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Author SHA1 Message Date
Niels Lohmann 8418ff85b6 Document what counts as a breaking change in the API stability rules
Spell out the 3.x compatibility rules in the roadmap: new defaulted
parameters, new default arguments, noexcept/constexpr, template
parameters, parse and dump results, accepted input, key iteration order,
iterator invalidation, implicit conversions, to_json/from_json lookup,
json_sax, value_t enumerators, and documented macros, CMake options and
headers. Also list std::hash values as not part of the public API, and
link the macro overview from the section.

Signed-off-by: Niels Lohmann <mail@nlohmann.me>
2026-10-08 08:41:06 +02:00
34 changed files with 326 additions and 1164 deletions

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@@ -67,7 +67,7 @@ By default, implicit conversions are enabled.
`JSON_USE_IMPLICIT_CONVERSIONS` is defined to `0`:
```cpp
using wjson = nlohmann::json::with_string_t<std::wstring>;
using wjson = nlohmann::basic_json<std::map, std::vector, std::wstring>;
void load(const nlohmann::json& j);
@@ -19,9 +19,25 @@ int main()
<< j.contains("/array/1"_json_pointer) << '\n'
<< j.contains("/array/-"_json_pointer) << '\n'
<< j.contains("/array/4"_json_pointer) << '\n'
<< j.contains("/baz"_json_pointer) << '\n'
// an array index with a leading '0' is not found
<< j.contains("/array/01"_json_pointer) << '\n'
// an array index that is not a number is not found
<< j.contains("/array/one"_json_pointer) << std::endl;
<< j.contains("/baz"_json_pointer) << std::endl;
try
{
// try to use an array index with leading '0'
j.contains("/array/01"_json_pointer);
}
catch (const json::parse_error& e)
{
std::cout << e.what() << '\n';
}
try
{
// try to use an array index that is not a number
j.contains("/array/one"_json_pointer);
}
catch (const json::parse_error& e)
{
std::cout << e.what() << '\n';
}
}
@@ -5,5 +5,3 @@ true
false
false
false
false
false
@@ -1,10 +1,11 @@
#include <iostream>
#include <map>
#include <nlohmann/json.hpp>
#include "custom_array_type.hpp"
using custom_json = nlohmann::json::with_array_t<custom_array_type>;
using custom_json = nlohmann::basic_json<std::map, custom_array_type>;
int main()
{
@@ -1,10 +1,16 @@
#include <cstdint>
#include <iostream>
#include <map>
#include <string>
#include <vector>
#include <nlohmann/json.hpp>
#include "custom_binary_type.hpp"
using custom_json = nlohmann::json::with_binary_t<custom_binary_type>;
using custom_json = nlohmann::basic_json<std::map, std::vector, std::string, bool,
std::int64_t, std::uint64_t, double, std::allocator,
nlohmann::adl_serializer, custom_binary_type>;
int main()
{
@@ -1,11 +1,12 @@
#include <iostream>
#include <type_traits>
#include <vector>
#include <nlohmann/json.hpp>
#include "custom_object_type.hpp"
using custom_json = nlohmann::json::with_object_t<custom_object_type>;
using custom_json = nlohmann::basic_json<custom_object_type, std::vector>;
int main()
{
@@ -1,10 +1,12 @@
#include <iostream>
#include <map>
#include <vector>
#include <nlohmann/json.hpp>
#include "custom_string_type.hpp"
using custom_json = nlohmann::json::with_string_t<custom_string_type>;
using custom_json = nlohmann::basic_json<std::map, std::vector, custom_string_type>;
int main()
{
+1 -1
View File
@@ -8,7 +8,7 @@ int main()
try
{
// parsing input with a syntax error
json j = json::parse("[1,2,3,]");
json::parse("[1,2,3,]");
}
catch (const json::parse_error& e)
{
@@ -351,8 +351,9 @@ The number types can be changed with template parameters.
A `basic_json` type that uses `#!c long double` as floating-point type.
```cpp hl_lines="1"
using json_ld = nlohmann::json::with_float_t<long double>;
```cpp hl_lines="2"
using json_ld = nlohmann::basic_json<std::map, std::vector, std::string, bool,
std::int64_t, std::uint64_t, long double>;
```
Note values should then be parsed with `json_ld::parse` rather than `json::parse` as the latter would parse
@@ -8,10 +8,6 @@ these requirements so they do not have to be discovered by trial and error. Each
that are known to work for that parameter and the ones that do not, checked against Boost 1.83, Abseil 20250127.0,
Folly, EASTL 3.21, `ankerl::unordered_dense`, `phmap`, `gtl`, `robin_hood`, `tsl::ordered_map`, and Qt 6.
To change a single template parameter and keep the others, use the member alias templates
[`with_*_t`](../../api/basic_json/with_t.md); for instance, `nlohmann::json::with_float_t<long double>` is `json` with
`#!cpp long double` as [`number_float_t`](../../api/basic_json/number_float_t.md).
## How to read this page
Requirements are split into two groups:
@@ -147,7 +143,7 @@ struct unordered_map_object
using base_t::base_t;
};
using unordered_json = nlohmann::json::with_object_t<unordered_map_object>;
using unordered_json = nlohmann::basic_json<unordered_map_object>;
```
Whether `#!cpp std::unordered_map` can be instantiated at all depends on the standard library: `object_t` is formed
@@ -180,7 +176,7 @@ struct flat_hash_object
using base_t::base_t;
};
using flat_hash_json = nlohmann::json::with_object_t<flat_hash_object>;
using flat_hash_json = nlohmann::basic_json<flat_hash_object>;
```
`absl::node_hash_map` keeps references to the mapped values valid across insertions; `absl::flat_hash_map` does not,
@@ -116,7 +116,7 @@ function to use instead.
=== "Deprecated"
```cpp
using my_json = nlohmann::json::with_string_t<my_string_type>;
using my_json = nlohmann::basic_json<std::map, std::vector, my_string_type>;
nlohmann::json_pointer<my_json> ptr("/foo/bar/1");
```
+2 -11
View File
@@ -9,15 +9,12 @@
#pragma once
#include <cstdint> // uint64_t
#if !defined(__SIZEOF_INT128__) && defined(_MSC_VER) && (defined(_M_X64) || defined(_M_ARM64))
#include <intrin0.h> // __umulh, _umul128
#endif
#include <nlohmann/detail/abi_macros.hpp>
// Portable bit-level helpers for the number and string scanners. They use
// compiler builtins or platform-specific intrinsics where available and plain
// C++ otherwise, so they work regardless of byte order.
// compiler builtins where available and plain C++ otherwise, so they need no
// platform headers and work regardless of byte order.
NLOHMANN_JSON_NAMESPACE_BEGIN
namespace detail
@@ -55,12 +52,6 @@ inline uint128_parts full_multiplication(std::uint64_t a, std::uint64_t b) noexc
__extension__ using uint128 = unsigned __int128;
const uint128 r = static_cast<uint128>(a) * b;
return {static_cast<std::uint64_t>(r), static_cast<std::uint64_t>(r >> 64u)};
#elif defined(_MSC_VER) && defined(_M_X64)
std::uint64_t high = 0;
const std::uint64_t low = _umul128(a, b, &high);
return {low, high};
#elif defined(_MSC_VER) && defined(_M_ARM64)
return {a * b, __umulh(a, b)};
#else
const std::uint64_t a_lo = a & 0xFFFFFFFFu;
const std::uint64_t a_hi = a >> 32u;
@@ -172,10 +172,6 @@ struct has_to_json < BasicJsonType, T, enable_if_t < !is_basic_json<T>::value >>
template<typename T>
using detect_key_compare = typename T::key_compare;
// detects whether two values of type T can be compared with operator==
template<typename T>
using detect_equal_comparable = decltype(static_cast<bool>(std::declval<const T&>() == std::declval<const T&>()));
// obtains the actual object key comparator: object_t::key_compare if the
// object type defines it, and default_object_comparator_t otherwise
//
+80 -134
View File
@@ -244,7 +244,16 @@ class binary_writer
case value_t::string:
{
write_cbor_string(*j.m_data.m_value.string, j);
string_t storage;
const string_t& value = sanitize_utf8_for_write(*j.m_data.m_value.string, j, storage);
// step 1: write control byte and the string length
write_cbor_head(0x60, value.size());
// step 2: write the string
oa.write_characters(
reinterpret_cast<const CharType*>(value.data()),
value.size());
break;
}
@@ -312,9 +321,18 @@ class binary_writer
for (const auto& el : *j.m_data.m_value.object)
{
// el.first is written directly (not via a temporary
// basic_json), with the object as diagnostics context
write_cbor_key(el.first, j);
// el.first is checked here, against the object as
// diagnostics context, because write_cbor(el.first)
// converts it to a temporary basic_json that would be
// used as the context instead; for error_handler_t::keep
// and ::replace/::ignore the recursive write_cbor(el.first)
// call below handles the key like any other string, so no
// separate check is needed here for those
if (error_handler == error_handler_t::strict)
{
check_utf8(el.first, j);
}
write_cbor(el.first);
write_cbor(el.second, depth + 1);
}
break;
@@ -473,7 +491,39 @@ class binary_writer
case value_t::string:
{
write_msgpack_string(*j.m_data.m_value.string, j);
string_t storage;
const string_t& value = sanitize_utf8_for_write(*j.m_data.m_value.string, j, storage);
// step 1: write control byte and the string length
const auto N = to_msgpack_length(value.size(), j);
if (N <= 31)
{
// fixstr
write_number(static_cast<std::uint8_t>(0xA0 | N));
}
else if (N <= (std::numeric_limits<std::uint8_t>::max)())
{
// str 8
oa.write_character(to_char_type(0xD9));
write_number(static_cast<std::uint8_t>(N));
}
else if (N <= (std::numeric_limits<std::uint16_t>::max)())
{
// str 16
oa.write_character(to_char_type(0xDA));
write_number(static_cast<std::uint16_t>(N));
}
else
{
// str 32
oa.write_character(to_char_type(0xDB));
write_number(static_cast<std::uint32_t>(N));
}
// step 2: write the string
oa.write_characters(
reinterpret_cast<const CharType*>(value.data()),
value.size());
break;
}
@@ -584,9 +634,14 @@ class binary_writer
for (const auto& el : *j.m_data.m_value.object)
{
// as in write_cbor, el.first is written directly with the
// object as diagnostics context
write_msgpack_key(el.first, j);
// as in write_cbor, el.first is checked here against the
// object as diagnostics context; the recursive call below
// handles keep/replace/ignore like any other string
if (error_handler == error_handler_t::strict)
{
check_utf8(el.first, j);
}
write_msgpack(el.first);
write_msgpack(el.second, depth + 1);
}
break;
@@ -970,9 +1025,13 @@ class binary_writer
continue;
}
// the key is written directly (not via a temporary basic_json),
// with the object as diagnostics context, as in write_cbor
write_cbor_key(current.object_it->first, *current.value);
// el.first is checked here, against the object as diagnostics
// context, like the matching check in write_cbor's object case
if (error_handler == error_handler_t::strict)
{
check_utf8(current.object_it->first, *current.value);
}
write_cbor(current.object_it->first);
const BasicJsonType* child = &(current.object_it->second);
++stack.back().object_it;
write_cbor_value_or_push(*child, stack);
@@ -1047,9 +1106,11 @@ class binary_writer
continue;
}
// as in write_cbor_iterative, the key is written directly with
// the object as diagnostics context
write_msgpack_key(current.object_it->first, *current.value);
if (error_handler == error_handler_t::strict)
{
check_utf8(current.object_it->first, *current.value);
}
write_msgpack(current.object_it->first);
const BasicJsonType* child = &(current.object_it->second);
++stack.back().object_it;
write_msgpack_value_or_push(*child, stack);
@@ -1816,6 +1877,7 @@ class binary_writer
{
// write entries until the current object or array is done, or an
// entry is an object or array itself
const string_t* nested_name = nullptr;
const BasicJsonType* nested = nullptr;
if (current.value->is_object())
{
@@ -1826,8 +1888,7 @@ class binary_writer
++current.member;
if (el.second.is_structured())
{
write_bson_entry_header(el.first, el.second.is_object() ? 0x03 : 0x04);
write_number<std::int32_t>(to_bson_length(nested_sizes[next_size++]), true);
nested_name = &el.first;
nested = &el.second;
}
else
@@ -1846,8 +1907,7 @@ class binary_writer
++current.index;
if (el.is_structured())
{
write_bson_entry_header(index_name, el.is_object() ? 0x03 : 0x04);
write_number<std::int32_t>(to_bson_length(nested_sizes[next_size++]), true);
nested_name = &index_name;
nested = &el;
}
else
@@ -1859,6 +1919,8 @@ class binary_writer
if (nested != nullptr)
{
write_bson_entry_header(*nested_name, nested->is_object() ? 0x03 : 0x04);
write_number<std::int32_t>(to_bson_length(nested_sizes[next_size++]), true);
parents.push_back(std::move(current));
current = bson_frame(nested);
continue;
@@ -1926,122 +1988,6 @@ class binary_writer
}
}
/*!
@brief write an object key as a CBOR text string
A key convertible to string_t is written directly. Other key types (only
an explicit conversion, or only a to_json overload) go through a temporary
basic_json, as in version 3.12.0; the temporary is then the diagnostics
context for strict UTF-8 checks.
*/
template<typename Key = typename BasicJsonType::object_t::key_type,
enable_if_t<std::is_convertible<Key, string_t>::value, int> = 0>
void write_cbor_key(const typename BasicJsonType::object_t::key_type& key, const BasicJsonType& context)
{
write_cbor_string(key, context);
}
template < typename Key = typename BasicJsonType::object_t::key_type,
enable_if_t < !std::is_convertible<Key, string_t>::value, int > = 0 >
void write_cbor_key(const typename BasicJsonType::object_t::key_type& key, const BasicJsonType& /*context*/)
{
write_cbor(BasicJsonType(key));
}
/// @brief write an object key as a MessagePack str, as in @ref write_cbor_key
template<typename Key = typename BasicJsonType::object_t::key_type,
enable_if_t<std::is_convertible<Key, string_t>::value, int> = 0>
void write_msgpack_key(const typename BasicJsonType::object_t::key_type& key, const BasicJsonType& context)
{
write_msgpack_string(key, context);
}
template < typename Key = typename BasicJsonType::object_t::key_type,
enable_if_t < !std::is_convertible<Key, string_t>::value, int > = 0 >
void write_msgpack_key(const typename BasicJsonType::object_t::key_type& key, const BasicJsonType& /*context*/)
{
write_msgpack(BasicJsonType(key));
}
/*!
@brief write a CBOR text string
@a value is checked or sanitized according to @ref error_handler, with
@a context (the string value itself, or the object a key belongs to) used
as diagnostics context; this avoids converting object keys to a temporary
basic_json just to write them
@note When object_t::key_type is not string_t, @a value is a temporary
string_t converted from the key, which lives only until the end of
the caller's statement. The reference returned by
@ref sanitize_utf8_for_write may refer to it, so it must not escape
this function.
*/
void write_cbor_string(const string_t& value, const BasicJsonType& context)
{
string_t storage;
const string_t& sanitized = sanitize_utf8_for_write(value, context, storage);
// step 1: write control byte and the string length
write_cbor_head(0x60, sanitized.size());
// step 2: write the string
oa.write_characters(
reinterpret_cast<const CharType*>(sanitized.data()),
sanitized.size());
}
/////////////
// MsgPack //
/////////////
/*!
@brief write a MessagePack str
@a value is checked or sanitized according to @ref error_handler, with
@a context used as diagnostics context, as in @ref write_cbor_string
@note As in @ref write_cbor_string, @a value may be a temporary string_t
converted from a key, so the reference returned by
@ref sanitize_utf8_for_write must not escape this function.
*/
void write_msgpack_string(const string_t& value, const BasicJsonType& context)
{
string_t storage;
const string_t& sanitized = sanitize_utf8_for_write(value, context, storage);
// step 1: write control byte and the string length
const auto N = to_msgpack_length(sanitized.size(), context);
if (N <= 31)
{
// fixstr
write_number(static_cast<std::uint8_t>(0xA0 | N));
}
else if (N <= (std::numeric_limits<std::uint8_t>::max)())
{
// str 8
oa.write_character(to_char_type(0xD9));
write_number(static_cast<std::uint8_t>(N));
}
else if (N <= (std::numeric_limits<std::uint16_t>::max)())
{
// str 16
oa.write_character(to_char_type(0xDA));
write_number(static_cast<std::uint16_t>(N));
}
else
{
// str 32
oa.write_character(to_char_type(0xDB));
write_number(static_cast<std::uint32_t>(N));
}
// step 2: write the string
oa.write_characters(
reinterpret_cast<const CharType*>(sanitized.data()),
sanitized.size());
}
////////////
// UBJSON //
////////////
+2 -36
View File
@@ -1421,24 +1421,6 @@ public:
return create<object_t>(first, last);
}
/// @brief compare two object keys for equality, if the key type supports it
/// @note object_t only needs operator< for its keys (std::map), so operator==
/// may not exist; the keys are then reported as different, which makes
/// copy_object_level pair the values via object_t::find()
template<typename K = typename object_t::key_type,
detail::enable_if_t<detail::is_detected<detail::detect_equal_comparable, K>::value, int> = 0>
static bool copy_keys_equal(const K& a, const K& b)
{
return a == b;
}
template < typename K = typename object_t::key_type,
detail::enable_if_t < !detail::is_detected<detail::detect_equal_comparable, K>::value, int > = 0 >
static bool copy_keys_equal(const K& /*a*/, const K& /*b*/)
{
return false;
}
/// @brief create the copy of the object @a src in @a dst
/// @note structured values are appended to @a worklist instead
static void copy_object_level(const basic_json& src, basic_json& dst,
@@ -1471,7 +1453,7 @@ public:
auto src_it = src_object.cbegin();
for (auto& element : *dst.m_data.m_value.object)
{
if (JSON_HEDLEY_LIKELY(src_it != src_object.cend() && copy_keys_equal(src_it->first, element.first)))
if (JSON_HEDLEY_LIKELY(src_it != src_object.cend() && src_it->first == element.first))
{
copy_shallow(src_it->second, element.second, worklist);
++src_it;
@@ -3348,27 +3330,11 @@ public:
// std::map or ordered_map) never moves from its argument, so key is still
// valid here regardless of whether KeyType was deduced as an rvalue reference
// NOLINTNEXTLINE(bugprone-use-after-move,hicpp-invalid-access-moved)
JSON_THROW(out_of_range::create(403, detail::concat("key '", key_for_message(key), "' not found"), &j));
JSON_THROW(out_of_range::create(403, detail::concat("key '", string_t(key), "' not found"), &j));
}
return it->second;
}
/// @brief key as it is passed to detail::concat for an error message
/// @note string_t is used where it can be constructed from the key; other
/// key types are passed through unchanged, as concat only needs
/// data() and size() of them
template<typename KeyType, detail::enable_if_t<std::is_constructible<string_t, const KeyType&>::value, int> = 0>
static string_t key_for_message(const KeyType& key)
{
return string_t(key);
}
template < typename KeyType, detail::enable_if_t < !std::is_constructible<string_t, const KeyType&>::value, int > = 0 >
static const KeyType & key_for_message(const KeyType& key)
{
return key;
}
/// @brief checked array element access used by the at() overloads taking an index
/// @throw type_error.304 if @a j is not an array
/// @throw out_of_range.401 if @a idx is out of range
+84 -185
View File
@@ -4171,10 +4171,6 @@ struct has_to_json < BasicJsonType, T, enable_if_t < !is_basic_json<T>::value >>
template<typename T>
using detect_key_compare = typename T::key_compare;
// detects whether two values of type T can be compared with operator==
template<typename T>
using detect_equal_comparable = decltype(static_cast<bool>(std::declval<const T&>() == std::declval<const T&>()));
// obtains the actual object key comparator: object_t::key_compare if the
// object type defines it, and default_object_comparator_t otherwise
//
@@ -8795,16 +8791,13 @@ NLOHMANN_JSON_NAMESPACE_END
#include <cstdint> // uint64_t
#if !defined(__SIZEOF_INT128__) && defined(_MSC_VER) && (defined(_M_X64) || defined(_M_ARM64))
#include <intrin0.h> // __umulh, _umul128
#endif
// #include <nlohmann/detail/abi_macros.hpp>
// Portable bit-level helpers for the number and string scanners. They use
// compiler builtins or platform-specific intrinsics where available and plain
// C++ otherwise, so they work regardless of byte order.
// compiler builtins where available and plain C++ otherwise, so they need no
// platform headers and work regardless of byte order.
NLOHMANN_JSON_NAMESPACE_BEGIN
namespace detail
@@ -8842,12 +8835,6 @@ inline uint128_parts full_multiplication(std::uint64_t a, std::uint64_t b) noexc
__extension__ using uint128 = unsigned __int128;
const uint128 r = static_cast<uint128>(a) * b;
return {static_cast<std::uint64_t>(r), static_cast<std::uint64_t>(r >> 64u)};
#elif defined(_MSC_VER) && defined(_M_X64)
std::uint64_t high = 0;
const std::uint64_t low = _umul128(a, b, &high);
return {low, high};
#elif defined(_MSC_VER) && defined(_M_ARM64)
return {a * b, __umulh(a, b)};
#else
const std::uint64_t a_lo = a & 0xFFFFFFFFu;
const std::uint64_t a_hi = a >> 32u;
@@ -21753,7 +21740,16 @@ class binary_writer
case value_t::string:
{
write_cbor_string(*j.m_data.m_value.string, j);
string_t storage;
const string_t& value = sanitize_utf8_for_write(*j.m_data.m_value.string, j, storage);
// step 1: write control byte and the string length
write_cbor_head(0x60, value.size());
// step 2: write the string
oa.write_characters(
reinterpret_cast<const CharType*>(value.data()),
value.size());
break;
}
@@ -21821,9 +21817,18 @@ class binary_writer
for (const auto& el : *j.m_data.m_value.object)
{
// el.first is written directly (not via a temporary
// basic_json), with the object as diagnostics context
write_cbor_key(el.first, j);
// el.first is checked here, against the object as
// diagnostics context, because write_cbor(el.first)
// converts it to a temporary basic_json that would be
// used as the context instead; for error_handler_t::keep
// and ::replace/::ignore the recursive write_cbor(el.first)
// call below handles the key like any other string, so no
// separate check is needed here for those
if (error_handler == error_handler_t::strict)
{
check_utf8(el.first, j);
}
write_cbor(el.first);
write_cbor(el.second, depth + 1);
}
break;
@@ -21982,7 +21987,39 @@ class binary_writer
case value_t::string:
{
write_msgpack_string(*j.m_data.m_value.string, j);
string_t storage;
const string_t& value = sanitize_utf8_for_write(*j.m_data.m_value.string, j, storage);
// step 1: write control byte and the string length
const auto N = to_msgpack_length(value.size(), j);
if (N <= 31)
{
// fixstr
write_number(static_cast<std::uint8_t>(0xA0 | N));
}
else if (N <= (std::numeric_limits<std::uint8_t>::max)())
{
// str 8
oa.write_character(to_char_type(0xD9));
write_number(static_cast<std::uint8_t>(N));
}
else if (N <= (std::numeric_limits<std::uint16_t>::max)())
{
// str 16
oa.write_character(to_char_type(0xDA));
write_number(static_cast<std::uint16_t>(N));
}
else
{
// str 32
oa.write_character(to_char_type(0xDB));
write_number(static_cast<std::uint32_t>(N));
}
// step 2: write the string
oa.write_characters(
reinterpret_cast<const CharType*>(value.data()),
value.size());
break;
}
@@ -22093,9 +22130,14 @@ class binary_writer
for (const auto& el : *j.m_data.m_value.object)
{
// as in write_cbor, el.first is written directly with the
// object as diagnostics context
write_msgpack_key(el.first, j);
// as in write_cbor, el.first is checked here against the
// object as diagnostics context; the recursive call below
// handles keep/replace/ignore like any other string
if (error_handler == error_handler_t::strict)
{
check_utf8(el.first, j);
}
write_msgpack(el.first);
write_msgpack(el.second, depth + 1);
}
break;
@@ -22479,9 +22521,13 @@ class binary_writer
continue;
}
// the key is written directly (not via a temporary basic_json),
// with the object as diagnostics context, as in write_cbor
write_cbor_key(current.object_it->first, *current.value);
// el.first is checked here, against the object as diagnostics
// context, like the matching check in write_cbor's object case
if (error_handler == error_handler_t::strict)
{
check_utf8(current.object_it->first, *current.value);
}
write_cbor(current.object_it->first);
const BasicJsonType* child = &(current.object_it->second);
++stack.back().object_it;
write_cbor_value_or_push(*child, stack);
@@ -22556,9 +22602,11 @@ class binary_writer
continue;
}
// as in write_cbor_iterative, the key is written directly with
// the object as diagnostics context
write_msgpack_key(current.object_it->first, *current.value);
if (error_handler == error_handler_t::strict)
{
check_utf8(current.object_it->first, *current.value);
}
write_msgpack(current.object_it->first);
const BasicJsonType* child = &(current.object_it->second);
++stack.back().object_it;
write_msgpack_value_or_push(*child, stack);
@@ -23325,6 +23373,7 @@ class binary_writer
{
// write entries until the current object or array is done, or an
// entry is an object or array itself
const string_t* nested_name = nullptr;
const BasicJsonType* nested = nullptr;
if (current.value->is_object())
{
@@ -23335,8 +23384,7 @@ class binary_writer
++current.member;
if (el.second.is_structured())
{
write_bson_entry_header(el.first, el.second.is_object() ? 0x03 : 0x04);
write_number<std::int32_t>(to_bson_length(nested_sizes[next_size++]), true);
nested_name = &el.first;
nested = &el.second;
}
else
@@ -23355,8 +23403,7 @@ class binary_writer
++current.index;
if (el.is_structured())
{
write_bson_entry_header(index_name, el.is_object() ? 0x03 : 0x04);
write_number<std::int32_t>(to_bson_length(nested_sizes[next_size++]), true);
nested_name = &index_name;
nested = &el;
}
else
@@ -23368,6 +23415,8 @@ class binary_writer
if (nested != nullptr)
{
write_bson_entry_header(*nested_name, nested->is_object() ? 0x03 : 0x04);
write_number<std::int32_t>(to_bson_length(nested_sizes[next_size++]), true);
parents.push_back(std::move(current));
current = bson_frame(nested);
continue;
@@ -23435,122 +23484,6 @@ class binary_writer
}
}
/*!
@brief write an object key as a CBOR text string
A key convertible to string_t is written directly. Other key types (only
an explicit conversion, or only a to_json overload) go through a temporary
basic_json, as in version 3.12.0; the temporary is then the diagnostics
context for strict UTF-8 checks.
*/
template<typename Key = typename BasicJsonType::object_t::key_type,
enable_if_t<std::is_convertible<Key, string_t>::value, int> = 0>
void write_cbor_key(const typename BasicJsonType::object_t::key_type& key, const BasicJsonType& context)
{
write_cbor_string(key, context);
}
template < typename Key = typename BasicJsonType::object_t::key_type,
enable_if_t < !std::is_convertible<Key, string_t>::value, int > = 0 >
void write_cbor_key(const typename BasicJsonType::object_t::key_type& key, const BasicJsonType& /*context*/)
{
write_cbor(BasicJsonType(key));
}
/// @brief write an object key as a MessagePack str, as in @ref write_cbor_key
template<typename Key = typename BasicJsonType::object_t::key_type,
enable_if_t<std::is_convertible<Key, string_t>::value, int> = 0>
void write_msgpack_key(const typename BasicJsonType::object_t::key_type& key, const BasicJsonType& context)
{
write_msgpack_string(key, context);
}
template < typename Key = typename BasicJsonType::object_t::key_type,
enable_if_t < !std::is_convertible<Key, string_t>::value, int > = 0 >
void write_msgpack_key(const typename BasicJsonType::object_t::key_type& key, const BasicJsonType& /*context*/)
{
write_msgpack(BasicJsonType(key));
}
/*!
@brief write a CBOR text string
@a value is checked or sanitized according to @ref error_handler, with
@a context (the string value itself, or the object a key belongs to) used
as diagnostics context; this avoids converting object keys to a temporary
basic_json just to write them
@note When object_t::key_type is not string_t, @a value is a temporary
string_t converted from the key, which lives only until the end of
the caller's statement. The reference returned by
@ref sanitize_utf8_for_write may refer to it, so it must not escape
this function.
*/
void write_cbor_string(const string_t& value, const BasicJsonType& context)
{
string_t storage;
const string_t& sanitized = sanitize_utf8_for_write(value, context, storage);
// step 1: write control byte and the string length
write_cbor_head(0x60, sanitized.size());
// step 2: write the string
oa.write_characters(
reinterpret_cast<const CharType*>(sanitized.data()),
sanitized.size());
}
/////////////
// MsgPack //
/////////////
/*!
@brief write a MessagePack str
@a value is checked or sanitized according to @ref error_handler, with
@a context used as diagnostics context, as in @ref write_cbor_string
@note As in @ref write_cbor_string, @a value may be a temporary string_t
converted from a key, so the reference returned by
@ref sanitize_utf8_for_write must not escape this function.
*/
void write_msgpack_string(const string_t& value, const BasicJsonType& context)
{
string_t storage;
const string_t& sanitized = sanitize_utf8_for_write(value, context, storage);
// step 1: write control byte and the string length
const auto N = to_msgpack_length(sanitized.size(), context);
if (N <= 31)
{
// fixstr
write_number(static_cast<std::uint8_t>(0xA0 | N));
}
else if (N <= (std::numeric_limits<std::uint8_t>::max)())
{
// str 8
oa.write_character(to_char_type(0xD9));
write_number(static_cast<std::uint8_t>(N));
}
else if (N <= (std::numeric_limits<std::uint16_t>::max)())
{
// str 16
oa.write_character(to_char_type(0xDA));
write_number(static_cast<std::uint16_t>(N));
}
else
{
// str 32
oa.write_character(to_char_type(0xDB));
write_number(static_cast<std::uint32_t>(N));
}
// step 2: write the string
oa.write_characters(
reinterpret_cast<const CharType*>(sanitized.data()),
sanitized.size());
}
////////////
// UBJSON //
////////////
@@ -29188,24 +29121,6 @@ public:
return create<object_t>(first, last);
}
/// @brief compare two object keys for equality, if the key type supports it
/// @note object_t only needs operator< for its keys (std::map), so operator==
/// may not exist; the keys are then reported as different, which makes
/// copy_object_level pair the values via object_t::find()
template<typename K = typename object_t::key_type,
detail::enable_if_t<detail::is_detected<detail::detect_equal_comparable, K>::value, int> = 0>
static bool copy_keys_equal(const K& a, const K& b)
{
return a == b;
}
template < typename K = typename object_t::key_type,
detail::enable_if_t < !detail::is_detected<detail::detect_equal_comparable, K>::value, int > = 0 >
static bool copy_keys_equal(const K& /*a*/, const K& /*b*/)
{
return false;
}
/// @brief create the copy of the object @a src in @a dst
/// @note structured values are appended to @a worklist instead
static void copy_object_level(const basic_json& src, basic_json& dst,
@@ -29238,7 +29153,7 @@ public:
auto src_it = src_object.cbegin();
for (auto& element : *dst.m_data.m_value.object)
{
if (JSON_HEDLEY_LIKELY(src_it != src_object.cend() && copy_keys_equal(src_it->first, element.first)))
if (JSON_HEDLEY_LIKELY(src_it != src_object.cend() && src_it->first == element.first))
{
copy_shallow(src_it->second, element.second, worklist);
++src_it;
@@ -31115,27 +31030,11 @@ public:
// std::map or ordered_map) never moves from its argument, so key is still
// valid here regardless of whether KeyType was deduced as an rvalue reference
// NOLINTNEXTLINE(bugprone-use-after-move,hicpp-invalid-access-moved)
JSON_THROW(out_of_range::create(403, detail::concat("key '", key_for_message(key), "' not found"), &j));
JSON_THROW(out_of_range::create(403, detail::concat("key '", string_t(key), "' not found"), &j));
}
return it->second;
}
/// @brief key as it is passed to detail::concat for an error message
/// @note string_t is used where it can be constructed from the key; other
/// key types are passed through unchanged, as concat only needs
/// data() and size() of them
template<typename KeyType, detail::enable_if_t<std::is_constructible<string_t, const KeyType&>::value, int> = 0>
static string_t key_for_message(const KeyType& key)
{
return string_t(key);
}
template < typename KeyType, detail::enable_if_t < !std::is_constructible<string_t, const KeyType&>::value, int > = 0 >
static const KeyType & key_for_message(const KeyType& key)
{
return key;
}
/// @brief checked array element access used by the at() overloads taking an index
/// @throw type_error.304 if @a j is not an array
/// @throw out_of_range.401 if @a idx is out of range
+1 -2
View File
@@ -138,8 +138,7 @@ json_test_set_test_options(test-disabled_exceptions
# only the #972 regression test needs thirdparty/fifo_map on its include path
json_test_set_test_options(test-regression1 LINK_LIBRARIES fifo_map_include)
# Regression test for GCC's false -Warray-bounds error with JSON_DIAGNOSTICS (#5742, fixed in #5585). It only
# showed up when optimizing, so build this test with -O3 and the warning as an error.
# GCC's false -Warray-bounds error with JSON_DIAGNOSTICS only shows up when optimizing (#5742).
# -O3 makes the optimizer-driven warnings of the ci_test_gcc flag set (-Winline,
# -Wsuggest-attribute=...) fire on the library's inline functions; they are not
# what this test checks, so turn them off for it.
-75
View File
@@ -1,75 +0,0 @@
// __ _____ _____ _____
// __| | __| | | | 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
#pragma once
#include <map>
#include <memory>
#include <string>
#include <utility>
#include <nlohmann/json.hpp>
namespace custom_object_key_test
{
class key
{
public:
key() = default;
key(const char* value)
: m_value(value)
{}
key(std::string value)
: m_value(std::move(value))
{}
operator std::string() const
{
return m_value;
}
// Required by JSON_DIAGNOSTICS, which reads object keys through data()
// when building the path of an exception.
const char* data() const noexcept
{
return m_value.data();
}
friend bool operator<(const key& lhs, const key& rhs)
{
return lhs.m_value < rhs.m_value;
}
private:
std::string m_value;
};
template<typename Key, typename Value, typename Compare, typename Allocator>
class object
: public std::map <
key,
Value,
std::less<key>, // NOLINT(modernize-use-transparent-functors)
typename std::allocator_traits<Allocator>::template rebind_alloc <
std::pair<const key, Value >>>
{
private:
using allocator_type =
typename std::allocator_traits<Allocator>::template rebind_alloc <
std::pair<const key, Value >>;
using base_type =
std::map<key, Value, std::less<key>, allocator_type>; // NOLINT(modernize-use-transparent-functors)
public:
using base_type::base_type;
};
using json = nlohmann::json::with_object_t<object>;
} // namespace custom_object_key_test
+48 -6
View File
@@ -370,7 +370,14 @@ TEST_CASE("copy of a deeply nested value survives a failing allocation (#5640)")
#if !(defined(_ITERATOR_DEBUG_LEVEL) && _ITERATOR_DEBUG_LEVEL > 0)
SECTION("std::map-backed object_t")
{
using bad_alloc_json = nlohmann::json::with_allocator_t<nth_alloc_fails_allocator>;
using bad_alloc_json = nlohmann::basic_json<std::map,
std::vector,
std::string,
bool,
std::int64_t,
std::uint64_t,
double,
nth_alloc_fails_allocator>;
check_deep_copy_survives_failing_allocation<bad_alloc_json>(false);
check_deep_copy_survives_failing_allocation<bad_alloc_json>(true);
@@ -378,7 +385,14 @@ TEST_CASE("copy of a deeply nested value survives a failing allocation (#5640)")
SECTION("ordered_map-backed object_t")
{
using bad_alloc_ordered_json = nlohmann::ordered_json::with_allocator_t<nth_alloc_fails_allocator>;
using bad_alloc_ordered_json = nlohmann::basic_json<nlohmann::ordered_map,
std::vector,
std::string,
bool,
std::int64_t,
std::uint64_t,
double,
nth_alloc_fails_allocator>;
check_deep_copy_survives_failing_allocation<bad_alloc_ordered_json>(false);
check_deep_copy_survives_failing_allocation<bad_alloc_ordered_json>(true);
@@ -436,7 +450,14 @@ struct scratch_counting_allocator : std::allocator<T>
TEST_CASE("deep copy uses the provided allocator")
{
using counting_json = nlohmann::json::with_allocator_t<scratch_counting_allocator>;
using counting_json = nlohmann::basic_json<std::map,
std::vector,
std::string,
bool,
std::int64_t,
std::uint64_t,
double,
scratch_counting_allocator>;
// deeper than the 128 levels the copy constructor descends into, so the
// innermost objects are copied by the iterative deep copy
@@ -495,7 +516,14 @@ TEST_CASE("converting a deeply nested value from another specialization fails cl
// the allocator in noexcept constructors, so a failing construction crashes
// the program there instead of throwing std::bad_alloc. Nothing to check.
#if !(defined(_MSC_VER) && _MSC_VER < 1910 && defined(_ITERATOR_DEBUG_LEVEL) && _ITERATOR_DEBUG_LEVEL > 0)
using countdown_json = nlohmann::json::with_allocator_t<countdown_allocator>;
using countdown_json = nlohmann::basic_json<std::map,
std::vector,
std::string,
bool,
std::int64_t,
std::uint64_t,
double,
countdown_allocator>;
// deeper than the 128 levels the converting constructor descends into, so
// that failures land on both sides of the bound - or, built with
@@ -603,7 +631,14 @@ TEST_CASE("destructor performs no allocation, only deallocation")
// Since that stack could itself throw bad_alloc from inside the
// noexcept destructor (#5135), destroy() no longer allocates anything:
// it only ever frees what is already there.
using counting_json = nlohmann::json::with_allocator_t<counting_allocator>;
using counting_json = nlohmann::basic_json<std::map,
std::vector,
std::string,
bool,
std::int64_t,
std::uint64_t,
double,
counting_allocator>;
SECTION("array")
{
@@ -648,7 +683,14 @@ TEST_CASE("destructor performs no allocation, only deallocation")
TEST_CASE("a failed allocation leaves the value unchanged")
{
// create JSON type using the throwing allocator
using my_json = nlohmann::json::with_allocator_t<my_allocator>;
using my_json = nlohmann::basic_json<std::map,
std::vector,
std::string,
bool,
std::int64_t,
std::uint64_t,
double,
my_allocator>;
// Each of these creates a string, array, object, or binary value. The
// value must be created before the type is changed: otherwise, a failed
+1 -1
View File
@@ -237,7 +237,7 @@ namespace
// the binary formats as function pointers for "Binary formats with narrow number types";
// named functions rather than lambdas, because clang 3.5 cannot convert a lambda
// to a function pointer in the braced initializer of the format table
using narrow_json = nlohmann::json::with_integers_t<std::int32_t, std::uint32_t>::with_float_t<float>;
using narrow_json = nlohmann::basic_json<std::map, std::vector, std::string, bool, std::int32_t, std::uint32_t, float>;
using bytes = std::vector<std::uint8_t>;
bytes encode_cbor(const json& j)
-53
View File
@@ -28,7 +28,6 @@ using nlohmann::json;
#include "make_test_data_available.hpp"
#include "round_trip_corpus.hpp"
#include "test_utils.hpp"
#include "custom_object_key_type.hpp"
#include "sax_countdown.hpp"
using utils::SaxCountdown;
@@ -3358,55 +3357,3 @@ TEST_CASE("CBOR large strings and binaries (chunked reader)")
}
}
}
TEST_CASE("CBOR supports custom object key types")
{
using custom_json = custom_object_key_test::json;
using custom_key = custom_object_key_test::key;
custom_json::object_t object;
object.emplace(custom_key{"short"}, 1);
object.emplace(
custom_key{"a key longer than twenty-three characters"},
2);
const custom_json value(std::move(object));
const auto encoded = custom_json::to_cbor(value);
CHECK(nlohmann::json::from_cbor(encoded) == nlohmann::json
{
{"short", 1},
{"a key longer than twenty-three characters", 2}
});
}
TEST_CASE("CBOR supports custom object key types nested deeper than the recursion depth limit")
{
// below detail::recursion_depth_limit(), keys are written by
// write_cbor_iterative instead of write_cbor
using custom_json = custom_object_key_test::json;
using custom_key = custom_object_key_test::key;
const std::size_t depth = nlohmann::detail::recursion_depth_limit() + 10;
custom_json value = 1;
nlohmann::json expected = 1;
for (std::size_t i = 0; i < depth; ++i)
{
// alternate short keys with ones long enough to need a length byte
const std::string name = (i % 2 == 0) ? "k" + std::to_string(i)
: "a key longer than thirty-one characters " + std::to_string(i);
custom_json::object_t object;
object.emplace(custom_key{name}, std::move(value));
value = custom_json(std::move(object));
nlohmann::json::object_t expected_object;
expected_object.emplace(name, std::move(expected));
expected = nlohmann::json(std::move(expected_object));
}
const auto encoded = custom_json::to_cbor(value);
CHECK(encoded == nlohmann::json::to_cbor(expected));
CHECK(nlohmann::json::from_cbor(encoded) == expected);
}
+3 -34
View File
@@ -17,7 +17,6 @@ using nlohmann::json;
#include <cstdint> // uint32_t, uint64_t
#include <cstdlib> // strtod
#include <cstring> // memcpy
#include <limits> // numeric_limits
#include <sstream> // stringstream
#include <string> // string
#include <utility> // pair
@@ -892,39 +891,8 @@ TEST_CASE("Eisel-Lemire float conversion")
SECTION("128-bit products and leading zeros")
{
const auto check_product = [](std::uint64_t a, std::uint64_t b)
{
const auto product = nlohmann::detail::full_multiplication(a, b);
CHECK(big_from(product.high, product.low) == big_mul(big_from(0, a), big_from(0, b)));
};
const std::uint64_t max = (std::numeric_limits<std::uint64_t>::max)();
const std::array<std::pair<std::uint64_t, std::uint64_t>, 13> edge_cases =
{
{
{0, 0},
{0, 1},
{1, 1},
{1, max},
{0xFFFFFFFFu, 0x100000000u},
{0x100000000u, 0x100000000u},
{0x100000001u, 0x100000001u},
{max, max},
{max, 2},
{0xFFFFFFFF00000000u, 0x100000001u},
{0x100000001u, 0xFFFFFFFF00000000u},
{max, 1},
{2, max},
}
};
for (const auto& test : edge_cases)
{
check_product(test.first, test.second);
}
// whichever implementation the compiler gets (with or without a
// 128-bit integer type or a builtin / intrinsic)
// 128-bit integer type or a builtin)
std::uint64_t state = 42;
for (int i = 0; i < 10000; ++i)
{
@@ -933,7 +901,8 @@ TEST_CASE("Eisel-Lemire float conversion")
state ^= state << 17u;
const std::uint64_t a = state;
const std::uint64_t b = (state * 0x9E3779B97F4A7C15u) >> (i % 64);
check_product(a, b);
const auto product = nlohmann::detail::full_multiplication(a, b);
CHECK(big_from(product.high, product.low) == big_mul(big_from(0, a), big_from(0, b)));
const int k = i % 64;
const std::uint64_t x = (std::uint64_t{1} << k) | (a & ((std::uint64_t{1} << k) - 1));
+3 -3
View File
@@ -824,7 +824,7 @@ struct unordered_object_t : std::map<Key, Value, directed_less<Key>, Allocator>
return !(lhs == rhs);
}
};
using unordered_json = nlohmann::json::with_object_t<unordered_object_t>;
using unordered_json = nlohmann::basic_json<unordered_object_t>;
// the entries "0" to "9", enumerated in ascending or in descending order
unordered_json make_unordered_object(const bool descending)
@@ -875,7 +875,7 @@ struct key_case_less
template<class Key, class Value, class /*Compare*/, class Allocator>
using key_case_map = std::map<Key, Value, key_case_less, Allocator>;
using key_case_json = nlohmann::json::with_object_t<key_case_map>;
using key_case_json = nlohmann::basic_json<key_case_map>;
// the innermost value of a chain of single-element arrays
template<typename Json>
@@ -905,7 +905,7 @@ struct case_insensitive_less
template<class Key, class Value, class /*Compare*/, class Allocator>
using case_insensitive_map = std::map<Key, Value, case_insensitive_less, Allocator>;
using ci_json = nlohmann::json::with_object_t<case_insensitive_map>;
using ci_json = nlohmann::basic_json<case_insensitive_map>;
} // namespace
TEST_CASE("equality of objects whose entries have no fixed order")
+2 -2
View File
@@ -22,7 +22,7 @@ namespace
// std::deque has no capacity() member function, which the library only needs
// to detect a reallocation for JSON_DIAGNOSTICS
using deque_json = nlohmann::json::with_array_t<std::deque>;
using deque_json = nlohmann::basic_json<std::map, std::deque>;
// a std::vector whose at() is hidden: the library performs its own bounds
// check and must not fall back to the container's checked accessor
@@ -39,7 +39,7 @@ class vector_without_at : public std::vector<T, Allocator>
void at() = delete;
};
using no_at_json = nlohmann::json::with_array_t<vector_without_at>;
using no_at_json = nlohmann::basic_json<std::map, vector_without_at>;
} // namespace
-501
View File
@@ -1,501 +0,0 @@
// __ _____ _____ _____
// __| | __| | | | 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>
#include <cstddef>
#include <cstdint>
#include <map>
#include <memory>
#include <string>
#include <utility>
#include <vector>
// Object types with a user-defined key type. The key types differ in what they
// offer to the library: a conversion to std::string (implicit or explicit), a
// comparison with ==, a to_json overload, or a c_str() member.
namespace custom_key_test
{
class key_base
{
public:
key_base() = default;
key_base(const char* value)
: m_value(value)
{}
key_base(std::string value)
: m_value(std::move(value))
{}
// Required by JSON_DIAGNOSTICS, which reads object keys through data()
// when building the path of an exception.
const char* data() const noexcept
{
return m_value.data();
}
friend bool operator<(const key_base& lhs, const key_base& rhs)
{
return lhs.m_value < rhs.m_value;
}
protected:
std::string m_value;
};
// implicit conversion to std::string and operator==
class key_full : public key_base
{
public:
key_full() = default;
using key_base::key_base;
operator std::string() const
{
return m_value;
}
friend bool operator==(const key_full& lhs, const key_full& rhs)
{
return lhs.m_value == rhs.m_value;
}
};
// implicit conversion to std::string, but no operator==
class key_no_eq : public key_base
{
public:
key_no_eq() = default;
using key_base::key_base;
operator std::string() const
{
return m_value;
}
};
// explicit conversion to std::string, no operator==
class key_explicit : public key_base
{
public:
key_explicit() = default;
using key_base::key_base;
explicit operator std::string() const
{
return m_value;
}
};
// no conversion at all, only a to_json overload, no operator==
class key_to_json : public key_base
{
public:
key_to_json() = default;
using key_base::key_base;
const std::string& value() const
{
return m_value;
}
};
template<typename BasicJsonType>
void to_json(BasicJsonType& j, const key_to_json& k)
{
j = k.value();
}
// like key_to_json, but with size() and c_str()
class key_c_str : public key_base
{
public:
key_c_str() = default;
using key_base::key_base;
const std::string& value() const
{
return m_value;
}
std::size_t size() const
{
return m_value.size();
}
const char* c_str() const
{
return m_value.c_str();
}
};
template<typename BasicJsonType>
void to_json(BasicJsonType& j, const key_c_str& k)
{
j = k.value();
}
// std::map with key type K, ignoring the key type basic_json passes
template<class K>
struct object_for
{
template<class Key, class Value, class Compare, class Allocator>
using pair_allocator = typename std::allocator_traits<Allocator>::template rebind_alloc<std::pair<const K, Value>>;
template<class Key, class Value, class Compare, class Allocator>
using type = std::map<K, Value, std::less<K>, pair_allocator<Key, Value, Compare, Allocator>>; // NOLINT(modernize-use-transparent-functors)
};
using json_full = nlohmann::json::with_object_t<object_for<key_full>::type>;
using json_no_eq = nlohmann::json::with_object_t<object_for<key_no_eq>::type>;
using json_explicit = nlohmann::json::with_object_t<object_for<key_explicit>::type>;
using json_to_json = nlohmann::json::with_object_t<object_for<key_to_json>::type>;
using json_c_str = nlohmann::json::with_object_t<object_for<key_c_str>::type>;
// a key that is long enough to need a length byte in CBOR and MessagePack
const char* long_key_name(std::size_t i, std::string& storage);
const char* long_key_name(std::size_t i, std::string& storage)
{
storage = "a key longer than thirty-one characters " + std::to_string(i);
return storage.c_str();
}
// name of the key at nesting level i of a deep value
std::string deep_name(std::size_t i, bool long_keys);
std::string deep_name(std::size_t i, bool long_keys)
{
std::string storage;
return (long_keys && i % 2 == 1) ? std::string(long_key_name(i, storage)) : "k" + std::to_string(i);
}
// {"a": 1, "b": [true, null, "x"], "c": {"d": 2.5}, <keys of 23, 36, and 300 characters>}
// 23 is the longest CBOR length stored in the initial byte; 36 needs one
// length byte in CBOR and MessagePack, 300 needs two
template<class J>
J make_shallow()
{
using key_t = typename J::object_t::key_type;
J array = J::array();
array.push_back(J(true));
array.push_back(J(nullptr));
array.push_back(J("x"));
typename J::object_t inner;
inner.emplace(key_t("d"), J(2.5));
typename J::object_t object;
object.emplace(key_t("a"), J(1));
object.emplace(key_t("b"), std::move(array));
object.emplace(key_t("c"), J(std::move(inner)));
object.emplace(key_t(std::string(23, 'x')), J(2));
object.emplace(key_t(std::string(36, 'y')), J(3));
object.emplace(key_t(std::string(300, 'z')), J(4));
return J(std::move(object));
}
// {"k0": {"k1": {... {"k<depth-1>": 1} ...}}}
template<class J>
J make_deep(std::size_t depth, bool long_keys)
{
using key_t = typename J::object_t::key_type;
J value = 1;
for (std::size_t i = depth; i > 0; --i)
{
typename J::object_t object;
object.emplace(key_t(deep_name(i - 1, long_keys)), std::move(value));
value = J(std::move(object));
}
return value;
}
std::size_t deep_depth();
std::size_t deep_depth()
{
return nlohmann::detail::recursion_depth_limit() + 10;
}
// walk down the nesting levels without recursion and check the leaf
template<class J>
bool check_deep(const J& value, std::size_t depth, bool long_keys)
{
using key_t = typename J::object_t::key_type;
const J* current = &value;
for (std::size_t i = 0; i < depth; ++i)
{
if (!current->is_object() || current->size() != 1)
{
return false;
}
const auto it = current->find(key_t(deep_name(i, long_keys)));
if (it == current->end())
{
return false;
}
current = &it.value();
}
return current->is_number_integer() && current->template get<int>() == 1;
}
template<class J>
bool check_shallow(const J& value)
{
using key_t = typename J::object_t::key_type;
if (!value.is_object() || value.size() != 6)
{
return false;
}
const auto a = value.find(key_t("a"));
const auto b = value.find(key_t("b"));
const auto c = value.find(key_t("c"));
if (a == value.end() || b == value.end() || c == value.end())
{
return false;
}
const auto d = c->find(key_t("d"));
// basic_json::operator== needs operator== on the keys, which most of the
// key types do not have, so the values are checked through get<>()
return a->template get<int>() == 1
&& b->is_array() && b->size() == 3 && (*b)[0].template get<bool>() && (*b)[1].is_null()
&& (*b)[2].template get<std::string>() == "x"
&& d != c->end() && d->template get<double>() == 2.5
&& value.find(key_t(std::string(23, 'x')))->template get<int>() == 2
&& value.find(key_t(std::string(36, 'y')))->template get<int>() == 3
&& value.find(key_t(std::string(300, 'z')))->template get<int>() == 4;
}
template<class J>
bool is_missing(const J& value, const char* name)
{
return value.find(typename J::object_t::key_type(name)) == value.end();
}
// member access through find(): at() does not compile for key types without
// size() or a conversion to string_t (key_to_json), as in version 3.12.0
template<class J>
const J& member(const J& value, const char* name)
{
const auto it = value.find(typename J::object_t::key_type(name));
REQUIRE(it != value.end());
return *it;
}
} // namespace custom_key_test
TEST_CASE_TEMPLATE("custom object key types: copy", J,
custom_key_test::json_full, custom_key_test::json_no_eq, custom_key_test::json_explicit,
custom_key_test::json_to_json, custom_key_test::json_c_str)
{
SECTION("shallow")
{
const J original = custom_key_test::make_shallow<J>();
REQUIRE(custom_key_test::check_shallow(original));
const J copy(original); // NOLINT(performance-unnecessary-copy-initialization)
CHECK(custom_key_test::check_shallow(copy));
J assigned;
assigned = original;
CHECK(custom_key_test::check_shallow(assigned));
// the original is unchanged
CHECK(custom_key_test::check_shallow(original));
}
SECTION("deep")
{
const std::size_t depth = custom_key_test::deep_depth();
const J original = custom_key_test::make_deep<J>(depth, false);
REQUIRE(custom_key_test::check_deep(original, depth, false));
const J copy(original); // NOLINT(performance-unnecessary-copy-initialization)
CHECK(custom_key_test::check_deep(copy, depth, false));
J assigned;
assigned = original;
CHECK(custom_key_test::check_deep(assigned, depth, false));
CHECK(custom_key_test::check_deep(original, depth, false));
}
}
TEST_CASE_TEMPLATE("custom object key types: parse", J,
custom_key_test::json_full, custom_key_test::json_no_eq, custom_key_test::json_explicit,
custom_key_test::json_to_json, custom_key_test::json_c_str)
{
const J j = J::parse(R"({"a":1,"b":{"c":[1,2]}})");
CHECK(j.size() == 2);
CHECK(custom_key_test::member(j, "a").template get<int>() == 1);
CHECK(custom_key_test::member(custom_key_test::member(j, "b"), "c").size() == 2);
CHECK(custom_key_test::member(custom_key_test::member(j, "b"), "c")[1].template get<int>() == 2);
// a deeply nested document
const std::size_t depth = custom_key_test::deep_depth();
std::string text;
for (std::size_t i = 0; i < depth; ++i)
{
text += "{\"k" + std::to_string(i) + "\":";
}
text += "1";
text.append(depth, '}');
CHECK(custom_key_test::check_deep(J::parse(text), depth, false));
}
TEST_CASE_TEMPLATE("custom object key types: merge_patch, update, and insert", J,
custom_key_test::json_full, custom_key_test::json_no_eq, custom_key_test::json_explicit,
custom_key_test::json_to_json, custom_key_test::json_c_str)
{
SECTION("merge_patch")
{
J j = J::parse(R"({"a":1,"b":2,"n":{"x":1,"y":2}})");
j.merge_patch(J::parse(R"({"b":null,"c":3,"n":{"y":null,"z":3}})"));
CHECK(j.size() == 3);
CHECK(custom_key_test::member(j, "a").template get<int>() == 1);
CHECK(custom_key_test::is_missing(j, "b"));
CHECK(custom_key_test::member(j, "c").template get<int>() == 3);
CHECK(custom_key_test::member(j, "n").size() == 2);
CHECK(custom_key_test::member(custom_key_test::member(j, "n"), "x").template get<int>() == 1);
CHECK(custom_key_test::member(custom_key_test::member(j, "n"), "z").template get<int>() == 3);
}
SECTION("update")
{
J j = J::parse(R"({"a":1,"b":2,"n":{"x":1}})");
const J other = J::parse(R"({"b":3,"c":4,"n":{"y":2}})");
J replaced = j;
replaced.update(other);
CHECK(replaced.size() == 4);
CHECK(custom_key_test::member(replaced, "a").template get<int>() == 1);
CHECK(custom_key_test::member(replaced, "b").template get<int>() == 3);
CHECK(custom_key_test::member(replaced, "c").template get<int>() == 4);
CHECK(custom_key_test::member(replaced, "n").size() == 1);
CHECK(custom_key_test::member(custom_key_test::member(replaced, "n"), "y").template get<int>() == 2);
j.update(other, true);
CHECK(j.size() == 4);
CHECK(custom_key_test::member(j, "n").size() == 2);
CHECK(custom_key_test::member(custom_key_test::member(j, "n"), "x").template get<int>() == 1);
CHECK(custom_key_test::member(custom_key_test::member(j, "n"), "y").template get<int>() == 2);
}
SECTION("insert")
{
J j = J::parse(R"({"a":1,"b":2})");
const J other = J::parse(R"({"b":3,"c":4})");
j.insert(other.begin(), other.end());
CHECK(j.size() == 3);
CHECK(custom_key_test::member(j, "b").template get<int>() == 2);
CHECK(custom_key_test::member(j, "c").template get<int>() == 4);
}
}
TEST_CASE_TEMPLATE("custom object key types: at() reports a missing key", J,
custom_key_test::json_full, custom_key_test::json_no_eq, custom_key_test::json_explicit,
custom_key_test::json_c_str)
{
// not for key_to_json: at() needs the key's size() or a conversion to
// string_t for its error message, which also was the case in version 3.12.0
J j = J::parse(R"({"a":1})");
const J& j_const = j;
CHECK(j.at("a").template get<int>() == 1);
CHECK(j_const.at("a").template get<int>() == 1);
CHECK_THROWS_WITH_AS(j.at("missing"), "[json.exception.out_of_range.403] key 'missing' not found", typename J::out_of_range&);
CHECK_THROWS_WITH_AS(j_const.at("missing"), "[json.exception.out_of_range.403] key 'missing' not found", typename J::out_of_range&);
}
TEST_CASE_TEMPLATE("custom object key types: BSON", J,
custom_key_test::json_full, custom_key_test::json_no_eq)
{
SECTION("shallow")
{
const J value = custom_key_test::make_shallow<J>();
const nlohmann::json expected = custom_key_test::make_shallow<nlohmann::json>();
const std::vector<std::uint8_t> encoded = J::to_bson(value);
CHECK(encoded == nlohmann::json::to_bson(expected));
CHECK(nlohmann::json::from_bson(encoded) == expected);
}
SECTION("deep")
{
const std::size_t depth = custom_key_test::deep_depth();
const J value = custom_key_test::make_deep<J>(depth, false);
const nlohmann::json expected = custom_key_test::make_deep<nlohmann::json>(depth, false);
const std::vector<std::uint8_t> encoded = J::to_bson(value);
CHECK(encoded == nlohmann::json::to_bson(expected));
CHECK(nlohmann::json::from_bson(encoded) == expected);
}
}
TEST_CASE_TEMPLATE("custom object key types: CBOR", J,
custom_key_test::json_full, custom_key_test::json_no_eq, custom_key_test::json_explicit,
custom_key_test::json_to_json, custom_key_test::json_c_str)
{
SECTION("shallow")
{
const J value = custom_key_test::make_shallow<J>();
const nlohmann::json expected = custom_key_test::make_shallow<nlohmann::json>();
const std::vector<std::uint8_t> encoded = J::to_cbor(value);
CHECK(encoded == nlohmann::json::to_cbor(expected));
CHECK(nlohmann::json::from_cbor(encoded) == expected);
}
SECTION("deeper than the recursion depth limit")
{
const std::size_t depth = custom_key_test::deep_depth();
const J value = custom_key_test::make_deep<J>(depth, true);
const nlohmann::json expected = custom_key_test::make_deep<nlohmann::json>(depth, true);
const std::vector<std::uint8_t> encoded = J::to_cbor(value);
CHECK(encoded == nlohmann::json::to_cbor(expected));
CHECK(nlohmann::json::from_cbor(encoded) == expected);
}
}
TEST_CASE_TEMPLATE("custom object key types: MessagePack", J,
custom_key_test::json_full, custom_key_test::json_no_eq, custom_key_test::json_explicit,
custom_key_test::json_to_json, custom_key_test::json_c_str)
{
SECTION("shallow")
{
const J value = custom_key_test::make_shallow<J>();
const nlohmann::json expected = custom_key_test::make_shallow<nlohmann::json>();
const std::vector<std::uint8_t> encoded = J::to_msgpack(value);
CHECK(encoded == nlohmann::json::to_msgpack(expected));
CHECK(nlohmann::json::from_msgpack(encoded) == expected);
}
SECTION("deeper than the recursion depth limit")
{
const std::size_t depth = custom_key_test::deep_depth();
const J value = custom_key_test::make_deep<J>(depth, true);
const nlohmann::json expected = custom_key_test::make_deep<nlohmann::json>(depth, true);
const std::vector<std::uint8_t> encoded = J::to_msgpack(value);
CHECK(encoded == nlohmann::json::to_msgpack(expected));
CHECK(nlohmann::json::from_msgpack(encoded) == expected);
}
}
+3 -3
View File
@@ -179,7 +179,7 @@ class no_key_compare_map
}
};
using no_key_compare_json = nlohmann::json::with_object_t<no_key_compare_map>;
using no_key_compare_json = nlohmann::basic_json<no_key_compare_map>;
// An ObjectType whose erase(iterator) returns void rather than the following
// iterator, as for instance Abseil's hash maps do
@@ -196,7 +196,7 @@ struct void_erase_map : std::map<Key, T, Compare, Allocator>
}
};
using void_erase_json = nlohmann::json::with_object_t<void_erase_map>;
using void_erase_json = nlohmann::basic_json<void_erase_map>;
// wraps an iterator, but only offers the LegacyForwardIterator operations,
// like the iterators of std::unordered_map and other hash maps
@@ -388,7 +388,7 @@ class forward_only_map
}
};
using forward_only_json = nlohmann::json::with_object_t<forward_only_map>;
using forward_only_json = nlohmann::basic_json<forward_only_map>;
} // namespace
+3 -3
View File
@@ -157,13 +157,13 @@ TEST_CASE("hash<nlohmann::json>")
// the ends of the integer ranges, which equal floats exactly
const auto int_min = (std::numeric_limits<json::number_integer_t>::min)();
const auto int_max = (std::numeric_limits<json::number_integer_t>::max)();
const auto two_63 = static_cast<json::number_unsigned_t>(1) << 63U;
const auto two_63 = json::number_unsigned_t(1) << 63U;
CHECK(json(int_min) == json(-9223372036854775808.0));
CHECK(std::hash<json> {}(json(int_min)) == std::hash<json> {}(json(-9223372036854775808.0)));
CHECK(json(two_63) == json(9223372036854775808.0));
CHECK(std::hash<json> {}(json(two_63)) == std::hash<json> {}(json(9223372036854775808.0)));
CHECK(json(static_cast<json::number_unsigned_t>(int_max)) == json(int_max));
CHECK(std::hash<json> {}(json(static_cast<json::number_unsigned_t>(int_max))) == std::hash<json> {}(json(int_max)));
CHECK(json(json::number_unsigned_t(int_max)) == json(int_max));
CHECK(std::hash<json> {}(json(json::number_unsigned_t(int_max))) == std::hash<json> {}(json(int_max)));
}
TEST_CASE("hash<nlohmann::ordered_json>")
+6 -18
View File
@@ -426,7 +426,7 @@ TEST_CASE("issue #5392 - binary writers on deeply nested values")
{
for (std::size_t depth = 120; depth <= 140; ++depth)
{
CAPTURE(depth)
CAPTURE(depth);
const json array = nested_array(depth, json(7));
CHECK(json::from_cbor(json::to_cbor(array)) == array);
@@ -464,7 +464,7 @@ TEST_CASE("issue #5392 - binary writers on deeply nested values")
nlohmann::detail::recursion_depth_limit() + 1, nlohmann::detail::recursion_depth_limit() + 2
})
{
CAPTURE(depth)
CAPTURE(depth);
const json array = nested_array(depth, json(0));
std::vector<std::uint8_t> expected_cbor(depth, 0x81);
@@ -505,22 +505,10 @@ TEST_CASE("issue #5392 - binary writers on deeply nested values")
const json discarded_leaf(json::value_t::discarded);
const json deep_discarded = nested_array(depth, discarded_leaf);
// with diagnostics, the message names the path to the discarded leaf
#if JSON_DIAGNOSTICS
std::string path;
for (std::size_t i = 0; i < depth; ++i)
{
path += "/0";
}
const std::string prefix = "[json.exception.type_error.321] (" + path + ") ";
#else
const std::string prefix = "[json.exception.type_error.321] ";
#endif
CHECK_THROWS_WITH_AS(json::to_cbor(deep_discarded), (prefix + "cannot serialize discarded value to CBOR").c_str(), json::type_error);
CHECK_THROWS_WITH_AS(json::to_msgpack(deep_discarded), (prefix + "cannot serialize discarded value to MessagePack").c_str(), json::type_error);
CHECK_THROWS_WITH_AS(json::to_ubjson(deep_discarded), (prefix + "cannot serialize discarded value to UBJSON").c_str(), json::type_error);
CHECK_THROWS_WITH_AS(json::to_bjdata(deep_discarded), (prefix + "cannot serialize discarded value to BJData").c_str(), json::type_error);
CHECK_THROWS_WITH_AS(json::to_cbor(deep_discarded), "[json.exception.type_error.321] cannot serialize discarded value to CBOR", json::type_error);
CHECK_THROWS_WITH_AS(json::to_msgpack(deep_discarded), "[json.exception.type_error.321] cannot serialize discarded value to MessagePack", json::type_error);
CHECK_THROWS_WITH_AS(json::to_ubjson(deep_discarded), "[json.exception.type_error.321] cannot serialize discarded value to UBJSON", json::type_error);
CHECK_THROWS_WITH_AS(json::to_bjdata(deep_discarded), "[json.exception.type_error.321] cannot serialize discarded value to BJData", json::type_error);
}
SECTION("does not overflow the C++ stack")
+3 -3
View File
@@ -172,7 +172,7 @@ TEST_CASE("locale-dependent test (LC_NUMERIC=de_DE)")
// a floating-point type that is not a float or a double is written
// with snprintf, whose locale-specific decimal point and thousands
// separator are undone afterwards
using long_double_json = nlohmann::json::with_float_t<long double>;
using long_double_json = nlohmann::basic_json<std::map, std::vector, std::string, bool, std::int64_t, std::uint64_t, long double>;
CHECK(long_double_json(12345.5L).dump() == "12345.5");
CHECK(long_double_json(1.0L).dump() == "1.0");
CHECK(long_double_json(-0.25L).dump() == "-0.25");
@@ -272,7 +272,7 @@ TEST_CASE("locale changes between lexer construction and number conversion (#519
}
text += "]";
using long_double_json = nlohmann::json::with_float_t<long double>;
using long_double_json = nlohmann::basic_json<std::map, std::vector, std::string, bool, std::int64_t, std::uint64_t, long double>;
// reference values, parsed without a locale switch
REQUIRE(std::setlocale(LC_NUMERIC, "C") != nullptr);
@@ -432,7 +432,7 @@ TEST_CASE("locale changes during a single dump() (#5709 item 3)")
// long double on 64-bit Arm, where it is IEEE-754 double) takes the
// locale-independent to_chars() path instead, and this test is a no-op
// there.
using long_double_json = nlohmann::json::with_float_t<long double>;
using long_double_json = nlohmann::basic_json<std::map, std::vector, std::string, bool, std::int64_t, std::uint64_t, long double>;
using ld_limits = std::numeric_limits<long_double_json::number_float_t>;
const bool is_ieee_single_or_double =
(ld_limits::is_iec559 && ld_limits::digits == 24 && ld_limits::max_exponent == 128) ||
+2 -55
View File
@@ -31,7 +31,6 @@ using nlohmann::json;
#include "make_test_data_available.hpp"
#include "round_trip_corpus.hpp"
#include "test_utils.hpp"
#include "custom_object_key_type.hpp"
#include "sax_countdown.hpp"
using utils::SaxCountdown;
@@ -2433,8 +2432,8 @@ TEST_CASE("MessagePack numbers use the active union member (see #5644)")
// used to read the union member that was not the active one, writing
// wrong bytes for some values; std::int64_t/std::uint64_t (the default
// types, where both members have the same width) were not affected
using int32_json = nlohmann::json::with_integers_t<std::int32_t, std::uint64_t>;
using int16_json = nlohmann::json::with_integers_t<std::int16_t, std::uint64_t>;
using int32_json = nlohmann::basic_json<std::map, std::vector, std::string, bool, std::int32_t, std::uint64_t, double>;
using int16_json = nlohmann::basic_json<std::map, std::vector, std::string, bool, std::int16_t, std::uint64_t, double>;
SECTION("number_integer_t = std::int32_t")
{
@@ -2523,55 +2522,3 @@ TEST_CASE("MessagePack large strings and binaries (chunked reader)")
}
}
}
TEST_CASE("MessagePack supports custom object key types")
{
using custom_json = custom_object_key_test::json;
using custom_key = custom_object_key_test::key;
custom_json::object_t object;
object.emplace(custom_key{"short"}, 1);
object.emplace(
custom_key{"a key longer than thirty-one characters"},
2);
const custom_json value(std::move(object));
const auto encoded = custom_json::to_msgpack(value);
CHECK(nlohmann::json::from_msgpack(encoded) == nlohmann::json
{
{"short", 1},
{"a key longer than thirty-one characters", 2}
});
}
TEST_CASE("MessagePack supports custom object key types nested deeper than the recursion depth limit")
{
// below detail::recursion_depth_limit(), keys are written by
// write_msgpack_iterative instead of write_msgpack
using custom_json = custom_object_key_test::json;
using custom_key = custom_object_key_test::key;
const std::size_t depth = nlohmann::detail::recursion_depth_limit() + 10;
custom_json value = 1;
nlohmann::json expected = 1;
for (std::size_t i = 0; i < depth; ++i)
{
// alternate short keys with ones long enough to need a length byte
const std::string name = (i % 2 == 0) ? "k" + std::to_string(i)
: "a key longer than thirty-one characters " + std::to_string(i);
custom_json::object_t object;
object.emplace(custom_key{name}, std::move(value));
value = custom_json(std::move(object));
nlohmann::json::object_t expected_object;
expected_object.emplace(name, std::move(expected));
expected = nlohmann::json(std::move(expected_object));
}
const auto encoded = custom_json::to_msgpack(value);
CHECK(encoded == nlohmann::json::to_msgpack(expected));
CHECK(nlohmann::json::from_msgpack(encoded) == expected);
}
+8 -6
View File
@@ -39,7 +39,7 @@ using nlohmann::json;
template<class K, class V, class dummy_compare, class A>
using my_workaround_fifo_map = nlohmann::fifo_map<K, V, nlohmann::fifo_map_compare<K>, A>;
using my_json = nlohmann::json::with_object_t<my_workaround_fifo_map>;
using my_json = nlohmann::basic_json<my_workaround_fifo_map>;
/////////////////////////////////////////////////////////////////////
// for #977
@@ -86,7 +86,8 @@ struct foo_serializer < T, typename std::enable_if < !std::is_same<foo, T>::valu
};
} // namespace ns
using foo_json = nlohmann::json::with_json_serializer_t<ns::foo_serializer>;
using foo_json = nlohmann::basic_json<std::map, std::vector, std::string, bool, std::int64_t,
std::uint64_t, double, std::allocator, ns::foo_serializer, std::vector<std::uint8_t>>;
/////////////////////////////////////////////////////////////////////
// for #805
@@ -253,7 +254,7 @@ TEST_CASE("regression tests 1")
{
// create JSON class with nonstandard integer number type
using custom_json =
nlohmann::json::with_integers_t<std::int32_t, std::uint32_t>::with_float_t<float>;
nlohmann::basic_json<std::map, std::vector, std::string, bool, int32_t, uint32_t, float>;
custom_json j;
j["int_1"] = 1;
CHECK(j["int_1"] == 1);
@@ -469,17 +470,18 @@ TEST_CASE("regression tests 1")
// create JSON class with nonstandard float number type
// float
nlohmann::json::with_integers_t<std::int32_t, std::uint32_t>::with_float_t<float> const j_float =
nlohmann::basic_json<std::map, std::vector, std::string, bool, int32_t, uint32_t, float> const j_float =
1.23e25f;
CHECK(j_float.get<float>() == 1.23e25f);
// double
nlohmann::json const j_double =
nlohmann::basic_json<std::map, std::vector, std::string, bool, int64_t, uint64_t, double> const j_double =
1.23e35;
CHECK(j_double.get<double>() == 1.23e35);
// long double
nlohmann::json::with_float_t<long double> const j_long_double = 1.23e45L;
nlohmann::basic_json<std::map, std::vector, std::string, bool, int64_t, uint64_t, long double>
const j_long_double = 1.23e45L;
CHECK(j_long_double.get<long double>() == 1.23e45L);
}
+17 -4
View File
@@ -64,7 +64,18 @@ using ordered_json = nlohmann::ordered_json;
/////////////////////////////////////////////////////////////////////
// for #4804
/////////////////////////////////////////////////////////////////////
using json_4804 = nlohmann::json::with_binary_t<std::vector<std::byte>>;
using json_4804 = nlohmann::basic_json<std::map, // ObjectType
std::vector, // ArrayType
std::string, // StringType
bool, // BooleanType
std::int64_t, // NumberIntegerType
std::uint64_t, // NumberUnsignedType
double, // NumberFloatType
std::allocator, // AllocatorType
nlohmann::adl_serializer, // JSONSerializer
std::vector<std::byte>, // BinaryType
void // CustomBaseClass
>;
#endif
#ifdef JSON_HAS_CPP_20
@@ -96,7 +107,7 @@ DOCTEST_CLANG_SUPPRESS_WARNING("-Wexit-time-destructors")
// for #1021
/////////////////////////////////////////////////////////////////////
using float_json = nlohmann::json::with_float_t<float>;
using float_json = nlohmann::basic_json<std::map, std::vector, std::string, bool, std::int64_t, std::uint64_t, float>;
#if (defined(__cpp_exceptions) || defined(__EXCEPTIONS) || defined(_CPPUNWIND)) && !defined(JSON_NOEXCEPTION)
namespace
@@ -144,8 +155,10 @@ struct failing_allocator : std::allocator<T>
};
};
using failing_json = nlohmann::json::with_allocator_t<failing_allocator>;
using failing_ordered_json = nlohmann::ordered_json::with_allocator_t<failing_allocator>;
using failing_json = nlohmann::basic_json<std::map, std::vector, std::string, bool,
std::int64_t, std::uint64_t, double, failing_allocator>;
using failing_ordered_json = nlohmann::basic_json<nlohmann::ordered_map, std::vector, std::string, bool,
std::int64_t, std::uint64_t, double, failing_allocator>;
// builds `depth` levels of nesting around a scalar, iteratively (never
// recursing: each wrap only moves the previous, already-built value, which
+13 -2
View File
@@ -62,7 +62,18 @@ using ordered_json = nlohmann::ordered_json;
/////////////////////////////////////////////////////////////////////
// for #4804
/////////////////////////////////////////////////////////////////////
using json_4804 = nlohmann::json::with_binary_t<std::vector<std::byte>>;
using json_4804 = nlohmann::basic_json<std::map, // ObjectType
std::vector, // ArrayType
std::string, // StringType
bool, // BooleanType
std::int64_t, // NumberIntegerType
std::uint64_t, // NumberUnsignedType
double, // NumberFloatType
std::allocator, // AllocatorType
nlohmann::adl_serializer, // JSONSerializer
std::vector<std::byte>, // BinaryType
void // CustomBaseClass
>;
#endif
#ifdef JSON_HAS_CPP_20
@@ -919,7 +930,7 @@ TEST_CASE("regression test #5476 - array type without reserve()")
{
// the capacity reserved for definite-length arrays must not require the
// array type to have a reserve() member function
using deque_json = nlohmann::json::with_array_t<std::deque>;
using deque_json = nlohmann::basic_json<std::map, std::deque>;
SECTION("std::deque")
{
+2 -1
View File
@@ -367,7 +367,8 @@ TEST_CASE("dump for basic_json with long double number_float_t")
// serializer::dump_float(x, std::false_type). That branch must use the
// "%.*Lg" format specifier; using "%.*g" with a long double argument is
// undefined behavior and corrupts the output.
using long_double_json = nlohmann::json::with_float_t<long double>;
using long_double_json = nlohmann::basic_json<std::map, std::vector, std::string,
bool, std::int64_t, std::uint64_t, long double>;
SECTION("round-trip dump/parse")
{