mirror of
https://github.com/logos-co/logos-protocol.git
synced 2026-08-31 05:51:08 +00:00
249 lines
9.5 KiB
C++
249 lines
9.5 KiB
C++
#include <gtest/gtest.h>
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#include <QMetaType>
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#include <QString>
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#include <QVariant>
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#include <QVariantList>
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#include <QVariantMap>
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#include <nlohmann/json.hpp>
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#include <cstdint>
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#include <limits>
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#include <string>
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#include "logos_provider_interface.h"
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// ---------------------------------------------------------------------------
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// Event payload fidelity across the universal -> Qt bridge.
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//
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// setEventListenerStdBridge adapts the universal event callback (event name +
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// a JSON *string* payload) to the Qt-side EventCallback, which takes a
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// QVariantList. It is the event-path counterpart of callMethodStdBridge.
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//
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// The two are NOT symmetric today, and that asymmetry is what these tests pin:
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//
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// callMethodStdBridge -> logos::nlohmannToQVariant (canonical)
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// setEventListenerStdBridge-> QJsonDocument::fromJson
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// + QJsonValue::toVariant (Qt's parser)
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//
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// Qt 6 backs QJsonValue with QCborValue, so integers up to int64 DO survive the
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// Qt parser. What does not survive is a uint64 above int64max: it has no
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// integral representation there and falls back to double. Hence the failure is
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// narrow and easy to miss — most integers are fine.
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//
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// Note on who is affected: module providers do NOT go through this bridge.
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// A Qt provider stores its callback verbatim (logos-qt-sdk
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// QtProviderObject::setEventListener) and a cdylib provider's generated
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// emitTrampoline already uses logos::nlohmannArgsToQVariantList, which handles
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// is_number_unsigned. The live caller is the logoscore daemon's CoreServiceImpl
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// (core_service_dispatch.cpp), which forwards every watched module event
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// through here — which is why a uint64 event degrades identically no matter
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// what language the emitting module was written in.
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//
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// The bridge had no payload assertions at all before this file:
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// test_universal_provider_dispatch references it only to satisfy the pure
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// virtual. That is how the defect survived the codec convergence.
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// ---------------------------------------------------------------------------
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namespace {
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// Minimal universal provider: it does nothing but hand us the std-side event
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// callback the bridge installs, so a test can fire an event with an exact JSON
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// payload and observe what the Qt side receives.
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class EventEmittingProvider : public LogosProviderObject {
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public:
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QVariant callMethod(const QString& m, const QVariantList& a) override {
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return callMethodStdBridge(m, a);
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}
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QJsonArray getMethods() override { return getMethodsStdBridge(); }
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void setEventListener(EventCallback cb) override {
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setEventListenerStdBridge(std::move(cb));
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}
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bool informModuleToken(const QString&, const QString&) override { return true; }
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void init(void*) override {}
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QString providerName() const override { return QStringLiteral("event_sample"); }
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QString providerVersion() const override { return QStringLiteral("1.0.0"); }
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void setEventListenerStd(UniversalEventCallback cb) override {
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stdCallback = std::move(cb);
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}
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// Emit exactly this JSON text as the payload — no re-serialization on the
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// way in, so the test controls the bytes the bridge parses.
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void emitRaw(const std::string& eventName, const std::string& payloadJson) {
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ASSERT_TRUE(static_cast<bool>(stdCallback));
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stdCallback(eventName, payloadJson);
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}
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UniversalEventCallback stdCallback;
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};
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// Installs a Qt-side listener and records what it receives.
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struct Captured {
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QString name;
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QVariantList args;
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int count = 0;
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};
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Captured captureEvent(const std::string& eventName, const std::string& payloadJson)
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{
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EventEmittingProvider provider;
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Captured cap;
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provider.setEventListener([&cap](const QString& n, const QVariantList& a) {
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cap.name = n;
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cap.args = a;
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++cap.count;
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});
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provider.emitRaw(eventName, payloadJson);
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return cap;
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}
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} // namespace
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// --- The M6 case ----------------------------------------------------------
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// A uint64 above int64max is exact on the method path since the canonical codec
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// landed. It must be exact on the event path too: same value, same process, one
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// hop later.
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TEST(EventPayloadFidelity, Uint64AboveInt64MaxSurvives)
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{
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const Captured cap = captureEvent("uintEvent", "[18446744073709551615]");
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ASSERT_EQ(cap.count, 1);
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ASSERT_EQ(cap.args.size(), 1);
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EXPECT_EQ(cap.args[0].typeId(), QMetaType::ULongLong)
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<< "expected qulonglong, got " << cap.args[0].typeName();
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EXPECT_EQ(cap.args[0].toULongLong(), 18446744073709551615ULL);
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}
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// 2^53+1 is the smallest integer a double cannot represent. It is well inside
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// int64 range, so this fails on any double round-trip while staying clear of
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// the signed/unsigned question — it separates "degraded to double" from
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// "unsigned not represented".
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TEST(EventPayloadFidelity, IntegerPast2Pow53IsNotRounded)
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{
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const Captured cap = captureEvent("intEvent", "[9007199254740993]");
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ASSERT_EQ(cap.args.size(), 1);
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EXPECT_EQ(cap.args[0].toLongLong(), 9007199254740993LL);
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}
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TEST(EventPayloadFidelity, NegativeInt64MinSurvives)
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{
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const Captured cap = captureEvent("intEvent", "[-9223372036854775808]");
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ASSERT_EQ(cap.args.size(), 1);
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EXPECT_EQ(cap.args[0].toLongLong(), std::numeric_limits<int64_t>::min());
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}
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// A large integer nested in a container, not just as a top-level element —
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// containers were where the method-path equivalent (M1) hid.
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TEST(EventPayloadFidelity, LargeIntegerNestedInContainersSurvives)
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{
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const Captured cap = captureEvent(
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"nestedEvent", R"([{"n": 18446744073709551615}, [9007199254740993]])");
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ASSERT_EQ(cap.args.size(), 2);
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EXPECT_EQ(cap.args[0].toMap().value("n").toULongLong(), 18446744073709551615ULL);
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EXPECT_EQ(cap.args[1].toList().at(0).toLongLong(), 9007199254740993LL);
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}
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// --- Bytes ----------------------------------------------------------------
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// Canonical tagged bytes must decode to a QByteArray, exactly as they do on the
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// method path. Today they survive end-to-end only because the untouched
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// {"_bytes": ...} object round-trips as a QVariantMap and a downstream consumer
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// decodes the tag — which is not the same thing as the bridge decoding it.
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TEST(EventPayloadFidelity, TaggedBytesDecodeToByteArray)
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{
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const Captured cap = captureEvent("bytesEvent", R"([{"_bytes": "YQBiAGM"}])");
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ASSERT_EQ(cap.args.size(), 1);
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EXPECT_EQ(cap.args[0].typeId(), QMetaType::QByteArray)
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<< "expected QByteArray, got " << cap.args[0].typeName();
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EXPECT_EQ(cap.args[0].toByteArray(), QByteArray("a\0b\0c", 5));
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}
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TEST(EventPayloadFidelity, TaggedBytesNestedInContainerDecode)
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{
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const Captured cap = captureEvent("bytesEvent", R"([[{"_bytes": "YQBiAGM"}]])");
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ASSERT_EQ(cap.args.size(), 1);
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const QVariantList inner = cap.args[0].toList();
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ASSERT_EQ(inner.size(), 1);
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EXPECT_EQ(inner.at(0).typeId(), QMetaType::QByteArray);
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}
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// --- Shapes that already work: guard against a fix regressing them ---------
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TEST(EventPayloadFidelity, MultipleParametersKeepOrderAndTypes)
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{
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const Captured cap = captureEvent("tripleEvent", R"([42, "hi", true])");
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ASSERT_EQ(cap.args.size(), 3);
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EXPECT_EQ(cap.args[0].toLongLong(), 42);
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EXPECT_EQ(cap.args[1].toString(), QStringLiteral("hi"));
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EXPECT_EQ(cap.args[2].toBool(), true);
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}
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// Converging on the method path's helper also converges its SIGNEDNESS rule:
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// nlohmannArgsToQVariantList classifies every non-negative integer as unsigned,
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// so a LIDL `int` event argument now arrives as ULongLong rather than LongLong.
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// That is what nlohmannToQVariant (methods) and the cdylib emitTrampoline
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// already did, so this makes the surfaces agree — but it is an observable
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// metatype change, pinned here so it stays a decision rather than a side effect.
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// Value-level reads (toLongLong/toULongLong) are unaffected either way.
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TEST(EventPayloadFidelity, NonNegativeIntegerCarriesUnsignedMetatype)
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{
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const Captured cap = captureEvent("intEvent", "[42]");
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ASSERT_EQ(cap.args.size(), 1);
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EXPECT_EQ(cap.args[0].typeId(), QMetaType::ULongLong);
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EXPECT_EQ(cap.args[0].toLongLong(), 42);
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EXPECT_EQ(cap.args[0].toULongLong(), 42ULL);
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}
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// A negative integer keeps the signed metatype — the classification is by value,
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// not by declared LIDL type, so this is the other half of the rule.
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TEST(EventPayloadFidelity, NegativeIntegerCarriesSignedMetatype)
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{
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const Captured cap = captureEvent("intEvent", "[-42]");
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ASSERT_EQ(cap.args.size(), 1);
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EXPECT_EQ(cap.args[0].typeId(), QMetaType::LongLong);
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EXPECT_EQ(cap.args[0].toLongLong(), -42);
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}
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TEST(EventPayloadFidelity, DoubleStaysDouble)
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{
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const Captured cap = captureEvent("doubleEvent", "[3.5]");
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ASSERT_EQ(cap.args.size(), 1);
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EXPECT_EQ(cap.args[0].typeId(), QMetaType::Double);
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EXPECT_DOUBLE_EQ(cap.args[0].toDouble(), 3.5);
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}
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TEST(EventPayloadFidelity, EmptyPayloadYieldsNoArguments)
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{
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const Captured cap = captureEvent("bareEvent", "[]");
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ASSERT_EQ(cap.count, 1);
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EXPECT_EQ(cap.args.size(), 0);
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}
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TEST(EventPayloadFidelity, NullElementSurvivesAsAnElement)
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{
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const Captured cap = captureEvent("nullEvent", R"(["a", null, "b"])");
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ASSERT_EQ(cap.args.size(), 3);
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EXPECT_TRUE(cap.args[1].isNull());
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}
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// A non-array payload is the documented fallback: it is handed over as a single
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// string argument rather than dropped. Pinned so a fix keeps the behaviour.
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TEST(EventPayloadFidelity, NonArrayPayloadFallsBackToSingleStringArgument)
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{
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const Captured cap = captureEvent("rawEvent", "not json at all");
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ASSERT_EQ(cap.args.size(), 1);
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EXPECT_EQ(cap.args[0].toString(), QStringLiteral("not json at all"));
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}
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