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52 changes: 51 additions & 1 deletion include/nlohmann/json.hpp
Original file line number Diff line number Diff line change
Expand Up @@ -1307,14 +1307,64 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
*/
template<bool Ordered>
static compare_result compare_leaves(const_reference lhs, const_reference rhs) noexcept
{
return compare_leaves(lhs, rhs, std::integral_constant<bool, Ordered> {});
}

/// @brief compare two leaves that are only being checked for equality
static compare_result compare_leaves(const_reference lhs, const_reference rhs, std::false_type /*ordered*/) noexcept
{
if (lhs == rhs)
{
return compare_result::equal;
}

return order_leaves(lhs, rhs, std::false_type {});
}

#if JSON_HAS_THREE_WAY_COMPARISON
/*!
@brief compare two leaves that are being ordered, for operator<=>

Reached only from operator<=>, so the leaves must be classified exactly
as operator<=> classifies them - which is not the same as asking
== and then order_leaves(), the way the other overload does it. The two
disagree on a binary value: == also compares the subtype, but <=> compares
only the bytes, through std::vector<std::uint8_t>::operator<=>. Using <=>
itself here keeps a leaf pair classified the same way regardless of how
deep it is nested - == first would again call operator<=> a level down
through order_leaves(), but call it after a mismatching == already ended
the comparison for a pair that <=> alone would still call equivalent.
*/
static compare_result compare_leaves(const_reference lhs, const_reference rhs, std::true_type /*ordered*/) noexcept
{
const std::partial_ordering order = lhs <=> rhs; // *NOPAD*
if (order == 0)
{
return compare_result::equal;
}
if (order < 0)
{
return compare_result::less;
}
if (order > 0)
{
return compare_result::greater;
}
return compare_result::unordered;
}
#else
/// @brief compare two leaves that are being ordered, for operator<
static compare_result compare_leaves(const_reference lhs, const_reference rhs, std::true_type /*ordered*/) noexcept
{
if (lhs == rhs)
{
return compare_result::equal;
}

return order_leaves(lhs, rhs, std::integral_constant<bool, Ordered> {});
return order_leaves(lhs, rhs, std::true_type {});
}
#endif

/*!
@brief compare two object keys
Expand Down
52 changes: 51 additions & 1 deletion single_include/nlohmann/json.hpp
Original file line number Diff line number Diff line change
Expand Up @@ -27388,14 +27388,64 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
*/
template<bool Ordered>
static compare_result compare_leaves(const_reference lhs, const_reference rhs) noexcept
{
return compare_leaves(lhs, rhs, std::integral_constant<bool, Ordered> {});
}

/// @brief compare two leaves that are only being checked for equality
static compare_result compare_leaves(const_reference lhs, const_reference rhs, std::false_type /*ordered*/) noexcept
{
if (lhs == rhs)
{
return compare_result::equal;
}

return order_leaves(lhs, rhs, std::false_type {});
}

#if JSON_HAS_THREE_WAY_COMPARISON
/*!
@brief compare two leaves that are being ordered, for operator<=>

Reached only from operator<=>, so the leaves must be classified exactly
as operator<=> classifies them - which is not the same as asking
== and then order_leaves(), the way the other overload does it. The two
disagree on a binary value: == also compares the subtype, but <=> compares
only the bytes, through std::vector<std::uint8_t>::operator<=>. Using <=>
itself here keeps a leaf pair classified the same way regardless of how
deep it is nested - == first would again call operator<=> a level down
through order_leaves(), but call it after a mismatching == already ended
the comparison for a pair that <=> alone would still call equivalent.
*/
static compare_result compare_leaves(const_reference lhs, const_reference rhs, std::true_type /*ordered*/) noexcept
{
const std::partial_ordering order = lhs <=> rhs; // *NOPAD*
if (order == 0)
{
return compare_result::equal;
}
if (order < 0)
{
return compare_result::less;
}
if (order > 0)
{
return compare_result::greater;
}
return compare_result::unordered;
}
#else
/// @brief compare two leaves that are being ordered, for operator<
static compare_result compare_leaves(const_reference lhs, const_reference rhs, std::true_type /*ordered*/) noexcept
{
if (lhs == rhs)
{
return compare_result::equal;
}

return order_leaves(lhs, rhs, std::integral_constant<bool, Ordered> {});
return order_leaves(lhs, rhs, std::true_type {});
}
#endif

/*!
@brief compare two object keys
Expand Down
48 changes: 48 additions & 0 deletions tests/src/unit-comparison.cpp
Original file line number Diff line number Diff line change
Expand Up @@ -952,3 +952,51 @@ TEST_CASE("containers are compared element by element")
}
}
}

#if JSON_HAS_THREE_WAY_COMPARISON
// JSON_HAS_CPP_20 (do not remove; see note at top of file)
TEST_CASE("operator<=> of binary values with a different subtype does not depend on nesting depth")
{
// #5654: std::vector<std::uint8_t>::operator<=>, which the binary type's
// own operator<=> uses, ignores the subtype that operator== checks. So a
// pair of binary values with the same bytes but a different subtype is
// unequal, yet <=>-equivalent - the same inconsistency between == and <=>
// that a NaN has. Within the nesting bound, an array compares itself
// with std::vector's own operator<=>, which treats an equivalent pair as
// undecided and lets the next element decide, same as
// std::lexicographical_compare_three_way does. Past the bound,
// compare_iteratively<true>() takes over and must classify the pair the
// same way, or the result of operator<=> - and of <, which C++20 derives
// from it - depends on how deeply the values are nested.
const json a = json::array({json::binary({1}, 1), 1});
const json b = json::array({json::binary({1}, 2), 2});

// the root inconsistency: unequal, yet <=>-equivalent
CHECK_FALSE(a[0] == b[0]);
CHECK((a[0] <=> b[0]) == std::partial_ordering::equivalent); // *NOPAD*

const auto deep = [](const json & j, const std::size_t depth)
{
json result = j;
for (std::size_t i = 0; i < depth; ++i)
{
result = json::array({std::move(result)});
}
return result;
};

// 127 levels stay within nesting_depth_limit() (128); 128 and 200 do not,
// and must still agree with the levels that do
for (const std::size_t depth : std::vector<std::size_t> {0, 127, 128, 200})
{
CAPTURE(depth);
const json x = deep(a, depth);
const json y = deep(b, depth);
CHECK((x <=> y) == std::partial_ordering::less); // *NOPAD*
CHECK((y <=> x) == std::partial_ordering::greater); // *NOPAD*
CHECK(x < y);
CHECK(y > x);
CHECK_FALSE(y < x);
}
}
#endif
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