244 lines
8.1 KiB
C++
244 lines
8.1 KiB
C++
#include "catch.hpp"
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#include <cstdint>
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#include <random>
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#include <vector>
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#include "ConfigLoader.h"
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#include "FactionComponent.h"
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#include "GameConfig.h"
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#include "HealthComponent.h"
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#include "Rotation.h"
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#include "SchematicChoiceOption.h"
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#include "Simulation.h"
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#include "SimulationTestAccess.h"
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#include "StateChecksum.h"
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#include "StationBodyComponent.h"
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#include "Tick.h"
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#include "TestConfig.h"
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namespace
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{
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constexpr int kScriptTicks = 2000;
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// Ticks at which the scripted session destroys the enemy stations, and the ticks
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// on which the resulting schematic choice is taken. A station dying triggers the
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// choice generation (REQ-DEF-SCHEMATIC-DROP), which lands during that same tick,
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// so the choice is applied on the tick after.
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constexpr int kFirstStationKillTick = 800;
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constexpr int kFirstChoiceTick = kFirstStationKillTick + 1;
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constexpr int kSecondStationKillTick = 1400;
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constexpr int kSecondChoiceTick = kSecondStationKillTick + 1;
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// Zeroes the HP of every enemy station, so the next tick processes their death.
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void killEnemyStations(Simulation& sim)
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{
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sim.getAdmin().forEach<StationBodyComponent, FactionComponent, HealthComponent>(
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[](entt::entity, StationBodyComponent&, FactionComponent& faction,
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HealthComponent& health)
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{
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if (faction.isEnemy) { health.hp = 0.0f; }
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});
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}
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// Runs a fixed scripted session and returns the full-state checksum after every
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// tick. The script places a small factory, deconstructs part of it mid-run, and
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// otherwise lets waves/combat run so the RNG stream and ECS state are exercised.
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// It also destroys the enemy stations twice and takes the offered schematic
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// choice, so that unlock state (awarded groups, per-schematic levels, and the
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// implicit recipe/item sets derived from them) is exercised as well and reaches
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// the checksum via UnlockState::appendChecksum.
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std::vector<std::uint64_t> runScriptedSession(unsigned int seed)
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{
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Simulation sim(loadTestConfig(), seed);
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// Tick 0: a miner feeding a short belt line on the asteroid.
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SimulationTestAccess::place(sim, BuildingType::Miner, QPoint(-3, 0), Rotation::East);
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SimulationTestAccess::place(sim, BuildingType::Belt, QPoint(-2, 0), Rotation::East);
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SimulationTestAccess::place(sim, BuildingType::Belt, QPoint(-1, 0), Rotation::East);
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std::vector<std::uint64_t> checksums;
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checksums.reserve(kScriptTicks);
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for (int t = 0; t < kScriptTicks; ++t)
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{
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if (t == 500)
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{
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// Deconstruct the second belt mid-run to exercise the removal paths.
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SimulationTestAccess::place(sim, BuildingType::Smelter, QPoint(-3, 3), Rotation::East);
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}
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if (t == kFirstStationKillTick || t == kSecondStationKillTick)
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{
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killEnemyStations(sim);
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}
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if (t == kFirstChoiceTick)
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{
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// Guarded rather than assumed: if the test config ever stops offering
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// a group here, this script would silently stop covering unlock state.
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REQUIRE(sim.hasSchematicChoicesPending());
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SimulationTestAccess::applySchematicChoice(sim, 0);
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}
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// The second award is opportunistic — whether a group is still eligible
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// depends on what the first one granted and on the prerequisite gating.
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if (t == kSecondChoiceTick && sim.hasSchematicChoicesPending())
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{
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SimulationTestAccess::applySchematicChoice(sim, 0);
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}
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sim.tick();
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checksums.push_back(sim.computeStateChecksum());
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}
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return checksums;
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}
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} // namespace
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// ---------------------------------------------------------------------------
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// Hasher
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// ---------------------------------------------------------------------------
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TEST_CASE("Hasher: identical inputs produce identical values", "[determinism]")
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{
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Hasher a;
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Hasher b;
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a.append(42);
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a.append(3.5f);
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a.append(std::string("ore"));
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b.append(42);
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b.append(3.5f);
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b.append(std::string("ore"));
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REQUIRE(a.getValue() == b.getValue());
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}
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TEST_CASE("Hasher: differing inputs produce differing values", "[determinism]")
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{
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Hasher a;
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Hasher b;
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a.append(42);
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b.append(43);
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REQUIRE(a.getValue() != b.getValue());
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}
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TEST_CASE("Hasher: string concatenation does not collide", "[determinism]")
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{
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Hasher a;
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Hasher b;
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a.append(std::string("ab"));
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a.append(std::string("c"));
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b.append(std::string("a"));
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b.append(std::string("bc"));
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REQUIRE(a.getValue() != b.getValue());
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}
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TEST_CASE("Hasher: negative and positive zero hash equally", "[determinism]")
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{
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Hasher a;
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Hasher b;
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a.append(-0.0f);
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b.append(0.0f);
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REQUIRE(a.getValue() == b.getValue());
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}
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// ---------------------------------------------------------------------------
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// RNG fingerprint
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// ---------------------------------------------------------------------------
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TEST_CASE("fingerprintRng: equal states match, advanced states differ", "[determinism]")
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{
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std::mt19937 a(12345);
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std::mt19937 b(12345);
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REQUIRE(fingerprintRng(a) == fingerprintRng(b));
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a(); // advance one draw
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REQUIRE(fingerprintRng(a) != fingerprintRng(b));
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b(); // advance b to the same point
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REQUIRE(fingerprintRng(a) == fingerprintRng(b));
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}
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TEST_CASE("Simulation::rngFingerprint is stable for equal seeds", "[determinism]")
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{
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const Simulation a(loadTestConfig(), 777);
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const Simulation b(loadTestConfig(), 777);
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REQUIRE(a.getRngFingerprint() == b.getRngFingerprint());
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}
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// ---------------------------------------------------------------------------
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// Double-run determinism
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// ---------------------------------------------------------------------------
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TEST_CASE("Simulation: two runs from the same seed produce identical per-tick state",
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"[determinism]")
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{
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const std::vector<std::uint64_t> first = runScriptedSession(424242);
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const std::vector<std::uint64_t> second = runScriptedSession(424242);
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REQUIRE(first.size() == second.size());
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REQUIRE(first.size() == static_cast<std::size_t>(kScriptTicks));
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for (std::size_t i = 0; i < first.size(); ++i)
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{
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INFO("divergence at tick " << i);
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REQUIRE(first[i] == second[i]);
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}
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}
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TEST_CASE("Simulation: different seeds diverge in state checksum", "[determinism]")
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{
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const std::vector<std::uint64_t> a = runScriptedSession(111);
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const std::vector<std::uint64_t> b = runScriptedSession(222);
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// The two sessions must differ at some point (the checksum is sensitive to
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// the RNG-driven divergence; a constant checksum would be a broken hash).
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REQUIRE(a != b);
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}
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// ---------------------------------------------------------------------------
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// Unlock state coverage
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// ---------------------------------------------------------------------------
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TEST_CASE("Simulation: unlock state contributes to the state checksum",
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"[determinism][unlock]")
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{
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// Two sessions with identical history up to the schematic choice; only one
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// takes the choice. This pins down that awarding an unlock group actually
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// reaches the checksum, which the scripted-session tests above rely on but
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// cannot show on their own: they would still pass if UnlockState were left
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// out of the fold entirely.
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Simulation taken(loadTestConfig(), 12345u);
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Simulation skipped(loadTestConfig(), 12345u);
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for (int t = 0; t < kFirstStationKillTick; ++t)
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{
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taken.tick();
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skipped.tick();
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}
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killEnemyStations(taken);
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killEnemyStations(skipped);
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taken.tick();
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skipped.tick();
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// In lockstep before the choice, so the divergence below has one cause.
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REQUIRE(taken.computeStateChecksum() == skipped.computeStateChecksum());
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REQUIRE(taken.hasSchematicChoicesPending());
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// An artifact choice bumps m_artifactCount, which is folded separately; the
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// divergence would then not be attributable to unlock state.
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REQUIRE_FALSE(taken.getPendingSchematicChoices()[0].isArtifact);
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SimulationTestAccess::applySchematicChoice(taken, 0);
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// The pending-choice list is not itself folded into the checksum, so the
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// only state that changed is the unlock bookkeeping.
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REQUIRE(taken.computeStateChecksum() != skipped.computeStateChecksum());
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}
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