Files
json/tests/src/unit-ordered_map.cpp
T
Niels Lohmann d8d47be4a5 Fix CI on develop after merging the ready-to-merge PRs (#5754)
* Keep the serializer conversion for objects whose keys cannot be converted

#5591 added a test converting nlohmann::json into a basic_json whose
string type cannot be constructed from std::string. That instantiates
convert_iteratively(), whose members.emplace_back(next.key(), ...) needs
exactly that key conversion, and broke the build of unit-alt-string.
Dispatch on the key's constructibility and leave such conversions to the
serializers, as the levels above the nesting bound already do (#3425).

Signed-off-by: Niels Lohmann <mail@nlohmann.me>

* Fix the remaining CI failures on develop

- unit-wstring: with a 16-bit wchar_t (Windows), a lone surrogate is
  reported as the ill-formed byte 0xFF since #5704; the std::wstring
  expectations still had the previous <U+0000>.
- ci_single_binaries: json_literals.hpp (#5610) and json.hpp include each
  other on purpose, and IWYU, not following the cycle, asks to replace
  json.hpp with json_fwd.hpp. Report its findings without failing the
  build, as already done for json.hpp.

Signed-off-by: Niels Lohmann <mail@nlohmann.me>

* Fix the library warnings and noexcept specifications from the merged PRs

- binary_reader: rename the error_handler constructor parameter, which
  shadowed the member (-Wshadow, -Wshadow-field-in-constructor; #5746)
- basic_json(copy_construct_tag, ...): declare it noexcept when copying
  the base class is (GCC 16 -Wnoexcept; #5690)
- the scalar-on-left legacy comparison operators: noexcept only when
  converting the scalar is, like their member counterparts (#5682, #5751)
- compare_leaves: use std::is_eq/is_lt/is_gt instead of comparing a
  std::partial_ordering with 0 (-Wzero-as-null-pointer-constant; #5686)
- serializer: silence MSVC C4127 for the EnsureAscii template parameter
  (#5741, #5746)
- clang-tidy: return the sanitized reference in binary_writer, take the
  key of ordered_map::find_impl by const reference (#5727), and mark the
  switches over parse_array_index (#5728)
- ordered_map: keep <memory> for std::allocator (IWYU)

Signed-off-by: Niels Lohmann <mail@nlohmann.me>

* Split unit-conversions.cpp so MinGW can link it

clang 18 with the MinGW linker failed to link test-conversions_cpp17
("relocation truncated to fit: IMAGE_REL_AMD64_REL32"). As windows.yml
recommends, keep the objects small by splitting the test file.

Signed-off-by: Niels Lohmann <mail@nlohmann.me>

* Fix the tests added by the merged PRs for all CI configurations

- discard the results of dump() and from_*() in CHECK_THROWS with
  utils::ignore_return_value (GCC -Werror=unused-result)
- give unit-bson's huge_string_t a default constructor (MSVC C2512,
  GCC 5, clang 3.5)
- unit-disabled_exceptions: use the literals namespace when the global
  UDLs are off (ci_test_noglobaludls; #5700)
- unit-binary_utf8_strict: expect the JSON pointer prefix with
  JSON_DIAGNOSTICS (#5741)
- skip the tests that rely on exceptions under JSON_NOEXCEPTION
  (#5678, #5732)
- clang-tidy and clang -Werror: static test data, CAPTURE(...);,
  const-correctness, use-after-move alias, unused conversion operator,
  a missing <iterator> include

Signed-off-by: Niels Lohmann <mail@nlohmann.me>

* Title the macro examples and add JSON_STRICT_BINARY_UTF8 to the docset

The documentation style check requires "Example: ..." titles on pages with several examples (#5741, #5591) and a docset entry for every macro page.

Signed-off-by: Niels Lohmann <mail@nlohmann.me>

* Regenerate BUILD.bazel and nlohmann_json.natvis

Signed-off-by: Niels Lohmann <mail@nlohmann.me>

#5746 added detail/output/error_handler.hpp and #5741 the json_abi_sbu8 ABI tag.

* Install libidn11 for the CMake 3.5.0 binary in ci_cmake_flags

Signed-off-by: Niels Lohmann <mail@nlohmann.me>

#5733 moved ci_cmake_options from ubuntu:focal to ubuntu:24.04, which no longer ships libidn.so.11; the CMake 3.5.0 release binary links against it, so every ci_cmake_flags run has failed since. Install focal's libidn11 package for that matrix entry only.

* Suppress Infer's false STACK_VARIABLE_ADDRESS_ESCAPE in get_impl

get_impl() returns its local by value. A test added by the merged PRs instantiates it with a type Infer misreads, so ci_infer reported the 2021 code for the first time.

Signed-off-by: Niels Lohmann <mail@nlohmann.me>

---------

Signed-off-by: Niels Lohmann <mail@nlohmann.me>
2026-10-04 17:18:19 +02:00

747 lines
24 KiB
C++

// __ _____ _____ _____
// __| | __| | | | JSON for Modern C++ (supporting code)
// | | |__ | | | | | | version 3.12.0
// |_____|_____|_____|_|___| https://github.com/nlohmann/json
//
// SPDX-FileCopyrightText: 2013-2026 Niels Lohmann <https://nlohmann.me>
// SPDX-License-Identifier: MIT
#include "doctest_compatibility.h"
#include <nlohmann/json.hpp>
using nlohmann::ordered_map;
#include <stdexcept>
#include <string>
#include <type_traits>
#include <utility>
#include <vector>
// The EDG front end (Intel icpc, NVIDIA nvc++) considers the defaulted move
// constructor of std::pair<const Key, T> noexcept even if copying Key can
// throw. std::vector then moves such elements itself when it grows (and calls
// std::terminate if a key copy throws), so ordered_map leaves growing to it.
#if defined(__EDG__)
#define JSON_TEST_PAIR_MOVE_IS_NOEXCEPT
#endif
namespace
{
// number of copies made of counted values
int value_copies = 0;
// a mapped type that counts its copies; moving from it leaves -1 behind
struct counted // NOLINT(cppcoreguidelines-special-member-functions,hicpp-special-member-functions)
{
int payload = 0;
counted() = default;
explicit counted(int p) noexcept : payload(p) {}
counted(const counted& other) : payload(other.payload)
{
++value_copies;
}
counted(counted&& other) noexcept : payload(other.payload)
{
other.payload = -1;
}
counted& operator=(const counted&) = delete;
counted& operator=(counted&& other) noexcept
{
payload = other.payload;
other.payload = -1;
return *this;
}
};
#if !defined(JSON_NOEXCEPTION) && !defined(JSON_TEST_PAIR_MOVE_IS_NOEXCEPT)
// number of throwing_key copies that still succeed; the next one throws
// (a negative value means that copies never throw)
int key_copies_until_throw = -1;
// a key type whose copy constructor can be made to throw
struct throwing_key // NOLINT(cppcoreguidelines-special-member-functions,hicpp-special-member-functions)
{
int id = 0;
explicit throwing_key(int i) noexcept : id(i) {}
throwing_key(const throwing_key& other) : id(other.id)
{
if (key_copies_until_throw == 0)
{
throw std::runtime_error("key copy failed");
}
if (key_copies_until_throw > 0)
{
--key_copies_until_throw;
}
}
throwing_key& operator=(const throwing_key&) = delete;
friend bool operator==(const throwing_key& lhs, const throwing_key& rhs) noexcept
{
return lhs.id == rhs.id;
}
};
#endif
// a mapped type that cannot be default-constructed
struct no_default
{
explicit no_default(int v) noexcept : value(v) {}
int value;
};
// ordered_json must keep moving its values when an object grows
using ordered_object_t = nlohmann::ordered_json::object_t;
#if !defined(JSON_TEST_PAIR_MOVE_IS_NOEXCEPT)
static_assert(!std::is_nothrow_move_constructible<ordered_object_t::value_type>::value, "std::vector would move the elements itself");
#endif
static_assert(std::is_copy_constructible<ordered_object_t::key_type>::value, "keys must be copyable");
static_assert(std::is_default_constructible<ordered_object_t::mapped_type>::value, "values must be default-constructible");
static_assert(std::is_nothrow_move_assignable<ordered_object_t::mapped_type>::value, "values must be nothrow move-assignable");
} // namespace
TEST_CASE("ordered_map")
{
SECTION("constructor")
{
SECTION("constructor from iterator range")
{
std::map<std::string, std::string> m {{"eins", "one"}, {"zwei", "two"}, {"drei", "three"}};
ordered_map<std::string, std::string> const om(m.begin(), m.end());
CHECK(om.size() == 3);
}
SECTION("copy assignment")
{
std::map<std::string, std::string> m {{"eins", "one"}, {"zwei", "two"}, {"drei", "three"}};
ordered_map<std::string, std::string> om(m.begin(), m.end());
const auto com = om;
om.clear(); // silence a warning by forbidding having "const auto& com = om;"
CHECK(com.size() == 3);
}
}
SECTION("at")
{
std::map<std::string, std::string> m {{"eins", "one"}, {"zwei", "two"}, {"drei", "three"}};
ordered_map<std::string, std::string> om(m.begin(), m.end());
const auto com = om; // NOLINT(performance-unnecessary-copy-initialization)
SECTION("with Key&&")
{
CHECK(om.at(std::string("eins")) == std::string("one"));
CHECK(com.at(std::string("eins")) == std::string("one"));
CHECK_THROWS_AS(om.at(std::string("vier")), std::out_of_range);
CHECK_THROWS_AS(com.at(std::string("vier")), std::out_of_range);
}
SECTION("with const Key&&")
{
const std::string eins = "eins";
const std::string vier = "vier";
CHECK(om.at(eins) == std::string("one"));
CHECK(com.at(eins) == std::string("one"));
CHECK_THROWS_AS(om.at(vier), std::out_of_range);
CHECK_THROWS_AS(com.at(vier), std::out_of_range);
}
SECTION("with string literal")
{
CHECK(om.at("eins") == std::string("one"));
CHECK(com.at("eins") == std::string("one"));
CHECK_THROWS_AS(om.at("vier"), std::out_of_range);
CHECK_THROWS_AS(com.at("vier"), std::out_of_range);
}
}
SECTION("operator[]")
{
std::map<std::string, std::string> m {{"eins", "one"}, {"zwei", "two"}, {"drei", "three"}};
ordered_map<std::string, std::string> om(m.begin(), m.end());
const auto com = om; // NOLINT(performance-unnecessary-copy-initialization)
SECTION("with Key&&")
{
CHECK(om[std::string("eins")] == std::string("one"));
CHECK(com[std::string("eins")] == std::string("one"));
CHECK(om[std::string("vier")] == std::string(""));
CHECK(om.size() == 4);
}
SECTION("with const Key&&")
{
const std::string eins = "eins";
const std::string vier = "vier";
CHECK(om[eins] == std::string("one"));
CHECK(com[eins] == std::string("one"));
CHECK(om[vier] == std::string(""));
CHECK(om.size() == 4);
}
SECTION("with string literal")
{
CHECK(om["eins"] == std::string("one"));
CHECK(com["eins"] == std::string("one"));
CHECK(om["vier"] == std::string(""));
CHECK(om.size() == 4);
}
}
SECTION("erase")
{
ordered_map<std::string, std::string> om;
om["eins"] = "one";
om["zwei"] = "two";
om["drei"] = "three";
{
auto it = om.begin();
CHECK(it->first == "eins");
++it;
CHECK(it->first == "zwei");
++it;
CHECK(it->first == "drei");
++it;
CHECK(it == om.end());
}
SECTION("with Key&&")
{
CHECK(om.size() == 3);
CHECK(om.erase(std::string("eins")) == 1);
CHECK(om.size() == 2);
CHECK(om.erase(std::string("vier")) == 0);
CHECK(om.size() == 2);
auto it = om.begin();
CHECK(it->first == "zwei");
++it;
CHECK(it->first == "drei");
++it;
CHECK(it == om.end());
}
SECTION("with const Key&&")
{
const std::string eins = "eins";
const std::string vier = "vier";
CHECK(om.size() == 3);
CHECK(om.erase(eins) == 1);
CHECK(om.size() == 2);
CHECK(om.erase(vier) == 0);
CHECK(om.size() == 2);
auto it = om.begin();
CHECK(it->first == "zwei");
++it;
CHECK(it->first == "drei");
++it;
CHECK(it == om.end());
}
SECTION("with string literal")
{
CHECK(om.size() == 3);
CHECK(om.erase("eins") == 1);
CHECK(om.size() == 2);
CHECK(om.erase("vier") == 0);
CHECK(om.size() == 2);
auto it = om.begin();
CHECK(it->first == "zwei");
++it;
CHECK(it->first == "drei");
++it;
CHECK(it == om.end());
}
SECTION("with iterator")
{
CHECK(om.size() == 3);
CHECK(om.begin()->first == "eins");
CHECK(std::next(om.begin(), 1)->first == "zwei");
CHECK(std::next(om.begin(), 2)->first == "drei");
auto it = om.erase(om.begin());
CHECK(it->first == "zwei");
CHECK(om.size() == 2);
auto it2 = om.begin();
CHECK(it2->first == "zwei");
++it2;
CHECK(it2->first == "drei");
++it2;
CHECK(it2 == om.end());
}
SECTION("with iterator pair")
{
SECTION("range in the middle")
{
// need more elements
om["vier"] = "four";
om["fünf"] = "five";
// delete "zwei" and "drei"
auto it = om.erase(om.begin() + 1, om.begin() + 3);
CHECK(it->first == "vier");
CHECK(om.size() == 3);
}
SECTION("range at the beginning")
{
// need more elements
om["vier"] = "four";
om["fünf"] = "five";
// delete "eins" and "zwei"
auto it = om.erase(om.begin(), om.begin() + 2);
CHECK(it->first == "drei");
CHECK(om.size() == 3);
}
SECTION("range at the end")
{
// need more elements
om["vier"] = "four";
om["fünf"] = "five";
// delete "vier" and "fünf"
auto it = om.erase(om.begin() + 3, om.end());
CHECK(it == om.end());
CHECK(om.size() == 3);
}
}
}
SECTION("count")
{
ordered_map<std::string, std::string> om;
om["eins"] = "one";
om["zwei"] = "two";
om["drei"] = "three";
const std::string eins("eins");
const std::string vier("vier");
CHECK(om.count("eins") == 1);
CHECK(om.count(std::string("eins")) == 1);
CHECK(om.count(eins) == 1);
CHECK(om.count("vier") == 0);
CHECK(om.count(std::string("vier")) == 0);
CHECK(om.count(vier) == 0);
}
SECTION("find")
{
ordered_map<std::string, std::string> om;
om["eins"] = "one";
om["zwei"] = "two";
om["drei"] = "three";
const auto com = om;
const std::string eins("eins");
const std::string vier("vier");
CHECK(om.find("eins") == om.begin());
CHECK(om.find(std::string("eins")) == om.begin());
CHECK(om.find(eins) == om.begin());
CHECK(om.find("vier") == om.end());
CHECK(om.find(std::string("vier")) == om.end());
CHECK(om.find(vier) == om.end());
CHECK(com.find("eins") == com.begin());
CHECK(com.find(std::string("eins")) == com.begin());
CHECK(com.find(eins) == com.begin());
CHECK(com.find("vier") == com.end());
CHECK(com.find(std::string("vier")) == com.end());
CHECK(com.find(vier) == com.end());
#ifdef JSON_HAS_CPP_17
CHECK(om.find(std::string_view("eins")) == om.begin());
CHECK(com.find(std::string_view("eins")) == com.begin());
#endif
}
SECTION("insert")
{
ordered_map<std::string, std::string> om;
om["eins"] = "one";
om["zwei"] = "two";
om["drei"] = "three";
SECTION("const value_type&")
{
ordered_map<std::string, std::string>::value_type const vt1 {"eins", "1"};
ordered_map<std::string, std::string>::value_type const vt4 {"vier", "four"};
auto res1 = om.insert(vt1);
CHECK(res1.first == om.begin());
CHECK(res1.second == false);
CHECK(om.size() == 3);
auto res4 = om.insert(vt4);
CHECK(res4.first == om.begin() + 3);
CHECK(res4.second == true);
CHECK(om.size() == 4);
}
SECTION("value_type&&")
{
auto res1 = om.insert({"eins", "1"});
CHECK(res1.first == om.begin());
CHECK(res1.second == false);
CHECK(om.size() == 3);
auto res4 = om.insert({"vier", "four"});
CHECK(res4.first == om.begin() + 3);
CHECK(res4.second == true);
CHECK(om.size() == 4);
}
}
SECTION("emplace")
{
// regression test for issue #5673: the mapped-value parameter must
// accept lvalues and const lvalues, not just rvalues
ordered_map<std::string, std::string> om;
om["eins"] = "one";
om["zwei"] = "two";
om["drei"] = "three";
SECTION("with T&& (rvalue)")
{
auto res1 = om.emplace("eins", std::string("1"));
CHECK(res1.first == om.begin());
CHECK(res1.second == false);
CHECK(om.size() == 3);
CHECK(om.at("eins") == "one"); // existing key is not overwritten
auto res4 = om.emplace("vier", std::string("four"));
CHECK(res4.first == om.begin() + 3);
CHECK(res4.second == true);
CHECK(om.size() == 4);
CHECK(om.at("vier") == "four");
}
SECTION("with T& (lvalue)")
{
std::string one = "1"; // NOLINT(misc-const-correctness): emplace must accept a non-const lvalue
std::string four = "four"; // NOLINT(misc-const-correctness): see above
auto res1 = om.emplace("eins", one);
CHECK(res1.first == om.begin());
CHECK(res1.second == false);
CHECK(om.size() == 3);
CHECK(om.at("eins") == "one"); // existing key is not overwritten
auto res4 = om.emplace("vier", four);
CHECK(res4.first == om.begin() + 3);
CHECK(res4.second == true);
CHECK(om.size() == 4);
CHECK(om.at("vier") == "four");
CHECK(four == "four"); // source was copied, not moved from
}
SECTION("with const T&")
{
const std::string one = "1";
const std::string four = "four";
auto res1 = om.emplace("eins", one);
CHECK(res1.first == om.begin());
CHECK(res1.second == false);
CHECK(om.size() == 3);
auto res4 = om.emplace("vier", four);
CHECK(res4.first == om.begin() + 3);
CHECK(res4.second == true);
CHECK(om.size() == 4);
CHECK(om.at("vier") == "four");
}
SECTION("with key of key_type (non-template overload)")
{
const std::string key_vier{"vier"};
std::string four = "four"; // NOLINT(misc-const-correctness): emplace must accept a non-const lvalue
auto res4 = om.emplace(key_vier, four);
CHECK(res4.first == om.begin() + 3);
CHECK(res4.second == true);
CHECK(om.size() == 4);
CHECK(om.at("vier") == "four");
}
}
}
TEST_CASE("ordered_map growth")
{
SECTION("values are moved, not copied, when the storage grows")
{
ordered_map<std::string, counted> om;
std::size_t growths = 0;
value_copies = 0;
// inserts 100 elements with the given function and counts the growths
const auto fill = [&om, &growths](void (*insert)(ordered_map<std::string, counted>&, int))
{
for (int i = 0; i < 100; ++i)
{
const auto old_capacity = om.capacity();
insert(om, i);
if (om.capacity() > old_capacity)
{
++growths;
}
}
};
// checks that the elements are in insertion order with their values
const auto check_contents = [&om]
{
CHECK(om.size() == 100);
int i = 0;
for (const auto& element : om)
{
CHECK(element.first == std::to_string(i));
CHECK(element.second.payload == i);
++i;
}
};
SECTION("emplace")
{
fill([](ordered_map<std::string, counted>& m, int i)
{
m.emplace(std::to_string(i), counted(i));
});
CHECK(growths >= 3);
CHECK(value_copies == 0);
check_contents();
}
SECTION("operator[]")
{
fill([](ordered_map<std::string, counted>& m, int i)
{
m[std::to_string(i)] = counted(i);
});
CHECK(growths >= 3);
CHECK(value_copies == 0);
check_contents();
}
SECTION("insert(value_type&&)")
{
fill([](ordered_map<std::string, counted>& m, int i)
{
m.insert({std::to_string(i), counted(i)});
});
CHECK(growths >= 3);
CHECK(value_copies == 0);
check_contents();
}
SECTION("insert(const value_type&)")
{
fill([](ordered_map<std::string, counted>& m, int i)
{
const std::pair<const std::string, counted> value(std::to_string(i), counted(i));
m.insert(value);
});
CHECK(growths >= 3);
// only the inserted values are copied
CHECK(value_copies == 100);
check_contents();
}
SECTION("insert(first, last)")
{
std::vector<std::pair<const std::string, counted>> values;
values.reserve(100);
for (int i = 0; i < 100; ++i)
{
values.emplace_back(std::to_string(i), counted(i));
}
value_copies = 0;
om.insert(values.cbegin(), values.cend());
// only the inserted values are copied
CHECK(value_copies == 100);
check_contents();
}
}
SECTION("elements keep their order and values over many growths")
{
ordered_map<std::string, counted> om;
for (int i = 0; i < 1000; ++i)
{
om.emplace(std::to_string(i), counted(i));
}
CHECK(om.size() == 1000);
int i = 0;
for (const auto& element : om)
{
CHECK(element.first == std::to_string(i));
CHECK(element.second.payload == i);
++i;
}
}
SECTION("arguments may refer to elements of the full container")
{
SECTION("moving a value out of the container")
{
ordered_map<std::string, counted> om;
om.reserve(4);
while (om.size() < om.capacity())
{
const auto i = static_cast<int>(om.size());
om.emplace(std::to_string(i), counted(i));
}
const auto size = om.size();
om.emplace("new", std::move(om.at("0")));
CHECK(om.size() == size + 1);
CHECK(om.at("new").payload == 0);
CHECK(om.at("0").payload == -1);
}
SECTION("using a value as key")
{
ordered_map<std::string, std::string> om;
om.reserve(4);
while (om.size() < om.capacity())
{
const auto i = std::to_string(om.size());
om.emplace("k" + i, "v" + i);
}
const auto size = om.size();
om.emplace(om.at("k0"), std::string("x"));
CHECK(om.size() == size + 1);
CHECK(om.at("k0") == "v0");
CHECK(om.at("v0") == "x");
}
SECTION("ordered_json")
{
auto j = nlohmann::ordered_json::object();
auto& object = j.get_ref<nlohmann::ordered_json::object_t&>();
object.reserve(4);
while (object.size() < object.capacity())
{
const auto i = std::to_string(object.size());
j[i] = "a value that is too long for the small string optimization " + i;
}
const auto size = j.size();
j.emplace("new", std::move(j["0"]));
CHECK(j.size() == size + 1);
CHECK(j["new"] == "a value that is too long for the small string optimization 0");
CHECK(j["0"].is_null());
}
}
#if !defined(JSON_NOEXCEPTION) && !defined(JSON_TEST_PAIR_MOVE_IS_NOEXCEPT)
SECTION("the container is unchanged if growing it throws")
{
ordered_map<throwing_key, counted> om;
om.reserve(4);
while (om.size() < om.capacity())
{
const auto i = static_cast<int>(om.size());
om.emplace(throwing_key(i), counted(i));
}
const auto size = om.size();
const auto capacity = om.capacity();
// checks that the elements are unchanged
const auto check_unchanged = [&om, size, capacity]
{
CHECK(om.size() == size);
CHECK(om.capacity() == capacity);
int i = 0;
for (const auto& element : om)
{
CHECK(element.first.id == i);
CHECK(element.second.payload == i);
++i;
}
};
SECTION("emplace")
{
// growing copies the existing keys and then the new one; let each of these copies throw
for (std::size_t k = 0; k <= size; ++k)
{
counted value(100);
key_copies_until_throw = static_cast<int>(k);
CHECK_THROWS_AS(om.emplace(throwing_key(100), std::move(value)), std::runtime_error);
key_copies_until_throw = -1;
check_unchanged();
CHECK(value.payload == 100); // NOLINT(bugprone-use-after-move,hicpp-invalid-access-moved)
}
om.emplace(throwing_key(100), counted(100));
CHECK(om.size() == size + 1);
CHECK(om.capacity() > capacity);
CHECK(om.at(throwing_key(100)).payload == 100);
}
SECTION("insert(const value_type&)")
{
const std::pair<const throwing_key, counted> value(throwing_key(100), counted(100));
value_copies = 0;
key_copies_until_throw = static_cast<int>(size / 2);
CHECK_THROWS_AS(om.insert(value), std::runtime_error);
key_copies_until_throw = -1;
check_unchanged();
CHECK(value_copies == 0);
}
}
#endif
SECTION("elements that std::vector moves, or that cannot be moved back")
{
SECTION("nothrow move-constructible elements")
{
ordered_map<int, counted> om;
value_copies = 0;
for (int i = 0; i < 100; ++i)
{
om.emplace(i, counted(i));
}
CHECK(om.size() == 100);
CHECK(value_copies == 0);
}
SECTION("mapped type without default constructor")
{
ordered_map<std::string, no_default> om;
for (int i = 0; i < 100; ++i)
{
om.emplace(std::to_string(i), no_default(i));
}
CHECK(om.size() == 100);
int i = 0;
for (const auto& element : om)
{
CHECK(element.first == std::to_string(i));
CHECK(element.second.value == i);
++i;
}
}
}
}