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Author SHA1 Message Date
Niels Lohmann 49ea918969 Unflatten in time and memory linear in the pointer depth
#5443 made unflatten() decide between arrays and objects independently
of the iteration order by collecting the pointer prefixes that have a
reference token 0 below them in a std::set<std::vector<string_t>>.
Every such prefix was stored as a copy of all its reference tokens, and
get_and_create() compared whole prefix vectors at every step, so
unflattening a pointer of depth d took time and memory quadratic in d:
a 10,000-level array pointer took 18 s and 1.3 GB, a 100,000-level one
did not finish.

The prefixes are now numbered nodes of a tree, so each is stored once
and get_and_create() follows the tree token by token. The result is
unchanged, including its independence of the iteration order.

Signed-off-by: Niels Lohmann <mail@nlohmann.me>
2026-10-09 09:49:05 +02:00
Niels Lohmann 3f6a037b9c Flatten deeply nested values without recursing per nesting level
json_pointer::flatten() called itself once per nesting level, so
flatten() on a value nested deeply enough exhausted the call stack.
#5547 and #5548 fixed merge_patch() and diff() from #5393, but flatten()
was left out.

flatten() now walks the value with an explicit stack and keeps the path
in one buffer that grows and shrinks with it. It has a single code path
and no depth limit: the old version built a new path string per child,
so the iterative one is no slower on shallow values and much faster on
deep ones. The output, including the order of an ordered_json result,
is unchanged.

Signed-off-by: Niels Lohmann <mail@nlohmann.me>
2026-10-09 09:16:55 +02:00
Niels Lohmann d33068da73 Address review comments on the API stability docs and a test comment (#5784)
* Address review comments on #5775 and #5779

Allow new defaulted parameters and new default arguments in the API
stability rules, mention the macro opt-in, and drop the redundant
recompile advice. Describe test-diagnostics-optimized as the regression
test for the fixed #5742.

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

* 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>

---------

Signed-off-by: Niels Lohmann <mail@nlohmann.me>
2026-10-08 17:44:34 +02:00
Niels Lohmann d8dfc0d0f9 Fix unused-result warnings in the contains and parse_error examples (#5788)
contains(json_pointer) is marked JSON_HEDLEY_WARN_UNUSED_RESULT since #5477,
and parse() has been for longer. The contains example ignored the result in
two try blocks waiting for a parse_error that contains() never throws, so
they printed nothing; print the result for those pointers instead.

Signed-off-by: Niels Lohmann <mail@nlohmann.me>
2026-10-08 16:21:59 +02:00
8 changed files with 450 additions and 160 deletions

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+23 -9
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@@ -36,13 +36,26 @@ work items are tracked in the [GitHub milestones](https://github.com/nlohmann/js
## API stability ## API stability
Releases follow [semantic versioning](https://semver.org): a minor or patch release of version 3.x does not break code Releases follow [semantic versioning](https://semver.org): a minor or patch release of version 3.x does not break code
that uses the public API. In particular, a 3.x release does not: that uses the public API, unless that code opts in to a change with a macro as described [below](#version-40). In
particular, a 3.x release does not:
- change the signature of a function (its parameter types, return type, number of parameters, or the const-ness of a - make breaking changes to the signature of a function: the types or order of its existing parameters, its return type,
member function); its `noexcept` or `constexpr` specifier, or the const-ness of a member function. New parameters may be added if they
- remove or rename a function or class; have a default value;
- remove or rename a function or class, or change the template parameters of a public class template;
- change which exceptions a function throws, or the [exception ids](../home/exceptions.md); - change which exceptions a function throws, or the [exception ids](../home/exceptions.md);
- change access specifiers or default arguments. - change access specifiers, or change or remove existing default arguments. New default arguments may be added;
- change the JSON type that a valid input parses to, or the text that `dump()` produces for a valid value;
- accept input that was rejected before, or reject input that was accepted before;
- change the order in which the keys of an object are iterated. The default type sorts keys, and
[`ordered_json`](../api/ordered_json.md) keeps insertion order;
- change when iterators, pointers, or references are invalidated, or the state of a moved-from `basic_json`;
- add or remove implicit conversions from `basic_json`;
- change how `to_json` and `from_json` functions are found, or the behavior of
[`adl_serializer`](../api/adl_serializer/index.md);
- add pure virtual functions to the [`json_sax`](../api/json_sax/index.md) interface;
- remove, rename, renumber, or add enumerators of `value_t`;
- remove or rename a documented macro, CMake option, CMake target, or header, or change what a documented macro does.
Exceptions to these rules, for instance when fixing a bug requires changing the exception a function throws, are Exceptions to these rules, for instance when fixing a bug requires changing the exception a function throws, are
documented in the [release notes](../home/releases.md). documented in the [release notes](../home/releases.md).
@@ -51,13 +64,14 @@ The following are **not** part of the public API and may change in any release,
- The text of exception messages returned by `what()`. Use the [exception id](../home/exceptions.md) to tell errors - The text of exception messages returned by `what()`. Use the [exception id](../home/exceptions.md) to tell errors
apart. apart.
- The ABI, including `sizeof(basic_json)` and the memory layout of its values. Recompile your code when you upgrade the - The ABI, including `sizeof(basic_json)` and the memory layout of its values. The
library. The [versioned inline namespace](../features/namespace.md) turns mixing versions into a link error. [versioned inline namespace](../features/namespace.md) turns mixing versions into a link error.
- The hash values returned by `std::hash` for `basic_json`. Numbers that compare equal still hash equally.
- Everything in namespace `nlohmann::detail`, and macros and type traits that are not documented in the - Everything in namespace `nlohmann::detail`, and macros and type traits that are not documented in the
[API reference](../api/basic_json/index.md). [API reference](../api/basic_json/index.md).
Changes that would break the public API are only added behind a macro whose default keeps the 3.x behavior, see Breaking changes are only added behind a macro whose default keeps the 3.x behavior. See [Version 4.0](#version-40) and
[Version 4.0](#version-40). the [macro overview](../features/macros.md).
## Version 4.0 ## Version 4.0
@@ -19,25 +19,9 @@ int main()
<< j.contains("/array/1"_json_pointer) << '\n' << j.contains("/array/1"_json_pointer) << '\n'
<< j.contains("/array/-"_json_pointer) << '\n' << j.contains("/array/-"_json_pointer) << '\n'
<< j.contains("/array/4"_json_pointer) << '\n' << j.contains("/array/4"_json_pointer) << '\n'
<< j.contains("/baz"_json_pointer) << std::endl; << j.contains("/baz"_json_pointer) << '\n'
// an array index with a leading '0' is not found
try << j.contains("/array/01"_json_pointer) << '\n'
{ // an array index that is not a number is not found
// try to use an array index with leading '0' << j.contains("/array/one"_json_pointer) << std::endl;
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';
}
} }
@@ -5,3 +5,5 @@ true
false false
false false
false false
false
false
+1 -1
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@@ -8,7 +8,7 @@ int main()
try try
{ {
// parsing input with a syntax error // parsing input with a syntax error
json::parse("[1,2,3,]"); json j = json::parse("[1,2,3,]");
} }
catch (const json::parse_error& e) catch (const json::parse_error& e)
{ {
+153 -64
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@@ -16,8 +16,8 @@
#include <iosfwd> // ostream #include <iosfwd> // ostream
#endif // JSON_NO_IO #endif // JSON_NO_IO
#include <limits> // max #include <limits> // max
#include <map> // map
#include <numeric> // accumulate #include <numeric> // accumulate
#include <set> // set
#include <string> // string #include <string> // string
#include <utility> // move #include <utility> // move
#include <vector> // vector #include <vector> // vector
@@ -359,33 +359,45 @@ class json_pointer
private: private:
/*! /*!
@brief the reference token sequences that denote arrays @brief the pointer prefixes of a flattened object, and which of them denote arrays
@ref unflatten collects the pointer prefixes that have a reference token 0 @ref unflatten collects the pointer prefixes that have a reference token 0
among their children; @ref get_and_create creates arrays exactly below among their children; @ref get_and_create creates arrays exactly below
those prefixes and objects everywhere else. Deciding this up front keeps those prefixes and objects everywhere else. Deciding this up front keeps
the result independent of the order in which the flattened object is the result independent of the order in which the flattened object is
iterated, which is unspecified for some object types. iterated, which is unspecified for some object types.
The prefixes form a tree and are numbered, so each of them is stored only
once (as a node) rather than as a copy of all of its reference tokens.
*/ */
using array_parents_t = std::set<std::vector<string_t>>; struct prefix_tree
{
// children[id] maps a reference token to the number of the prefix
// extended by that token; number 0 is the empty prefix
std::vector<std::map<string_t, std::size_t>> children;
// is_array[id] is true iff some flattened key has the reference token
// 0 directly below the prefix with number id
std::vector<bool> is_array;
};
/*! /*!
@brief create and return a reference to the pointed to value @brief create and return a reference to the pointed to value
Complexity: Linear in the number of reference tokens. Complexity: Linear in the number of reference tokens (times the logarithm
of the number of siblings for the prefix lookup).
@throw parse_error.106 if an array index begins with '0' @throw parse_error.106 if an array index begins with '0'
@throw parse_error.109 if array index is not a number @throw parse_error.109 if array index is not a number
@throw type_error.313 if value cannot be unflattened @throw type_error.313 if value cannot be unflattened
*/ */
template<typename BasicJsonType> template<typename BasicJsonType>
BasicJsonType& get_and_create(BasicJsonType& j, const array_parents_t& array_parents) const BasicJsonType& get_and_create(BasicJsonType& j, const prefix_tree& tree) const
{ {
auto* result = &j; auto* result = &j;
// the reference tokens that have been consumed so far; used to look up // the number of the prefix consumed so far; used to look up whether
// whether the value to be created below is an array or an object // the value to be created below is an array or an object
std::vector<string_t> prefix; std::size_t id = 0;
// in case no reference tokens exist, return a reference to the JSON value // in case no reference tokens exist, return a reference to the JSON value
// j which will be overwritten by a primitive value // j which will be overwritten by a primitive value
@@ -395,7 +407,7 @@ class json_pointer
{ {
case detail::value_t::null: case detail::value_t::null:
{ {
if (array_parents.find(prefix) != array_parents.end()) if (tree.is_array[id])
{ {
// some reference token below this position is 0, so the // some reference token below this position is 0, so the
// value is an array // value is an array
@@ -440,7 +452,9 @@ class json_pointer
JSON_THROW(detail::type_error::create(313, "invalid value to unflatten", &j)); JSON_THROW(detail::type_error::create(313, "invalid value to unflatten", &j));
} }
prefix.push_back(reference_token); const auto it = tree.children[id].find(reference_token);
JSON_ASSERT(it != tree.children[id].end());
id = it->second;
} }
return *result; return *result;
@@ -878,64 +892,127 @@ class json_pointer
@param[in,out] result the result object to insert values to @param[in,out] result the result object to insert values to
@note Empty objects or arrays are flattened to `null`. @note Empty objects or arrays are flattened to `null`.
The value is walked with an explicit stack rather than the call stack, so
arbitrarily deeply nested values can be flattened.
@sa https://github.com/nlohmann/json/issues/5393
*/ */
template<typename BasicJsonType> template<typename BasicJsonType>
static void flatten(const string_t& reference_string, static void flatten(const string_t& reference_string,
const BasicJsonType& value, const BasicJsonType& value,
BasicJsonType& result) BasicJsonType& result)
{ {
switch (value.type()) using object_const_iterator = typename BasicJsonType::object_t::const_iterator;
// an array or object being walked: the container, the array index or
// object iterator of the next child, and the length of the path of the
// container itself
struct frame
{ {
case detail::value_t::array: const BasicJsonType* container;
{ std::size_t index;
if (value.m_data.m_value.array->empty()) object_const_iterator member;
{ std::size_t path_length;
// flatten empty array as null };
result[reference_string] = nullptr;
}
else
{
// iterate array and use index as a reference string
for (std::size_t i = 0; i < value.m_data.m_value.array->size(); ++i)
{
flatten(detail::concat<string_t>(reference_string, '/', std::to_string(i)),
value.m_data.m_value.array->operator[](i), result);
}
}
break;
}
case detail::value_t::object: // The containers being flattened are kept on an explicit stack, and
{ // every child is flattened completely before the next one, so the
if (value.m_data.m_value.object->empty()) // entries come out in the same order as with a recursive walk. The
{ // path of the value being flattened is kept in one buffer that grows
// flatten empty object as null // and shrinks with the stack, rather than in a new string per level.
result[reference_string] = nullptr; std::vector<frame> stack;
} string_t path = reference_string;
else
{
// iterate object and use keys as reference string
for (const auto& element : *value.m_data.m_value.object)
{
flatten(detail::concat<string_t>(reference_string, '/', detail::escape(element.first)), element.second, result);
}
}
break;
}
case detail::value_t::null: // flatten `v`, whose path is `path`: primitives and empty containers
case detail::value_t::string: // are added to the result right away; other containers get a frame
case detail::value_t::boolean: const auto enter = [&stack, &path, &result](const BasicJsonType & v)
case detail::value_t::number_integer: {
case detail::value_t::number_unsigned: switch (v.type())
case detail::value_t::number_float:
case detail::value_t::binary:
case detail::value_t::discarded:
default:
{ {
// add a primitive value with its reference string case detail::value_t::array:
result[reference_string] = value; {
break; if (v.m_data.m_value.array->empty())
{
// flatten empty array as null
result[path] = nullptr;
}
else
{
stack.push_back({&v, 0, object_const_iterator(), path.size()});
}
return;
}
case detail::value_t::object:
{
if (v.m_data.m_value.object->empty())
{
// flatten empty object as null
result[path] = nullptr;
}
else
{
stack.push_back({&v, 0, v.m_data.m_value.object->begin(), path.size()});
}
return;
}
case detail::value_t::null:
case detail::value_t::string:
case detail::value_t::boolean:
case detail::value_t::number_integer:
case detail::value_t::number_unsigned:
case detail::value_t::number_float:
case detail::value_t::binary:
case detail::value_t::discarded:
default:
{
// add a primitive value with its reference string
result[path] = v;
return;
}
}
};
enter(value);
while (!stack.empty())
{
// the frame is changed through stack.back(): enter() may push a
// frame, which would invalidate a reference to it
const BasicJsonType* const container = stack.back().container;
// drop the path of the previous child
path.resize(stack.back().path_length);
if (container->is_array())
{
const auto& array = *container->m_data.m_value.array;
const std::size_t i = stack.back().index;
if (i == array.size())
{
stack.pop_back();
continue;
}
// iterate array and use index as a reference string
++stack.back().index;
detail::concat_into(path, '/', detail::to_string<string_t>(i));
enter(array[i]);
}
else
{
const object_const_iterator it = stack.back().member;
if (it == container->m_data.m_value.object->end())
{
stack.pop_back();
continue;
}
// iterate object and use keys as reference string
++stack.back().member;
detail::concat_into(path, '/', detail::escape(it->first));
enter(it->second);
} }
} }
} }
@@ -963,19 +1040,31 @@ class json_pointer
// collect the pointer prefixes that have a reference token 0 among // collect the pointer prefixes that have a reference token 0 among
// their children; the values below them are arrays, all others are // their children; the values below them are arrays, all others are
// objects (see array_parents_t) // objects (see prefix_tree)
array_parents_t array_parents; prefix_tree tree;
tree.children.emplace_back();
tree.is_array.push_back(false);
for (const auto& element : *value.m_data.m_value.object) for (const auto& element : *value.m_data.m_value.object)
{ {
json_pointer ptr(element.first); json_pointer ptr(element.first);
std::vector<string_t> prefix; std::size_t id = 0;
for (auto& reference_token : ptr.reference_tokens) for (auto& reference_token : ptr.reference_tokens)
{ {
if (reference_token == "0") if (reference_token == "0")
{ {
array_parents.insert(prefix); tree.is_array[id] = true;
}
// do not keep a reference into tree.children across the
// push_back below, as it may reallocate
const std::size_t next = tree.children.size();
const auto inserted = tree.children[id].emplace(std::move(reference_token), next);
id = inserted.first->second;
if (inserted.second)
{
tree.children.emplace_back();
tree.is_array.push_back(false);
} }
prefix.push_back(std::move(reference_token));
} }
} }
@@ -991,7 +1080,7 @@ class json_pointer
// that if the JSON pointer is "" (i.e., points to the whole value), // that if the JSON pointer is "" (i.e., points to the whole value),
// function get_and_create returns a reference to the result itself. // function get_and_create returns a reference to the result itself.
// An assignment will then create a primitive value. // An assignment will then create a primitive value.
json_pointer(element.first).get_and_create(result, array_parents) = element.second; json_pointer(element.first).get_and_create(result, tree) = element.second;
} }
return result; return result;
+153 -64
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@@ -19928,8 +19928,8 @@ NLOHMANN_JSON_NAMESPACE_END
#include <iosfwd> // ostream #include <iosfwd> // ostream
#endif // JSON_NO_IO #endif // JSON_NO_IO
#include <limits> // max #include <limits> // max
#include <map> // map
#include <numeric> // accumulate #include <numeric> // accumulate
#include <set> // set
#include <string> // string #include <string> // string
#include <utility> // move #include <utility> // move
#include <vector> // vector #include <vector> // vector
@@ -20277,33 +20277,45 @@ class json_pointer
private: private:
/*! /*!
@brief the reference token sequences that denote arrays @brief the pointer prefixes of a flattened object, and which of them denote arrays
@ref unflatten collects the pointer prefixes that have a reference token 0 @ref unflatten collects the pointer prefixes that have a reference token 0
among their children; @ref get_and_create creates arrays exactly below among their children; @ref get_and_create creates arrays exactly below
those prefixes and objects everywhere else. Deciding this up front keeps those prefixes and objects everywhere else. Deciding this up front keeps
the result independent of the order in which the flattened object is the result independent of the order in which the flattened object is
iterated, which is unspecified for some object types. iterated, which is unspecified for some object types.
The prefixes form a tree and are numbered, so each of them is stored only
once (as a node) rather than as a copy of all of its reference tokens.
*/ */
using array_parents_t = std::set<std::vector<string_t>>; struct prefix_tree
{
// children[id] maps a reference token to the number of the prefix
// extended by that token; number 0 is the empty prefix
std::vector<std::map<string_t, std::size_t>> children;
// is_array[id] is true iff some flattened key has the reference token
// 0 directly below the prefix with number id
std::vector<bool> is_array;
};
/*! /*!
@brief create and return a reference to the pointed to value @brief create and return a reference to the pointed to value
Complexity: Linear in the number of reference tokens. Complexity: Linear in the number of reference tokens (times the logarithm
of the number of siblings for the prefix lookup).
@throw parse_error.106 if an array index begins with '0' @throw parse_error.106 if an array index begins with '0'
@throw parse_error.109 if array index is not a number @throw parse_error.109 if array index is not a number
@throw type_error.313 if value cannot be unflattened @throw type_error.313 if value cannot be unflattened
*/ */
template<typename BasicJsonType> template<typename BasicJsonType>
BasicJsonType& get_and_create(BasicJsonType& j, const array_parents_t& array_parents) const BasicJsonType& get_and_create(BasicJsonType& j, const prefix_tree& tree) const
{ {
auto* result = &j; auto* result = &j;
// the reference tokens that have been consumed so far; used to look up // the number of the prefix consumed so far; used to look up whether
// whether the value to be created below is an array or an object // the value to be created below is an array or an object
std::vector<string_t> prefix; std::size_t id = 0;
// in case no reference tokens exist, return a reference to the JSON value // in case no reference tokens exist, return a reference to the JSON value
// j which will be overwritten by a primitive value // j which will be overwritten by a primitive value
@@ -20313,7 +20325,7 @@ class json_pointer
{ {
case detail::value_t::null: case detail::value_t::null:
{ {
if (array_parents.find(prefix) != array_parents.end()) if (tree.is_array[id])
{ {
// some reference token below this position is 0, so the // some reference token below this position is 0, so the
// value is an array // value is an array
@@ -20358,7 +20370,9 @@ class json_pointer
JSON_THROW(detail::type_error::create(313, "invalid value to unflatten", &j)); JSON_THROW(detail::type_error::create(313, "invalid value to unflatten", &j));
} }
prefix.push_back(reference_token); const auto it = tree.children[id].find(reference_token);
JSON_ASSERT(it != tree.children[id].end());
id = it->second;
} }
return *result; return *result;
@@ -20796,64 +20810,127 @@ class json_pointer
@param[in,out] result the result object to insert values to @param[in,out] result the result object to insert values to
@note Empty objects or arrays are flattened to `null`. @note Empty objects or arrays are flattened to `null`.
The value is walked with an explicit stack rather than the call stack, so
arbitrarily deeply nested values can be flattened.
@sa https://github.com/nlohmann/json/issues/5393
*/ */
template<typename BasicJsonType> template<typename BasicJsonType>
static void flatten(const string_t& reference_string, static void flatten(const string_t& reference_string,
const BasicJsonType& value, const BasicJsonType& value,
BasicJsonType& result) BasicJsonType& result)
{ {
switch (value.type()) using object_const_iterator = typename BasicJsonType::object_t::const_iterator;
// an array or object being walked: the container, the array index or
// object iterator of the next child, and the length of the path of the
// container itself
struct frame
{ {
case detail::value_t::array: const BasicJsonType* container;
{ std::size_t index;
if (value.m_data.m_value.array->empty()) object_const_iterator member;
{ std::size_t path_length;
// flatten empty array as null };
result[reference_string] = nullptr;
}
else
{
// iterate array and use index as a reference string
for (std::size_t i = 0; i < value.m_data.m_value.array->size(); ++i)
{
flatten(detail::concat<string_t>(reference_string, '/', std::to_string(i)),
value.m_data.m_value.array->operator[](i), result);
}
}
break;
}
case detail::value_t::object: // The containers being flattened are kept on an explicit stack, and
{ // every child is flattened completely before the next one, so the
if (value.m_data.m_value.object->empty()) // entries come out in the same order as with a recursive walk. The
{ // path of the value being flattened is kept in one buffer that grows
// flatten empty object as null // and shrinks with the stack, rather than in a new string per level.
result[reference_string] = nullptr; std::vector<frame> stack;
} string_t path = reference_string;
else
{
// iterate object and use keys as reference string
for (const auto& element : *value.m_data.m_value.object)
{
flatten(detail::concat<string_t>(reference_string, '/', detail::escape(element.first)), element.second, result);
}
}
break;
}
case detail::value_t::null: // flatten `v`, whose path is `path`: primitives and empty containers
case detail::value_t::string: // are added to the result right away; other containers get a frame
case detail::value_t::boolean: const auto enter = [&stack, &path, &result](const BasicJsonType & v)
case detail::value_t::number_integer: {
case detail::value_t::number_unsigned: switch (v.type())
case detail::value_t::number_float:
case detail::value_t::binary:
case detail::value_t::discarded:
default:
{ {
// add a primitive value with its reference string case detail::value_t::array:
result[reference_string] = value; {
break; if (v.m_data.m_value.array->empty())
{
// flatten empty array as null
result[path] = nullptr;
}
else
{
stack.push_back({&v, 0, object_const_iterator(), path.size()});
}
return;
}
case detail::value_t::object:
{
if (v.m_data.m_value.object->empty())
{
// flatten empty object as null
result[path] = nullptr;
}
else
{
stack.push_back({&v, 0, v.m_data.m_value.object->begin(), path.size()});
}
return;
}
case detail::value_t::null:
case detail::value_t::string:
case detail::value_t::boolean:
case detail::value_t::number_integer:
case detail::value_t::number_unsigned:
case detail::value_t::number_float:
case detail::value_t::binary:
case detail::value_t::discarded:
default:
{
// add a primitive value with its reference string
result[path] = v;
return;
}
}
};
enter(value);
while (!stack.empty())
{
// the frame is changed through stack.back(): enter() may push a
// frame, which would invalidate a reference to it
const BasicJsonType* const container = stack.back().container;
// drop the path of the previous child
path.resize(stack.back().path_length);
if (container->is_array())
{
const auto& array = *container->m_data.m_value.array;
const std::size_t i = stack.back().index;
if (i == array.size())
{
stack.pop_back();
continue;
}
// iterate array and use index as a reference string
++stack.back().index;
detail::concat_into(path, '/', detail::to_string<string_t>(i));
enter(array[i]);
}
else
{
const object_const_iterator it = stack.back().member;
if (it == container->m_data.m_value.object->end())
{
stack.pop_back();
continue;
}
// iterate object and use keys as reference string
++stack.back().member;
detail::concat_into(path, '/', detail::escape(it->first));
enter(it->second);
} }
} }
} }
@@ -20881,19 +20958,31 @@ class json_pointer
// collect the pointer prefixes that have a reference token 0 among // collect the pointer prefixes that have a reference token 0 among
// their children; the values below them are arrays, all others are // their children; the values below them are arrays, all others are
// objects (see array_parents_t) // objects (see prefix_tree)
array_parents_t array_parents; prefix_tree tree;
tree.children.emplace_back();
tree.is_array.push_back(false);
for (const auto& element : *value.m_data.m_value.object) for (const auto& element : *value.m_data.m_value.object)
{ {
json_pointer ptr(element.first); json_pointer ptr(element.first);
std::vector<string_t> prefix; std::size_t id = 0;
for (auto& reference_token : ptr.reference_tokens) for (auto& reference_token : ptr.reference_tokens)
{ {
if (reference_token == "0") if (reference_token == "0")
{ {
array_parents.insert(prefix); tree.is_array[id] = true;
}
// do not keep a reference into tree.children across the
// push_back below, as it may reallocate
const std::size_t next = tree.children.size();
const auto inserted = tree.children[id].emplace(std::move(reference_token), next);
id = inserted.first->second;
if (inserted.second)
{
tree.children.emplace_back();
tree.is_array.push_back(false);
} }
prefix.push_back(std::move(reference_token));
} }
} }
@@ -20909,7 +20998,7 @@ class json_pointer
// that if the JSON pointer is "" (i.e., points to the whole value), // that if the JSON pointer is "" (i.e., points to the whole value),
// function get_and_create returns a reference to the result itself. // function get_and_create returns a reference to the result itself.
// An assignment will then create a primitive value. // An assignment will then create a primitive value.
json_pointer(element.first).get_and_create(result, array_parents) = element.second; json_pointer(element.first).get_and_create(result, tree) = element.second;
} }
return result; return result;
+2 -1
View File
@@ -138,7 +138,8 @@ json_test_set_test_options(test-disabled_exceptions
# only the #972 regression test needs thirdparty/fifo_map on its include path # 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) json_test_set_test_options(test-regression1 LINK_LIBRARIES fifo_map_include)
# GCC's false -Warray-bounds error with JSON_DIAGNOSTICS only shows up when optimizing (#5742). # 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.
# -O3 makes the optimizer-driven warnings of the ci_test_gcc flag set (-Winline, # -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 # -Wsuggest-attribute=...) fire on the library's inline functions; they are not
# what this test checks, so turn them off for it. # what this test checks, so turn them off for it.
+111
View File
@@ -939,3 +939,114 @@ TEST_CASE("unescaping keeps a '~' that does not start an escape sequence")
nlohmann::detail::unescape(s); nlohmann::detail::unescape(s);
CHECK(s == "~/~"); CHECK(s == "~/~");
} }
TEST_CASE("flatten of structured values")
{
SECTION("values nested too deeply for the call stack (#5393)")
{
// flatten() used to recurse once per nesting level
const std::size_t depth = 100000;
for (const bool objects :
{
false, true
})
{
CAPTURE(objects)
std::string text;
std::string path;
for (std::size_t i = 0; i < depth; ++i)
{
text += objects ? "{\"a\":" : "[";
path += objects ? "/a" : "/0";
}
text += "0";
text += std::string(depth, objects ? '}' : ']');
const auto value = json::parse(text);
const auto flat = value.flatten();
REQUIRE(flat.size() == 1);
REQUIRE(flat.begin().key().size() == path.size());
CHECK(flat.begin().key() == path);
CHECK(flat.begin().value() == 0);
// unflatten() is linear in the depth, so the value roundtrips
CHECK(flat.unflatten() == value);
}
}
SECTION("unflatten of a deeply nested pointer")
{
const std::size_t depth = 100000;
for (const bool objects :
{
false, true
})
{
CAPTURE(objects)
std::string path;
for (std::size_t i = 0; i < depth; ++i)
{
path += objects ? "/a" : "/0";
}
json flat = json::object();
flat[path] = 1;
const json value = flat.unflatten();
// walk down iteratively
std::size_t levels = 0;
const json* current = &value;
while (objects ? current->is_object() : current->is_array())
{
REQUIRE(current->size() == 1);
current = objects ? &current->at("a") : &current->at(0);
++levels;
}
CHECK(levels == depth);
CHECK(*current == 1);
}
}
SECTION("unflatten does not depend on the iteration order")
{
// the "0" key comes after its sibling in iteration order
const nlohmann::ordered_json flat_array = nlohmann::ordered_json::parse(R"({"/a/1": 2, "/a/0": 1})");
CHECK(flat_array.unflatten() == nlohmann::ordered_json::parse(R"({"a": [1, 2]})"));
const nlohmann::ordered_json flat_object = nlohmann::ordered_json::parse(R"({"/b/1": 2})");
CHECK(flat_object.unflatten() == nlohmann::ordered_json::parse(R"({"b": {"1": 2}})"));
}
SECTION("objects and arrays interleaved")
{
const json value =
{
{"a", {1, {{"b", json::array()}, {"c", json::object()}}, json::array({{{"x~/", {true, nullptr}}}})}},
{"a/b", {{"~", 1}}},
{"z", "s"}
};
const json expected =
{
{"/a/0", 1},
{"/a/1/b", nullptr},
{"/a/1/c", nullptr},
{"/a/2/0/x~0~1/0", true},
{"/a/2/0/x~0~1/1", nullptr},
{"/a~1b/~0", 1},
{"/z", "s"}
};
CHECK(value.flatten() == expected);
}
SECTION("order of the entries of an ordered_json")
{
const auto value = nlohmann::ordered_json::parse(
R"({"z":"s","a/b":{"~":1,"k":[]},"a":[1,{"c":{},"b":[]},[{"x~/":[true,null],"w":2}]]})");
const auto flat = value.flatten();
CHECK(flat.dump() ==
R"({"/z":"s","/a~1b/~0":1,"/a~1b/k":null,"/a/0":1,"/a/1/c":null,"/a/1/b":null,"/a/2/0/x~0~1/0":true,"/a/2/0/x~0~1/1":null,"/a/2/0/w":2})");
}
}