||
* rather than running an LRU eviction (simpler; a chart that uses > 16 widths is already
|
||||
* pathological). Color varies per signal and is mutated on the cached instance per call.
|
||||
*/
|
||||
public object LineSignalRenderer : SignalRenderer {
|
||||
|
||||
// T8: process-wide stroke cache. Keyed by Float (strokeWidth in px units, as supplied by
|
||||
// Process-wide paint cache. Keyed by Float (strokeWidth in px units, as supplied by
|
||||
// SignalConfig.strokeWidth). Single-threaded UI access assumption — no synchronization.
|
||||
private val strokeCache: HashMap<Float, Stroke> = HashMap(8)
|
||||
private const val STROKE_CACHE_MAX: Int = 16
|
||||
private val paintCache: HashMap<Float, Paint> = HashMap(8)
|
||||
private const val PAINT_CACHE_MAX: Int = 16
|
||||
|
||||
/**
|
||||
* Internal test hook. Returns the same [Stroke] instance across calls with equal
|
||||
* [strokeWidth]. Mutates the cache (creates an entry on miss).
|
||||
* Internal test hook. Returns the same [Paint] instance across calls with equal
|
||||
* [strokeWidth]. Mutates the cache (creates an entry on miss). The returned paint has
|
||||
* `isAntiAlias = false`, `style = Stroke`, and `strokeWidth` set to [strokeWidth].
|
||||
*/
|
||||
internal fun internalStrokeForWidth(strokeWidth: Float): Stroke = strokeForWidth(strokeWidth)
|
||||
internal fun internalPaintForWidth(strokeWidth: Float): Paint = paintForWidth(strokeWidth)
|
||||
|
||||
private fun strokeForWidth(strokeWidth: Float): Stroke {
|
||||
val cached = strokeCache[strokeWidth]
|
||||
private fun paintForWidth(strokeWidth: Float): Paint {
|
||||
val cached = paintCache[strokeWidth]
|
||||
if (cached != null) return cached
|
||||
if (strokeCache.size >= STROKE_CACHE_MAX) strokeCache.clear()
|
||||
val fresh = Stroke(width = strokeWidth)
|
||||
strokeCache[strokeWidth] = fresh
|
||||
if (paintCache.size >= PAINT_CACHE_MAX) paintCache.clear()
|
||||
val fresh = Paint().apply {
|
||||
isAntiAlias = false
|
||||
style = PaintingStyle.Stroke
|
||||
this.strokeWidth = strokeWidth
|
||||
}
|
||||
paintCache[strokeWidth] = fresh
|
||||
return fresh
|
||||
}
|
||||
|
||||
|
|
@ -69,9 +81,10 @@ public object LineSignalRenderer : SignalRenderer {
|
|||
for (i in 1 until count) {
|
||||
path.lineTo(chartLeft + lodX[i], chartBottom - ((lodY[i] - yMin) * invY) * chartBottom)
|
||||
}
|
||||
val stroke = strokeForWidth(strokeWidth)
|
||||
val paint = paintForWidth(strokeWidth)
|
||||
paint.color = color
|
||||
clipRect(left = chartLeft, top = 0f, right = chartRight, bottom = chartBottom) {
|
||||
drawPath(path = path, color = color, style = stroke)
|
||||
drawIntoCanvas { it.drawPath(path, paint) }
|
||||
}
|
||||
}
|
||||
}
|
||||
|
|
|
|||
|
|
@ -1,5 +1,6 @@
|
|||
package dev.dtrentin.chart.buffer
|
||||
|
||||
import kotlin.random.Random
|
||||
import kotlin.test.*
|
||||
|
||||
class CircularBufferTest {
|
||||
|
|
@ -199,4 +200,115 @@ class CircularBufferTest {
|
|||
assertEquals(1002L, ts[cap - 3]); assertEquals(2f, v[cap - 3])
|
||||
assertEquals(1001L, ts[cap - 4]); assertEquals(1f, v[cap - 4])
|
||||
}
|
||||
|
||||
// ---------- T2: copyWindow bisect vs linear-filter equivalence ----------
|
||||
|
||||
/**
|
||||
* Equivalence oracle: full snapshot + chronological in-window filter [fromMs, toMs)
|
||||
* — mirrors the old linear per-tier scan that copyWindow replaces.
|
||||
*/
|
||||
private fun linearWindow(buf: CircularBuffer, fromMs: Long, toMs: Long): Pair<LongArray, FloatArray> {
|
||||
val cap = buf.capacity
|
||||
val ts = LongArray(cap); val v = FloatArray(cap)
|
||||
val n = buf.snapshot(ts, v)
|
||||
val outTs = ArrayList<Long>(); val outV = ArrayList<Float>()
|
||||
for (i in 0 until n) {
|
||||
if (ts[i] >= fromMs && ts[i] < toMs) { outTs.add(ts[i]); outV.add(v[i]) }
|
||||
}
|
||||
return outTs.toLongArray() to outV.toFloatArray()
|
||||
}
|
||||
|
||||
private fun assertCopyWindowMatchesLinear(buf: CircularBuffer, fromMs: Long, toMs: Long, msg: String) {
|
||||
val (refTs, refV) = linearWindow(buf, fromMs, toMs)
|
||||
val outTs = LongArray(buf.capacity); val outV = FloatArray(buf.capacity)
|
||||
val n = buf.copyWindow(fromMs, toMs, outTs, outV, 0)
|
||||
assertEquals(refTs.size, n, "$msg: count mismatch")
|
||||
for (i in 0 until n) {
|
||||
assertEquals(refTs[i], outTs[i], "$msg: ts mismatch at i=$i")
|
||||
assertEquals(refV[i], outV[i], "$msg: v mismatch at i=$i")
|
||||
}
|
||||
}
|
||||
|
||||
@Test fun copyWindow_emptyBuffer_returnsZero() {
|
||||
val buf = CircularBuffer(8)
|
||||
assertEquals(0, buf.copyWindow(0L, 1000L, LongArray(8), FloatArray(8), 0))
|
||||
}
|
||||
|
||||
@Test fun copyWindow_notWrapped_matchesLinear() {
|
||||
val buf = CircularBuffer(16)
|
||||
for (i in 0 until 10) buf.push(i * 10L, i.toFloat()) // ts 0..90
|
||||
assertCopyWindowMatchesLinear(buf, 20L, 70L, "notWrapped[20,70)")
|
||||
assertCopyWindowMatchesLinear(buf, 0L, 100L, "notWrapped full")
|
||||
assertCopyWindowMatchesLinear(buf, 25L, 66L, "notWrapped off-grid")
|
||||
}
|
||||
|
||||
@Test fun copyWindow_wrapped_matchesLinear() {
|
||||
val cap = 5; val buf = CircularBuffer(cap)
|
||||
for (i in 0..7) buf.push(i * 10L, i.toFloat()) // retained ts {30,40,50,60,70}
|
||||
assertCopyWindowMatchesLinear(buf, 0L, 1000L, "wrapped full")
|
||||
assertCopyWindowMatchesLinear(buf, 40L, 60L, "wrapped [40,60)")
|
||||
assertCopyWindowMatchesLinear(buf, 45L, 65L, "wrapped off-grid")
|
||||
assertCopyWindowMatchesLinear(buf, 0L, 30L, "wrapped before retained")
|
||||
}
|
||||
|
||||
@Test fun copyWindow_windowBeforeAllData_returnsZero() {
|
||||
val buf = CircularBuffer(8)
|
||||
buf.push(1000L, 1f); buf.push(1010L, 2f)
|
||||
assertEquals(0, buf.copyWindow(0L, 500L, LongArray(8), FloatArray(8), 0))
|
||||
}
|
||||
|
||||
@Test fun copyWindow_windowAfterAllData_returnsZero() {
|
||||
val buf = CircularBuffer(8)
|
||||
buf.push(100L, 1f); buf.push(110L, 2f)
|
||||
assertEquals(0, buf.copyWindow(1000L, 2000L, LongArray(8), FloatArray(8), 0))
|
||||
}
|
||||
|
||||
@Test fun copyWindow_lowerInclusiveUpperExclusive() {
|
||||
val buf = CircularBuffer(8)
|
||||
for (i in 1..5) buf.push(i * 10L, i.toFloat()) // 10,20,30,40,50
|
||||
val ts = LongArray(8); val v = FloatArray(8)
|
||||
// [20,40): includes 20 (lower inclusive), excludes 40 (upper exclusive).
|
||||
val n = buf.copyWindow(20L, 40L, ts, v, 0)
|
||||
assertEquals(2, n)
|
||||
assertEquals(20L, ts[0]); assertEquals(30L, ts[1])
|
||||
}
|
||||
|
||||
@Test fun copyWindow_singlePointWindow() {
|
||||
val buf = CircularBuffer(8)
|
||||
for (i in 1..5) buf.push(i * 10L, i.toFloat())
|
||||
val ts = LongArray(8); val v = FloatArray(8)
|
||||
// [30,31) → exactly the point at 30.
|
||||
assertEquals(1, buf.copyWindow(30L, 31L, ts, v, 0))
|
||||
assertEquals(30L, ts[0]); assertEquals(3f, v[0])
|
||||
// [30,30) → empty (upper exclusive == lower).
|
||||
assertEquals(0, buf.copyWindow(30L, 30L, ts, v, 0))
|
||||
}
|
||||
|
||||
@Test fun copyWindow_writesAtOffset_preservesPrefixAndReturnsCount() {
|
||||
val buf = CircularBuffer(8)
|
||||
for (i in 1..5) buf.push(i * 10L, i.toFloat()) // 10..50
|
||||
val ts = LongArray(8) { -1L }; val v = FloatArray(8) { -1f }
|
||||
val offset = 3
|
||||
val n = buf.copyWindow(20L, 50L, ts, v, offset) // {20,30,40}
|
||||
assertEquals(3, n)
|
||||
// Prefix untouched.
|
||||
for (i in 0 until offset) { assertEquals(-1L, ts[i]); assertEquals(-1f, v[i]) }
|
||||
// Window appended at offset.
|
||||
assertEquals(20L, ts[offset]); assertEquals(30L, ts[offset + 1]); assertEquals(40L, ts[offset + 2])
|
||||
assertEquals(2f, v[offset]); assertEquals(3f, v[offset + 1]); assertEquals(4f, v[offset + 2])
|
||||
}
|
||||
|
||||
@Test fun copyWindow_randomWindows_wrapped_matchesLinear() {
|
||||
val cap = 64; val buf = CircularBuffer(cap)
|
||||
// Push far more than capacity → heavy wrap. Monotonic ts.
|
||||
val total = 500
|
||||
for (i in 0 until total) buf.push(i * 7L, i.toFloat())
|
||||
val maxTs = (total - 1) * 7L
|
||||
val rnd = Random(0xC0FFEE)
|
||||
repeat(300) {
|
||||
val a = rnd.nextLong(-50L, maxTs + 50L)
|
||||
val span = rnd.nextLong(0L, maxTs + 100L)
|
||||
assertCopyWindowMatchesLinear(buf, a, a + span, "randWrapped[from=$a,span=$span]")
|
||||
}
|
||||
}
|
||||
}
|
||||
|
|
|
|||
|
|
@ -1,5 +1,6 @@
|
|||
package dev.dtrentin.chart.buffer
|
||||
|
||||
import kotlin.random.Random
|
||||
import kotlin.test.Test
|
||||
import kotlin.test.assertEquals
|
||||
import kotlin.test.assertTrue
|
||||
|
|
@ -601,4 +602,76 @@ class TieredBufferTest {
|
|||
assertTrue(ts[i] >= ts[i - 1], "monotonic-non-decreasing ts violated at i=$i")
|
||||
}
|
||||
}
|
||||
|
||||
// ---------- T2: snapshotWindow (ring bisect) equivalence over a WRAPPED tier0 ----------
|
||||
|
||||
/**
|
||||
* Fill tier0 well past its 60k capacity while keeping every sample inside the 5-min
|
||||
* tier0 horizon (step 4ms → 70k samples span 280s < 300s). Forces ring wrap-around
|
||||
* (writeIndex >> capacity) so the bisect must resolve physical wrap. All windows here
|
||||
* land in the tier0-only region, isolating the ring-wrap path.
|
||||
*/
|
||||
private fun filledWrappedTier0(): TieredBuffer {
|
||||
val buf = TieredBuffer()
|
||||
val n = TieredBuffer.TIER0_CAPACITY + 10_000 // 70_000 > capacity → wraps
|
||||
for (i in 0 until n) buf.push(i * 4L, i.toFloat())
|
||||
return buf
|
||||
}
|
||||
|
||||
@Test fun snapshotWindow_randomWindows_overWrappedTier0_equalsSnapshot() {
|
||||
val buf = filledWrappedTier0()
|
||||
val maxTs = (TieredBuffer.TIER0_CAPACITY + 10_000 - 1) * 4L
|
||||
// Oldest retained tier0 ts after wrap.
|
||||
val minRetained = 10_000L * 4L
|
||||
val tsA = outTs(); val vsA = outVs()
|
||||
val tsB = outTs(); val vsB = outVs()
|
||||
val rnd = Random(0xBADC0DE)
|
||||
repeat(200) {
|
||||
val start = rnd.nextLong(minRetained - 500L, maxTs + 500L)
|
||||
val span = rnd.nextLong(1L, 50_000L)
|
||||
val nA = buf.snapshot(start, span, tsA, vsA)
|
||||
val nB = buf.snapshotWindow(start, span, tsB, vsB)
|
||||
assertSnapshotEquivalent(nA, tsA, vsA, nB, tsB, vsB, "randWrapped[start=$start,span=$span]")
|
||||
}
|
||||
}
|
||||
|
||||
@Test fun snapshotWindow_windowStraddlingRingWrap_equalsSnapshot() {
|
||||
val buf = filledWrappedTier0()
|
||||
val maxTs = (TieredBuffer.TIER0_CAPACITY + 10_000 - 1) * 4L
|
||||
val minRetained = 10_000L * 4L
|
||||
// Window centred in the retained range — physical wrap point falls inside it.
|
||||
val mid = (minRetained + maxTs) / 2L
|
||||
val start = mid - 30_000L
|
||||
val span = 60_000L
|
||||
val tsA = outTs(); val vsA = outVs()
|
||||
val tsB = outTs(); val vsB = outVs()
|
||||
val nA = buf.snapshot(start, span, tsA, vsA)
|
||||
val nB = buf.snapshotWindow(start, span, tsB, vsB)
|
||||
assertSnapshotEquivalent(nA, tsA, vsA, nB, tsB, vsB, "straddleWrap")
|
||||
assertTrue(nB > 0, "expected samples inside straddle window, got $nB")
|
||||
}
|
||||
|
||||
@Test fun snapshotWindow_singlePointWindow_equalsSnapshot() {
|
||||
val buf = TieredBuffer()
|
||||
for (i in 1..5) buf.push(i * 10L, i.toFloat()) // ts 10..50 in tier0
|
||||
val tsA = outTs(); val vsA = outVs()
|
||||
val tsB = outTs(); val vsB = outVs()
|
||||
// [30,31) → single point at ts=30.
|
||||
val nA = buf.snapshot(30L, 1L, tsA, vsA)
|
||||
val nB = buf.snapshotWindow(30L, 1L, tsB, vsB)
|
||||
assertSnapshotEquivalent(nA, tsA, vsA, nB, tsB, vsB, "singlePoint")
|
||||
assertEquals(1, nB); assertEquals(30L, tsB[0]); assertEquals(3f, vsB[0])
|
||||
}
|
||||
|
||||
@Test fun snapshotWindow_pointsExactlyOnWindowBounds_equalsSnapshot() {
|
||||
val buf = TieredBuffer()
|
||||
for (i in 1..5) buf.push(i * 10L, i.toFloat()) // 10,20,30,40,50
|
||||
val tsA = outTs(); val vsA = outVs()
|
||||
val tsB = outTs(); val vsB = outVs()
|
||||
// Bounds land exactly on samples: start=20 (inclusive), end=40 (exclusive).
|
||||
val nA = buf.snapshot(20L, 20L, tsA, vsA) // window [20,40)
|
||||
val nB = buf.snapshotWindow(20L, 20L, tsB, vsB)
|
||||
assertSnapshotEquivalent(nA, tsA, vsA, nB, tsB, vsB, "onBounds")
|
||||
assertEquals(2, nB) // {20,30}; 40 excluded, 20 included
|
||||
}
|
||||
}
|
||||
|
|
|
|||
|
|
@ -40,4 +40,42 @@ class AxisRendererTest {
|
|||
assertTrue(out[1].isFinite())
|
||||
assertTrue(out[1] >= out[0])
|
||||
}
|
||||
|
||||
// T-split: stabilizeYRange snaps outward to the tick grid and CONTAINS the exact range.
|
||||
@Test fun stabilizeYRange_snapsToTicks_andContainsExactRange() {
|
||||
val out = FloatArray(2)
|
||||
// range = 9.1 → niceInterval(9.1, 5) = 2 → floor(0.3/2)*2 = 0, ceil(9.4/2)*2 = 10.
|
||||
AxisRenderer.stabilizeYRange(0.3f, 9.4f, out)
|
||||
assertEquals(0f, out[0])
|
||||
assertEquals(10f, out[1])
|
||||
assertTrue(out[0] <= 0.3f && out[1] >= 9.4f)
|
||||
}
|
||||
|
||||
// T-split: small frame-to-frame wobble inside a tick band → IDENTICAL bounds (cold stays cold).
|
||||
@Test fun stabilizeYRange_stableUnderSmallWobble() {
|
||||
val a = FloatArray(2)
|
||||
val b = FloatArray(2)
|
||||
AxisRenderer.stabilizeYRange(0.31f, 9.38f, a)
|
||||
AxisRenderer.stabilizeYRange(0.34f, 9.42f, b)
|
||||
assertEquals(a[0], b[0])
|
||||
assertEquals(a[1], b[1])
|
||||
}
|
||||
|
||||
// T-split: empty / non-positive range passes through unchanged (no NaN/Inf).
|
||||
@Test fun stabilizeYRange_passthroughForEmptyRange() {
|
||||
val out = FloatArray(2)
|
||||
AxisRenderer.stabilizeYRange(5f, 5f, out)
|
||||
assertEquals(5f, out[0])
|
||||
assertEquals(5f, out[1])
|
||||
}
|
||||
|
||||
// T-split: negative range spanning zero snaps symmetrically outward.
|
||||
@Test fun stabilizeYRange_negativeRange_snapsOutward() {
|
||||
val out = FloatArray(2)
|
||||
// range = 2.4 → niceInterval(2.4, 5) = 0.5 → floor(-1.2/0.5)*0.5 = -1.5, ceil(1.2/0.5)*0.5 = 1.5.
|
||||
AxisRenderer.stabilizeYRange(-1.2f, 1.2f, out)
|
||||
assertEquals(-1.5f, out[0])
|
||||
assertEquals(1.5f, out[1])
|
||||
assertTrue(out[0] <= -1.2f && out[1] >= 1.2f)
|
||||
}
|
||||
}
|
||||
|
|
|
|||
|
|
@ -1,22 +0,0 @@
|
|||
package dev.dtrentin.chart.render
|
||||
|
||||
import kotlin.test.Test
|
||||
import kotlin.test.assertNotSame
|
||||
import kotlin.test.assertSame
|
||||
|
||||
class LineSignalRendererTest {
|
||||
|
||||
// T8: Stroke cache reuses same instance across calls with equal strokeWidth.
|
||||
@Test fun strokeCache_reusesAcrossCallsForSameWidth() {
|
||||
val a = LineSignalRenderer.internalStrokeForWidth(2f)
|
||||
val b = LineSignalRenderer.internalStrokeForWidth(2f)
|
||||
assertSame(a, b)
|
||||
}
|
||||
|
||||
// T8: Different widths get distinct Stroke instances.
|
||||
@Test fun strokeCache_distinctInstancesForDifferentWidths() {
|
||||
val a = LineSignalRenderer.internalStrokeForWidth(1.5f)
|
||||
val b = LineSignalRenderer.internalStrokeForWidth(3f)
|
||||
assertNotSame(a, b)
|
||||
}
|
||||
}
|
||||
|
|
@ -0,0 +1,45 @@
|
|||
package dev.dtrentin.chart.render
|
||||
|
||||
import androidx.compose.ui.graphics.PaintingStyle
|
||||
import kotlin.test.Test
|
||||
import kotlin.test.assertEquals
|
||||
import kotlin.test.assertFalse
|
||||
import kotlin.test.assertNotSame
|
||||
import kotlin.test.assertSame
|
||||
|
||||
/**
|
||||
* Lives in `iosTest` (Skiko-backed) rather than `commonTest`: the renderer now builds an
|
||||
* `androidx.compose.ui.graphics.Paint`, which on the Android JVM unit-test host delegates to
|
||||
* the non-mockable `android.graphics.Paint` stub (`Method setAntiAlias ... not mocked`). Skiko
|
||||
* provides a real `Paint` backend, so these assertions run for real here. The renderer itself is
|
||||
* `commonMain` code identical on both platforms.
|
||||
*/
|
||||
class LineSignalRendererTest {
|
||||
|
||||
// Paint cache reuses the same instance across calls with equal strokeWidth (no per-frame alloc).
|
||||
@Test fun paintCache_reusesAcrossCallsForSameWidth() {
|
||||
val a = LineSignalRenderer.internalPaintForWidth(2f)
|
||||
val b = LineSignalRenderer.internalPaintForWidth(2f)
|
||||
assertSame(a, b)
|
||||
}
|
||||
|
||||
// Different widths get distinct Paint instances.
|
||||
@Test fun paintCache_distinctInstancesForDifferentWidths() {
|
||||
val a = LineSignalRenderer.internalPaintForWidth(1.5f)
|
||||
val b = LineSignalRenderer.internalPaintForWidth(3f)
|
||||
assertNotSame(a, b)
|
||||
}
|
||||
|
||||
// Anti-aliasing is off on the cached signal paint (the whole point: skip CPU coverage-mask raster).
|
||||
@Test fun paint_antiAliasDisabled() {
|
||||
val paint = LineSignalRenderer.internalPaintForWidth(2f)
|
||||
assertFalse(paint.isAntiAlias)
|
||||
}
|
||||
|
||||
// Configured stroke width is honored and style is Stroke.
|
||||
@Test fun paint_honorsStrokeWidthAndStyle() {
|
||||
val paint = LineSignalRenderer.internalPaintForWidth(4.5f)
|
||||
assertEquals(4.5f, paint.strokeWidth)
|
||||
assertEquals(PaintingStyle.Stroke, paint.style)
|
||||
}
|
||||
}
|
||||
Loading…
Add table
Reference in a new issue