forked from TartanLlama/optional
486 lines
15 KiB
C++
486 lines
15 KiB
C++
#include <catch2/catch.hpp>
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#include <tl/optional.hpp>
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#include <string>
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constexpr int get_int(int) { return 42; }
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TL_OPTIONAL_11_CONSTEXPR tl::optional<int> get_opt_int(int) { return 42; }
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// What is Clang Format up to?!
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TEST_CASE("Monadic operations", "[monadic]") {
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SECTION("map") { // lhs is empty
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tl::optional<int> o1;
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auto o1r = o1.map([](int i) { return i + 2; });
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STATIC_REQUIRE((std::is_same<decltype(o1r), tl::optional<int>>::value));
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REQUIRE(!o1r);
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// lhs has value
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tl::optional<int> o2 = 40;
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auto o2r = o2.map([](int i) { return i + 2; });
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STATIC_REQUIRE((std::is_same<decltype(o2r), tl::optional<int>>::value));
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REQUIRE(o2r.value() == 42);
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struct rval_call_map {
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double operator()(int) && { return 42.0; };
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};
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// ensure that function object is forwarded
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tl::optional<int> o3 = 42;
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auto o3r = o3.map(rval_call_map{});
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STATIC_REQUIRE((std::is_same<decltype(o3r), tl::optional<double>>::value));
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REQUIRE(o3r.value() == 42);
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// ensure that lhs is forwarded
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tl::optional<int> o4 = 40;
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auto o4r = std::move(o4).map([](int &&i) { return i + 2; });
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STATIC_REQUIRE((std::is_same<decltype(o4r), tl::optional<int>>::value));
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REQUIRE(o4r.value() == 42);
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// ensure that lhs is const-propagated
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const tl::optional<int> o5 = 40;
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auto o5r = o5.map([](const int &i) { return i + 2; });
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STATIC_REQUIRE((std::is_same<decltype(o5r), tl::optional<int>>::value));
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REQUIRE(o5r.value() == 42);
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// test void return
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tl::optional<int> o7 = 40;
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auto f7 = [](const int &) { return; };
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auto o7r = o7.map(f7);
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STATIC_REQUIRE(
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(std::is_same<decltype(o7r), tl::optional<tl::monostate>>::value));
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REQUIRE(o7r.has_value());
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// test each overload in turn
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tl::optional<int> o8 = 42;
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auto o8r = o8.map([](int) { return 42; });
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REQUIRE(*o8r == 42);
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tl::optional<int> o9 = 42;
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auto o9r = o9.map([](int) { return; });
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REQUIRE(o9r);
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tl::optional<int> o12 = 42;
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auto o12r = std::move(o12).map([](int) { return 42; });
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REQUIRE(*o12r == 42);
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tl::optional<int> o13 = 42;
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auto o13r = std::move(o13).map([](int) { return; });
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REQUIRE(o13r);
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const tl::optional<int> o16 = 42;
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auto o16r = o16.map([](int) { return 42; });
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REQUIRE(*o16r == 42);
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const tl::optional<int> o17 = 42;
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auto o17r = o17.map([](int) { return; });
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REQUIRE(o17r);
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const tl::optional<int> o20 = 42;
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auto o20r = std::move(o20).map([](int) { return 42; });
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REQUIRE(*o20r == 42);
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const tl::optional<int> o21 = 42;
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auto o21r = std::move(o21).map([](int) { return; });
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REQUIRE(o21r);
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tl::optional<int> o24 = tl::nullopt;
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auto o24r = o24.map([](int) { return 42; });
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REQUIRE(!o24r);
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tl::optional<int> o25 = tl::nullopt;
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auto o25r = o25.map([](int) { return; });
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REQUIRE(!o25r);
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tl::optional<int> o28 = tl::nullopt;
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auto o28r = std::move(o28).map([](int) { return 42; });
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REQUIRE(!o28r);
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tl::optional<int> o29 = tl::nullopt;
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auto o29r = std::move(o29).map([](int) { return; });
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REQUIRE(!o29r);
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const tl::optional<int> o32 = tl::nullopt;
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auto o32r = o32.map([](int) { return 42; });
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REQUIRE(!o32r);
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const tl::optional<int> o33 = tl::nullopt;
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auto o33r = o33.map([](int) { return; });
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REQUIRE(!o33r);
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const tl::optional<int> o36 = tl::nullopt;
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auto o36r = std::move(o36).map([](int) { return 42; });
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REQUIRE(!o36r);
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const tl::optional<int> o37 = tl::nullopt;
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auto o37r = std::move(o37).map([](int) { return; });
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REQUIRE(!o37r);
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// callable which returns a reference
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tl::optional<int> o38 = 42;
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auto o38r = o38.map([](int &i) -> const int & { return i; });
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REQUIRE(o38r);
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REQUIRE(*o38r == 42);
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int i = 42;
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tl::optional<int&> o39 = i;
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o39.map([](int& x){x = 12;});
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REQUIRE(i == 12);
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}
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SECTION("map constexpr") {
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#if !defined(_MSC_VER) && defined(TL_OPTIONAL_CXX14)
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// test each overload in turn
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constexpr tl::optional<int> o16 = 42;
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constexpr auto o16r = o16.map(get_int);
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STATIC_REQUIRE(*o16r == 42);
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constexpr tl::optional<int> o20 = 42;
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constexpr auto o20r = std::move(o20).map(get_int);
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STATIC_REQUIRE(*o20r == 42);
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constexpr tl::optional<int> o32 = tl::nullopt;
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constexpr auto o32r = o32.map(get_int);
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STATIC_REQUIRE(!o32r);
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constexpr tl::optional<int> o36 = tl::nullopt;
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constexpr auto o36r = std::move(o36).map(get_int);
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STATIC_REQUIRE(!o36r);
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#endif
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}
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SECTION("transform") { // lhs is empty
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tl::optional<int> o1;
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auto o1r = o1.transform([](int i) { return i + 2; });
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STATIC_REQUIRE((std::is_same<decltype(o1r), tl::optional<int>>::value));
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REQUIRE(!o1r);
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// lhs has value
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tl::optional<int> o2 = 40;
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auto o2r = o2.transform([](int i) { return i + 2; });
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STATIC_REQUIRE((std::is_same<decltype(o2r), tl::optional<int>>::value));
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REQUIRE(o2r.value() == 42);
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struct rval_call_transform {
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double operator()(int) && { return 42.0; };
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};
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// ensure that function object is forwarded
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tl::optional<int> o3 = 42;
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auto o3r = o3.transform(rval_call_transform{});
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STATIC_REQUIRE((std::is_same<decltype(o3r), tl::optional<double>>::value));
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REQUIRE(o3r.value() == 42);
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// ensure that lhs is forwarded
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tl::optional<int> o4 = 40;
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auto o4r = std::move(o4).transform([](int&& i) { return i + 2; });
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STATIC_REQUIRE((std::is_same<decltype(o4r), tl::optional<int>>::value));
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REQUIRE(o4r.value() == 42);
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// ensure that lhs is const-propagated
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const tl::optional<int> o5 = 40;
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auto o5r = o5.transform([](const int& i) { return i + 2; });
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STATIC_REQUIRE((std::is_same<decltype(o5r), tl::optional<int>>::value));
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REQUIRE(o5r.value() == 42);
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// test void return
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tl::optional<int> o7 = 40;
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auto f7 = [](const int&) { return; };
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auto o7r = o7.transform(f7);
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STATIC_REQUIRE(
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(std::is_same<decltype(o7r), tl::optional<tl::monostate>>::value));
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REQUIRE(o7r.has_value());
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// test each overload in turn
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tl::optional<int> o8 = 42;
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auto o8r = o8.transform([](int) { return 42; });
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REQUIRE(*o8r == 42);
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tl::optional<int> o9 = 42;
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auto o9r = o9.transform([](int) { return; });
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REQUIRE(o9r);
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tl::optional<int> o12 = 42;
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auto o12r = std::move(o12).transform([](int) { return 42; });
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REQUIRE(*o12r == 42);
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tl::optional<int> o13 = 42;
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auto o13r = std::move(o13).transform([](int) { return; });
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REQUIRE(o13r);
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const tl::optional<int> o16 = 42;
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auto o16r = o16.transform([](int) { return 42; });
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REQUIRE(*o16r == 42);
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const tl::optional<int> o17 = 42;
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auto o17r = o17.transform([](int) { return; });
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REQUIRE(o17r);
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const tl::optional<int> o20 = 42;
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auto o20r = std::move(o20).transform([](int) { return 42; });
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REQUIRE(*o20r == 42);
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const tl::optional<int> o21 = 42;
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auto o21r = std::move(o21).transform([](int) { return; });
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REQUIRE(o21r);
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tl::optional<int> o24 = tl::nullopt;
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auto o24r = o24.transform([](int) { return 42; });
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REQUIRE(!o24r);
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tl::optional<int> o25 = tl::nullopt;
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auto o25r = o25.transform([](int) { return; });
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REQUIRE(!o25r);
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tl::optional<int> o28 = tl::nullopt;
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auto o28r = std::move(o28).transform([](int) { return 42; });
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REQUIRE(!o28r);
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tl::optional<int> o29 = tl::nullopt;
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auto o29r = std::move(o29).transform([](int) { return; });
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REQUIRE(!o29r);
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const tl::optional<int> o32 = tl::nullopt;
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auto o32r = o32.transform([](int) { return 42; });
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REQUIRE(!o32r);
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const tl::optional<int> o33 = tl::nullopt;
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auto o33r = o33.transform([](int) { return; });
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REQUIRE(!o33r);
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const tl::optional<int> o36 = tl::nullopt;
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auto o36r = std::move(o36).transform([](int) { return 42; });
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REQUIRE(!o36r);
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const tl::optional<int> o37 = tl::nullopt;
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auto o37r = std::move(o37).transform([](int) { return; });
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REQUIRE(!o37r);
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// callable which returns a reference
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tl::optional<int> o38 = 42;
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auto o38r = o38.transform([](int& i) -> const int& { return i; });
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REQUIRE(o38r);
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REQUIRE(*o38r == 42);
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int i = 42;
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tl::optional<int&> o39 = i;
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o39.transform([](int& x) {x = 12; });
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REQUIRE(i == 12);
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}
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SECTION("transform constexpr") {
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#if !defined(_MSC_VER) && defined(TL_OPTIONAL_CXX14)
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// test each overload in turn
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constexpr tl::optional<int> o16 = 42;
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constexpr auto o16r = o16.transform(get_int);
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STATIC_REQUIRE(*o16r == 42);
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constexpr tl::optional<int> o20 = 42;
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constexpr auto o20r = std::move(o20).transform(get_int);
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STATIC_REQUIRE(*o20r == 42);
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constexpr tl::optional<int> o32 = tl::nullopt;
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constexpr auto o32r = o32.transform(get_int);
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STATIC_REQUIRE(!o32r);
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constexpr tl::optional<int> o36 = tl::nullopt;
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constexpr auto o36r = std::move(o36).transform(get_int);
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STATIC_REQUIRE(!o36r);
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#endif
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}
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SECTION("and_then") {
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// lhs is empty
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tl::optional<int> o1;
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auto o1r = o1.and_then([](int) { return tl::optional<float>{42}; });
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STATIC_REQUIRE((std::is_same<decltype(o1r), tl::optional<float>>::value));
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REQUIRE(!o1r);
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// lhs has value
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tl::optional<int> o2 = 12;
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auto o2r = o2.and_then([](int) { return tl::optional<float>{42}; });
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STATIC_REQUIRE((std::is_same<decltype(o2r), tl::optional<float>>::value));
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REQUIRE(o2r.value() == 42.f);
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// lhs is empty, rhs returns empty
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tl::optional<int> o3;
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auto o3r = o3.and_then([](int) { return tl::optional<float>{}; });
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STATIC_REQUIRE((std::is_same<decltype(o3r), tl::optional<float>>::value));
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REQUIRE(!o3r);
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// rhs returns empty
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tl::optional<int> o4 = 12;
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auto o4r = o4.and_then([](int) { return tl::optional<float>{}; });
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STATIC_REQUIRE((std::is_same<decltype(o4r), tl::optional<float>>::value));
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REQUIRE(!o4r);
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struct rval_call_and_then {
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tl::optional<double> operator()(int) && {
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return tl::optional<double>(42.0);
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};
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};
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// ensure that function object is forwarded
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tl::optional<int> o5 = 42;
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auto o5r = o5.and_then(rval_call_and_then{});
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STATIC_REQUIRE((std::is_same<decltype(o5r), tl::optional<double>>::value));
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REQUIRE(o5r.value() == 42);
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// ensure that lhs is forwarded
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tl::optional<int> o6 = 42;
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auto o6r =
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std::move(o6).and_then([](int &&i) { return tl::optional<double>(i); });
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STATIC_REQUIRE((std::is_same<decltype(o6r), tl::optional<double>>::value));
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REQUIRE(o6r.value() == 42);
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// ensure that function object is const-propagated
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const tl::optional<int> o7 = 42;
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auto o7r =
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o7.and_then([](const int &i) { return tl::optional<double>(i); });
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STATIC_REQUIRE((std::is_same<decltype(o7r), tl::optional<double>>::value));
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REQUIRE(o7r.value() == 42);
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// test each overload in turn
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tl::optional<int> o8 = 42;
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auto o8r = o8.and_then([](int) { return tl::make_optional(42); });
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REQUIRE(*o8r == 42);
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tl::optional<int> o9 = 42;
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auto o9r =
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std::move(o9).and_then([](int) { return tl::make_optional(42); });
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REQUIRE(*o9r == 42);
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const tl::optional<int> o10 = 42;
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auto o10r = o10.and_then([](int) { return tl::make_optional(42); });
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REQUIRE(*o10r == 42);
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const tl::optional<int> o11 = 42;
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auto o11r =
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std::move(o11).and_then([](int) { return tl::make_optional(42); });
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REQUIRE(*o11r == 42);
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tl::optional<int> o16 = tl::nullopt;
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auto o16r = o16.and_then([](int) { return tl::make_optional(42); });
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REQUIRE(!o16r);
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tl::optional<int> o17 = tl::nullopt;
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auto o17r =
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std::move(o17).and_then([](int) { return tl::make_optional(42); });
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REQUIRE(!o17r);
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const tl::optional<int> o18 = tl::nullopt;
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auto o18r = o18.and_then([](int) { return tl::make_optional(42); });
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REQUIRE(!o18r);
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const tl::optional<int> o19 = tl::nullopt;
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auto o19r = std::move(o19).and_then([](int) { return tl::make_optional(42); });
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REQUIRE(!o19r);
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int i = 3;
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tl::optional<int&> o20{i};
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std::move(o20).and_then([](int& r){return tl::optional<int&>{++r};});
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REQUIRE(o20);
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REQUIRE(i == 4);
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}
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SECTION("constexpr and_then") {
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#if !defined(_MSC_VER) && defined(TL_OPTIONAL_CXX14)
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constexpr tl::optional<int> o10 = 42;
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constexpr auto o10r = o10.and_then(get_opt_int);
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REQUIRE(*o10r == 42);
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constexpr tl::optional<int> o11 = 42;
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constexpr auto o11r = std::move(o11).and_then(get_opt_int);
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REQUIRE(*o11r == 42);
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constexpr tl::optional<int> o18 = tl::nullopt;
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constexpr auto o18r = o18.and_then(get_opt_int);
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REQUIRE(!o18r);
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constexpr tl::optional<int> o19 = tl::nullopt;
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constexpr auto o19r = std::move(o19).and_then(get_opt_int);
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REQUIRE(!o19r);
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#endif
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}
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SECTION("or else") {
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tl::optional<int> o1 = 42;
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REQUIRE(*(o1.or_else([] { return tl::make_optional(13); })) == 42);
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tl::optional<int> o2;
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REQUIRE(*(o2.or_else([] { return tl::make_optional(13); })) == 13);
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}
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SECTION("disjunction") {
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tl::optional<int> o1 = 42;
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tl::optional<int> o2 = 12;
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tl::optional<int> o3;
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REQUIRE(*o1.disjunction(o2) == 42);
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REQUIRE(*o1.disjunction(o3) == 42);
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REQUIRE(*o2.disjunction(o1) == 12);
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REQUIRE(*o2.disjunction(o3) == 12);
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REQUIRE(*o3.disjunction(o1) == 42);
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REQUIRE(*o3.disjunction(o2) == 12);
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}
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SECTION("conjunction") {
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tl::optional<int> o1 = 42;
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REQUIRE(*o1.conjunction(42.0) == 42.0);
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REQUIRE(*o1.conjunction(std::string{"hello"}) == std::string{"hello"});
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tl::optional<int> o2;
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REQUIRE(!o2.conjunction(42.0));
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REQUIRE(!o2.conjunction(std::string{"hello"}));
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}
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SECTION("map_or") {
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tl::optional<int> o1 = 21;
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REQUIRE((o1.map_or([](int x) { return x * 2; }, 13)) == 42);
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|
|
|
tl::optional<int> o2;
|
|
REQUIRE((o2.map_or([](int x) { return x * 2; }, 13)) == 13);
|
|
}
|
|
|
|
SECTION("map_or_else") {
|
|
tl::optional<int> o1 = 21;
|
|
REQUIRE((o1.map_or_else([](int x) { return x * 2; }, [] { return 13; })) ==
|
|
42);
|
|
|
|
tl::optional<int> o2;
|
|
REQUIRE((o2.map_or_else([](int x) { return x * 2; }, [] { return 13; })) ==
|
|
13);
|
|
}
|
|
|
|
SECTION("take") {
|
|
tl::optional<int> o1 = 42;
|
|
REQUIRE(*o1.take() == 42);
|
|
REQUIRE(!o1);
|
|
|
|
tl::optional<int> o2;
|
|
REQUIRE(!o2.take());
|
|
REQUIRE(!o2);
|
|
}
|
|
|
|
struct foo {
|
|
void non_const() {}
|
|
};
|
|
|
|
#if defined(TL_OPTIONAL_CXX14) && !defined(TL_OPTIONAL_GCC49) && \
|
|
!defined(TL_OPTIONAL_GCC54) && !defined(TL_OPTIONAL_GCC55)
|
|
SECTION("Issue #1") {
|
|
tl::optional<foo> f = foo{};
|
|
auto l = [](auto &&x) { x.non_const(); };
|
|
f.map(l);
|
|
}
|
|
#endif
|
|
|
|
struct overloaded {
|
|
tl::optional<int> operator()(foo &) { return 0; }
|
|
tl::optional<std::string> operator()(const foo &) { return ""; }
|
|
};
|
|
|
|
SECTION("Issue #2") {
|
|
tl::optional<foo> f = foo{};
|
|
auto x = f.and_then(overloaded{});
|
|
}
|
|
};
|