fixed issue on udpstreamer trigger logic
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@@ -184,6 +184,84 @@ TEST(FrameDecoder, FirstSampleWithNoRateSpreadsFromConsecutiveAnchors) {
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EXPECT_NEAR(ts[1] - ts[0], 0.001, 1e-9) << "loss stretched the array";
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}
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// Rule 2 faces the same reorder-or-restart question as rule 3, asked of the time
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// signal rather than of hrt, and the two halves need opposite answers. A late
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// datagram is DROPPED: its anchor is genuine producer time, so emitting it would
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// place a whole array before stamps already handed out, and this rule keeps no
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// emitted chain to clamp it against. Dropping also protects the next packet,
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// which would otherwise divide one packet's worth of anchor difference by a
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// counter gap of two and halve its spacing.
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TEST(FrameDecoder, FirstSampleDropsAReorderedAnchor) {
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FrameDecoder dec;
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dec.setSignals({burst("Sine", kTimeFirstSample, 0.0, 4, 1),
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timeSignal("Time", 1)});
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/* Anchors 4 ms apart, packets 2 and 3 delivered in the opposite order. */
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const int order[5] = {0, 1, 3, 2, 4};
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double lastEnd = 0.0;
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bool seen = false;
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std::vector<double> ts;
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for (int slot = 0; slot < 5; slot++) {
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const int p = order[slot];
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FrameBuilder fb;
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fb.addSignal({1.0, 2.0, 3.0, 4.0});
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fb.addSignal({7.0e9 + p * 4.0e6});
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const FrameView& f = fb.build(0, 2000.0 + slot * 0.004, 4,
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static_cast<uint32_t>(p + 1));
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dec.beginFrame(f);
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if (!dec.timestamps(f, 0, ts)) { continue; }
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ASSERT_EQ(ts.size(), 4u);
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if (seen) {
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EXPECT_GT(ts[0], lastEnd)
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<< "slot " << slot << " stepped back " << (lastEnd - ts[0]) << " s";
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}
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if (slot > 0) {
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EXPECT_NEAR(ts[1] - ts[0], 0.001, 1e-9) << "slot " << slot;
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}
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lastEnd = ts[3];
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seen = true;
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}
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}
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// The counterweight, exactly as in rule 3: a restart drops the time signal to a
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// fresh epoch, and refusing every backward anchor would then freeze the anchor
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// pair for the rest of the session — no period could ever be measured again and
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// the rule would run on whatever it derived before the restart.
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TEST(FrameDecoder, FirstSampleRebasesAfterAProducerRestart) {
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FrameDecoder dec;
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dec.setSignals({burst("Sine", kTimeFirstSample, 0.0, 4, 1),
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timeSignal("Time", 1)});
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std::vector<double> ts;
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for (int p = 0; p < 5; p++) {
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FrameBuilder fb;
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fb.addSignal({1.0, 2.0, 3.0, 4.0});
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fb.addSignal({7.0e9 + p * 4.0e6});
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const FrameView& f = fb.build(0, 2000.0 + p * 0.004, 4,
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static_cast<uint32_t>(p + 1));
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dec.beginFrame(f);
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ASSERT_TRUE(dec.timestamps(f, 0, ts));
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}
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/* Producer restarts: the time signal comes back near zero, and the counter
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* with it. Anchors now step 2 ms, a different period from before. */
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for (int p = 0; p < 5; p++) {
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FrameBuilder fb;
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fb.addSignal({1.0, 2.0, 3.0, 4.0});
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fb.addSignal({0.5e9 + p * 2.0e6});
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const FrameView& f = fb.build(0, 2000.020 + p * 0.002, 4,
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static_cast<uint32_t>(p + 1 + 100));
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dec.beginFrame(f);
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ASSERT_TRUE(dec.timestamps(f, 0, ts)) << "restart packet " << p;
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/* From the second post-restart packet the NEW period must be measured;
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* a frozen anchor pair would keep returning the old 1 ms. */
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if (p > 0) {
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EXPECT_NEAR(ts[1] - ts[0], 0.0005, 1e-9) << "restart packet " << p;
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}
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}
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}
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TEST(FrameDecoder, LastSampleAnchorsTheFinalElementAndCountsBackward) {
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FrameDecoder dec;
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dec.setSignals({burst("Sine", kTimeLastSample, 1000.0, 4, 1),
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@@ -311,6 +389,48 @@ TEST(FrameDecoder, AccumulatedScalarReinstatesLostPacketsFromTheCounterGap) {
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EXPECT_NEAR(ts[9], 501.100, 1e-9);
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}
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// The lockstep rule applies to the declared branch too, and there the damage is
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// permanent rather than transient. A late datagram that rolls lastCounter back
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// gives the NEXT packet a gap of dist+1, so `lost` reinstates dist bursts of
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// duration that were never lost. Unlike the absurd gap a reorder itself
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// produces, that prediction is close enough to arrival to pass the resync
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// backstop and be accepted — after which the chain is self-consistent, base
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// stays above lastEmittedEnd, the squeeze never fires and nothing ever pulls it
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// back. Measured +10 ms at distance 1 and +200 ms at distance 20, held to the
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// end of the session.
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TEST(FrameDecoder, AccumulatedScalarKeepsItsChainThroughAReorder) {
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for (uint32_t dist : {uint32_t(1), uint32_t(20)}) {
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FrameDecoder dec;
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dec.setSignals({accSignal()});
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/* 300 contiguous 10-sample bursts at 1 kHz, one payload delayed by
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* `dist` delivery slots at packet 150. Arrival times belong to the slot;
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* only the counter travels, since the declared branch reads no hrt. */
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std::vector<uint32_t> counters(300);
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for (uint32_t p = 0; p < 300u; p++) { counters[p] = p + 1u; }
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for (uint32_t i = 0; i < dist; i++) {
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std::swap(counters[150u + i], counters[151u + i]);
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}
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std::vector<double> ts;
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double lastArrival = 0.0;
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for (uint32_t p = 0; p < 300u; p++) {
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FrameBuilder fb;
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fb.addSignal(std::vector<double>(10, 1.0));
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lastArrival = 500.0 + p * 0.010;
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const FrameView& f = fb.build(0, lastArrival, 10, counters[p]);
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dec.beginFrame(f);
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if (!dec.timestamps(f, 0, ts)) { continue; }
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}
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/* A healthy chain ends its burst on the moment the packet landed, less
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* the burst it spans. */
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EXPECT_NEAR(ts[9], lastArrival, 1.0e-6)
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<< "distance " << dist << " left the chain "
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<< (ts[9] - lastArrival) << " s ahead for good";
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}
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}
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// A producer that never advances the counter, or restarts it, leaves nothing to
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// reconstruct from. Arrival time is then the better of two bad answers, and the
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// chain has to be abandoned rather than left to drift forever.
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@@ -810,20 +930,29 @@ TEST(FrameDecoder, UndeclaredAccumulatedScalarIgnoresReorderedDatagrams) {
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// squeezes bursts, because the late datagram's samples belong in the past and
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// downstream demands increasing stamps, so the monotonic clamp walks them
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// forward instead — and the timeline it leaves ahead of the producer takes a few
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// packets to bleed off, squeezing those too. But that clamp has an exact floor:
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// its cap is kWallBleedFraction * wallElapsed / nElems, and wallElapsed / nElems
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// IS the producer's true period at steady cadence, so no burst it touches can
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// ever be narrower than kWallBleedFraction of true. Anything below that floor
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// did not come from the clamp; it came from a mis-derived period. That is what
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// separates the defect from the design, and it is why the check is a floor
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// rather than a target.
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// packets to bleed off, squeezing those too. The clamp's cap is
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// kWallBleedFraction * wallElapsed / nElems, so on THIS schedule — uniform 25 ms
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// arrivals, where wallElapsed / nElems is exactly the producer's period — no
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// burst it touches can come out below 0.5x true. A burst narrower than that did
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// not come from the clamp; it came from a mis-derived period.
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//
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// That floor is a property of the SCHEDULE, not of the decoder, and must not be
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// read as a general invariant: the cap is proportional to the ARRIVAL gap, and
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// the premise of this whole file is that arrival gaps are not uniform. Under a
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// drained delivery — a reorder plus a queue flushed at 100 us per datagram — a
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// clamped burst measures 0.002x true, and that is the design working as
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// intended, because the lead can only bleed off against wall time that has
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// really passed. Keep the arrivals here uniform, or the bound stops meaning
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// anything.
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TEST(FrameDecoder, UndeclaredAccumulatedScalarKeepsItsSpacingAfterAReorder) {
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const double trueDt = 0.0025; /* 10 samples per 25 ms packet */
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const double floorDt = 0.5 * trueDt; /* kWallBleedFraction * trueDt */
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/* Distance 1 sits exactly ON the floor either way and is here to pin it;
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* 5 and 20 are where the defect drops through it, to 0.167x and 0.048x. */
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for (size_t dist : {size_t(1), size_t(5), size_t(20)}) {
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/* Distance 1 is deliberately absent: the defect and the clamp both yield
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* exactly 0.5x there, so it discriminates nothing while sitting on the
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* assertion boundary with zero margin. 5 and 20 drop through the floor, to
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* 0.167x and 0.048x. */
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for (size_t dist : {size_t(5), size_t(20)}) {
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const std::vector<std::vector<double> > out =
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runUndeclaredPerPacket(delayOne(cleanUndeclaredStream(), 150, dist));
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@@ -840,9 +969,10 @@ TEST(FrameDecoder, UndeclaredAccumulatedScalarKeepsItsSpacingAfterAReorder) {
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}
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// The same defect under a network that reorders continuously rather than once.
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// Same floor, applied to every burst in the run including the late datagrams'
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// own — under sustained reordering there is no quiet packet to exempt, and the
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// floor holds for all of them anyway.
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// Same floor and the same caveat about it being a property of these uniform
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// arrivals, applied to every burst in the run including the late datagrams' own
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// — under sustained reordering there is no quiet packet to exempt, and the floor
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// holds for all of them anyway.
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TEST(FrameDecoder, UndeclaredAccumulatedScalarKeepsItsSpacingUnderSustainedReordering) {
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std::vector<HrtPacket> pkts = cleanUndeclaredStream();
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@@ -1233,6 +1363,112 @@ TEST(FrameDecoder, UndeclaredAccumulatedScalarSurvivesAStrayZeroHrtPacket) {
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}
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}
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// prevAccCount is the third member of the lockstep group and the one easiest to
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// miss, because every other test in this file sends bursts of a fixed length,
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// which makes it invisible. It is the OTHER factor of the denominator —
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// cycles = prevAccCount * gap — and it means "cycles spanned by the reference
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// packet", so a packet that cannot become the reference must not set it either.
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// Accumulate flushes on a TIMER, so a short packet is ordinary rather than
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// exotic: a 2-sample stray with hrt == 0 that moved prevAccCount alone left the
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// next real burst dividing 25 ms of ticks by 2 cycles instead of 10, drawing it
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// five times too wide and — burst anchored on its last element — ending it
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// +90 ms in the future.
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TEST(FrameDecoder, UndeclaredAccumulatedScalarSurvivesAShortStrayZeroHrtPacket) {
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FrameDecoder dec;
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dec.setSignals({undeclaredAcc()});
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const double ticks = 1.0e9;
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const uint64_t bootHrt = static_cast<uint64_t>(86400.0 * ticks);
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const double packetSec = 0.025;
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for (int p = 0; p < 200; p++) {
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/* The stray carries two samples, not ten: a short RT cycle flushed by
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* the timer, with no hrt on it. */
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const bool stray = (p == 153);
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const uint32_t nElems = stray ? 2u : 10u;
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FrameBuilder fb;
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fb.addSignal(std::vector<double>(nElems, 1.0));
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const uint64_t hrt = stray
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? 0u
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: bootHrt + static_cast<uint64_t>(p * packetSec * ticks);
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const double arrival = 700.0 + p * packetSec;
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const FrameView& f =
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fb.build(hrt, arrival, nElems, static_cast<uint32_t>(p + 1));
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dec.beginFrame(f);
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std::vector<double> ts;
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if (!dec.timestamps(f, 0, ts)) { continue; }
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/* The packet after the stray is the one that divides by the reference,
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* so check every burst from there on: a burst drawn too wide ends in the
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* future and then takes several squeezed bursts to bleed back. */
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if (p > 100) {
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EXPECT_NEAR(ts.back(), arrival, packetSec / 5.0)
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<< "at packet " << p << " (" << ts.size() << " samples)";
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}
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}
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}
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// One signal can reach both rule 2 and rule 3's hrt branch, and they map
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// DIFFERENT epochs: rule 2 maps the time signal's own zero, the hrt branch maps
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// accProdSec, which counts from this signal's first usable packet. A declared
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// scalar with FIRST_SAMPLE alternates between them whenever its time signal is
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// empty in some frames — ordinary, since Accumulate flushes per signal on a
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// timer. Sharing one ClockOffset across the two puts the epochs' whole
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// difference through the recalibration threshold on every single alternation.
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TEST(FrameDecoder, AlternatingBetweenTheAnchorAndHrtRulesDoesNotRelatch) {
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SignalMeta acc;
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acc.name = "Acc";
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acc.typeCode = 9;
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acc.numRows = 1; /* scalar: rule 3 is reachable */
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acc.timeMode = kTimeFirstSample; /* rule 2 is reachable too */
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acc.samplingRate = 0.0; /* rule 3 takes the hrt branch */
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acc.timeSignalIdx = 1;
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FrameDecoder dec;
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dec.setSignals({acc, timeSignal("Time", 1)});
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const double ticks = 1.0e9;
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const uint64_t bootHrt = static_cast<uint64_t>(86400.0 * ticks);
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double last = 0.0;
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bool seen = false;
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for (int p = 0; p < 120; p++) {
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FrameBuilder fb;
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fb.addSignal(std::vector<double>(10, 1.0));
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/* Even packets carry the anchor (epoch 5 s); odd packets do not, and
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* fall through to the hrt branch (epoch 0 s at first packet). */
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if (p % 2 == 0) {
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fb.addSignal({5.0e9 + p * 0.025e9});
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} else {
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fb.addSignal({});
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}
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const double arrival = 700.0 + p * 0.025;
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const FrameView& f =
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fb.build(bootHrt + static_cast<uint64_t>(p * 0.025 * ticks),
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arrival, 10, static_cast<uint32_t>(p + 1));
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dec.beginFrame(f);
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std::vector<double> ts;
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if (!dec.timestamps(f, 0, ts)) { continue; }
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/* Packet 0 is rule 2's legal first-packet stack — no predecessor to
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* measure a period from — so ordering is only checked from packet 1. */
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for (double t : ts) {
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if (seen && p > 0) {
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ASSERT_GT(t, last) << "packet " << p << " stepped back "
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<< (last - t) << " s";
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}
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last = t;
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seen = true;
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}
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/* Neither rule may be dragged onto the other's epoch: both must stay
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* within a packet of the moment the datagram landed. */
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if (p > 40) {
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EXPECT_NEAR(ts.back(), arrival, 0.025) << "at packet " << p;
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}
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}
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}
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// The same double delivery that the declared branch guards against — a host
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// joined on two interfaces receives every unfragmented update twice — reaches an
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// undeclared-rate signal identically. The guard can only fire if this branch
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