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json/include/nlohmann/detail/value_t.hpp
T
Niels Lohmann 0adb7783a4 Add element access, iteration, values, and JSON pointers to json_view
Give basic_json_view the read-only access functions of basic_json:
operator[] and at() with keys and indices, front()/back(), find(),
contains(), count(), begin()/end() and cbegin()/cend(), items()
with structured bindings from C++17 on, and type_name().

Exceptions have the ids and messages of the const functions of
basic_json. Where basic_json has undefined behavior the view
answers safely: operator[] with a missing key or an out-of-range
index returns a discarded view, and front()/back() of an empty
container throw invalid_iterator.214. Objects are iterated in
document order, and all members are visited; duplicate-key lookups
find the first member (as yyjson and simdjson do), while parse(),
materialize(), and the map conversions keep the last value, as
parse() does. Keys of up to 16 bytes are compared with two
overlapping loads.

Add value conversions: get<T>()/get_to() for arithmetic types,
bool, nullptr_t, strings (std::basic_string copied,
string_view_t without a copy), BasicJsonType, views, std::vector,
and maps with string keys; get_string() for the string without a
copy; number_token() for the number exactly as written in the
source; value() with keys and JSON pointers; and operator[]/at()/
contains() with JSON pointers. Everything else, including types
with from_json(), goes through materialize() of that subtree.
get<T>() of arithmetic types is inlined down to the conversion, so
reading an integer needs no call.

detail::json_pointer_access exposes a pointer's reference tokens
to code outside basic_json.

Signed-off-by: Niels Lohmann <mail@nlohmann.me>
2026-10-06 10:48:06 +02:00

217 lines
7.3 KiB
C++

// __ _____ _____ _____
// __| | __| | | | JSON for Modern C++
// | | |__ | | | | | | 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 <array> // array
#include <cmath> // isnan, ldexp, trunc
#include <cstddef> // size_t
#include <cstdint> // uint8_t
#include <limits> // numeric_limits
#include <string> // string
#include <type_traits> // is_signed
#include <nlohmann/detail/macro_scope.hpp>
#if JSON_HAS_THREE_WAY_COMPARISON
#include <compare> // partial_ordering
#endif
NLOHMANN_JSON_NAMESPACE_BEGIN
namespace detail
{
///////////////////////////
// JSON type enumeration //
///////////////////////////
/*!
@brief the JSON type enumeration
This enumeration collects the different JSON types. It is internally used to
distinguish the stored values, and the functions @ref basic_json::is_null(),
@ref basic_json::is_object(), @ref basic_json::is_array(),
@ref basic_json::is_string(), @ref basic_json::is_boolean(),
@ref basic_json::is_number() (with @ref basic_json::is_number_integer(),
@ref basic_json::is_number_unsigned(), and @ref basic_json::is_number_float()),
@ref basic_json::is_discarded(), @ref basic_json::is_primitive(), and
@ref basic_json::is_structured() rely on it.
@note There are three enumeration entries (number_integer, number_unsigned, and
number_float), because the library distinguishes these three types for numbers:
@ref basic_json::number_unsigned_t is used for unsigned integers,
@ref basic_json::number_integer_t is used for signed integers, and
@ref basic_json::number_float_t is used for floating-point numbers or to
approximate integers which do not fit in the limits of their respective type.
@sa see @ref basic_json::basic_json(const value_t value_type) -- create a JSON
value with the default value for a given type
@since version 1.0.0
*/
enum class value_t : std::uint8_t
{
null, ///< null value
object, ///< object (unordered set of name/value pairs)
array, ///< array (ordered collection of values)
string, ///< string value
boolean, ///< boolean value
number_integer, ///< number value (signed integer)
number_unsigned, ///< number value (unsigned integer)
number_float, ///< number value (floating-point)
binary, ///< binary array (ordered collection of bytes)
discarded ///< discarded by the parser callback function
};
/*!
@brief the name of a JSON type, as returned by basic_json::type_name()
Used in exception messages; also by code that reports types without a
basic_json value at hand (such as the zero-copy view).
*/
inline const char* value_type_name(const value_t t) noexcept
{
switch (t)
{
case value_t::null:
return "null";
case value_t::object:
return "object";
case value_t::array:
return "array";
case value_t::string:
return "string";
case value_t::boolean:
return "boolean";
case value_t::binary:
return "binary";
case value_t::discarded:
return "discarded";
case value_t::number_integer:
case value_t::number_unsigned:
case value_t::number_float:
return "number";
default:
return "invalid";
}
}
/*!
@brief comparison operator for JSON types
Returns an ordering that is similar to Python:
- order: null < boolean < number < object < array < string < binary
- furthermore, each type is not smaller than itself
- discarded values are not comparable
- binary is represented as a b"" string in python and directly comparable to a
string; however, making a binary array directly comparable with a string would
be surprising behavior in a JSON file.
@since version 1.0.0
*/
#if JSON_HAS_THREE_WAY_COMPARISON
inline std::partial_ordering operator<=>(const value_t lhs, const value_t rhs) noexcept // *NOPAD*
#else
inline bool operator<(const value_t lhs, const value_t rhs) noexcept
#endif
{
static constexpr std::array<std::uint8_t, 9> order = {{
0 /* null */, 3 /* object */, 4 /* array */, 5 /* string */,
1 /* boolean */, 2 /* integer */, 2 /* unsigned */, 2 /* float */,
6 /* binary */
}
};
const auto l_index = static_cast<std::size_t>(lhs);
const auto r_index = static_cast<std::size_t>(rhs);
#if JSON_HAS_THREE_WAY_COMPARISON
if (l_index < order.size() && r_index < order.size())
{
return order[l_index] <=> order[r_index]; // *NOPAD*
}
return std::partial_ordering::unordered;
#else
return l_index < order.size() && r_index < order.size() && order[l_index] < order[r_index];
#endif
}
// GCC selects the built-in operator< over an operator rewritten from
// a user-defined spaceship operator
// Clang, MSVC, and ICC select the rewritten candidate
// (see GCC bug https://gcc.gnu.org/bugzilla/show_bug.cgi?id=105200)
#if JSON_HAS_THREE_WAY_COMPARISON && defined(__GNUC__)
inline bool operator<(const value_t lhs, const value_t rhs) noexcept
{
return std::is_lt(lhs <=> rhs); // *NOPAD*
}
#endif
/*!
@brief compare an integer with a floating point number without precision loss
Widening the integer to the floating point type loses precision beyond the
float's mantissa, which makes equality intransitive: both 2^63-2 and 2^63-1
round to 2^63, so each compares equal to that float while differing from each
other. Ordering built on that is not a strict weak ordering, so sorting such
values, or using them as keys in an ordered container, is undefined behavior.
Returns a value to be compared against zero with the original operator, which
reproduces the exact ordering. A NaN operand is returned as is, so comparing it
against zero keeps NaN's semantics: false for the relational operators and
unordered for `<=>`.
*/
template<typename IntegerType, typename FloatType>
FloatType compare_integer_with_float(const IntegerType i, const FloatType f) noexcept
{
const auto ordered = [](int c) noexcept
{
return static_cast<FloatType>(c);
};
if (std::isnan(f))
{
return f;
}
// values of IntegerType lie in [-bound, bound) when signed and in
// [0, bound) when unsigned; digits excludes the sign bit, so bound is a
// power of two that the float represents exactly
const FloatType bound = std::ldexp(static_cast<FloatType>(1), std::numeric_limits<IntegerType>::digits);
if (f >= bound)
{
return ordered(-1);
}
if (std::is_signed<IntegerType>::value ? (f < -bound) : (f < static_cast<FloatType>(0)))
{
return ordered(1);
}
// f is now within the integer's range, so truncating it is exact
const FloatType truncated = std::trunc(f);
const auto as_integer = static_cast<IntegerType>(truncated);
if (i != as_integer)
{
return ordered(i < as_integer ? -1 : 1);
}
// the integer parts agree, so any fractional part decides
const FloatType fraction = f - truncated;
if (fraction > static_cast<FloatType>(0))
{
return ordered(-1);
}
if (fraction < static_cast<FloatType>(0))
{
return ordered(1);
}
return ordered(0);
}
} // namespace detail
NLOHMANN_JSON_NAMESPACE_END