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Author SHA1 Message Date
Niels Lohmann 99ae1d0d03 Add JSON_DELETE_DEPRECATED_FUNCTIONS to delete the deprecated functions
Defining JSON_DELETE_DEPRECATED_FUNCTIONS to 1 (or the CMake option
JSON_DeleteDeprecatedFunctions) declares every deprecated function as
deleted instead of deprecated, so that code that is not ready for 4.0.0
no longer compiles. A deleted function still takes part in overload
resolution, so from_*(ptr, len) cannot silently bind len to the strict
parameter of from_*(InputType&&, bool); the roadmap now plans to keep
these overloads deleted in 4.0.0 instead of removing them.

The legacy discarded-value comparison is left to its own macro.

Also update the 4.0 roadmap: add JSON_DISABLE_TUPLE_REFERENCE_CONVERSION
and JSON_DELETE_DEPRECATED_FUNCTIONS to the macro table, add the
from_bjdata/from_bon8 (ptr, len) overloads to the deprecated functions,
document the macro in the migration guide, and fix the docs style check
findings (example titles, missing docset entry for JSON_STRICT_BINARY_UTF8).

Signed-off-by: Niels Lohmann <mail@nlohmann.me>
2026-10-04 12:54:07 +02:00
Niels Lohmann 4f3f26a1d4 Merge branch 'develop' into claude/from-bon8-bjdata-ptr-len-5648
Signed-off-by: Niels Lohmann <mail@nlohmann.me>
2026-10-04 12:29:05 +02:00
Niels Lohmann 0c4462676d Document options to reduce compile times (#5611)
* Document options to reduce compile times

Add an integration page that collects the ways to reduce compile times
with measurements: json_fwd.hpp in headers, JSON_NO_AUTOMATIC_UDLS,
explicit instantiation with extern template, modules, and precompiled
headers, and notes that JSON_NO_IO and JSON_USE_GLOBAL_UDLS have no
measurable effect.

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

* Include only json_literals.hpp in the JSON_NO_AUTOMATIC_UDLS examples

json_literals.hpp includes json.hpp itself, so including both is redundant.

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

---------

Signed-off-by: Niels Lohmann <mail@nlohmann.me>
2026-10-04 12:23:53 +02:00
Niels Lohmann 1e6257bf49 Add deprecated from_bon8/from_bjdata(ptr, len) overloads
from_bon8(ptr, len) and from_bjdata(ptr, len) had no overload for a
pointer and a length, unlike from_cbor/from_msgpack/from_ubjson/
from_bson. The call instead bound to from_*(InputType&&, bool strict),
which read ptr as a NUL-terminated C string via strlen and silently
converted len to the strict flag. Data containing a 0x00 byte was cut
off there; data without one was read past the end of the buffer.

Add a deprecated (ptr, len, strict, allow_exceptions) overload for
each function that forwards to (ptr, ptr + len, ...), matching the
existing deprecated overloads of the other four binary readers. Since
neither function ever had this overload, the deprecation is declared
as of version 3.13.0, the next unreleased version, rather than the
version each function was originally added in.

Fixes #5648.

Signed-off-by: Niels Lohmann <mail@nlohmann.me>
2026-09-29 23:26:44 +02:00
64 changed files with 1427 additions and 10245 deletions
+1 -1
View File
@@ -107,7 +107,7 @@ jobs:
container: ubuntu:24.04
strategy:
matrix:
target: [ci_cmake_flags, ci_test_diagnostics, ci_test_diagnostic_positions, ci_test_noexceptions, ci_test_noimplicitconversions, ci_test_legacycomparison, ci_test_noglobaludls, ci_test_disableenumserialization, ci_test_disabletuplereferenceconversion, ci_test_skiplibraryversioncheck, ci_test_simdutf, ci_test_strict_nul_handling, ci_test_no_thread_local]
target: [ci_cmake_flags, ci_test_diagnostics, ci_test_diagnostic_positions, ci_test_noexceptions, ci_test_noimplicitconversions, ci_test_legacycomparison, ci_test_noglobaludls, ci_test_disableenumserialization, ci_test_disabletuplereferenceconversion, ci_test_skiplibraryversioncheck, ci_test_simdutf, ci_test_strict_nul_handling, ci_test_delete_deprecated_functions, ci_test_no_thread_local]
steps:
- name: Install build-essential
run: apt-get update ; apt-get install -y build-essential unzip wget git
-1
View File
@@ -57,7 +57,6 @@ cc_library(
"include/nlohmann/detail/meta/type_traits.hpp",
"include/nlohmann/detail/meta/void_t.hpp",
"include/nlohmann/detail/output/binary_writer.hpp",
"include/nlohmann/detail/output/error_handler.hpp",
"include/nlohmann/detail/output/output_adapters.hpp",
"include/nlohmann/detail/output/serializer.hpp",
"include/nlohmann/detail/recursion_depth_limit.hpp",
+6
View File
@@ -62,6 +62,7 @@ option(JSON_MultipleHeaders "Use non-amalgamated version of the l
option(JSON_SystemInclude "Include as system headers (skip for clang-tidy)." OFF)
option(JSON_StrictNulHandling "Build with strict NUL-byte handling enabled." OFF)
option(JSON_StrictBinaryUTF8 "Build with UTF-8 checks in the CBOR, UBJSON, BJData, and BSON writers enabled." OFF)
option(JSON_DeleteDeprecatedFunctions "Delete the deprecated functions instead of only deprecating them." OFF)
if (JSON_CI)
include(ci)
@@ -123,6 +124,10 @@ if (JSON_StrictBinaryUTF8)
message(STATUS "Strict UTF-8 checks in binary writers enabled (JSON_STRICT_BINARY_UTF8=1)")
endif()
if (JSON_DeleteDeprecatedFunctions)
message(STATUS "Deprecated functions are deleted (JSON_DELETE_DEPRECATED_FUNCTIONS=1)")
endif()
if (JSON_Diagnostic_Positions)
message(STATUS "Diagnostic positions enabled (JSON_DIAGNOSTIC_POSITIONS=1)")
endif()
@@ -159,6 +164,7 @@ target_compile_definitions(
$<$<BOOL:${JSON_LegacyDiscardedValueComparison}>:JSON_USE_LEGACY_DISCARDED_VALUE_COMPARISON=1>
$<$<BOOL:${JSON_StrictNulHandling}>:JSON_STRICT_NUL_HANDLING=1>
$<$<BOOL:${JSON_StrictBinaryUTF8}>:JSON_STRICT_BINARY_UTF8=1>
$<$<BOOL:${JSON_DeleteDeprecatedFunctions}>:JSON_DELETE_DEPRECATED_FUNCTIONS=1>
)
target_include_directories(
+2 -2
View File
@@ -494,7 +494,7 @@ bool key(string_t& val);
bool parse_error(std::size_t position, const std::string& last_token, const detail::exception& ex);
```
The return value of each function determines whether parsing should proceed. For `parse_error`, returning `true` [recovers from the error](https://json.nlohmann.me/features/parsing/error_recovery/): the parser repairs the input and continues.
The return value of each function determines whether parsing should proceed.
To implement your own SAX handler, proceed as follows:
@@ -502,7 +502,7 @@ To implement your own SAX handler, proceed as follows:
2. Create an object of your SAX interface class, e.g. `my_sax`.
3. Call `bool json::sax_parse(input, &my_sax)`; where the first parameter can be any input like a string or an input stream and the second parameter is a pointer to your SAX interface.
Note the `sax_parse` function only returns a `bool` indicating whether the input was parsed without errors and no SAX event returned `false`. It does not return a `json` value - it is up to you to decide what to do with the SAX events. Furthermore, no exceptions are thrown in case of a parse error -- it is up to you what to do with the exception object passed to your `parse_error` implementation. Internally, the SAX interface is used for the DOM parser (class `json_sax_dom_parser`) as well as the acceptor (`json_sax_acceptor`), see file [`json_sax.hpp`](https://github.com/nlohmann/json/blob/develop/include/nlohmann/detail/input/json_sax.hpp).
Note the `sax_parse` function only returns a `bool` indicating the result of the last executed SAX event. It does not return a `json` value - it is up to you to decide what to do with the SAX events. Furthermore, no exceptions are thrown in case of a parse error -- it is up to you what to do with the exception object passed to your `parse_error` implementation. Internally, the SAX interface is used for the DOM parser (class `json_sax_dom_parser`) as well as the acceptor (`json_sax_acceptor`), see file [`json_sax.hpp`](https://github.com/nlohmann/json/blob/develop/include/nlohmann/detail/input/json_sax.hpp).
### STL-like access
+15 -1
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@@ -249,6 +249,20 @@ add_custom_target(ci_test_strict_nul_handling
COMMENT "Compile and test with strict NUL-byte handling enabled"
)
###############################################################################
# Delete the deprecated functions.
###############################################################################
add_custom_target(ci_test_delete_deprecated_functions
COMMAND ${CMAKE_COMMAND}
-DCMAKE_BUILD_TYPE=Debug -GNinja
-DJSON_BuildTests=ON -DJSON_FastTests=ON -DJSON_DeleteDeprecatedFunctions=ON
-S${PROJECT_SOURCE_DIR} -B${PROJECT_BINARY_DIR}/build_delete_deprecated_functions
COMMAND ${CMAKE_COMMAND} --build ${PROJECT_BINARY_DIR}/build_delete_deprecated_functions
COMMAND cd ${PROJECT_BINARY_DIR}/build_delete_deprecated_functions && ${CMAKE_CTEST_COMMAND} --parallel ${N} --output-on-failure
COMMENT "Compile and test with the deprecated functions deleted"
)
###############################################################################
# Disable global UDLs.
###############################################################################
@@ -701,7 +715,7 @@ ci_get_cmake(4.0.0 CMAKE_4_0_0_BINARY)
# the tests require CMake 3.13 or later, so they are excluded for CMake 3.5.0
set(JSON_CMAKE_FLAGS_3_5_0 JSON_Diagnostics JSON_Diagnostic_Positions JSON_GlobalUDLs JSON_ImplicitConversions JSON_DisableEnumSerialization
JSON_LegacyDiscardedValueComparison JSON_Install JSON_MultipleHeaders JSON_SystemInclude JSON_Valgrind
JSON_StrictNulHandling JSON_StrictBinaryUTF8)
JSON_StrictNulHandling JSON_StrictBinaryUTF8 JSON_DeleteDeprecatedFunctions)
set(JSON_CMAKE_FLAGS_3_31_6 JSON_BuildTests ${JSON_CMAKE_FLAGS_3_5_0})
set(JSON_CMAKE_FLAGS_4_0_0 JSON_BuildTests ${JSON_CMAKE_FLAGS_3_5_0})
+2
View File
@@ -219,6 +219,7 @@ INSERT INTO searchIndex(name, type, path) VALUES ('Supported Macros', 'Guide', '
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_ASSERT', 'Macro', 'api/macros/json_assert/index.html');
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_BRACE_INIT_COPY_SEMANTICS', 'Macro', 'api/macros/json_brace_init_copy_semantics/index.html');
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_CATCH_USER', 'Macro', 'api/macros/json_throw_user/index.html');
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_DELETE_DEPRECATED_FUNCTIONS', 'Macro', 'api/macros/json_delete_deprecated_functions/index.html');
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_DIAGNOSTICS', 'Macro', 'api/macros/json_diagnostics/index.html');
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_DIAGNOSTIC_POSITIONS', 'Macro', 'api/macros/json_diagnostic_positions/index.html');
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_DISABLE_ENUM_SERIALIZATION', 'Macro', 'api/macros/json_disable_enum_serialization/index.html');
@@ -242,6 +243,7 @@ INSERT INTO searchIndex(name, type, path) VALUES ('JSON_NO_THREAD_LOCAL', 'Macro
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_PRECISE_STREAM_POSITION', 'Macro', 'api/macros/json_precise_stream_position/index.html');
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_SKIP_LIBRARY_VERSION_CHECK', 'Macro', 'api/macros/json_skip_library_version_check/index.html');
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_SKIP_UNSUPPORTED_COMPILER_CHECK', 'Macro', 'api/macros/json_skip_unsupported_compiler_check/index.html');
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_STRICT_BINARY_UTF8', 'Macro', 'api/macros/json_strict_binary_utf8/index.html');
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_STRICT_NUL_HANDLING', 'Macro', 'api/macros/json_strict_nul_handling/index.html');
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_THROW_USER', 'Macro', 'api/macros/json_throw_user/index.html');
INSERT INTO searchIndex(name, type, path) VALUES ('JSON_TRY_USER', 'Macro', 'api/macros/json_throw_user/index.html');
@@ -120,3 +120,12 @@ Linear in the size of the input.
- Extended container support (1) to include types with lvalue-only ADL `begin`/`end` (matching `std::begin`/`std::end` semantics) in version 3.13.0.
- Extended overload (2) to accept heterogeneous iterator+sentinel pairs (C++20 ranges support) in version 3.13.0.
- Added `error_handler` parameter in version 3.13.0.
!!! warning "Deprecation"
- Overload (2) replaces calls to `from_bjdata` with a pointer and a length as first two parameters, which has been
deprecated in version 3.13.0. This overload will be removed in version 4.0.0. Please replace all calls like
`#!cpp from_bjdata(ptr, len, ...);` with `#!cpp from_bjdata(ptr, ptr+len, ...);`.
You should be warned by your compiler with a `-Wdeprecated-declarations` warning if you are using a deprecated
function.
@@ -106,3 +106,12 @@ Linear in the size of the input.
## Version history
- Added in version 3.13.0.
!!! warning "Deprecation"
- Overload (2) replaces calls to `from_bon8` with a pointer and a length as first two parameters, which has been
deprecated in version 3.13.0. This overload will be removed in version 4.0.0. Please replace all calls like
`#!cpp from_bon8(ptr, len, ...);` with `#!cpp from_bon8(ptr, ptr+len, ...);`.
You should be warned by your compiler with a `-Wdeprecated-declarations` warning if you are using a deprecated
function.
+1 -4
View File
@@ -90,9 +90,7 @@ The SAX event lister must follow the interface of [`json_sax`](../json_sax/index
## Return value
`#!cpp true` if the input was parsed without errors and no SAX event returned `#!cpp false`; `#!cpp false` otherwise.
In particular, the result is `#!cpp false` for input with errors, even if the SAX parser recovered from all of them
(see [error recovery](../../features/parsing/error_recovery.md)).
return value of the last processed SAX event
## Exception safety
@@ -140,7 +138,6 @@ A UTF-8 byte order mark is silently ignored.
- Ignoring comments via `ignore_comments` added in version 3.9.0.
- Added `ignore_trailing_commas` in version 3.13.0.
- Extended container support (1) to include types with lvalue-only ADL `begin`/`end` (matching `std::begin`/`std::end` semantics) in version 3.13.0.
- Recovering from parse errors (see [`parse_error`](../json_sax/parse_error.md)) added in version 3.13.0.
- Extended overload (2) to accept heterogeneous iterator+sentinel pairs (C++20 ranges support) in version 3.13.0.
- `JSON_PRECISE_STREAM_POSITION` added in version 3.13.0 to optionally leave a `#!cpp std::istream` positioned right
after the parsed value when `strict` is `#!cpp false`.
+1 -2
View File
@@ -7,8 +7,7 @@ struct json_sax;
This class describes the SAX interface used by [sax_parse](../basic_json/sax_parse.md). Each function is called in
different situations while the input is parsed. The boolean return value informs the parser whether to continue
processing the input; for [`parse_error`](parse_error.md), it decides whether to
[recover from the error](../../features/parsing/error_recovery.md).
processing the input.
For instance, parsing the JSON text `{"a": [1, true]}` triggers the following callbacks, in order:
+2 -26
View File
@@ -21,18 +21,11 @@ A parse error occurred.
## Return value
Whether to recover from the error:
- `#!cpp false` stops parsing.
- `#!cpp true` recovers from the error: the error is repaired and parsing continues. If that is not possible, which
happens in the binary formats when the end of the item with the error is unknown, the value read so far is completed
and parsing stops. See [error recovery](../../features/parsing/error_recovery.md) for how errors are repaired.
Either way, [`sax_parse`](../basic_json/sax_parse.md) returns `#!cpp false`.
Whether parsing should proceed (**must return `#!cpp false`**).
## Examples
??? example "Example: (1) the SAX interface"
??? example
The example below shows how the SAX interface is used.
@@ -46,29 +39,12 @@ Either way, [`sax_parse`](../basic_json/sax_parse.md) returns `#!cpp false`.
--8<-- "examples/sax_parse.output"
```
??? example "Example: (2) recovering from errors"
The example below shows how a SAX parser recovers from errors.
```cpp
--8<-- "examples/sax_parse__error_recovery.cpp"
```
Output:
```
--8<-- "examples/sax_parse__error_recovery.output"
```
## See also
- [sax_parse](../basic_json/sax_parse.md) - SAX parser
- [Parsing and Exceptions](../../features/parsing/parse_exceptions.md) - the article on handling parse errors without
exceptions
- [Error Recovery](../../features/parsing/error_recovery.md) - the article on recovering from parse errors
## Version history
- Added in version 3.2.0.
- Returning `#!cpp true` recovers from the error since version 3.13.0; before, parsing stopped, but the result of
[`sax_parse`](../basic_json/sax_parse.md) could be wrong.
+5
View File
@@ -59,6 +59,11 @@ header. See also the [macro overview page](../../features/macros.md).
- [**JSON_DISABLE_TUPLE_REFERENCE_CONVERSION**](json_disable_tuple_reference_conversion.md) - switch off conversion from a one-element tuple of a JSON reference
- [**JSON_USE_IMPLICIT_CONVERSIONS**](json_use_implicit_conversions.md) - control implicit conversions
## Deprecated functions
- [**JSON_DELETE_DEPRECATED_FUNCTIONS**](json_delete_deprecated_functions.md) - opt in to deleting the deprecated
functions ahead of their removal in version 4.0.0
## Comparison behavior
- [**JSON_USE_LEGACY_DISCARDED_VALUE_COMPARISON**](json_use_legacy_discarded_value_comparison.md) -
@@ -0,0 +1,96 @@
# JSON_DELETE_DEPRECATED_FUNCTIONS
```cpp
#define JSON_DELETE_DEPRECATED_FUNCTIONS /* value */
```
When defined to `1`, all [deprecated functions](../../community/roadmap.md#removal-of-deprecated-functions) of the
library are declared as deleted (`= delete`) instead of only being marked as deprecated. Code that still calls one of
them no longer compiles. This way, you can find all calls that need to be replaced before version 4.0.0 removes these
functions; the [migration guide](../../integration/migration_guide.md#replace-deprecated-functions) describes how.
A deleted function, unlike a removed one, still takes part in overload resolution. A call that would select it
therefore fails to compile instead of silently selecting another overload. This matters for the deprecated
`from_*(ptr, len)` overloads of [`from_cbor`](../basic_json/from_cbor.md), [`from_msgpack`](../basic_json/from_msgpack.md),
[`from_ubjson`](../basic_json/from_ubjson.md), [`from_bjdata`](../basic_json/from_bjdata.md),
[`from_bon8`](../basic_json/from_bon8.md), and [`from_bson`](../basic_json/from_bson.md): without them, a call like
`from_cbor(ptr, len)` would compile, read `ptr` as a NUL-terminated string, and convert `len` to the `strict` parameter.
The macro does not affect the deprecated legacy comparison of discarded values, which is controlled by
[`JSON_USE_LEGACY_DISCARDED_VALUE_COMPARISON`](json_use_legacy_discarded_value_comparison.md).
## Default definition
The default value is `0` (disabled, the deprecated functions can still be called, and the compiler warns about it).
```cpp
#define JSON_DELETE_DEPRECATED_FUNCTIONS 0
```
## Notes
!!! info "CMake option"
The macro can also be set with the CMake option
[`JSON_DeleteDeprecatedFunctions`](../../integration/cmake.md#json_deletedeprecatedfunctions) (`OFF` by default).
!!! warning "Opt-in only"
This macro must be defined **before** including `<nlohmann/json.hpp>`. Defining it after the include has no
effect. Define it for the whole project to avoid different declarations of the same class in different
translation units.
!!! note "ABI compatibility"
The macro only turns calls that compile into calls that do not; it does not change the layout or the behavior of
any type. Its value is therefore not encoded in the [namespace](../../features/namespace.md).
## Examples
??? example "Example: default behavior (macro not defined)"
Without the macro, the deprecated overload is called, and the compiler warns about it:
```cpp
#include <nlohmann/json.hpp>
using json = nlohmann::json;
int main()
{
const std::vector<std::uint8_t> v = {0x82, 0x01, 0x02};
auto j = json::from_cbor(v.data(), v.size());
// warning: 'from_cbor' is deprecated: Since 3.8.0; use from_cbor(ptr, ptr + len)
}
```
??? example "Example: deleted deprecated functions (macro defined to 1)"
With the macro, the call does not compile:
```cpp
#define JSON_DELETE_DEPRECATED_FUNCTIONS 1
#include <nlohmann/json.hpp>
using json = nlohmann::json;
int main()
{
const std::vector<std::uint8_t> v = {0x82, 0x01, 0x02};
auto j = json::from_cbor(v.data(), v.size());
// error: call to deleted function 'from_cbor'
}
```
## See also
- [Roadmap: removal of deprecated functions](../../community/roadmap.md#removal-of-deprecated-functions) - the
deprecated functions and the version they were deprecated in
- [Migration guide: replace deprecated functions](../../integration/migration_guide.md#replace-deprecated-functions) -
how to replace each deprecated function
## Version history
- Added in version 3.13.0.
- Planned to be removed in version 4.0.0, which removes the deprecated functions. The deprecated `from_*(ptr, len)`
overloads stay deleted in version 4.0.0.
@@ -112,3 +112,4 @@ The default value is `0` (disabled — existing behavior is preserved).
## Version history
- Added in version 3.13.0.
- Planned to become the default (with the macro removed) in version 4.0.0.
@@ -43,9 +43,9 @@ By default, `#!cpp JSON_NO_AUTOMATIC_UDLS` is not defined, and `<nlohmann/json.h
```cpp
// compiled with -DJSON_NO_AUTOMATIC_UDLS for the whole project
#include <nlohmann/json.hpp>
// this file uses the literals, so it includes them explicitly
// (the header includes <nlohmann/json.hpp> itself)
#include <nlohmann/json_literals.hpp>
int main()
@@ -62,6 +62,7 @@ By default, `#!cpp JSON_NO_AUTOMATIC_UDLS` is not defined, and `<nlohmann/json.h
- [`operator""_json`](../operator_literal_json.md)
- [`operator""_json_pointer`](../operator_literal_json_pointer.md)
- [`JSON_USE_GLOBAL_UDLS`](json_use_global_udls.md) - place user-defined string literals (UDLs) into the global namespace
- [Compile times](../../integration/compile_times.md) - options to reduce compile times
## Version history
@@ -54,7 +54,7 @@ The default value is `0` (disabled, the behavior of version 3.12.0 and earlier i
## Examples
??? example "Default behavior (macro not defined)"
??? example "Example: default behavior (macro not defined)"
Without the macro, the bytes are written unchanged:
@@ -70,7 +70,7 @@ The default value is `0` (disabled, the behavior of version 3.12.0 and earlier i
}
```
??? example "Opt-in check (macro defined to 1)"
??? example "Example: opt-in check (macro defined to 1)"
With the macro, ill-formed UTF-8 is rejected:
@@ -44,7 +44,7 @@ By default, implicit conversions are enabled.
## Examples
??? example
??? example "Example: implicit and explicit conversions"
This is an example for an implicit conversion:
@@ -61,7 +61,7 @@ By default, implicit conversions are enabled.
auto s = j.get<std::string>();
```
??? example "Conversion between `basic_json` specializations"
??? example "Example: conversion between `basic_json` specializations"
A `basic_json` specialization with a different string type is also no longer converted implicitly when
`JSON_USE_IMPLICIT_CONVERSIONS` is defined to `0`:
+12 -2
View File
@@ -64,6 +64,8 @@ The following macros guard changes that are planned to become the default in ver
| [`JSON_PRECISE_STREAM_POSITION`](../api/macros/json_precise_stream_position.md) | `0` | `1`: reading from a stream does not consume the character after a number | – | 3.13.0 |
| [`JSON_STRICT_NUL_HANDLING`](../api/macros/json_strict_nul_handling.md) | `0` | `1`: a NUL byte in the input is a parse error instead of the end of input | [`JSON_StrictNulHandling`](../integration/cmake.md#json_strictnulhandling) | 3.13.0 |
| [`JSON_STRICT_BINARY_UTF8`](../api/macros/json_strict_binary_utf8.md) | `0` | `1`: `to_cbor`, `to_ubjson`, `to_bjdata`, and `to_bson` throw for strings that are not valid UTF-8 by default | [`JSON_StrictBinaryUTF8`](../integration/cmake.md#json_strictbinaryutf8) | 3.13.0 |
| [`JSON_DISABLE_TUPLE_REFERENCE_CONVERSION`](../api/macros/json_disable_tuple_reference_conversion.md) | `0` | `1`: a `basic_json` value can no longer be created from a one-element tuple of a reference to it, such as `std::forward_as_tuple(j)`| [`JSON_DisableTupleReferenceConversion`](../integration/cmake.md#json_disabletuplereferenceconversion) | 3.13.0 |
| [`JSON_DELETE_DEPRECATED_FUNCTIONS`](../api/macros/json_delete_deprecated_functions.md) | `0` | removed: the deprecated functions are removed (see below); the `from_*(ptr, len)` overloads stay deleted | [`JSON_DeleteDeprecatedFunctions`](../integration/cmake.md#json_deletedeprecatedfunctions) | 3.13.0 |
For example, the following makes a 3.x release behave like version 4.0 with respect to these changes:
@@ -75,6 +77,8 @@ For example, the following makes a 3.x release behave like version 4.0 with resp
#define JSON_PRECISE_STREAM_POSITION 1
#define JSON_STRICT_NUL_HANDLING 1
#define JSON_STRICT_BINARY_UTF8 1
#define JSON_DISABLE_TUPLE_REFERENCE_CONVERSION 1
#define JSON_DELETE_DEPRECATED_FUNCTIONS 1
#include <nlohmann/json.hpp>
```
@@ -84,8 +88,13 @@ way to achieve this.
### Removal of deprecated functions
Version 4.0 will remove all deprecated functions. Compiling with deprecation warnings enabled shows which of them your
code still uses. The [migration guide](../integration/migration_guide.md#replace-deprecated-functions) shows how to
replace each of them.
code still uses. Defining [`JSON_DELETE_DEPRECATED_FUNCTIONS`](../api/macros/json_delete_deprecated_functions.md) to
`1` turns these warnings into errors, as the deprecated functions are then deleted. The
[migration guide](../integration/migration_guide.md#replace-deprecated-functions) shows how to replace each of them.
The `from_*` overloads taking a pointer and a length are not removed in version 4.0, but stay deleted. Without them, a
call like `from_cbor(ptr, len)` would still compile: it would read `ptr` as a NUL-terminated string and convert `len`
to the `strict` parameter.
| Deprecated | Since | Migration |
|----------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------|--------|----------------------------------------------------------------------------------|
@@ -97,6 +106,7 @@ replace each of them.
| [`json_pointer::operator string_t`](../api/json_pointer/operator_string_t.md) | 3.11.0 | [JSON Pointers](../integration/migration_guide.md#json-pointers) |
| [`json_pointer`](../api/json_pointer/index.md) with a `basic_json` type as template argument, and the overloads of `value`, `contains`, `operator[]`, and `at` accepting such a pointer | 3.11.0 | [JSON Pointers](../integration/migration_guide.md#json-pointers) |
| Comparing a [`json_pointer`](../api/json_pointer/index.md) with a string via [`operator==`](../api/json_pointer/operator_eq.md) or [`operator!=`](../api/json_pointer/operator_ne.md) | 3.11.2 | [JSON Pointers](../integration/migration_guide.md#json-pointers) |
| [`from_bjdata`](../api/basic_json/from_bjdata.md) and [`from_bon8`](../api/basic_json/from_bon8.md) with `(ptr, len)` | 3.13.0 | [Parsing](../integration/migration_guide.md#parsing) |
The deprecated legacy comparison of discarded values is controlled by a macro and therefore listed in the table above.
@@ -1,43 +0,0 @@
#include <iostream>
#include <iomanip>
#include <nlohmann/json.hpp>
using json = nlohmann::json;
// a SAX parser that creates a JSON value like json::parse does, but that
// recovers from parse errors instead of stopping at the first one
class recovering_parser : public nlohmann::detail::json_sax_dom_parser<json>
{
public:
explicit recovering_parser(json& result)
: nlohmann::detail::json_sax_dom_parser<json>(result, false)
{}
bool parse_error(std::size_t position,
const std::string& /*last_token*/,
const json::exception& ex)
{
std::cout << "byte " << position << ": " << ex.what() << '\n';
// repair the input and continue
return true;
}
};
int main()
{
// JSON text with several mistakes that ends too early
const std::string text = R"({
"name": "Hello World",
"tags": ["a" "b",],
"valid": tru,
"size": 1.,
"nested": {"x": 1)";
json result;
recovering_parser sax(result);
const bool valid = json::sax_parse(text, &sax);
std::cout << "\nvalid JSON: " << std::boolalpha << valid << '\n'
<< std::setw(4) << result << std::endl;
}
@@ -1,19 +0,0 @@
byte 49: [json.exception.parse_error.101] parse error at line 3, column 20: syntax error while parsing array - unexpected string literal; expected ']'
byte 51: [json.exception.parse_error.101] parse error at line 3, column 22: syntax error while parsing value - unexpected ']'; expected '[', '{', or a literal
byte 70: [json.exception.parse_error.101] parse error at line 4, column 17: syntax error while parsing value - invalid literal; last read: '"valid": tru,'
byte 86: [json.exception.parse_error.101] parse error at line 5, column 15: syntax error while parsing value - invalid number; expected digit after '.'; last read: '1.,'
byte 109: [json.exception.parse_error.101] parse error at line 6, column 22: syntax error while parsing object - unexpected end of input; expected '}'
valid JSON: false
{
"name": "Hello World",
"nested": {
"x": 1
},
"size": 1,
"tags": [
"a",
"b"
],
"valid": null
}
+13 -1
View File
@@ -23,6 +23,17 @@ This macro overrides [`#!cpp catch`](https://en.cppreference.com/w/cpp/language/
See [full documentation of `JSON_CATCH_USER(exception)`](../api/macros/json_throw_user.md).
## `JSON_DELETE_DEPRECATED_FUNCTIONS`
When defined to `1`, all deprecated functions are declared as deleted instead of only being marked as deprecated, so
code that still calls them no longer compiles. This way, you can find all calls that need to be replaced before version
4.0.0 removes these functions.
The macro can also be set with the CMake option
[`JSON_DeleteDeprecatedFunctions`](../integration/cmake.md#json_deletedeprecatedfunctions) (`OFF` by default).
See [full documentation of `JSON_DELETE_DEPRECATED_FUNCTIONS`](../api/macros/json_delete_deprecated_functions.md).
## `JSON_DIAGNOSTICS`
This macro enables extended diagnostics for exception messages. Possible values are `1` to enable or `0` to disable
@@ -86,7 +97,8 @@ See [full documentation of `JSON_DISABLE_ENUM_SERIALIZATION`](../api/macros/json
## `JSON_DISABLE_TUPLE_REFERENCE_CONVERSION`
When defined to `1`, a JSON value can no longer be created from a one-element `std::tuple` holding a reference to a JSON
value, such as the result of `std::forward_as_tuple(j)`. This lets `std::tuple` convert such tuples element-wise.
value, such as the result of `std::forward_as_tuple(j)`. This lets `std::tuple` convert such tuples element-wise. This
is planned to become the default in version 4.0.0.
See [full documentation of `JSON_DISABLE_TUPLE_REFERENCE_CONVERSION`](../api/macros/json_disable_tuple_reference_conversion.md).
@@ -1,122 +0,0 @@
# Error Recovery
By default, parsing stops at the first error. With the [SAX interface](sax_interface.md), you can instead ask the
parser to *recover*: to repair the error and continue, so that you get as much as possible out of malformed input, for
instance a file that was cut off, JSON edited by hand, or the output of a language model.
## Recovering from errors
The SAX parser's [`parse_error`](../../api/json_sax/parse_error.md) function is called for every error. Its return value
decides what happens next:
- `#!cpp false` stops parsing. This is what the SAX parsers of the library do, so [`parse`](../../api/basic_json/parse.md)
and [`accept`](../../api/basic_json/accept.md) never recover.
- `#!cpp true` repairs the error and continues parsing.
When recovering, the SAX parser still receives well-formed events: every `start_object` or `start_array` is followed by
the matching `end_object` or `end_array`, and every `key` is followed by exactly one value. A SAX parser that creates a
JSON value, such as the one in the example below, therefore gets a complete value. Parsing always ends, and
[`sax_parse`](../../api/basic_json/sax_parse.md) returns `#!cpp false` for input that is not valid JSON, even if every
error was repaired. Each token is reported at most once, and the SAX parser can stop at any error by returning
`#!cpp false`.
!!! example
The example below derives a SAX parser from the library's parser for `json` values (`json_sax_dom_parser`),
and recovers from all errors.
```cpp
--8<-- "examples/sax_parse__error_recovery.cpp"
```
Output:
```
--8<-- "examples/sax_parse__error_recovery.output"
```
## How errors are repaired
Each error is repaired with the smallest local edit: a missing separator is inserted, a stray token is removed, what can
be read of a broken string or number is kept, and a value that cannot be read at all becomes `#!json null`.
| Mistake | Repair | Example | Result |
|---------------------------|--------------------------------------------------------------------------------|------------------------------------------|----------------------------|
| missing `,` or `:` | inserted | `#!json [1 2]`, `#!json {"a" 1}` | `[1,2]`, `{"a":1}` |
| missing value | `#!json null` for an object key or between commas in an array | `#!json {"a":}`, `#!json [1,,2]` | `{"a":null}`, `[1,null,2]` |
| trailing comma | removed | `#!json [1,2,]` | `[1,2]` |
| broken string | invalid escapes and bytes are replaced (see below); a line break ends the string | `#!json ["a\qb"]` | `["aqb"]` |
| broken number | the longest valid beginning is kept | `#!json [1., 2e+]` | `[1,2]` |
| unreadable value | `#!json null` | `#!json [1, NaN, tru]` | `[1,null,null]` |
| number too large | passed as infinity, together with its text | `#!json [1e999]` | infinity (see below) |
| stray `:` | removed | `#!json ["a":1]` | `["a",1]` |
| member without a key | skipped up to the next `,` or `}` | `#!json {1:2, "b":3}` | `{"b":3}` |
| wrong closing bracket | closes the innermost array or object | `#!json {"a":[1,2}, "b":3}` | `{"a":[1,2],"b":3}` |
| input ends too early | all open arrays and objects are closed | `#!json {"a":[1,2` | `{"a":[1,2]}` |
| text before the value | skipped | `#!json )]}'{"a":1}` | `{"a":1}` |
In a string, an unknown escape like `\q` stands for the escaped character (`q`), as in JavaScript. An invalid `\u`
escape, a lone surrogate, and ill-formed UTF-8 are each replaced by U+FFFD (REPLACEMENT CHARACTER), and control
characters are kept. A string without its closing quote ends at the next line break or at the end of the input.
The input after the top-level value is not repaired: as without recovery, it is reported as an error, and parsing stops.
## Binary formats
The binary formats ([BJData](../binary_formats/bjdata.md), [BON8](../binary_formats/bon8.md),
[BSON](../binary_formats/bson.md), [CBOR](../binary_formats/cbor.md), [MessagePack](../binary_formats/messagepack.md),
and [UBJSON](../binary_formats/ubjson.md)) have no delimiters to find the next value by. So what can be repaired depends
on whether the end of the item with the error is known, a distinction that
[RFC 8949, Section 5.3](https://www.rfc-editor.org/rfc/rfc8949.html#section-5.3) makes for CBOR, too.
If the item is complete, but cannot be passed on as it is, it is replaced, and parsing continues after it:
| Mistake | Formats | Repair |
|---------------------------------------------------------------------|-------------------------|-------------------------------------------------------------------------|
| tag | CBOR | ignored |
| simple value other than `false`, `true`, and `null`, like undefined | CBOR | `#!json null` |
| negative integer below the range of `number_integer_t` | CBOR | the nearest floating-point number |
| character (`C`) that is not ASCII | BJData, UBJSON | U+FFFD |
| invalid high-precision number (`H`) | BJData, UBJSON | the longest valid beginning is kept, as for JSON text, or `#!json null` |
| high-precision number too large | BJData, UBJSON | passed as infinity, together with its text |
| object key that is not a string | BON8, CBOR, MessagePack | the member is skipped |
| element of a type the library does not read, like ObjectId or date | BSON | `#!json null` |
| string without its terminator | BSON | kept |
| document whose size does not match its content | BSON | kept |
CBOR tags and simple values are repaired as [RFC 8949, Section 6.1](https://www.rfc-editor.org/rfc/rfc8949.html#section-6.1)
suggests for converting CBOR to JSON. Note that [`sax_parse`](../../api/basic_json/sax_parse.md) has no parameter for
CBOR tags, so every tag is an error there; when recovering, tags are ignored like with
[`cbor_tag_handler_t::ignore`](../../api/basic_json/cbor_tag_handler_t.md). Strings that are not valid UTF-8 are no
error: like [`from_cbor`](../../api/basic_json/from_cbor.md) and the other functions by default, `sax_parse` passes
them on as they are.
After any other error, the end of the item is unknown: the input ended, a byte is not a valid type marker, or a size
cannot be right. Parsing then stops, and the value read so far is completed: a key that waits for its value gets
`#!json null`, and all open arrays and objects are closed. This keeps everything before the error of an input that was
cut off. The exception is BSON, which stores the size of every document: an element whose end is unknown gets
`#!json null`, the rest of its document is skipped, and parsing continues after the document.
## Limitations
- A repair is a guess. For example, `#!json {"a" "b": 1}` could be meant as `#!json {"a": "b"}` or as
`#!json {"a": null, "b": 1}`; it is repaired to the former. Treat recovered values as a best effort, and check the
reported errors.
- A closing bracket always closes the innermost array or object. If a bracket is missing rather than wrong, the
repair differs from the intention: `#!json {"a": {"b": [1, 2}, "c": 3}` is repaired to
`#!json {"a": {"b": [1, 2], "c": 3}}`, although `#!json {"a": {"b": [1, 2]}, "c": 3}` may have been meant.
- Keys without quotes, and strings in single quotes, are not supported; such members are skipped.
- In the binary formats, a member that is skipped because its key is not a string is lost, and so are the elements of a
BSON document after one whose end is unknown.
- A number that is too large for `number_float_t` is passed as positive or negative infinity. The SAX parser's
`number_float` also gets the number's text, but a JSON value cannot store it, and
[`dump`](../../api/basic_json/dump.md) serializes infinity as `#!json null`.
- When parsing is not strict (see [`sax_parse`](../../api/basic_json/sax_parse.md)), a repair may read parts of the
input after the value, for instance of the next value in a stream of concatenated values.
## See also
- [SAX interface](sax_interface.md) - implement a custom SAX handler
- [`parse_error`](../../api/json_sax/parse_error.md) - the SAX event for parse errors
- [`sax_parse`](../../api/basic_json/sax_parse.md) - generate SAX events
- [parsing and exceptions](parse_exceptions.md) - control error handling
+1 -2
View File
@@ -75,7 +75,7 @@ You can influence a DOM parse without switching to the SAX interface by passing
When the input is not valid JSON, the `parse` function throws an exception by default. If exceptions are undesired or
unavailable, the parser can instead return a discarded value, or [`accept`](../../api/basic_json/accept.md) can be used
to only check whether an input is valid JSON. See [parsing and exceptions](parse_exceptions.md) for the available
options. To get as much as possible out of malformed input, a SAX parser can [recover from errors](error_recovery.md).
options.
## See also
@@ -86,5 +86,4 @@ options. To get as much as possible out of malformed input, a SAX parser can [re
- [parser callbacks](parser_callbacks.md) - influence the parsing by a callback function
- [SAX interface](sax_interface.md) - implement a custom SAX handler
- [parsing and exceptions](parse_exceptions.md) - control error handling
- [error recovery](error_recovery.md) - get as much as possible out of malformed input
- [parsing untrusted input](untrusted_input.md) - what to consider when parsing input from untrusted sources
@@ -64,8 +64,7 @@ bool parse_error(std::size_t position,
const json::exception& ex);
```
The return value decides whether to stop parsing (`#!cpp false`) or to repair the error and continue
(`#!cpp true`); see [error recovery](error_recovery.md) for the latter.
The return value indicates whether the parsing should continue, so the function should usually return `#!cpp false`.
??? example "Example: report parse errors without exceptions"
@@ -60,8 +60,7 @@ bool key(string_t& val);
bool parse_error(std::size_t position, const std::string& last_token, const json::exception& ex);
```
The return value of each function determines whether parsing should proceed. For `parse_error`, returning
`#!cpp true` [recovers from the error](error_recovery.md).
The return value of each function determines whether parsing should proceed.
To implement your own SAX handler, proceed as follows:
@@ -69,7 +68,7 @@ To implement your own SAX handler, proceed as follows:
2. Create an object of your SAX interface class, e.g. `my_sax`.
3. Call `#!cpp bool json::sax_parse(input, &my_sax);` where the first parameter can be any input like a string or an input stream and the second parameter is a pointer to your SAX interface.
Note the `sax_parse` function only returns a `#!cpp bool` indicating whether the input was parsed without errors and no SAX event returned `#!cpp false`. It does not return `json` value - it is up to you to decide what to do with the SAX events. Furthermore, no exceptions are thrown in case of a parse error - it is up to you what to do with the exception object passed to your `parse_error` implementation. Internally, the SAX interface is used for the DOM parser (class `json_sax_dom_parser`) as well as the acceptor (`json_sax_acceptor`), see file `json_sax.hpp`.
Note the `sax_parse` function only returns a `#!cpp bool` indicating the result of the last executed SAX event. It does not return `json` value - it is up to you to decide what to do with the SAX events. Furthermore, no exceptions are thrown in case of a parse error - it is up to you what to do with the exception object passed to your `parse_error` implementation. Internally, the SAX interface is used for the DOM parser (class `json_sax_dom_parser`) as well as the acceptor (`json_sax_acceptor`), see file `json_sax.hpp`.
## See also
+6
View File
@@ -132,6 +132,12 @@ Build the unit tests when [`BUILD_TESTING`](https://cmake.org/cmake/help/latest/
Enable CI build targets. The exact targets are used during the several CI steps and are subject to change without notice. This option is `OFF` by default.
### `JSON_DeleteDeprecatedFunctions`
Delete the deprecated functions instead of only deprecating them by defining the macro
[`JSON_DELETE_DEPRECATED_FUNCTIONS`](../api/macros/json_delete_deprecated_functions.md). This option is `OFF` by
default.
### `JSON_Diagnostics`
Enable [extended diagnostic messages](../home/exceptions.md#extended-diagnostic-messages) by defining macro [`JSON_DIAGNOSTICS`](../api/macros/json_diagnostics.md). This option is `OFF` by default.
@@ -0,0 +1,149 @@
# Compile times
The library is header-only and makes heavy use of templates, so every translation unit that includes
`<nlohmann/json.hpp>` pays for parsing the header and instantiating what it uses. This page lists the options to reduce
that cost, ordered by how much they typically save.
!!! info "Measurements"
The numbers below are medians of nine runs compiling a single translation unit with `-std=c++17 -c` against the
single-header version, with Apple clang and GCC 16 on macOS (Apple silicon). They show the order of magnitude to
expect; measure your own code before and after a change.
## Include `json_fwd.hpp` in headers
Header files that only need to *name* the `json` type — for function declarations, members held by pointer or
reference, or friend declarations — can include `<nlohmann/json_fwd.hpp>` instead of `<nlohmann/json.hpp>`. It only
forward-declares `basic_json`, `json`, `ordered_json`, `json_pointer`, and `adl_serializer`. The translation units that
actually use the values then include `<nlohmann/json.hpp>`.
```cpp title="person.hpp"
#pragma once
#include <nlohmann/json_fwd.hpp>
struct person;
void to_json(nlohmann::json& j, const person& p);
void from_json(const nlohmann::json& j, person& p);
```
```cpp title="person.cpp"
#include "person.hpp"
#include <nlohmann/json.hpp>
void to_json(nlohmann::json& j, const person& p) { /* ... */ }
void from_json(const nlohmann::json& j, person& p) { /* ... */ }
```
| Compiler | `json.hpp` (`-O0`) | `json_fwd.hpp` (`-O0`) | Change |
|-------------|-------------------:|-----------------------:|-------:|
| Apple clang | 704 ms | 329 ms | −53% |
| GCC 16 | 779 ms | 242 ms | −69% |
This is the most effective option, because it avoids the full header in every translation unit that includes
*your* headers.
## Opt out of the automatic user-defined string literals
The user-defined string literals [`operator""_json`](../api/operator_literal_json.md) and
[`operator""_json_pointer`](../api/operator_literal_json_pointer.md) are ordinary inline functions whose bodies call the
parser. As `<nlohmann/json.hpp>` includes them by default, every translation unit instantiates the parser, even if it
never parses anything itself.
Define [`JSON_NO_AUTOMATIC_UDLS`](../api/macros/json_no_automatic_udls.md) for the whole project and include
`<nlohmann/json_literals.hpp>` instead of `<nlohmann/json.hpp>` in the files that use the literals (it includes
`<nlohmann/json.hpp>` itself):
```cmake
target_compile_definitions(my_target PRIVATE JSON_NO_AUTOMATIC_UDLS)
```
```cpp
#include <nlohmann/json_literals.hpp> // only where "..."_json is used; includes <nlohmann/json.hpp>
```
The saving applies to translation units that do not parse JSON, for example ones that define types and their
conversions or only pass `json` values around:
| Compiler | Translation unit | Default (`-O0` / `-O2`) | `JSON_NO_AUTOMATIC_UDLS` (`-O0` / `-O2`) | Change |
|-------------|------------------|------------------------:|-----------------------------------------:|------------:|
| Apple clang | model | 776 ms / 846 ms | 629 ms / 692 ms | −19% / −18% |
| GCC 16 | model | 1022 ms / 1120 ms | 882 ms / 965 ms | −14% / −14% |
| Apple clang | parsing | 992 ms / 1815 ms | 1006 ms / 1823 ms | +1% / 0% |
| GCC 16 | parsing | 2018 ms / 3420 ms | 1990 ms / 3454 ms | −1% / +1% |
Translation units that include only the header save up to a third. Translation units that parse anyway instantiate
the parser regardless and see no difference.
## Instantiate `basic_json` once
Each translation unit instantiates the member functions of `nlohmann::json` it uses. An explicit instantiation
declaration tells the compiler that the non-template members are instantiated elsewhere, so it can skip them:
```cpp title="json_instance.hpp"
#pragma once
#include <nlohmann/json.hpp>
extern template class nlohmann::basic_json<>;
```
```cpp title="json_instance.cpp"
#include "json_instance.hpp"
template class nlohmann::basic_json<>;
```
Include `json_instance.hpp` instead of `<nlohmann/json.hpp>` and compile and link `json_instance.cpp` once.
| Compiler | Translation unit | Default (`-O0` / `-O2`) | `extern template` (`-O0` / `-O2`) | Change |
|-------------|---------------------|------------------------:|----------------------------------:|------------:|
| Apple clang | parsing | 992 ms / 1815 ms | 953 ms / 1625 ms | −4% / −10% |
| GCC 16 | parsing | 2018 ms / 3420 ms | 1522 ms / 2728 ms | −25% / −20% |
| Apple clang | `json_instance.cpp` | — | 2166 ms / 4660 ms | — |
| GCC 16 | `json_instance.cpp` | — | 5085 ms / 10616 ms | — |
Notes:
- The saving grows with the number of translation units that use `json`, while the instantiation translation unit is
compiled only once (and is rarely recompiled, as it does not depend on your code).
- Member function templates (such as `get<T>()`, `parse(InputType&&)`, or `value(key, default)`) are not covered by
the explicit instantiation and are still instantiated where they are used.
- The declaration covers exactly `nlohmann::json`. Add the same lines for `nlohmann::ordered_json`
(`nlohmann::basic_json<nlohmann::ordered_map>`) or your own `basic_json` specializations if you use them.
## Use C++20 modules
With a toolchain that supports named modules, `import nlohmann.json;` compiles the library once into a module and
avoids parsing the header in every translation unit. See [Modules](../features/modules.md) for requirements and known
issues. Module support is experimental and currently depends heavily on the compiler version.
## Use precompiled headers
Build systems can precompile `<nlohmann/json.hpp>` together with other stable headers, for example with CMake's
[`target_precompile_headers`](https://cmake.org/cmake/help/latest/command/target_precompile_headers.html):
```cmake
target_precompile_headers(my_target PRIVATE <nlohmann/json.hpp>)
```
This removes the cost of parsing the header, but not of instantiating templates in each translation unit, so it
combines well with the options above.
## Options without effect on compile times
Some configuration macros change what the library declares, but do not measurably change compile times:
| Macro | Apple clang, model (`-O0` / `-O2`) | GCC 16, model (`-O0` / `-O2`) |
|------------------------------------------------------------------------|-----------------------------------:|------------------------------:|
| default | 776 ms / 846 ms | 1022 ms / 1120 ms |
| [`JSON_NO_IO`](../api/macros/json_no_io.md) | 764 ms / 836 ms | 1022 ms / 1117 ms |
| [`JSON_USE_GLOBAL_UDLS`](../api/macros/json_use_global_udls.md)`=0` | 763 ms / 852 ms | 1019 ms / 1106 ms |
`JSON_USE_GLOBAL_UDLS` only controls *where* the literals are declared; to avoid their cost, use
`JSON_NO_AUTOMATIC_UDLS` instead.
## See also
- [`JSON_NO_AUTOMATIC_UDLS`](../api/macros/json_no_automatic_udls.md) - do not include the user-defined string
literals automatically
- [Modules](../features/modules.md) - C++20 module support
- [Header only](index.md) - including the library
+1 -1
View File
@@ -45,7 +45,7 @@ Clang).
You can further use file
[`single_include/nlohmann/json_fwd.hpp`](https://github.com/nlohmann/json/blob/develop/single_include/nlohmann/json_fwd.hpp)
for forward declarations, and file
for forward declarations (see [Compile times](compile_times.md)), and file
[`single_include/nlohmann/json_literals.hpp`](https://github.com/nlohmann/json/blob/develop/single_include/nlohmann/json_literals.hpp)
for the user-defined string literals if you define
[`JSON_NO_AUTOMATIC_UDLS`](../api/macros/json_no_automatic_udls.md).
@@ -14,6 +14,13 @@ deprecations are annotated with
[`HEDLEY_DEPRECATED_FOR`](https://nemequ.github.io/hedley/api-reference.html#HEDLEY_DEPRECATED_FOR) to report which
function to use instead.
!!! tip "Find all calls of deprecated functions"
Define [`JSON_DELETE_DEPRECATED_FUNCTIONS`](../api/macros/json_delete_deprecated_functions.md) to `1` (or set the
CMake option [`JSON_DeleteDeprecatedFunctions`](cmake.md#json_deletedeprecatedfunctions)) to delete all deprecated
functions. Every remaining call then fails to compile, even if deprecation warnings are disabled, so your code is
ready for version 4.0.0 once it compiles with the macro.
### Parsing
- Function `friend std::istream& operator<<(basic_json&, std::istream&)` is deprecated since 3.0.0. Please use
@@ -41,8 +48,10 @@ function to use instead.
[`from_ubjson`](../api/basic_json/from_ubjson.md), and [`from_bson`](../api/basic_json/from_bson.md)) via initializer
lists is deprecated since 3.8.0. Instead, pass two iterators; for instance, call `from_cbor(ptr, ptr+len)` instead of
`from_cbor({ptr, len})`. Likewise, passing a pointer and a length as two separate arguments to `from_cbor`,
`from_msgpack`, `from_ubjson`, and `from_bson` is deprecated since 3.8.0; call `from_cbor(ptr, ptr+len)` instead of
`from_cbor(ptr, len)`.
`from_msgpack`, `from_ubjson`, and `from_bson` is deprecated since 3.8.0, and to
[`from_bjdata`](../api/basic_json/from_bjdata.md) and [`from_bon8`](../api/basic_json/from_bon8.md) since 3.13.0; call
`from_cbor(ptr, ptr+len)` instead of `from_cbor(ptr, len)`. These overloads will not be removed in version 4.0.0, but
deleted, so a call like `from_cbor(ptr, len)` cannot compile and convert `len` to the `strict` parameter.
=== "Deprecated"
+2 -1
View File
@@ -88,7 +88,6 @@ nav:
- features/performance.md
- Parsing:
- features/parsing/index.md
- features/parsing/error_recovery.md
- features/parsing/json_lines.md
- features/parsing/parse_exceptions.md
- features/parsing/parser_callbacks.md
@@ -109,6 +108,7 @@ nav:
- integration/cmake.md
- integration/package_managers.md
- integration/pkg-config.md
- integration/compile_times.md
- API Documentation:
- basic_json:
- 'Overview': api/basic_json/index.md
@@ -292,6 +292,7 @@ nav:
- 'JSON_BRACE_INIT_COPY_SEMANTICS': api/macros/json_brace_init_copy_semantics.md
- 'JSON_CATCH_USER, JSON_THROW_USER, JSON_TRY_USER': api/macros/json_throw_user.md
- 'JSON_DIAGNOSTICS': api/macros/json_diagnostics.md
- 'JSON_DELETE_DEPRECATED_FUNCTIONS': api/macros/json_delete_deprecated_functions.md
- 'JSON_DIAGNOSTIC_POSITIONS': api/macros/json_diagnostic_positions.md
- 'JSON_DISABLE_ENUM_SERIALIZATION': api/macros/json_disable_enum_serialization.md
- 'JSON_DISABLE_TUPLE_REFERENCE_CONVERSION': api/macros/json_disable_tuple_reference_conversion.md
File diff suppressed because it is too large Load Diff
+4 -9
View File
@@ -132,9 +132,7 @@ struct json_sax
@param[in] position the position in the input where the error occurs
@param[in] last_token the last read token
@param[in] ex an exception object describing the error
@return whether to recover from the error: false stops parsing; true
repairs the error and continues, or, if that is not possible,
stops after completing the value read so far
@return whether parsing should proceed (must return false)
*/
virtual bool parse_error(std::size_t position,
const std::string& last_token,
@@ -271,12 +269,9 @@ a pointer to the respective array or object for each recursion depth.
After successful parsing, the value that is passed by reference to the
constructor contains the parsed value.
@tparam BasicJsonType the JSON type
@tparam InputAdapterType the input adapter of the lexer that can be passed to
the constructor to record diagnostic positions; it
does not matter if no lexer is passed
@tparam BasicJsonType the JSON type
*/
template<typename BasicJsonType, typename InputAdapterType = string_input_adapter_type>
template<typename BasicJsonType, typename InputAdapterType>
class json_sax_dom_parser
{
public:
@@ -523,7 +518,7 @@ class json_sax_dom_parser
lexer_t* m_lexer_ref = nullptr;
};
template<typename BasicJsonType, typename InputAdapterType = string_input_adapter_type>
template<typename BasicJsonType, typename InputAdapterType>
class json_sax_dom_callback_parser
{
public:
+2 -590
View File
@@ -10,7 +10,7 @@
#include <array> // array
#include <cstddef> // size_t
#include <cstdint> // uint8_t, uint32_t
#include <cstdint> // uint32_t
#include <cstdio> // snprintf
#include <initializer_list> // initializer_list
#include <string> // char_traits, string
@@ -439,16 +439,8 @@ class lexer : public lexer_base<BasicJsonType>
if (0xD800 <= codepoint1 && codepoint1 <= 0xDBFF)
{
// expect next \uxxxx entry
if (JSON_HEDLEY_LIKELY(get() == '\\'))
if (JSON_HEDLEY_LIKELY(get() == '\\' && get() == 'u'))
{
if (JSON_HEDLEY_UNLIKELY(get() != 'u'))
{
// current is the character escaped by the backslash
error_message = "invalid string: surrogate U+D800..U+DBFF must be followed by U+DC00..U+DFFF";
string_error_resume = resume_kind::escaped_character;
return token_type::parse_error;
}
const int codepoint2 = get_codepoint();
if (JSON_HEDLEY_UNLIKELY(codepoint2 == -1))
@@ -473,11 +465,7 @@ class lexer : public lexer_base<BasicJsonType>
}
else
{
// the second escape was read completely and is a
// code point of its own
error_message = "invalid string: surrogate U+D800..U+DBFF must be followed by U+DC00..U+DFFF";
string_error_resume = resume_kind::after_escape;
string_error_codepoint = codepoint2;
return token_type::parse_error;
}
}
@@ -491,9 +479,7 @@ class lexer : public lexer_base<BasicJsonType>
{
if (JSON_HEDLEY_UNLIKELY(0xDC00 <= codepoint1 && codepoint1 <= 0xDFFF))
{
// the escape was read completely
error_message = "invalid string: surrogate U+DC00..U+DFFF must follow U+D800..U+DBFF";
string_error_resume = resume_kind::after_escape;
return token_type::parse_error;
}
}
@@ -2114,573 +2100,6 @@ scan_number_done:
}
}
/////////////////////
// error recovery
/////////////////////
/*!
@brief make the best of the token that scan() rejected
Called by the parser after scan() returned token_type::parse_error and the
SAX parser asked to recover from the error (see #3989). Keeps what can be
read of the token and skips the rest:
- A string keeps its characters. An unknown escape stands for the escaped
character itself (as in JavaScript), an invalid Unicode escape and ill-formed
UTF-8 become U+FFFD, and a control character is kept. A line break or the
end of the input ends a string that lacks its closing quote.
- A number keeps its longest valid prefix, e.g. `1` for `1.` or `1e+`.
- A block comment that is not closed runs to the end of the input.
- Anything else is skipped.
The rest of an invalid token is skipped up to the next delimiter
(whitespace, a structural character, or a quote). A delimiter that the
invalid token consumed is returned to the input, so that the next scan()
reads it.
@return token_type::value_string or a number token type if a string or a
number could be read, token_type::end_of_input for a block comment
that is not closed, token_type::uninitialized otherwise
*/
token_type recover_token()
{
const resume_kind resume = string_error_resume;
const int codepoint = string_error_codepoint;
string_error_resume = resume_kind::character;
string_error_codepoint = -1;
if (error_message_starts_with("invalid string"))
{
return recover_string(resume, codepoint);
}
if (error_message_starts_with("invalid number"))
{
return recover_number();
}
if (error_message_starts_with("invalid comment; missing"))
{
// the comment runs to the end of the input
return token_type::end_of_input;
}
skip_to_delimiter();
return token_type::uninitialized;
}
/*!
@brief return the token that scan() read last to the input, so that the
next scan() reads it again
Called by the parser when recovering from an error. The token must be a
single character (',', ':', '[', ']', '{', or '}') or the end of the
input, and scan() must have read it last.
*/
void unget_token()
{
JSON_ASSERT(!next_unget);
unget();
}
/*!
@brief let the token string for the next error begin at the current character
The token string of an error reaches back to the beginning of the last
string or number. After an error, the parser calls this function so that
the next error does not report (and, with many errors, copy) everything
read since then.
*/
void restart_token_string()
{
restart_token_string_impl(std::integral_constant<bool, lazy_token_string> {});
}
private:
/// how recover_string() continues after the error scan_string() reported
enum class resume_kind : std::uint8_t
{
/// current is the next character of the string (or the end of input)
character,
/// current is the character escaped by the preceding backslash
escaped_character,
/// current is the last character of a complete escape
after_escape
};
/// whether error_message begins with @a prefix
bool error_message_starts_with(const char* prefix) const noexcept
{
const char* message = error_message;
while (*prefix != '\0')
{
if (*message++ != *prefix++)
{
return false;
}
}
return true;
}
/// whether current ends an invalid token (see recover_token())
bool current_is_delimiter() const noexcept
{
switch (current)
{
case ' ':
case '\t':
case '\n':
case '\r':
case '[':
case ']':
case '{':
case '}':
case ',':
case ':':
case '\"':
#if !JSON_STRICT_NUL_HANDLING
case '\0':
#endif
case char_traits<char_type>::eof():
return true;
case '/':
return ignore_comments;
default:
return false;
}
}
/// skip the rest of an invalid token and return its delimiter to the input
void skip_to_delimiter()
{
while (!current_is_delimiter())
{
get();
}
if (current != char_traits<char_type>::eof())
{
unget();
}
}
/// append U+FFFD REPLACEMENT CHARACTER to token_buffer
void add_replacement_character()
{
add(0xEF);
add(0xBF);
add(0xBD);
}
/// append the UTF-8 encoding of @a codepoint (not a surrogate) to token_buffer
void add_codepoint(const int codepoint)
{
JSON_ASSERT(0x00 <= codepoint && codepoint <= 0x10FFFF);
const auto cp = static_cast<unsigned int>(codepoint);
if (cp < 0x80)
{
add(static_cast<char_int_type>(cp));
}
else if (cp <= 0x7FF)
{
add(static_cast<char_int_type>(0xC0u | (cp >> 6u)));
add(static_cast<char_int_type>(0x80u | (cp & 0x3Fu)));
}
else if (cp <= 0xFFFF)
{
add(static_cast<char_int_type>(0xE0u | (cp >> 12u)));
add(static_cast<char_int_type>(0x80u | ((cp >> 6u) & 0x3Fu)));
add(static_cast<char_int_type>(0x80u | (cp & 0x3Fu)));
}
else
{
add(static_cast<char_int_type>(0xF0u | (cp >> 18u)));
add(static_cast<char_int_type>(0x80u | ((cp >> 12u) & 0x3Fu)));
add(static_cast<char_int_type>(0x80u | ((cp >> 6u) & 0x3Fu)));
add(static_cast<char_int_type>(0x80u | (cp & 0x3Fu)));
}
}
/// append a code point read from a Unicode escape; a surrogate becomes U+FFFD
void add_escaped_codepoint(const int codepoint)
{
if (0xD800 <= codepoint && codepoint <= 0xDFFF)
{
add_replacement_character();
}
else
{
add_codepoint(codepoint);
}
}
/*!
@brief remove an incomplete UTF-8 sequence from the end of token_buffer
next_byte_in_range() adds the bytes of a sequence as it checks them, so
when it rejects a byte, the beginning of the sequence is already in
token_buffer, which otherwise holds only complete sequences.
@return whether an incomplete sequence was removed
*/
bool remove_incomplete_utf8_sequence()
{
std::size_t lead = token_buffer.size();
std::size_t continuation_bytes = 0;
while (lead > 0 && continuation_bytes < 3
&& (static_cast<unsigned char>(token_buffer[lead - 1]) & 0xC0u) == 0x80u)
{
--lead;
++continuation_bytes;
}
if (lead == 0)
{
return false;
}
const auto lead_byte = static_cast<unsigned char>(token_buffer[lead - 1]);
std::size_t expected = 0;
if (lead_byte >= 0xF0)
{
expected = 3;
}
else if (lead_byte >= 0xE0)
{
expected = 2;
}
else if (lead_byte >= 0xC0)
{
expected = 1;
}
if (continuation_bytes >= expected)
{
return false;
}
token_buffer.resize(lead - 1);
return true;
}
/*!
@brief read the UTF-8 sequence that begins with current, which is not ASCII
@return whether the next character must be read; false if current still
needs to be handled, because it does not belong to the sequence
*/
bool recover_utf8_sequence()
{
// the number of continuation bytes and the range of the first one;
// see the ranges in scan_string()
std::size_t count = 0;
char_int_type low = 0x80;
char_int_type high = 0xBF;
if (current >= 0xC2 && current <= 0xDF)
{
count = 1;
}
else if (current >= 0xE0 && current <= 0xEF)
{
count = 2;
low = (current == 0xE0) ? 0xA0 : 0x80;
high = (current == 0xED) ? 0x9F : 0xBF;
}
else if (current >= 0xF0 && current <= 0xF4)
{
count = 3;
low = (current == 0xF0) ? 0x90 : 0x80;
high = (current == 0xF4) ? 0x8F : 0xBF;
}
else
{
// an ill-formed byte
add_replacement_character();
return true;
}
const std::size_t start = token_buffer.size();
add(current);
for (std::size_t i = 0; i < count; ++i)
{
get();
if (current < low || current > high)
{
token_buffer.resize(start);
add_replacement_character();
return false;
}
add(current);
low = 0x80;
high = 0xBF;
}
return true;
}
/*!
@brief read the low surrogate that must follow the high surrogate @a high
@return whether the next character must be read; false if current still
needs to be handled
*/
bool recover_low_surrogate(int high)
{
while (true)
{
if (get() != '\\')
{
add_replacement_character();
return false;
}
if (get() != 'u')
{
add_replacement_character();
// not 'u', so this does not come back here
return recover_escape();
}
const int low = get_codepoint();
if (low == -1)
{
add_replacement_character();
return false;
}
if (0xDC00 <= low && low <= 0xDFFF)
{
add_codepoint(static_cast<int>((static_cast<unsigned int>(high) << 10u)
+ static_cast<unsigned int>(low) - 0x35FDC00u));
return true;
}
// high has no low surrogate
add_replacement_character();
if (low < 0xD800 || low > 0xDBFF)
{
add_codepoint(low);
return true;
}
// another high surrogate
high = low;
}
}
/*!
@brief read the escape whose backslash was read; current is the escaped character
@return whether the next character must be read; false if current still
needs to be handled
*/
bool recover_escape()
{
switch (current)
{
case '\"':
add('\"');
return true;
case '\\':
add('\\');
return true;
case '/':
add('/');
return true;
case 'b':
add('\b');
return true;
case 'f':
add('\f');
return true;
case 'n':
add('\n');
return true;
case 'r':
add('\r');
return true;
case 't':
add('\t');
return true;
case 'u':
{
const int codepoint = get_codepoint();
if (codepoint == -1)
{
add_replacement_character();
return false;
}
if (0xD800 <= codepoint && codepoint <= 0xDBFF)
{
return recover_low_surrogate(codepoint);
}
add_escaped_codepoint(codepoint);
return true;
}
// an unknown escape stands for the escaped character
default:
return false;
}
}
/*!
@brief read the rest of a string after scan_string() rejected it
token_buffer holds what scan_string() read before the error. See
recover_token() for how errors are repaired.
@param[in] resume how to continue, see resume_kind
@param[in] codepoint for a high surrogate followed by an escape of another
code point: that code point; -1 otherwise
*/
token_type recover_string(const resume_kind resume, const int codepoint)
{
// whether the next character must be read before it can be handled
bool fetch = false;
if (error_message_starts_with("invalid string: surrogate")
|| error_message_starts_with("invalid string: '\\u'")
|| (error_message_starts_with("invalid string: ill-formed UTF-8")
&& remove_incomplete_utf8_sequence()))
{
add_replacement_character();
}
switch (resume)
{
case resume_kind::escaped_character:
fetch = recover_escape();
break;
case resume_kind::after_escape:
if (0xD800 <= codepoint && codepoint <= 0xDBFF)
{
fetch = recover_low_surrogate(codepoint);
}
else
{
if (codepoint != -1)
{
add_escaped_codepoint(codepoint);
}
fetch = true;
}
break;
case resume_kind::character:
default:
break;
}
while (true)
{
if (fetch)
{
get();
}
fetch = true;
switch (current)
{
case '\"':
// a line break or the end of the input ends a string that
// lacks its closing quote
case '\n':
case '\r':
case char_traits<char_type>::eof():
return token_type::value_string;
#if !JSON_STRICT_NUL_HANDLING
case '\0':
// the end of the input, see scan()
unget();
return token_type::value_string;
#endif
case '\\':
get();
fetch = recover_escape();
break;
default:
if (current < 0x80)
{
// including control characters
add(current);
}
else
{
fetch = recover_utf8_sequence();
}
break;
}
}
}
/*!
@brief keep the longest valid prefix of a number that scan_number() rejected
token_buffer holds the characters scan_number() accepted before the error,
so the prefix ends at its last digit.
*/
token_type recover_number()
{
// only size(), operator[], and resize() are used, which every string
// type the library supports provides
std::size_t length = token_buffer.size();
while (length != 0 && (token_buffer[length - 1] < '0' || token_buffer[length - 1] > '9'))
{
--length;
}
token_buffer.resize(length);
if (length == 0)
{
skip_to_delimiter();
return token_type::uninitialized;
}
if (decimal_point_position >= length)
{
decimal_point_position = std::string::npos;
}
std::size_t exponent = std::string::npos;
for (std::size_t i = 0; i < length; ++i)
{
if (token_buffer[i] == 'e' || token_buffer[i] == 'E')
{
exponent = i;
break;
}
}
const std::size_t mantissa_end = (exponent == std::string::npos) ? length : exponent;
token_type number_type = token_type::value_unsigned;
if (decimal_point_position != std::string::npos || exponent != std::string::npos)
{
number_type = token_type::value_float;
}
else if (token_buffer[0] == '-')
{
number_type = token_type::value_integer;
}
const token_type result = convert_number(number_type, mantissa_end);
skip_to_delimiter();
return result;
}
/// seekable adapter: the token string begins at current, which was consumed
void restart_token_string_impl(std::true_type /*lazy*/) noexcept
{
const std::size_t consumed = ia.get_consumed_count();
token_string_start = (consumed > 0 && current != char_traits<char_type>::eof()) ? consumed - 1 : consumed;
}
/// streaming adapter: the token string begins at current; a character
/// that was put back is copied again when it is read again
void restart_token_string_impl(std::false_type /*lazy*/)
{
token_string.clear();
if (!next_unget && current != char_traits<char_type>::eof())
{
token_string.push_back(char_traits<char_type>::to_char_type(current));
}
}
private:
/// input adapter
InputAdapterType ia;
@@ -2721,13 +2140,6 @@ scan_number_done:
/// a description of occurred lexer errors
const char* error_message = "";
/// how recover_token() continues a string that scan_string() rejected;
/// set only on the error paths that need more than error_message
resume_kind string_error_resume = resume_kind::character;
/// the code point of the second escape when a high surrogate is followed
/// by an escape that is not a low surrogate; -1 otherwise
int string_error_codepoint = -1;
// number values
number_integer_t value_integer = 0;
number_unsigned_t value_unsigned = 0;
+50 -662
View File
@@ -139,59 +139,26 @@ class parser
bool accept(const bool strict = true)
{
json_sax_acceptor<BasicJsonType> sax_acceptor;
return sax_parse_impl<false>(&sax_acceptor, strict);
return sax_parse(&sax_acceptor, strict);
}
/*!
@brief public SAX interface
If the SAX parser's parse_error() returns true, the parser recovers from
the error: it repairs the input and continues (see #3989).
@param[in] sax the SAX parser
@param[in] strict whether to expect the last token to be EOF
@return whether the input was parsed without errors and no SAX event
returned false
*/
template<typename SAX>
JSON_HEDLEY_NON_NULL(2)
bool sax_parse(SAX* sax, const bool strict = true)
{
return sax_parse_impl<true>(sax, strict);
}
private:
/// what sax_parse_internal() does after an object key was expected
enum class next_step : std::uint8_t
{
/// stop parsing
stop,
/// parse a value that begins with last_token
parse_value,
/// evaluate the state of the innermost container, which reads
/// last_token again
evaluate_state
};
template<bool AllowRecovery, typename SAX>
JSON_HEDLEY_NON_NULL(2)
bool sax_parse_impl(SAX* sax, const bool strict)
{
(void)detail::is_sax_static_asserts<SAX, BasicJsonType> {};
const bool result = sax_parse_internal<AllowRecovery>(sax);
const bool result = sax_parse_internal(sax);
if (result)
{
if (strict)
{
// strict mode: next byte must be EOF; after recovering from an
// error, the end of the input may already have been read
if (last_token != token_type::end_of_input && get_token() != token_type::end_of_input)
// strict mode: next byte must be EOF
if (get_token() != token_type::end_of_input)
{
// the value is complete, so there is nothing to recover
static_cast<void>(report_error(sax, parse_error::create(101, m_lexer.get_position(), exception_message(token_type::end_of_input, "value"), nullptr),
std::integral_constant<bool, AllowRecovery> {}));
return false;
return sax->parse_error(m_lexer.get_position(),
m_lexer.get_token_string(),
parse_error::create(101, m_lexer.get_position(), exception_message(token_type::end_of_input, "value"), nullptr));
}
}
else
@@ -202,9 +169,10 @@ class parser
}
}
return result && !error_reported;
return result;
}
private:
/*!
@brief run a DOM SAX parser to completion and position the lexer
@@ -222,7 +190,7 @@ class parser
template<typename DomSax>
bool parse_dom(DomSax& sdp, const bool strict)
{
sax_parse_internal<false>(&sdp);
sax_parse_internal(&sdp);
if (strict)
{
@@ -245,20 +213,10 @@ class parser
return !sdp.is_errored();
}
/*!
@brief parse a JSON value and pass it to a SAX parser
@tparam AllowRecovery whether to recover from an error if the SAX parser's
parse_error() returns true; false for the SAX parsers
of parse() and accept(), which never do, so that no
code for recovering is generated for them
*/
template<bool AllowRecovery, typename SAX>
template<typename SAX>
JSON_HEDLEY_NON_NULL(2)
bool sax_parse_internal(SAX* sax)
{
const std::integral_constant<bool, AllowRecovery> allow_recovery{};
// stack to remember the hierarchy of structured values we are parsing
// true = array; false = object
std::vector<bool> states;
@@ -289,18 +247,12 @@ class parser
break;
}
// remember we are now inside an object
states.push_back(false);
// parse key (the steps of parse_key(), which are
// repeated here and below for speed)
// parse key
if (JSON_HEDLEY_UNLIKELY(last_token != token_type::value_string))
{
if (!continue_after(key_error(sax, allow_recovery, false), skip_to_state_evaluation))
{
return false;
}
continue;
return sax->parse_error(m_lexer.get_position(),
m_lexer.get_token_string(),
parse_error::create(101, m_lexer.get_position(), exception_message(token_type::value_string, "object key"), nullptr));
}
if (JSON_HEDLEY_UNLIKELY(!sax->key(m_lexer.get_string())))
{
@@ -310,13 +262,14 @@ class parser
// parse separator (:)
if (JSON_HEDLEY_UNLIKELY(get_token() != token_type::name_separator))
{
if (!continue_after(key_error(sax, allow_recovery, true), skip_to_state_evaluation))
{
return false;
}
continue;
return sax->parse_error(m_lexer.get_position(),
m_lexer.get_token_string(),
parse_error::create(101, m_lexer.get_position(), exception_message(token_type::name_separator, "object separator"), nullptr));
}
// remember we are now inside an object
states.push_back(false);
// parse values
get_token();
continue;
@@ -352,11 +305,9 @@ class parser
if (JSON_HEDLEY_UNLIKELY(!std::isfinite(res)))
{
if (!overflow_error(sax, res, allow_recovery))
{
return false;
}
break;
return sax->parse_error(m_lexer.get_position(),
m_lexer.get_token_string(),
out_of_range::create(406, concat("number overflow parsing '", m_lexer.get_token_string(), '\''), nullptr));
}
if (JSON_HEDLEY_UNLIKELY(!sax->number_float(res, m_lexer.get_string())))
@@ -424,63 +375,23 @@ class parser
case token_type::parse_error:
{
// using "uninitialized" to avoid an "expected" message
if (!report_error(sax, parse_error::create(101, m_lexer.get_position(), exception_message(token_type::uninitialized, "value"), nullptr), allow_recovery))
{
return false;
}
// recover: keep what can be read of the token
recover_token();
if (last_token != token_type::uninitialized)
{
// a string or a number
continue;
}
if (states.empty())
{
// look for the value after the garbage
if (!skip_to_value())
{
return false;
}
continue;
}
// nothing could be read
if (JSON_HEDLEY_UNLIKELY(!sax->null()))
{
return false;
}
break;
return sax->parse_error(m_lexer.get_position(),
m_lexer.get_token_string(),
parse_error::create(101, m_lexer.get_position(), exception_message(token_type::uninitialized, "value"), nullptr));
}
case token_type::end_of_input:
{
if (JSON_HEDLEY_UNLIKELY(m_lexer.get_position().chars_read_total == 1))
{
// there is nothing to recover
static_cast<void>(report_error(sax, parse_error::create(101, m_lexer.get_position(),
"attempting to parse an empty input; check that your input string or stream contains the expected JSON", nullptr), allow_recovery));
return false;
return sax->parse_error(m_lexer.get_position(),
m_lexer.get_token_string(),
parse_error::create(101, m_lexer.get_position(),
"attempting to parse an empty input; check that your input string or stream contains the expected JSON", nullptr));
}
if (!report_error(sax, parse_error::create(101, m_lexer.get_position(), exception_message(token_type::literal_or_value, "value"), nullptr), allow_recovery))
{
return false;
}
// recover: the input ends where a value is missing
if (states.empty())
{
// there is no value
return false;
}
if (!recover_missing_value(sax, states))
{
return false;
}
// the state evaluation reads the token again
m_lexer.unget_token();
skip_to_state_evaluation = true;
continue;
return sax->parse_error(m_lexer.get_position(),
m_lexer.get_token_string(),
parse_error::create(101, m_lexer.get_position(), exception_message(token_type::literal_or_value, "value"), nullptr));
}
case token_type::uninitialized:
case token_type::end_array:
@@ -490,35 +401,9 @@ class parser
case token_type::literal_or_value:
default: // the last token was unexpected
{
if (!report_error(sax, parse_error::create(101, m_lexer.get_position(), exception_message(token_type::literal_or_value, "value"), nullptr), allow_recovery))
{
return false;
}
// recover
if (states.empty())
{
// look for the value after the garbage
if (!skip_to_value())
{
return false;
}
continue;
}
if (last_token == token_type::name_separator)
{
// a stray ':'; the value may follow
get_token();
continue;
}
if (!recover_missing_value(sax, states))
{
return false;
}
// the state evaluation reads the token again
m_lexer.unget_token();
skip_to_state_evaluation = true;
continue;
return sax->parse_error(m_lexer.get_position(),
m_lexer.get_token_string(),
parse_error::create(101, m_lexer.get_position(), exception_message(token_type::literal_or_value, "value"), nullptr));
}
}
}
@@ -569,30 +454,9 @@ class parser
continue;
}
if (!report_error(sax, parse_error::create(101, m_lexer.get_position(), exception_message(token_type::end_array, "array"), nullptr), allow_recovery))
{
return false;
}
// recover
if (last_token == token_type::end_of_input)
{
// the input ends inside the array
return close_containers(sax, states);
}
if (last_token == token_type::end_object)
{
// a wrong closing bracket closes the innermost container
if (JSON_HEDLEY_UNLIKELY(!sax->end_array()))
{
return false;
}
states.pop_back();
skip_to_state_evaluation = true;
}
// otherwise, a missing ',' (or a stray ':', which value
// parsing drops): the next value begins here
continue;
return sax->parse_error(m_lexer.get_position(),
m_lexer.get_token_string(),
parse_error::create(101, m_lexer.get_position(), exception_message(token_type::end_array, "array"), nullptr));
}
// states.back() is false -> object
@@ -609,12 +473,11 @@ class parser
// parse key
if (JSON_HEDLEY_UNLIKELY(last_token != token_type::value_string))
{
if (!continue_after(key_error(sax, allow_recovery, false), skip_to_state_evaluation))
{
return false;
}
continue;
return sax->parse_error(m_lexer.get_position(),
m_lexer.get_token_string(),
parse_error::create(101, m_lexer.get_position(), exception_message(token_type::value_string, "object key"), nullptr));
}
if (JSON_HEDLEY_UNLIKELY(!sax->key(m_lexer.get_string())))
{
return false;
@@ -623,11 +486,9 @@ class parser
// parse separator (:)
if (JSON_HEDLEY_UNLIKELY(get_token() != token_type::name_separator))
{
if (!continue_after(key_error(sax, allow_recovery, true), skip_to_state_evaluation))
{
return false;
}
continue;
return sax->parse_error(m_lexer.get_position(),
m_lexer.get_token_string(),
parse_error::create(101, m_lexer.get_position(), exception_message(token_type::name_separator, "object separator"), nullptr));
}
// parse values
@@ -655,479 +516,12 @@ class parser
continue;
}
if (!report_error(sax, parse_error::create(101, m_lexer.get_position(), exception_message(token_type::end_object, "object"), nullptr), allow_recovery))
{
return false;
}
// recover
if (last_token == token_type::end_of_input)
{
// the input ends inside the object
return close_containers(sax, states);
}
if (last_token == token_type::end_array)
{
// a wrong closing bracket closes the innermost container
if (JSON_HEDLEY_UNLIKELY(!sax->end_object()))
{
return false;
}
states.pop_back();
skip_to_state_evaluation = true;
continue;
}
if (!continue_after(recover_member(sax, allow_recovery), skip_to_state_evaluation))
{
return false;
}
return sax->parse_error(m_lexer.get_position(),
m_lexer.get_token_string(),
parse_error::create(101, m_lexer.get_position(), exception_message(token_type::end_object, "object"), nullptr));
}
}
/*!
@brief continue sax_parse_internal() after a recovery
@return whether to continue parsing
*/
bool continue_after(const next_step step, bool& skip_to_state_evaluation)
{
if (step == next_step::evaluate_state)
{
// the state evaluation reads the token again
m_lexer.unget_token();
skip_to_state_evaluation = true;
}
return step != next_step::stop;
}
/// the parser for parse() and accept() never recovers: stop parsing
static std::false_type continue_after(std::false_type /*step*/, bool& /*skip_to_state_evaluation*/) noexcept
{
return {};
}
/*!
@brief parse an object key and the name separator (:) after it
last_token is the token where the key is expected. sax_parse_internal()
repeats these steps rather than calling this function, which is used
when recovering from an error.
@return next_step::parse_value if the value follows, with last_token its
first token; next_step::evaluate_state if the object's state is
to be evaluated after recovering from an error; next_step::stop
to stop parsing
*/
template<typename SAX>
next_step parse_key(SAX* sax)
{
const std::true_type allow_recovery{};
if (JSON_HEDLEY_UNLIKELY(last_token != token_type::value_string))
{
return key_error(sax, allow_recovery, false);
}
if (JSON_HEDLEY_UNLIKELY(!sax->key(m_lexer.get_string())))
{
return next_step::stop;
}
// parse separator (:)
if (JSON_HEDLEY_UNLIKELY(get_token() != token_type::name_separator))
{
return key_error(sax, allow_recovery, true);
}
// the value begins with the next token
get_token();
return next_step::parse_value;
}
/*!
@brief report a number that is too large for number_float_t, and recover
from the error by passing the value on; the SAX parser gets the
number's text as well
This is a separate function, as reading other numbers is measurably
slower if the error is handled where they are read.
@param[in] sax the SAX parser
@param[in] value the value that is not finite
@return whether to continue parsing
*/
template<typename SAX, typename AllowRecovery>
bool overflow_error(SAX* sax, const number_float_t value, AllowRecovery allow_recovery)
{
if (!report_error(sax, out_of_range::create(406, concat("number overflow parsing '", m_lexer.get_token_string(), '\''), nullptr), allow_recovery))
{
return false;
}
return sax->number_float(value, m_lexer.get_string());
}
/*!
@brief report a missing key, or a missing name separator (:) after the
key; the parser for parse() and accept() never recovers
@param[in] key_read whether the key was read, so that the name separator
is missing
@return std::false_type, see report_error()
*/
template<typename SAX>
std::false_type key_error(SAX* sax, std::false_type allow_recovery, const bool key_read)
{
return report_error(sax, parse_error::create(101, m_lexer.get_position(), key_read
? exception_message(token_type::name_separator, "object separator")
: exception_message(token_type::value_string, "object key"), nullptr), allow_recovery);
}
/*!
@brief report a missing key, or a missing name separator (:) after the
key, and recover from it
@param[in] key_read whether the key was read, so that the name separator
is missing
*/
template<typename SAX>
next_step key_error(SAX* sax, std::true_type allow_recovery, const bool key_read)
{
if (!key_read)
{
if (!report_error(sax, parse_error::create(101, m_lexer.get_position(), exception_message(token_type::value_string, "object key"), nullptr), allow_recovery))
{
return next_step::stop;
}
return recover_key(sax);
}
if (!report_error(sax, parse_error::create(101, m_lexer.get_position(), exception_message(token_type::name_separator, "object separator"), nullptr), allow_recovery))
{
return next_step::stop;
}
return recover_name_separator(sax);
}
/////////////////////
// error recovery
/////////////////////
/*
The functions below repair an error after the SAX parser's parse_error()
returned true (see #3989). Each mistake is repaired by the smallest local
edit: a missing ',' or ':' is inserted, a stray token is removed, what can
be read of an invalid string or number is kept (see
lexer::recover_token()), a missing value becomes null, a wrong closing
bracket closes the innermost container, and the end of the input closes
all of them. The events stay balanced, and every key() is followed by
exactly one value.
A repair hands a token to the state evaluation, by returning it to the
lexer (lexer::unget_token()) so that the state evaluation reads it again,
only if it is ',', ']', '}', or the end of the input. The state evaluation
hands a token to value or key parsing only if it is none of them, so a
token is never handed back and forth. Every other step reads a token or
closes a container, so parsing always ends.
*/
/*!
@brief report an error to the SAX parser; the parser for parse() and
accept() never recovers
@return std::false_type rather than false: its value is known where the
function is called even if the call is not inlined, so the code
for recovering is not generated
*/
template<typename SAX, typename Exception>
std::false_type report_error(SAX* sax, const Exception& ex, std::false_type /*allow_recovery*/)
{
error_reported = true;
static_cast<void>(sax->parse_error(m_lexer.get_position(), m_lexer.get_token_string(), ex));
return {};
}
/*!
@brief report an error to the SAX parser
@return whether to recover from the error
*/
template<typename SAX, typename Exception>
bool report_error(SAX* sax, const Exception& ex, std::true_type /*allow_recovery*/)
{
const std::size_t position = m_lexer.get_position().chars_read_total;
if (error_reported && position == last_error_position && last_token == last_error_token)
{
// a repair handed on the token of the error it repaired; the
// token was reported already, and the SAX parser asked to recover
return true;
}
error_reported = true;
last_error_position = position;
last_error_token = last_token;
if (!sax->parse_error(m_lexer.get_position(), m_lexer.get_token_string(), ex))
{
return false;
}
// the token string of the next error begins here
m_lexer.restart_token_string();
return true;
}
/*!
@brief keep what can be read of the token that the lexer rejected
The error was reported for the rejected token, so it is not reported again
for the token it is repaired to (see lexer::recover_token()).
*/
token_type recover_token()
{
last_token = m_lexer.recover_token();
last_error_position = m_lexer.get_position().chars_read_total;
last_error_token = last_token;
return last_token;
}
/// pass the end events of all open containers
template<typename SAX>
bool close_containers(SAX* sax, std::vector<bool>& states)
{
while (!states.empty())
{
const bool is_array = states.back();
states.pop_back();
if (JSON_HEDLEY_UNLIKELY(is_array ? !sax->end_array() : !sax->end_object()))
{
return false;
}
}
return true;
}
/*!
@brief read tokens until one begins a value, skipping everything before
the top-level value
@return whether a value begins with last_token
*/
bool skip_to_value()
{
while (true)
{
switch (get_token())
{
case token_type::begin_array:
case token_type::begin_object:
case token_type::literal_false:
case token_type::literal_null:
case token_type::literal_true:
case token_type::value_float:
case token_type::value_integer:
case token_type::value_string:
case token_type::value_unsigned:
return true;
case token_type::end_of_input:
return false;
case token_type::parse_error:
recover_token();
if (last_token != token_type::uninitialized)
{
return true;
}
break;
case token_type::uninitialized:
case token_type::end_array:
case token_type::end_object:
case token_type::name_separator:
case token_type::value_separator:
case token_type::literal_or_value:
default:
break;
}
}
}
/*!
@brief skip the rest of an object member that cannot be read
Reads tokens, beginning with last_token, until a ',', '}', or ']' that is
not inside a container that begins in the skipped tokens, or the end of
the input.
*/
void skip_member()
{
std::size_t depth = 0;
while (true)
{
switch (last_token)
{
case token_type::begin_array:
case token_type::begin_object:
++depth;
break;
case token_type::end_array:
case token_type::end_object:
if (depth == 0)
{
return;
}
--depth;
break;
case token_type::value_separator:
if (depth == 0)
{
return;
}
break;
case token_type::end_of_input:
return;
case token_type::parse_error:
recover_token();
break;
case token_type::uninitialized:
case token_type::literal_true:
case token_type::literal_false:
case token_type::literal_null:
case token_type::value_string:
case token_type::value_unsigned:
case token_type::value_integer:
case token_type::value_float:
case token_type::name_separator:
case token_type::literal_or_value:
default:
break;
}
get_token();
}
}
/*!
@brief pass a value where it is missing
last_token is ',', ']', '}', or the end of the input, where a value was
expected. In an object, the key gets null; in an array, a ',' where a
value is missing stands for null (as in JavaScript), while an array that
ends there just ends.
*/
template<typename SAX>
bool recover_missing_value(SAX* sax, const std::vector<bool>& states)
{
JSON_ASSERT(!states.empty());
if (!states.back() || last_token == token_type::value_separator)
{
return sax->null();
}
return true;
}
/// recover from a missing key; last_token is where it was expected
template<typename SAX>
next_step recover_key(SAX* sax)
{
switch (last_token)
{
case token_type::value_separator:
case token_type::end_object:
case token_type::end_array:
case token_type::end_of_input:
// no member: the object's state handles the token
return next_step::evaluate_state;
case token_type::parse_error:
recover_token();
if (last_token == token_type::value_string)
{
// a key that could be repaired
return parse_key(sax);
}
skip_member();
return next_step::evaluate_state;
case token_type::uninitialized:
case token_type::literal_true:
case token_type::literal_false:
case token_type::literal_null:
case token_type::value_string:
case token_type::value_unsigned:
case token_type::value_integer:
case token_type::value_float:
case token_type::begin_array:
case token_type::begin_object:
case token_type::name_separator:
case token_type::literal_or_value:
default:
// a member without a key
skip_member();
return next_step::evaluate_state;
}
}
/// recover from a missing name separator (:) after the key; last_token
/// is where it was expected
template<typename SAX>
next_step recover_name_separator(SAX* sax)
{
switch (last_token)
{
case token_type::value_separator:
case token_type::end_object:
case token_type::end_array:
case token_type::end_of_input:
// the value is missing as well
return sax->null() ? next_step::evaluate_state : next_step::stop;
case token_type::uninitialized:
case token_type::literal_true:
case token_type::literal_false:
case token_type::literal_null:
case token_type::value_string:
case token_type::value_unsigned:
case token_type::value_integer:
case token_type::value_float:
case token_type::begin_array:
case token_type::begin_object:
case token_type::name_separator:
case token_type::parse_error:
case token_type::literal_or_value:
default:
// a missing ':'; the value begins here
return next_step::parse_value;
}
}
/// recover from a token after an object member that is neither ',' nor
/// '}' (nor ']' or the end of the input, which the caller handles)
template<typename SAX>
next_step recover_member(SAX* sax, std::true_type /*allow_recovery*/)
{
if (last_token == token_type::parse_error)
{
recover_token();
}
if (last_token == token_type::value_string)
{
// a missing ','; the next key begins here
return parse_key(sax);
}
skip_member();
return next_step::evaluate_state;
}
/// the parser for parse() and accept() never recovers (and does not come
/// here, as report_error() returned false)
template<typename SAX>
std::false_type recover_member(SAX* /*sax*/, std::false_type /*allow_recovery*/) const noexcept
{
return {};
}
/// get next token from lexer
token_type get_token()
{
@@ -1174,12 +568,6 @@ class parser
const bool allow_exceptions = true;
/// whether trailing commas in objects and arrays should be ignored (true) or signaled as errors (false)
const bool ignore_trailing_commas = false;
/// whether an error was reported to the SAX parser
bool error_reported = false;
/// the position of the last reported error
std::size_t last_error_position = 0;
/// the token of the last reported error
token_type last_error_token = token_type::uninitialized;
};
} // namespace detail
+28
View File
@@ -79,11 +79,15 @@ class json_pointer
/// @brief return a string representation of the JSON pointer
/// @sa https://json.nlohmann.me/api/json_pointer/operator_string_t/
#if JSON_DELETE_DEPRECATED_FUNCTIONS
operator string_t() const = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.0, to_string())
operator string_t() const
{
return to_string();
}
#endif
#ifndef JSON_NO_IO
/// @brief write string representation of the JSON pointer to stream
@@ -1016,11 +1020,15 @@ class json_pointer
/// @brief compares JSON pointer and string for equality
/// @sa https://json.nlohmann.me/api/json_pointer/operator_eq/
#if JSON_DELETE_DEPRECATED_FUNCTIONS
bool operator==(const string_t& rhs) const = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.2, operator==(json_pointer))
bool operator==(const string_t& rhs) const
{
return *this == json_pointer(rhs);
}
#endif
/// @brief 3-way compares two JSON pointers
template<typename RefStringTypeRhs>
@@ -1095,21 +1103,31 @@ inline bool operator==(const json_pointer<RefStringTypeLhs>& lhs,
template<typename RefStringTypeLhs,
typename StringType = typename json_pointer<RefStringTypeLhs>::string_t>
#if JSON_DELETE_DEPRECATED_FUNCTIONS
inline bool operator==(const json_pointer<RefStringTypeLhs>& lhs,
const StringType& rhs) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.2, operator==(json_pointer, json_pointer))
inline bool operator==(const json_pointer<RefStringTypeLhs>& lhs,
const StringType& rhs)
{
return lhs == json_pointer<RefStringTypeLhs>(rhs);
}
#endif
template<typename RefStringTypeRhs,
typename StringType = typename json_pointer<RefStringTypeRhs>::string_t>
#if JSON_DELETE_DEPRECATED_FUNCTIONS
inline bool operator==(const StringType& lhs,
const json_pointer<RefStringTypeRhs>& rhs) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.2, operator==(json_pointer, json_pointer))
inline bool operator==(const StringType& lhs,
const json_pointer<RefStringTypeRhs>& rhs)
{
return json_pointer<RefStringTypeRhs>(lhs) == rhs;
}
#endif
template<typename RefStringTypeLhs, typename RefStringTypeRhs>
inline bool operator!=(const json_pointer<RefStringTypeLhs>& lhs,
@@ -1120,21 +1138,31 @@ inline bool operator!=(const json_pointer<RefStringTypeLhs>& lhs,
template<typename RefStringTypeLhs,
typename StringType = typename json_pointer<RefStringTypeLhs>::string_t>
#if JSON_DELETE_DEPRECATED_FUNCTIONS
inline bool operator!=(const json_pointer<RefStringTypeLhs>& lhs,
const StringType& rhs) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.2, operator!=(json_pointer, json_pointer))
inline bool operator!=(const json_pointer<RefStringTypeLhs>& lhs,
const StringType& rhs)
{
return !(lhs == rhs);
}
#endif
template<typename RefStringTypeRhs,
typename StringType = typename json_pointer<RefStringTypeRhs>::string_t>
#if JSON_DELETE_DEPRECATED_FUNCTIONS
inline bool operator!=(const StringType& lhs,
const json_pointer<RefStringTypeRhs>& rhs) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.2, operator!=(json_pointer, json_pointer))
inline bool operator!=(const StringType& lhs,
const json_pointer<RefStringTypeRhs>& rhs)
{
return !(lhs == rhs);
}
#endif
template<typename RefStringTypeLhs, typename RefStringTypeRhs>
inline bool operator<(const json_pointer<RefStringTypeLhs>& lhs,
+4
View File
@@ -888,6 +888,10 @@
#define JSON_DISABLE_ENUM_SERIALIZATION 0
#endif
#ifndef JSON_DELETE_DEPRECATED_FUNCTIONS
#define JSON_DELETE_DEPRECATED_FUNCTIONS 0
#endif
#ifndef JSON_DISABLE_TUPLE_REFERENCE_CONVERSION
#define JSON_DISABLE_TUPLE_REFERENCE_CONVERSION 0
#endif
@@ -43,6 +43,7 @@
#undef JSON_PRECISE_STREAM_POSITION
#undef JSON_STRICT_NUL_HANDLING
#undef JSON_STRICT_BINARY_UTF8
#undef JSON_DELETE_DEPRECATED_FUNCTIONS
#endif
#include <nlohmann/thirdparty/hedley/hedley_undef.hpp>
-1
View File
@@ -13,7 +13,6 @@
#include <cstddef> // size_t
#include <cstdint> // uint8_t, uint32_t
#include <string> // string, to_string
#include <utility> // move
#include <nlohmann/detail/abi_macros.hpp>
#include <nlohmann/detail/macro_scope.hpp>
+153 -4
View File
@@ -149,7 +149,7 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
friend class ::nlohmann::detail::iter_impl;
template<typename BasicJsonType, typename CharType, typename OutputSinkType>
friend class ::nlohmann::detail::binary_writer;
template<typename BasicJsonType, typename InputType, typename SAX, bool AllowRecovery>
template<typename BasicJsonType, typename InputType, typename SAX>
friend class ::nlohmann::detail::binary_reader;
template<typename BasicJsonType, typename InputAdapterType>
friend class ::nlohmann::detail::json_sax_dom_parser;
@@ -3470,22 +3470,30 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
detail::is_basic_json<BasicJsonType>::value
&& detail::is_getable<basic_json_t, ValueType>::value
&& !std::is_same<value_t, detail::uncvref_t<ValueType>>::value, int > = 0 >
#if JSON_DELETE_DEPRECATED_FUNCTIONS
ValueType value(const ::nlohmann::json_pointer<BasicJsonType>& ptr, const ValueType& default_value) const = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.0, basic_json::json_pointer or nlohmann::json_pointer<basic_json::string_t>) // NOLINT(readability/alt_tokens)
ValueType value(const ::nlohmann::json_pointer<BasicJsonType>& ptr, const ValueType& default_value) const
{
return value(ptr.convert(), default_value);
}
#endif
template < class ValueType, class BasicJsonType, class ReturnType = typename value_return_type<ValueType>::type,
detail::enable_if_t <
detail::is_basic_json<BasicJsonType>::value
&& detail::is_getable<basic_json_t, ReturnType>::value
&& !std::is_same<value_t, detail::uncvref_t<ValueType>>::value, int > = 0 >
#if JSON_DELETE_DEPRECATED_FUNCTIONS
ReturnType value(const ::nlohmann::json_pointer<BasicJsonType>& ptr, ValueType && default_value) const = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.0, basic_json::json_pointer or nlohmann::json_pointer<basic_json::string_t>) // NOLINT(readability/alt_tokens)
ReturnType value(const ::nlohmann::json_pointer<BasicJsonType>& ptr, ValueType && default_value) const
{
return value(ptr.convert(), std::forward<ValueType>(default_value));
}
#endif
/// @brief access the first element
/// @sa https://json.nlohmann.me/api/basic_json/front/
@@ -3841,11 +3849,15 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
template<typename BasicJsonType, detail::enable_if_t<detail::is_basic_json<BasicJsonType>::value, int> = 0>
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
bool contains(const typename ::nlohmann::json_pointer<BasicJsonType>& ptr) const = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.0, basic_json::json_pointer or nlohmann::json_pointer<basic_json::string_t>) // NOLINT(readability/alt_tokens)
bool contains(const typename ::nlohmann::json_pointer<BasicJsonType>& ptr) const
{
return ptr.contains(this);
}
#endif
/// @}
@@ -3954,22 +3966,30 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
/// @deprecated This function is deprecated since 3.1.0 and will be removed in
/// version 4.0.0 of the library. Please use @ref items() instead;
/// that is, replace `json::iterator_wrapper(j)` with `j.items()`.
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static iteration_proxy<iterator> iterator_wrapper(reference ref) noexcept = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.1.0, items())
static iteration_proxy<iterator> iterator_wrapper(reference ref) noexcept
{
return ref.items();
}
#endif
/// @brief wrapper to access iterator member functions in range-based for
/// @sa https://json.nlohmann.me/api/basic_json/items/
/// @deprecated This function is deprecated since 3.1.0 and will be removed in
/// version 4.0.0 of the library. Please use @ref items() instead;
/// that is, replace `json::iterator_wrapper(j)` with `j.items()`.
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static iteration_proxy<const_iterator> iterator_wrapper(const_reference ref) noexcept = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.1.0, items())
static iteration_proxy<const_iterator> iterator_wrapper(const_reference ref) noexcept
{
return ref.items();
}
#endif
/// @brief helper to access iterator member functions in range-based for
/// @sa https://json.nlohmann.me/api/basic_json/items/
@@ -5285,11 +5305,15 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
/// version 4.0.0 of the library. Please use
/// operator<<(std::ostream&, const basic_json&) instead; that is,
/// replace calls like `j >> o;` with `o << j;`.
#if JSON_DELETE_DEPRECATED_FUNCTIONS
friend std::ostream& operator>>(const basic_json& j, std::ostream& o) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.0.0, operator<<(std::ostream&, const basic_json&))
friend std::ostream& operator>>(const basic_json& j, std::ostream& o)
{
return o << j;
}
#endif
#endif // JSON_NO_IO
/// @}
@@ -5335,6 +5359,13 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
}
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static basic_json parse(detail::span_input_adapter&& i,
parser_callback_t cb = nullptr,
const bool allow_exceptions = true,
const bool ignore_comments = false,
const bool ignore_trailing_commas = false) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.8.0, parse(ptr, ptr + len))
static basic_json parse(detail::span_input_adapter&& i,
parser_callback_t cb = nullptr,
@@ -5347,6 +5378,7 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
p.parse(true, result);
return result;
}
#endif
/// @brief check if the input is valid JSON
/// @sa https://json.nlohmann.me/api/basic_json/accept/
@@ -5372,6 +5404,11 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
}
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static bool accept(detail::span_input_adapter&& i,
const bool ignore_comments = false,
const bool ignore_trailing_commas = false) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.8.0, accept(ptr, ptr + len))
static bool accept(detail::span_input_adapter&& i,
const bool ignore_comments = false,
@@ -5379,6 +5416,7 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
{
return parser(i.get(), nullptr, false, ignore_comments, ignore_trailing_commas, true).accept(true);
}
#endif
/// @brief generate SAX events
/// @sa https://json.nlohmann.me/api/basic_json/sax_parse/
@@ -5393,7 +5431,7 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
auto ia = detail::input_adapter(std::forward<InputType>(i));
return format == input_format_t::json
? parser(std::move(ia), nullptr, true, ignore_comments, ignore_trailing_commas).sax_parse(sax, strict)
: detail::binary_reader<basic_json, decltype(ia), SAX, true>(std::move(ia), format).sax_parse(sax, strict);
: detail::binary_reader<basic_json, decltype(ia), SAX>(std::move(ia), format).sax_parse(sax, strict);
}
/// @brief generate SAX events (iterator pair, or iterator+sentinel pair for C++20 ranges support)
@@ -5410,7 +5448,7 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
auto ia = detail::input_adapter(std::move(first), std::move(last));
return format == input_format_t::json
? parser(std::move(ia), nullptr, true, ignore_comments, ignore_trailing_commas).sax_parse(sax, strict)
: detail::binary_reader<basic_json, decltype(ia), SAX, true>(std::move(ia), format).sax_parse(sax, strict);
: detail::binary_reader<basic_json, decltype(ia), SAX>(std::move(ia), format).sax_parse(sax, strict);
}
/// @brief generate SAX events
@@ -5432,6 +5470,14 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
#pragma clang diagnostic ignored "-Wdocumentation-deprecated-sync"
#endif
template <typename SAX>
#if JSON_DELETE_DEPRECATED_FUNCTIONS
JSON_HEDLEY_NON_NULL(2)
static bool sax_parse(detail::span_input_adapter&& i, SAX* sax,
input_format_t format = input_format_t::json,
const bool strict = true,
const bool ignore_comments = false,
const bool ignore_trailing_commas = false) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.8.0, sax_parse(ptr, ptr + len, ...))
JSON_HEDLEY_NON_NULL(2)
static bool sax_parse(detail::span_input_adapter&& i, SAX* sax,
@@ -5445,8 +5491,9 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
// NOLINTNEXTLINE(hicpp-move-const-arg,performance-move-const-arg)
? parser(std::move(ia), nullptr, true, ignore_comments, ignore_trailing_commas).sax_parse(sax, strict)
// NOLINTNEXTLINE(hicpp-move-const-arg,performance-move-const-arg)
: detail::binary_reader<basic_json, decltype(ia), SAX, true>(std::move(ia), format).sax_parse(sax, strict);
: detail::binary_reader<basic_json, decltype(ia), SAX>(std::move(ia), format).sax_parse(sax, strict);
}
#endif
#if defined(__clang__)
#pragma clang diagnostic pop
#endif
@@ -5457,11 +5504,15 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
/// version 4.0.0 of the library. Please use
/// operator>>(std::istream&, basic_json&) instead; that is,
/// replace calls like `j << i;` with `i >> j;`.
#if JSON_DELETE_DEPRECATED_FUNCTIONS
friend std::istream& operator<<(basic_json& j, std::istream& i) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.0.0, operator>>(std::istream&, basic_json&))
friend std::istream& operator<<(basic_json& j, std::istream& i)
{
return operator>>(i, j);
}
#endif
/// @brief deserialize from stream
/// @sa https://json.nlohmann.me/api/operator_gtgt/
@@ -5804,6 +5855,12 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
template<typename T>
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static basic_json from_cbor(const T* ptr, std::size_t len,
const bool strict = true,
const bool allow_exceptions = true,
const cbor_tag_handler_t tag_handler = cbor_tag_handler_t::error) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.8.0, from_cbor(ptr, ptr + len))
static basic_json from_cbor(const T* ptr, std::size_t len,
const bool strict = true,
@@ -5812,8 +5869,15 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
{
return from_cbor(ptr, ptr + len, strict, allow_exceptions, tag_handler);
}
#endif
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static basic_json from_cbor(detail::span_input_adapter&& i,
const bool strict = true,
const bool allow_exceptions = true,
const cbor_tag_handler_t tag_handler = cbor_tag_handler_t::error) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.8.0, from_cbor(ptr, ptr + len))
static basic_json from_cbor(detail::span_input_adapter&& i,
const bool strict = true,
@@ -5822,6 +5886,7 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
{
return from_binary_impl(i.get(), input_format_t::cbor, strict, allow_exceptions, error_handler_t::keep, tag_handler);
}
#endif
/// @brief create a JSON value from an input in MessagePack format
/// @sa https://json.nlohmann.me/api/basic_json/from_msgpack/
@@ -5850,6 +5915,11 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
template<typename T>
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static basic_json from_msgpack(const T* ptr, std::size_t len,
const bool strict = true,
const bool allow_exceptions = true) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.8.0, from_msgpack(ptr, ptr + len))
static basic_json from_msgpack(const T* ptr, std::size_t len,
const bool strict = true,
@@ -5857,8 +5927,14 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
{
return from_msgpack(ptr, ptr + len, strict, allow_exceptions);
}
#endif
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static basic_json from_msgpack(detail::span_input_adapter&& i,
const bool strict = true,
const bool allow_exceptions = true) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.8.0, from_msgpack(ptr, ptr + len))
static basic_json from_msgpack(detail::span_input_adapter&& i,
const bool strict = true,
@@ -5866,6 +5942,7 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
{
return from_binary_impl(i.get(), input_format_t::msgpack, strict, allow_exceptions);
}
#endif
/// @brief create a JSON value from an input in UBJSON format
/// @sa https://json.nlohmann.me/api/basic_json/from_ubjson/
@@ -5894,6 +5971,11 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
template<typename T>
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static basic_json from_ubjson(const T* ptr, std::size_t len,
const bool strict = true,
const bool allow_exceptions = true) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.8.0, from_ubjson(ptr, ptr + len))
static basic_json from_ubjson(const T* ptr, std::size_t len,
const bool strict = true,
@@ -5901,8 +5983,14 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
{
return from_ubjson(ptr, ptr + len, strict, allow_exceptions);
}
#endif
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static basic_json from_ubjson(detail::span_input_adapter&& i,
const bool strict = true,
const bool allow_exceptions = true) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.8.0, from_ubjson(ptr, ptr + len))
static basic_json from_ubjson(detail::span_input_adapter&& i,
const bool strict = true,
@@ -5910,6 +5998,7 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
{
return from_binary_impl(i.get(), input_format_t::ubjson, strict, allow_exceptions);
}
#endif
/// @brief create a JSON value from an input in BJData format
/// @sa https://json.nlohmann.me/api/basic_json/from_bjdata/
@@ -5936,6 +6025,22 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
return from_binary_impl(detail::input_adapter(std::move(first), std::move(last)), input_format_t::bjdata, strict, allow_exceptions, error_handler);
}
template<typename T>
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static basic_json from_bjdata(const T* ptr, std::size_t len,
const bool strict = true,
const bool allow_exceptions = true) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.13.0, from_bjdata(ptr, ptr + len))
static basic_json from_bjdata(const T* ptr, std::size_t len,
const bool strict = true,
const bool allow_exceptions = true)
{
return from_bjdata(ptr, ptr + len, strict, allow_exceptions);
}
#endif
/// @brief create a JSON value from an input in BON8 format
/// @sa https://json.nlohmann.me/api/basic_json/from_bon8/
template<typename InputType>
@@ -5959,6 +6064,22 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
return from_binary_impl(detail::input_adapter(std::move(first), std::move(last)), input_format_t::bon8, strict, allow_exceptions);
}
template<typename T>
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static basic_json from_bon8(const T* ptr, std::size_t len,
const bool strict = true,
const bool allow_exceptions = true) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.13.0, from_bon8(ptr, ptr + len))
static basic_json from_bon8(const T* ptr, std::size_t len,
const bool strict = true,
const bool allow_exceptions = true)
{
return from_bon8(ptr, ptr + len, strict, allow_exceptions);
}
#endif
/// @brief create a JSON value from an input in BSON format
/// @sa https://json.nlohmann.me/api/basic_json/from_bson/
template<typename InputType>
@@ -5986,6 +6107,11 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
template<typename T>
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static basic_json from_bson(const T* ptr, std::size_t len,
const bool strict = true,
const bool allow_exceptions = true) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.8.0, from_bson(ptr, ptr + len))
static basic_json from_bson(const T* ptr, std::size_t len,
const bool strict = true,
@@ -5993,8 +6119,14 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
{
return from_bson(ptr, ptr + len, strict, allow_exceptions);
}
#endif
JSON_HEDLEY_WARN_UNUSED_RESULT
#if JSON_DELETE_DEPRECATED_FUNCTIONS
static basic_json from_bson(detail::span_input_adapter&& i,
const bool strict = true,
const bool allow_exceptions = true) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.8.0, from_bson(ptr, ptr + len))
static basic_json from_bson(detail::span_input_adapter&& i,
const bool strict = true,
@@ -6002,6 +6134,7 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
{
return from_binary_impl(i.get(), input_format_t::bson, strict, allow_exceptions);
}
#endif
/// @}
//////////////////////////
@@ -6019,11 +6152,15 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
}
template<typename BasicJsonType, detail::enable_if_t<detail::is_basic_json<BasicJsonType>::value, int> = 0>
#if JSON_DELETE_DEPRECATED_FUNCTIONS
reference operator[](const ::nlohmann::json_pointer<BasicJsonType>& ptr) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.0, basic_json::json_pointer or nlohmann::json_pointer<basic_json::string_t>) // NOLINT(readability/alt_tokens)
reference operator[](const ::nlohmann::json_pointer<BasicJsonType>& ptr)
{
return ptr.get_unchecked(this);
}
#endif
/// @brief access specified element via JSON Pointer
/// @sa https://json.nlohmann.me/api/basic_json/operator%5B%5D/
@@ -6033,11 +6170,15 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
}
template<typename BasicJsonType, detail::enable_if_t<detail::is_basic_json<BasicJsonType>::value, int> = 0>
#if JSON_DELETE_DEPRECATED_FUNCTIONS
const_reference operator[](const ::nlohmann::json_pointer<BasicJsonType>& ptr) const = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.0, basic_json::json_pointer or nlohmann::json_pointer<basic_json::string_t>) // NOLINT(readability/alt_tokens)
const_reference operator[](const ::nlohmann::json_pointer<BasicJsonType>& ptr) const
{
return ptr.get_unchecked(this);
}
#endif
/// @brief access specified element via JSON Pointer
/// @sa https://json.nlohmann.me/api/basic_json/at/
@@ -6047,11 +6188,15 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
}
template<typename BasicJsonType, detail::enable_if_t<detail::is_basic_json<BasicJsonType>::value, int> = 0>
#if JSON_DELETE_DEPRECATED_FUNCTIONS
reference at(const ::nlohmann::json_pointer<BasicJsonType>& ptr) = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.0, basic_json::json_pointer or nlohmann::json_pointer<basic_json::string_t>) // NOLINT(readability/alt_tokens)
reference at(const ::nlohmann::json_pointer<BasicJsonType>& ptr)
{
return ptr.get_checked(this);
}
#endif
/// @brief access specified element via JSON Pointer
/// @sa https://json.nlohmann.me/api/basic_json/at/
@@ -6061,11 +6206,15 @@ class basic_json // NOLINT(cppcoreguidelines-special-member-functions,hicpp-spec
}
template<typename BasicJsonType, detail::enable_if_t<detail::is_basic_json<BasicJsonType>::value, int> = 0>
#if JSON_DELETE_DEPRECATED_FUNCTIONS
const_reference at(const ::nlohmann::json_pointer<BasicJsonType>& ptr) const = delete;
#else
JSON_HEDLEY_DEPRECATED_FOR(3.11.0, basic_json::json_pointer or nlohmann::json_pointer<basic_json::string_t>) // NOLINT(readability/alt_tokens)
const_reference at(const ::nlohmann::json_pointer<BasicJsonType>& ptr) const
{
return ptr.get_checked(this);
}
#endif
/// @brief return flattened JSON value
/// @sa https://json.nlohmann.me/api/basic_json/flatten/
-3840
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@@ -47,7 +47,6 @@ inline namespace json_literals
namespace detail
{
using NLOHMANN_JSON_NAMESPACE::detail::json_sax_dom_callback_parser;
using NLOHMANN_JSON_NAMESPACE::detail::json_sax_dom_parser;
using NLOHMANN_JSON_NAMESPACE::detail::unknown_size;
} // namespace detail
-12
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@@ -45,10 +45,6 @@ dumps is stable under exactly the same values that break operator==.
The unit tests run the same checks on a fixed corpus (see the "BJData round-trip
invariants" test case), so keep both in sync.
Furthermore, it reads data with a SAX parser that recovers from every error
and checks that the events are balanced, that reading ends, and that it
reports an error exactly when from_bjdata() fails (see #3989).
The provided function `LLVMFuzzerTestOneInput` can be used in different fuzzer
drivers.
*/
@@ -61,8 +57,6 @@ drivers.
#error "the fuzzer drivers must be built without NDEBUG"
#endif
#include "fuzzer-recovering_checker.hpp"
using json = nlohmann::json;
// value-stable comparison for the round-trip checks below; see the note
@@ -75,15 +69,11 @@ static bool is_value_stable(const json& lhs, const json& rhs)
// see http://llvm.org/docs/LibFuzzer.html
extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
{
// step 0: recover from all errors, reading from memory and from a stream
const bool recovered_without_errors = check_recovering_parse(data, size, json::input_format_t::bjdata).errors == 0;
try
{
// step 1: parse input
std::vector<uint8_t> const vec1(data, data + size);
json const j1 = json::from_bjdata(vec1);
assert(recovered_without_errors);
try
{
@@ -117,7 +107,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
catch (const json::parse_error&)
{
// parse errors are ok, because input may be random bytes
assert(!recovered_without_errors);
}
catch (const json::type_error&)
{
@@ -126,7 +115,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
catch (const json::out_of_range&)
{
// out of range errors may happen if provided sizes are excessive
assert(!recovered_without_errors);
}
// return 0 - non-zero return values are reserved for future use
-12
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@@ -19,10 +19,6 @@ It also checks that reading the data from a stream, which reads strings byte by
byte, gives the same value or error as reading it from contiguous memory, which
copies strings in bulk.
Furthermore, it reads data with a SAX parser that recovers from every error
and checks that the events are balanced, that reading ends, and that it
reports an error exactly when from_bon8() fails (see #3989).
The provided function `LLVMFuzzerTestOneInput` can be used in different fuzzer
drivers.
*/
@@ -36,8 +32,6 @@ drivers.
#error "the fuzzer drivers must be built without NDEBUG"
#endif
#include "fuzzer-recovering_checker.hpp"
using json = nlohmann::json;
namespace
@@ -61,9 +55,6 @@ std::string read_bon8(InputType&& input)
// see http://llvm.org/docs/LibFuzzer.html
extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
{
// step 0: recover from all errors, reading from memory and from a stream
const bool recovered_without_errors = check_recovering_parse(data, size, json::input_format_t::bon8).errors == 0;
// contiguous and stream input must be read alike
{
std::istringstream stream(std::string(reinterpret_cast<const char*>(data), size));
@@ -75,7 +66,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
// step 1: parse input
std::vector<uint8_t> const vec1(data, data + size);
json const j1 = json::from_bon8(vec1);
assert(recovered_without_errors);
try
{
@@ -97,7 +87,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
catch (const json::parse_error&)
{
// parse errors are ok, because input may be random bytes
assert(!recovered_without_errors);
}
catch (const json::type_error&)
{
@@ -106,7 +95,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
catch (const json::out_of_range&)
{
// out of range errors may happen if provided sizes are excessive
assert(!recovered_without_errors);
}
// return 0 - non-zero return values are reserved for future use
-12
View File
@@ -15,10 +15,6 @@ array data, it performs the following steps:
- j2 = from_bson(vec)
- assert(to_bson(j2) == vec)
Furthermore, it reads data with a SAX parser that recovers from every error
and checks that the events are balanced, that reading ends, and that it
reports an error exactly when from_bson() fails (see #3989).
The provided function `LLVMFuzzerTestOneInput` can be used in different fuzzer
drivers.
*/
@@ -31,22 +27,16 @@ drivers.
#error "the fuzzer drivers must be built without NDEBUG"
#endif
#include "fuzzer-recovering_checker.hpp"
using json = nlohmann::json;
// see http://llvm.org/docs/LibFuzzer.html
extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
{
// step 0: recover from all errors, reading from memory and from a stream
const bool recovered_without_errors = check_recovering_parse(data, size, json::input_format_t::bson).errors == 0;
try
{
// step 1: parse input
std::vector<uint8_t> const vec1(data, data + size);
json const j1 = json::from_bson(vec1);
assert(recovered_without_errors);
try
{
@@ -68,7 +58,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
catch (const json::parse_error&)
{
// parse errors are ok, because input may be random bytes
assert(!recovered_without_errors);
}
catch (const json::type_error&)
{
@@ -77,7 +66,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
catch (const json::out_of_range&)
{
// out of range errors can occur during parsing, too
assert(!recovered_without_errors);
}
// return 0 - non-zero return values are reserved for future use
-12
View File
@@ -15,10 +15,6 @@ array data, it performs the following steps:
- j2 = from_cbor(vec)
- assert(to_cbor(j2) == vec)
Furthermore, it reads data with a SAX parser that recovers from every error
and checks that the events are balanced, that reading ends, and that it
reports an error exactly when from_cbor() fails (see #3989).
The provided function `LLVMFuzzerTestOneInput` can be used in different fuzzer
drivers.
*/
@@ -31,22 +27,16 @@ drivers.
#error "the fuzzer drivers must be built without NDEBUG"
#endif
#include "fuzzer-recovering_checker.hpp"
using json = nlohmann::json;
// see http://llvm.org/docs/LibFuzzer.html
extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
{
// step 0: recover from all errors, reading from memory and from a stream
const bool recovered_without_errors = check_recovering_parse(data, size, json::input_format_t::cbor).errors == 0;
try
{
// step 1: parse input
std::vector<uint8_t> const vec1(data, data + size);
json const j1 = json::from_cbor(vec1);
assert(recovered_without_errors);
try
{
@@ -68,7 +58,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
catch (const json::parse_error&)
{
// parse errors are ok, because input may be random bytes
assert(!recovered_without_errors);
}
catch (const json::type_error&)
{
@@ -77,7 +66,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
catch (const json::out_of_range&)
{
// out of range errors can occur during parsing, too
assert(!recovered_without_errors);
}
// return 0 - non-zero return values are reserved for future use
-13
View File
@@ -16,10 +16,6 @@ array data, it performs the following steps:
- s2 = serialize(j2)
- assert(s1 == s2)
Furthermore, it parses data with a SAX parser that recovers from every error
and checks that the events are balanced, that parsing ends, and that valid
input is parsed without errors (see #3989).
The provided function `LLVMFuzzerTestOneInput` can be used in different fuzzer
drivers.
*/
@@ -32,20 +28,11 @@ drivers.
#error "the fuzzer drivers must be built without NDEBUG"
#endif
#include "fuzzer-recovering_checker.hpp"
using json = nlohmann::json;
// see http://llvm.org/docs/LibFuzzer.html
extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
{
// step 0: recover from all errors, reading from memory and from a stream
{
const auto checker = check_recovering_parse(data, size, json::input_format_t::json);
assert(checker.events <= (4 * size) + 4);
assert((checker.errors == 0) == json::accept(data, data + size));
}
try
{
// step 1: parse input
-12
View File
@@ -15,10 +15,6 @@ array data, it performs the following steps:
- j2 = from_msgpack(vec)
- assert(to_msgpack(j2) == vec)
Furthermore, it reads data with a SAX parser that recovers from every error
and checks that the events are balanced, that reading ends, and that it
reports an error exactly when from_msgpack() fails (see #3989).
The provided function `LLVMFuzzerTestOneInput` can be used in different fuzzer
drivers.
*/
@@ -31,22 +27,16 @@ drivers.
#error "the fuzzer drivers must be built without NDEBUG"
#endif
#include "fuzzer-recovering_checker.hpp"
using json = nlohmann::json;
// see http://llvm.org/docs/LibFuzzer.html
extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
{
// step 0: recover from all errors, reading from memory and from a stream
const bool recovered_without_errors = check_recovering_parse(data, size, json::input_format_t::msgpack).errors == 0;
try
{
// step 1: parse input
std::vector<uint8_t> const vec1(data, data + size);
json const j1 = json::from_msgpack(vec1);
assert(recovered_without_errors);
try
{
@@ -68,7 +58,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
catch (const json::parse_error&)
{
// parse errors are ok, because input may be random bytes
assert(!recovered_without_errors);
}
catch (const json::type_error&)
{
@@ -77,7 +66,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
catch (const json::out_of_range&)
{
// out of range errors may happen if provided sizes are excessive
assert(!recovered_without_errors);
}
// return 0 - non-zero return values are reserved for future use
-12
View File
@@ -24,10 +24,6 @@ array data, it performs the following steps:
The unit tests run the same checks on a fixed corpus (see the "UBJSON round-trip
invariants" test case), so keep both in sync.
Furthermore, it reads data with a SAX parser that recovers from every error
and checks that the events are balanced, that reading ends, and that it
reports an error exactly when from_ubjson() fails (see #3989).
The provided function `LLVMFuzzerTestOneInput` can be used in different fuzzer
drivers.
*/
@@ -40,22 +36,16 @@ drivers.
#error "the fuzzer drivers must be built without NDEBUG"
#endif
#include "fuzzer-recovering_checker.hpp"
using json = nlohmann::json;
// see http://llvm.org/docs/LibFuzzer.html
extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
{
// step 0: recover from all errors, reading from memory and from a stream
const bool recovered_without_errors = check_recovering_parse(data, size, json::input_format_t::ubjson).errors == 0;
try
{
// step 1: parse input
std::vector<uint8_t> const vec1(data, data + size);
json const j1 = json::from_ubjson(vec1);
assert(recovered_without_errors);
try
{
@@ -87,7 +77,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
catch (const json::parse_error&)
{
// parse errors are ok, because input may be random bytes
assert(!recovered_without_errors);
}
catch (const json::type_error&)
{
@@ -96,7 +85,6 @@ extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size)
catch (const json::out_of_range&)
{
// out of range errors may happen if provided sizes are excessive
assert(!recovered_without_errors);
}
// return 0 - non-zero return values are reserved for future use
-154
View File
@@ -1,154 +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 <cassert>
#include <cstddef>
#include <cstdint>
#include <sstream>
#include <string>
#include <vector>
#include <nlohmann/json.hpp>
namespace
{
// a SAX parser that recovers from every error and checks that the events are
// balanced and that every key is followed by exactly one value
class recovering_checker : public nlohmann::json_sax<nlohmann::json>
{
public:
bool null() override
{
return value();
}
bool boolean(bool /*val*/) override
{
return value();
}
bool number_integer(number_integer_t /*val*/) override
{
return value();
}
bool number_unsigned(number_unsigned_t /*val*/) override
{
return value();
}
bool number_float(number_float_t /*val*/, const string_t& /*s*/) override
{
return value();
}
bool string(string_t& /*val*/) override
{
return value();
}
bool binary(binary_t& /*val*/) override
{
return value();
}
bool start_object(std::size_t /*elements*/) override
{
value();
stack.push_back('o');
return true;
}
bool key(string_t& /*val*/) override
{
++events;
assert(!stack.empty() && stack.back() == 'o');
stack.back() = 'v';
return true;
}
bool end_object() override
{
++events;
assert(!stack.empty() && stack.back() == 'o');
stack.pop_back();
return true;
}
bool start_array(std::size_t /*elements*/) override
{
value();
stack.push_back('a');
return true;
}
bool end_array() override
{
++events;
assert(!stack.empty() && stack.back() == 'a');
stack.pop_back();
return true;
}
bool parse_error(std::size_t /*position*/, const std::string& /*last_token*/, const nlohmann::detail::exception& /*ex*/) override
{
++errors;
return true;
}
bool complete() const
{
return stack.empty();
}
std::size_t events = 0;
std::size_t errors = 0;
private:
bool value()
{
++events;
if (!stack.empty())
{
// an array element, or the value of a key
assert(stack.back() != 'o');
if (stack.back() == 'v')
{
stack.back() = 'o';
}
}
return true;
}
// 'a' for an array, 'o' for an object that expects a key, 'v' for an
// object that expects the value of a key
std::vector<char> stack {}; // NOLINT(readability-redundant-member-init)
};
/// parses @a data with a recovering_checker from memory and from a stream,
/// checks that both see the same, that the events are balanced, and that the
/// number of errors is bounded, and returns the checker (see #3989)
inline recovering_checker check_recovering_parse(const std::uint8_t* data, const std::size_t size, const nlohmann::json::input_format_t format)
{
recovering_checker checker;
const bool ok = nlohmann::json::sax_parse(data, data + size, &checker, format);
assert(checker.complete());
assert(checker.errors <= size + 1);
assert(ok == (checker.errors == 0));
std::istringstream stream(std::string(reinterpret_cast<const char*>(data), size));
recovering_checker stream_checker;
assert(nlohmann::json::sax_parse(stream, &stream_checker, format) == ok);
assert(stream_checker.complete());
assert(stream_checker.events == checker.events);
assert(stream_checker.errors == checker.errors);
return checker;
}
} // namespace
-40
View File
@@ -424,46 +424,6 @@ TEST_CASE("alternative string type")
CHECK(j2.dump() == R"({"/foo/0":"bar","/foo/1":"baz"})");
}
SECTION("error recovery")
{
// a SAX parser that recovers from every error (see #3989)
struct recovering_parser : nlohmann::detail::json_sax_dom_parser<alt_json>
{
explicit recovering_parser(alt_json& j)
: nlohmann::detail::json_sax_dom_parser<alt_json>(j, false)
{}
// sax_parse() calls the SAX parser's own parse_error(), so hiding
// the one of the base class is what recovering takes
// NOLINTNEXTLINE(bugprone-derived-method-shadowing-base-method)
bool parse_error(std::size_t /*unused*/, const std::string& /*unused*/, const nlohmann::detail::exception& /*unused*/)
{
++errors;
return true;
}
std::size_t errors = 0;
};
alt_json j;
recovering_parser sax(j);
// not inside CHECK(): MSVC reads the escape in a stringized raw string
const std::string input = R"([1., "a\qb", tru, {"k" 2}])";
CHECK(!alt_json::sax_parse(input, &sax));
CHECK(sax.errors == 4);
CHECK(j.dump() == R"([1,"aqb",null,{"k":2}])");
// a UBJSON high-precision number, a CBOR key that is not a string
alt_json u;
recovering_parser ubjson_sax(u);
CHECK(!alt_json::sax_parse(std::vector<std::uint8_t> {'[', 'H', 'i', 2, '1', '.', ']'}, &ubjson_sax, alt_json::input_format_t::ubjson));
CHECK(u.dump() == "[1]");
alt_json c;
recovering_parser cbor_sax(c);
CHECK(!alt_json::sax_parse(std::vector<std::uint8_t> {0xA2, 0x01, 0x02, 0x61, 'a', 0x03}, &cbor_sax, alt_json::input_format_t::cbor));
CHECK(c.dump() == R"({"a":3})");
}
SECTION("conversion between basic_json specializations (#2649)")
{
// explicit conversions are always possible
+38
View File
@@ -9,6 +9,14 @@
#include "doctest_compatibility.h"
#define JSON_TESTS_PRIVATE
// capture whether JSON_DELETE_DEPRECATED_FUNCTIONS was enabled on the command
// line *before* including json.hpp, since the library #undefs it once the header
// has been fully processed (see include/nlohmann/detail/macro_unscope.hpp); the
// tests of deprecated functions are skipped if these functions are deleted
#if defined(JSON_DELETE_DEPRECATED_FUNCTIONS) && (JSON_DELETE_DEPRECATED_FUNCTIONS == 1)
#define JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
#endif
#include <nlohmann/json.hpp>
using nlohmann::json;
@@ -4490,3 +4498,33 @@ TEST_CASE("BJData roundtrips" * doctest::skip())
}
}
}
TEST_CASE("issue #5648 - from_bjdata(ptr, len) must read len bytes, not treat ptr as a C string")
{
// to_bjdata() encodes the integer 0 as the two bytes 'i' 0x00 (a BJData
// type marker followed by the value byte 0x00), so the packed data
// below contains a 0x00 byte before its end.
const json j = {{"a", 0}};
const std::vector<std::uint8_t> packed = json::to_bjdata(j);
bool contains_nul = false;
for (const auto byte : packed)
{
contains_nul |= (byte == 0x00);
}
REQUIRE(contains_nul);
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
// before the fix, from_bjdata had no (ptr, len) overload, so this call
// bound to from_bjdata(InputType&&, bool strict) instead: ptr was read
// as a NUL-terminated C string (stopping at the embedded 0x00 byte), and
// len was silently converted to the strict flag. The deprecated
// overload added for this issue forwards to from_bjdata(ptr, ptr + len,
// ...) instead, like from_ubjson's deprecated (ptr, len) overload does.
json result;
CHECK_NOTHROW(result = json::from_bjdata(packed.data(), packed.size()));
CHECK(result == j);
// len must not collapse into the strict flag either
CHECK(json::from_bjdata(packed.data(), packed.size(), false) == j);
#endif
}
+38
View File
@@ -8,6 +8,14 @@
#include "doctest_compatibility.h"
// capture whether JSON_DELETE_DEPRECATED_FUNCTIONS was enabled on the command
// line *before* including json.hpp, since the library #undefs it once the header
// has been fully processed (see include/nlohmann/detail/macro_unscope.hpp); the
// tests of deprecated functions are skipped if these functions are deleted
#if defined(JSON_DELETE_DEPRECATED_FUNCTIONS) && (JSON_DELETE_DEPRECATED_FUNCTIONS == 1)
#define JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
#endif
#include <nlohmann/json.hpp>
using nlohmann::json;
#ifdef JSON_TEST_NO_GLOBAL_UDLS
@@ -1012,6 +1020,36 @@ TEST_CASE("BON8 roundtrips" * doctest::skip())
}
}
TEST_CASE("issue #5648 - from_bon8(ptr, len) must read len bytes, not treat ptr as a C string")
{
// to_bon8() encodes the integer 40 as the two bytes 0xC2 0x00 (a BON8
// lead byte followed by a continuation byte of 0x00), so the packed data
// below contains a 0x00 byte before its end.
const json j = {{"a", 40}, {"b", "x"}};
const std::vector<std::uint8_t> packed = json::to_bon8(j);
bool contains_nul = false;
for (const auto byte : packed)
{
contains_nul |= (byte == 0x00);
}
REQUIRE(contains_nul);
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
// before the fix, from_bon8 had no (ptr, len) overload, so this call
// bound to from_bon8(InputType&&, bool strict) instead: ptr was read as
// a NUL-terminated C string (stopping at the embedded 0x00 byte), and
// len was silently converted to the strict flag. The deprecated
// overload added for this issue forwards to from_bon8(ptr, ptr + len,
// ...) instead, like from_cbor's deprecated (ptr, len) overload does.
json result;
CHECK_NOTHROW(result = json::from_bon8(packed.data(), packed.size()));
CHECK(result == j);
// len must not collapse into the strict flag either
CHECK(json::from_bon8(packed.data(), packed.size(), false) == j);
#endif
}
#ifdef JSON_HAS_CPP_17
TEST_CASE("BON8 with std::byte")
{
+12
View File
@@ -8,6 +8,14 @@
#include "doctest_compatibility.h"
// capture whether JSON_DELETE_DEPRECATED_FUNCTIONS was enabled on the command
// line *before* including json.hpp, since the library #undefs it once the header
// has been fully processed (see include/nlohmann/detail/macro_unscope.hpp); the
// tests of deprecated functions are skipped if these functions are deleted
#if defined(JSON_DELETE_DEPRECATED_FUNCTIONS) && (JSON_DELETE_DEPRECATED_FUNCTIONS == 1)
#define JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
#endif
#include <nlohmann/json.hpp>
using nlohmann::json;
@@ -1259,8 +1267,10 @@ TEST_CASE("BSON input that cannot be read is discarded by every overload")
CHECK_THROWS_AS(_ = json::from_bson(input.begin(), input.end()), json::parse_error&);
CHECK(json::from_bson(input, true, false).is_discarded());
CHECK(json::from_bson(input.begin(), input.end(), true, false).is_discarded());
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
CHECK(json::from_bson(input.data(), input.size(), true, false).is_discarded());
CHECK(json::from_bson({input.data(), input.size()}, true, false).is_discarded());
#endif
}
TEST_CASE("BSON SAX parsing stops at every event")
@@ -1738,6 +1748,7 @@ TEST_CASE("BSON roundtrips" * doctest::skip())
CHECK(j1 == j2);
}
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
{
INFO_WITH_TEMP(filename + ": uint8_t* and size");
// parse JSON file
@@ -1752,6 +1763,7 @@ TEST_CASE("BSON roundtrips" * doctest::skip())
// compare parsed JSON values
CHECK(j1 == j2);
}
#endif
{
INFO_WITH_TEMP(filename + ": output to output adapters");
+12
View File
@@ -8,6 +8,14 @@
#include "doctest_compatibility.h"
// capture whether JSON_DELETE_DEPRECATED_FUNCTIONS was enabled on the command
// line *before* including json.hpp, since the library #undefs it once the header
// has been fully processed (see include/nlohmann/detail/macro_unscope.hpp); the
// tests of deprecated functions are skipped if these functions are deleted
#if defined(JSON_DELETE_DEPRECATED_FUNCTIONS) && (JSON_DELETE_DEPRECATED_FUNCTIONS == 1)
#define JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
#endif
#include <nlohmann/json.hpp>
using nlohmann::json;
@@ -2215,8 +2223,10 @@ TEST_CASE("CBOR input that cannot be read is discarded by every overload")
CHECK_THROWS_AS(_ = json::from_cbor(input.begin(), input.end()), json::parse_error&);
CHECK(json::from_cbor(input, true, false).is_discarded());
CHECK(json::from_cbor(input.begin(), input.end(), true, false).is_discarded());
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
CHECK(json::from_cbor(input.data(), input.size(), true, false).is_discarded());
CHECK(json::from_cbor({input.data(), input.size()}, true, false).is_discarded());
#endif
// a string that ends early, read through iterators that are not
// contiguous and have to be copied from one element at a time
@@ -2611,12 +2621,14 @@ TEST_CASE("CBOR roundtrips" * doctest::skip())
CHECK(j1 == j2);
}
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
{
INFO_WITH_TEMP(filename + ": uint8_t* and size");
json j2;
CHECK_NOTHROW(j2 = json::from_cbor({packed.data(), packed.size()}));
CHECK(j1 == j2);
}
#endif
{
INFO_WITH_TEMP(filename + ": output to output adapters");
+1 -583
View File
@@ -143,13 +143,11 @@ class SaxEventLogger
{
errored = true;
events.push_back("parse_error(" + std::to_string(position) + ")");
return recover;
return false;
}
std::vector<std::string> events {}; // NOLINT(readability-redundant-member-init)
bool errored = false;
/// whether parse_error() asks the parser to recover from the error (see #3989)
bool recover = false;
};
class SaxCountdown : public nlohmann::json::json_sax_t
@@ -2976,583 +2974,3 @@ TEST_CASE("diagnostic positions: value lifetime, input adapters, and SAX")
}
}
#endif
namespace
{
/// builds a value like json::parse(), but asks the parser to recover from
/// errors (see #3989), and checks that the events it receives are balanced
class RecoveringDomParser
{
public:
explicit RecoveringDomParser(json& j, std::size_t max_errors_ = static_cast<std::size_t>(-1))
: dom(j, false)
, max_errors(max_errors_)
{}
bool null()
{
value();
return dom.null();
}
bool boolean(bool val)
{
value();
return dom.boolean(val);
}
bool number_integer(json::number_integer_t val)
{
value();
return dom.number_integer(val);
}
bool number_unsigned(json::number_unsigned_t val)
{
value();
return dom.number_unsigned(val);
}
bool number_float(json::number_float_t val, const std::string& s)
{
value();
return dom.number_float(val, s);
}
bool string(std::string& val)
{
value();
return dom.string(val);
}
bool binary(json::binary_t& val)
{
value();
return dom.binary(val);
}
bool start_object(std::size_t elements)
{
value();
stack.push_back('o');
return dom.start_object(elements);
}
bool key(std::string& val)
{
++events;
if (stack.empty() || stack.back() != 'o')
{
well_formed = false;
return false;
}
stack.back() = 'v';
return dom.key(val);
}
bool end_object()
{
++events;
if (stack.empty() || stack.back() != 'o')
{
well_formed = false;
return false;
}
stack.pop_back();
return dom.end_object();
}
bool start_array(std::size_t elements)
{
value();
stack.push_back('a');
return dom.start_array(elements);
}
bool end_array()
{
++events;
if (stack.empty() || stack.back() != 'a')
{
well_formed = false;
return false;
}
stack.pop_back();
return dom.end_array();
}
bool parse_error(std::size_t /*unused*/, const std::string& /*unused*/, const json::exception& ex)
{
errors.emplace_back(ex.what());
return errors.size() < max_errors;
}
/// whether the events were balanced and every key was followed by a value
bool balanced() const
{
return well_formed && stack.empty();
}
/// builds the value
nlohmann::detail::json_sax_dom_parser<json> dom;
std::vector<std::string> errors {}; // NOLINT(readability-redundant-member-init)
std::size_t events = 0;
/// the open containers: 'a' for an array, 'o' for an object that expects
/// a key, 'v' for an object that expects the value of a key
std::vector<char> stack {}; // NOLINT(readability-redundant-member-init)
bool well_formed = true;
std::size_t max_errors;
private:
/// a value is passed: it is an array element, or the value of a key
void value()
{
++events;
if (!stack.empty())
{
if (stack.back() == 'v')
{
stack.back() = 'o';
}
else if (stack.back() == 'o')
{
// a value without a key
well_formed = false;
}
}
}
};
struct RecoveryResult
{
json value;
std::vector<std::string> errors;
std::size_t events;
bool ok;
bool balanced;
};
template<typename InputType>
RecoveryResult parse_recovering(InputType&& input, const bool strict = true,
const bool ignore_comments = false, const bool ignore_trailing_commas = false)
{
json j;
RecoveringDomParser sax(j);
const bool ok = json::sax_parse(std::forward<InputType>(input), &sax, json::input_format_t::json,
strict, ignore_comments, ignore_trailing_commas);
return {j, sax.errors, sax.events, ok, sax.balanced()};
}
/// stops after a number of events, but recovers from errors
class RecoveringCountdown : public SaxCountdown
{
public:
using SaxCountdown::SaxCountdown;
bool parse_error(std::size_t /*position*/, const std::string& /*last_token*/, const json::exception& /*ex*/) override
{
return true;
}
};
/// a repaired input: the value it is repaired to, and the number of errors
struct Repair
{
const char* input;
const char* expected;
std::size_t errors;
};
} // namespace
TEST_CASE("parser error recovery (#3989)")
{
SECTION("repairs")
{
const std::vector<Repair> repairs =
{
// a missing separator is inserted
{"[1 2]", "[1,2]", 1},
{R"({"a":1 "b":2})", R"({"a":1,"b":2})", 1},
{R"({"a" 1})", R"({"a":1})", 1},
{"[1 tru 2]", "[1,null,2]", 2},
{R"({"a" "b": 1})", R"({"a":"b"})", 2},
// a missing value is null in an object; in an array, a ',' stands
// for null, while an array that ends there just ends
{R"({"a":})", R"({"a":null})", 1},
{R"({"a"})", R"({"a":null})", 1},
{R"({"a","b":1})", R"({"a":null,"b":1})", 1},
{"[1,,2]", "[1,null,2]", 1},
{"[,1]", "[null,1]", 1},
{"[1,]", "[1]", 1},
{"[1,2,3,]", "[1,2,3]", 1},
{R"({"a":1,})", R"({"a":1})", 1},
// a broken string keeps what can be read
{R"(["a\qb"])", R"(["aqb"])", 1},
{R"({"na\me":1})", R"({"name":1})", 1},
{"[\"\xFF\"]", R"(["\uFFFD"])", 1},
{"[\"a\xC3(\"]", R"(["a\uFFFD("])", 1},
{"[\"\xE2\x82\"]", R"(["\uFFFD"])", 1},
{"[\"\xC3\\\\\", 1]", R"(["\uFFFD\\",1])", 1},
{R"(["\u12"])", R"(["\uFFFD"])", 1},
{R"(["\u12G4"])", R"(["\uFFFDG4"])", 1},
{R"(["\uDC00x"])", R"(["\uFFFDx"])", 1},
{R"(["\uD800x"])", R"(["\uFFFDx"])", 1},
{R"(["\uD800\u0041"])", R"(["\uFFFDA"])", 1},
{R"(["\uD800\uD800\uDC00"])", R"(["\uFFFD\uD800\uDC00"])", 1},
{R"(["\uD800\uD800\uD800x"])", R"(["\uFFFD\uFFFD\uFFFDx"])", 1},
{
R"(["\uD800\"x", 1])", R"(["\uFFFD\"x",1])", 1
},
{R"(["\uD800\q"])", R"(["\uFFFDq"])", 1},
{"[\"a\tb\"]", R"(["a\tb"])", 1},
{R"(["a\qb\u0041\x"])", R"(["aqbAx"])", 1},
// a broken number keeps its longest valid prefix
{"[1.]", "[1]", 1},
{"[-2.]", "[-2]", 1},
{"[1.5e]", "[1.5]", 1},
{"[1e+]", "[1]", 1},
{"[1.x2, 3]", "[1,3]", 1},
// what cannot be read at all is null
{"[1,NaN,3]", "[1,null,3]", 1},
{"[tru]", "[null]", 1},
{"[-]", "[null]", 1},
{R"({"a":Infinity})", R"({"a":null})", 1},
// a stray token is dropped
{"[:1]", "[1]", 1},
{R"(["a":1])", R"(["a",1])", 1},
{R"({"a"::1})", R"({"a":1})", 1},
// a member that cannot be read is skipped
{R"({1:2,"b":3})", R"({"b":3})", 1},
{R"({"a":1 2})", R"({"a":1})", 1},
{R"({,"a":1})", R"({"a":1})", 1},
{R"({"a":1,,"b":2})", R"({"a":1,"b":2})", 1},
{"{a:1}", "{}", 1},
{R"({"a":1 [1,{"b":2}], "c":3})", R"({"a":1,"c":3})", 1},
{R"([{1}, "a"])", R"([{},"a"])", 1},
// a wrong closing bracket closes the innermost container
{R"({"a":[1,2}, "b":3})", R"({"a":[1,2],"b":3})", 1},
{R"([{"a":1], 2])", R"([{"a":1},2])", 1},
{"{]", "{}", 1},
{"[}", "[]", 1},
// the end of the input closes all containers
{R"({"a":[1,2)", R"({"a":[1,2]})", 1},
{"[", "[]", 1},
{"{", "{}", 1},
{R"({"a")", R"({"a":null})", 1},
{R"({"a":)", R"({"a":null})", 1},
{"[1,", "[1]", 1},
{"[[[1", "[[[1]]]", 1},
{
R"(["abc)", R"(["abc"])", 2
},
{"[1,tr", "[1,null]", 2},
{"\"abc", "\"abc\"", 1},
{"[\"ab\ncd\"]", R"(["ab",null,"]"])", 4},
// what comes before the top-level value is skipped
{")]}'\n{\"a\":1}", R"({"a":1})", 1},
{R"(data: {"a":1})", R"({"a":1})", 1},
{"\xEF\xBB[1]", "[1]", 1},
// what comes after it is an error that ends parsing
{R"({"a":1}})", R"({"a":1})", 1},
{"[1}]", "[1]", 2},
{"[1] [2]", "[1]", 1},
};
for (const auto& repair : repairs)
{
CAPTURE(repair.input)
const auto result = parse_recovering(std::string(repair.input));
CHECK(!result.ok);
CHECK(result.balanced);
CHECK(result.value == json::parse(repair.expected));
CHECK(result.errors.size() == repair.errors);
}
}
SECTION("number overflow")
{
const auto result = parse_recovering(std::string("[1e999,-1e999]"));
CHECK(!result.ok);
CHECK(result.balanced);
CHECK(result.errors.size() == 2);
CHECK(result.errors[0] == "[json.exception.out_of_range.406] number overflow parsing '1e999'");
REQUIRE(result.value.size() == 2);
CHECK(result.value[0].is_number_float());
CHECK(result.value[0].get<double>() == std::numeric_limits<double>::infinity());
CHECK(result.value[1].get<double>() == -std::numeric_limits<double>::infinity());
// the SAX parser gets the number's text
SaxEventLogger logger;
logger.recover = true;
CHECK(!json::sax_parse("1e999", &logger));
CHECK(logger.events == std::vector<std::string>({"parse_error(5)", "number_float(1e999)"}));
}
SECTION("nothing to recover")
{
for (const std::string s :
{
"", " ", "]", "tru", "NaN", ",:", "/* comment"
})
{
CAPTURE(s)
const auto result = parse_recovering(s, true, true);
CHECK(!result.ok);
CHECK(result.balanced);
CHECK(result.events == 0);
CHECK(result.value == nullptr);
CHECK(result.errors.size() == 1);
}
}
SECTION("error messages")
{
// the first error is reported as without recovery
for (const std::string s :
{
"[1 2]", R"({"a":1 "b":2})", R"({"a" 1})", R"({"a":})", "[1,]", "[1.]",
R"(["a\qb"])", "[1e999]", "{1:2}", R"({"a":[1,2}})", "[1,", "[1] [2]", "{a:1}"
})
{
CAPTURE(s)
const auto result = parse_recovering(s);
REQUIRE(!result.errors.empty());
json _;
CHECK_THROWS_WITH_STD_STR(_ = json::parse(s), result.errors.front());
}
// the token of an error begins where the previous error was
const auto result = parse_recovering(std::string("[tru, fals, nul]"));
CHECK(result.errors == std::vector<std::string>(
{
"[json.exception.parse_error.101] parse error at line 1, column 5: syntax error while parsing value - invalid literal; last read: '[tru,'",
"[json.exception.parse_error.101] parse error at line 1, column 11: syntax error while parsing value - invalid literal; last read: ', fals,'",
"[json.exception.parse_error.101] parse error at line 1, column 16: syntax error while parsing value - invalid literal; last read: ', nul]'"
}));
CHECK(result.value == json::parse("[null,null,null]"));
}
SECTION("events")
{
// see #4522
SaxEventLogger logger;
logger.recover = true;
CHECK(!json::sax_parse(R"([{1}, "a"])", &logger));
CHECK(logger.events == std::vector<std::string>(
{
"start_array()", "start_object()", "parse_error(3)", "end_object()", "string(a)", "end_array()"
}));
}
SECTION("options")
{
SECTION("strict")
{
const auto result = parse_recovering(std::string("[1 2] [3]"), false);
CHECK(!result.ok);
CHECK(result.value == json::parse("[1,2]"));
CHECK(result.errors.size() == 1);
}
SECTION("ignore_trailing_commas")
{
for (const std::string s :
{
"[1,]", R"({"a":1,})", "[[1,],]"
})
{
CAPTURE(s)
const auto result = parse_recovering(s, true, false, true);
CHECK(result.ok);
CHECK(result.errors.empty());
}
auto result = parse_recovering(std::string("[1,,]"), true, false, true);
CHECK(result.value == json::parse("[1,null]"));
CHECK(result.errors.size() == 1);
result = parse_recovering(std::string(R"({"a":1,,})"), true, false, true);
CHECK(result.value == json::parse(R"({"a":1})"));
CHECK(result.errors.size() == 1);
}
SECTION("ignore_comments")
{
auto result = parse_recovering(std::string("[1 /* one */ 2]"), true, true);
CHECK(result.value == json::parse("[1,2]"));
CHECK(result.errors.size() == 1);
// a comment that is not closed runs to the end of the input, which
// is not reported again
result = parse_recovering(std::string("[1, 2 /* unterminated"), true, true);
CHECK(result.balanced);
CHECK(result.value == json::parse("[1,2]"));
CHECK(result.errors.size() == 1);
// a '/' that does not begin a comment is garbage
result = parse_recovering(std::string("[1, /x, 2]"), true, true);
CHECK(result.balanced);
CHECK(result.value == json::parse("[1,null,2]"));
CHECK(result.errors.size() == 1);
}
}
SECTION("null bytes")
{
// a null byte ends the input, unless JSON_STRICT_NUL_HANDLING is set
const auto result = parse_recovering(std::string("[1,\0x", 5));
CHECK(result.balanced);
CHECK(!result.ok);
#ifdef JSON_TEST_STRICT_NUL_HANDLING_ENABLED
CHECK(result.value == json::parse("[1,null]"));
#else
CHECK(result.value == json::parse("[1]"));
CHECK(result.errors.size() == 1);
#endif
const auto in_string = parse_recovering(std::string("[\"a\0b\"]", 7));
CHECK(in_string.balanced);
#ifdef JSON_TEST_STRICT_NUL_HANDLING_ENABLED
CHECK(in_string.value == json::array({std::string("a\0b", 3)}));
#else
CHECK(in_string.value == json::parse(R"(["a"])"));
#endif
}
SECTION("the SAX parser stops recovering")
{
json j;
RecoveringDomParser sax(j, 2);
CHECK(!json::sax_parse("[1 2 3 4 5]", &sax));
CHECK(sax.errors.size() == 2);
// an error at a delimiter that an invalid token consumed is reported
// to the SAX parser, too
json j2;
RecoveringDomParser sax2(j2, 2);
CHECK(!json::sax_parse("[tru}, 1]", &sax2));
CHECK(sax2.errors.size() == 2);
}
SECTION("an event stops parsing during a repair")
{
// start_object() and key() are passed, then null() for the missing
// value returns false
RecoveringCountdown countdown(2);
CHECK(!json::sax_parse(R"({"a":})", &countdown));
// the end of the input: end_array() for the second array returns false
RecoveringCountdown countdown2(4);
CHECK(!json::sax_parse("[[1", &countdown2));
}
SECTION("input adapters")
{
// the lexer reads contiguous and streaming input differently, and it
// puts back a character that ended an invalid token
for (const std::string s :
{
"[1 2]", "[tru}, 1]", R"({"a" "b\q", "c":[1.x, 2}})", "[\"\xFF\xC3(\", -, 1e+]", "{a:1,\"b\":2", ")]}' [1]"
})
{
CAPTURE(s)
const auto reference = parse_recovering(s);
CHECK(reference.balanced);
const auto from_c_string = parse_recovering(s.c_str());
CHECK(from_c_string.value == reference.value);
CHECK(from_c_string.errors == reference.errors);
const std::list<char> l(s.begin(), s.end());
json j;
RecoveringDomParser sax(j);
CHECK(!json::sax_parse(l.begin(), l.end(), &sax));
CHECK(j == reference.value);
CHECK(sax.errors == reference.errors);
std::istringstream ss(s);
const auto from_stream = parse_recovering(ss);
CHECK(from_stream.value == reference.value);
CHECK(from_stream.errors == reference.errors);
}
}
SECTION("long runs of errors")
{
// no error may copy all the input read before it
const auto closing = parse_recovering("[" + std::string(100000, '}'));
CHECK(closing.balanced);
CHECK(closing.value == json::array());
const auto garbage = parse_recovering("[" + std::string(100000, 'x') + "]");
CHECK(garbage.balanced);
CHECK(garbage.errors.size() == 1);
const auto commas = parse_recovering("{" + std::string(100000, ',') + "}");
CHECK(commas.balanced);
CHECK(commas.value == json::object());
}
SECTION("mutations of valid input")
{
// whatever the input, the events are balanced, every error is reported
// at most once, and valid input is parsed as usual
const std::vector<std::string> documents =
{
R"({"name": "value", "list": [1, -2.5, true, null, {"x": [[]]}], "e": "\u00e9"})",
R"([{"a": [1, 2, {"b": "c"}]}, [], {}, "\ud83d\ude00", 1e10])",
"{\"\xC3\xA9\": \"\xF0\x9F\x98\x80\"}",
R"( {"k" : [ "v" , 0 ] } )",
};
// each character that can be inserted, including a null byte
const std::string insertions("[]{},:\"x\\\0\xFF", 11);
std::vector<std::string> inputs;
for (const auto& doc : documents)
{
for (std::size_t i = 0; i <= doc.size(); ++i)
{
inputs.push_back(doc.substr(0, i));
if (i < doc.size())
{
inputs.push_back(doc.substr(0, i) + doc.substr(i + 1));
}
for (const char c : insertions)
{
inputs.push_back(doc.substr(0, i) + c + doc.substr(i));
}
}
}
for (const auto& s : inputs)
{
CAPTURE(s)
const auto result = parse_recovering(s);
CHECK(result.balanced);
CHECK(result.errors.size() <= s.size() + 1);
CHECK(result.events <= (4 * s.size()) + 4);
if (json::accept(s))
{
CHECK(result.ok);
CHECK(result.errors.empty());
CHECK(result.value == json::parse(s));
}
else
{
CHECK(!result.ok);
CHECK(!result.errors.empty());
}
}
}
}
@@ -0,0 +1,214 @@
// __ _____ _____ _____
// __| | __| | | | 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"
// This file tests the opt-in JSON_DELETE_DEPRECATED_FUNCTIONS, so it defines the
// macro itself instead of relying on the build configuration.
#ifdef JSON_DELETE_DEPRECATED_FUNCTIONS
#undef JSON_DELETE_DEPRECATED_FUNCTIONS
#endif
#define JSON_DELETE_DEPRECATED_FUNCTIONS 1
#include <nlohmann/json.hpp>
using nlohmann::json;
#include <cstddef>
#include <cstdint>
#include <istream>
#include <ostream>
#include <string>
#include <type_traits>
#include <utility>
namespace
{
template<typename...>
struct make_void
{
using type = void;
};
template<typename... Ts>
using void_t = typename make_void<Ts...>::type;
// A deleted function is still found by overload resolution, but naming it in an
// unevaluated operand is ill-formed, so each of the following traits is false
// exactly if the expression selects a deleted (or no) function.
#define JSON_TEST_DETECT(name, expr) \
template<typename J, typename = void> \
struct name : std::false_type {}; \
template<typename J> \
struct name<J, void_t<decltype(expr)>> : std::true_type {}
using ptr_t = const std::uint8_t*;
JSON_TEST_DETECT(from_cbor_ptr_len, J::from_cbor(std::declval<ptr_t>(), std::declval<std::size_t>()));
JSON_TEST_DETECT(from_msgpack_ptr_len, J::from_msgpack(std::declval<ptr_t>(), std::declval<std::size_t>()));
JSON_TEST_DETECT(from_ubjson_ptr_len, J::from_ubjson(std::declval<ptr_t>(), std::declval<std::size_t>()));
JSON_TEST_DETECT(from_bjdata_ptr_len, J::from_bjdata(std::declval<ptr_t>(), std::declval<std::size_t>()));
JSON_TEST_DETECT(from_bon8_ptr_len, J::from_bon8(std::declval<ptr_t>(), std::declval<std::size_t>()));
JSON_TEST_DETECT(from_bson_ptr_len, J::from_bson(std::declval<ptr_t>(), std::declval<std::size_t>()));
JSON_TEST_DETECT(from_cbor_ptr_ptr, J::from_cbor(std::declval<ptr_t>(), std::declval<ptr_t>()));
JSON_TEST_DETECT(from_msgpack_ptr_ptr, J::from_msgpack(std::declval<ptr_t>(), std::declval<ptr_t>()));
JSON_TEST_DETECT(from_ubjson_ptr_ptr, J::from_ubjson(std::declval<ptr_t>(), std::declval<ptr_t>()));
JSON_TEST_DETECT(from_bjdata_ptr_ptr, J::from_bjdata(std::declval<ptr_t>(), std::declval<ptr_t>()));
JSON_TEST_DETECT(from_bon8_ptr_ptr, J::from_bon8(std::declval<ptr_t>(), std::declval<ptr_t>()));
JSON_TEST_DETECT(from_bson_ptr_ptr, J::from_bson(std::declval<ptr_t>(), std::declval<ptr_t>()));
JSON_TEST_DETECT(from_cbor_init_list, J::from_cbor({std::declval<ptr_t>(), std::declval<std::size_t>()}));
JSON_TEST_DETECT(from_msgpack_init_list, J::from_msgpack({std::declval<ptr_t>(), std::declval<std::size_t>()}));
JSON_TEST_DETECT(from_ubjson_init_list, J::from_ubjson({std::declval<ptr_t>(), std::declval<std::size_t>()}));
JSON_TEST_DETECT(from_bson_init_list, J::from_bson({std::declval<ptr_t>(), std::declval<std::size_t>()}));
JSON_TEST_DETECT(parse_init_list, J::parse({std::declval<ptr_t>(), std::declval<std::size_t>()}));
JSON_TEST_DETECT(accept_init_list, J::accept({std::declval<ptr_t>(), std::declval<std::size_t>()}));
JSON_TEST_DETECT(sax_parse_init_list, J::sax_parse({std::declval<ptr_t>(), std::declval<std::size_t>()}, std::declval<nlohmann::json_sax<J>*>()));
JSON_TEST_DETECT(parse_ptr_ptr, J::parse(std::declval<ptr_t>(), std::declval<ptr_t>()));
JSON_TEST_DETECT(iterator_wrapper, J::iterator_wrapper(std::declval<J&>()));
JSON_TEST_DETECT(iterator_wrapper_const, J::iterator_wrapper(std::declval<const J&>()));
JSON_TEST_DETECT(items, std::declval<J&>().items());
JSON_TEST_DETECT(json_ltlt_istream, std::declval<J&>() << std::declval<std::istream&>());
JSON_TEST_DETECT(istream_gtgt_json, std::declval<std::istream&>() >> std::declval<J&>());
JSON_TEST_DETECT(json_gtgt_ostream, std::declval<const J&>() >> std::declval<std::ostream&>());
JSON_TEST_DETECT(ostream_ltlt_json, std::declval<std::ostream&>() << std::declval<const J&>());
JSON_TEST_DETECT(ptr_eq_ptr, std::declval<const typename J::json_pointer&>() == std::declval<const typename J::json_pointer&>());
JSON_TEST_DETECT(ptr_ne_ptr, std::declval<const typename J::json_pointer&>() != std::declval<const typename J::json_pointer&>());
JSON_TEST_DETECT(ptr_eq_string, std::declval<const typename J::json_pointer&>() == std::declval<const std::string&>());
JSON_TEST_DETECT(string_eq_ptr, std::declval<const std::string&>() == std::declval<const typename J::json_pointer&>());
JSON_TEST_DETECT(ptr_eq_c_string, std::declval<const typename J::json_pointer&>() == std::declval<const char*>());
JSON_TEST_DETECT(c_string_eq_ptr, std::declval<const char*>() == std::declval<const typename J::json_pointer&>());
JSON_TEST_DETECT(ptr_ne_string, std::declval<const typename J::json_pointer&>() != std::declval<const std::string&>());
JSON_TEST_DETECT(string_ne_ptr, std::declval<const std::string&>() != std::declval<const typename J::json_pointer&>());
JSON_TEST_DETECT(ptr_to_string, std::declval<const typename J::json_pointer&>().to_string());
// json_pointer with a basic_json type as template argument
template<typename J>
using legacy_ptr_t = const nlohmann::json_pointer<J>& ;
JSON_TEST_DETECT(legacy_ptr_value, std::declval<const J&>().value(std::declval<legacy_ptr_t<J>>(), 0));
JSON_TEST_DETECT(legacy_ptr_value_rvalue, std::declval<const J&>().value(std::declval<legacy_ptr_t<J>>(), std::string()));
JSON_TEST_DETECT(legacy_ptr_contains, std::declval<const J&>().contains(std::declval<legacy_ptr_t<J>>()));
JSON_TEST_DETECT(legacy_ptr_subscript, std::declval<J&>()[std::declval<legacy_ptr_t<J>>()]);
JSON_TEST_DETECT(legacy_ptr_subscript_const, std::declval<const J&>()[std::declval<legacy_ptr_t<J>>()]);
JSON_TEST_DETECT(legacy_ptr_at, std::declval<J&>().at(std::declval<legacy_ptr_t<J>>()));
JSON_TEST_DETECT(legacy_ptr_at_const, std::declval<const J&>().at(std::declval<legacy_ptr_t<J>>()));
JSON_TEST_DETECT(ptr_value, std::declval<const J&>().value(std::declval<const typename J::json_pointer&>(), 0));
JSON_TEST_DETECT(ptr_at, std::declval<J&>().at(std::declval<const typename J::json_pointer&>()));
#undef JSON_TEST_DETECT
} // namespace
TEST_CASE("JSON_DELETE_DEPRECATED_FUNCTIONS")
{
SECTION("from_* with a pointer and a length")
{
// the overloads are deleted rather than removed, so the length cannot
// silently bind to the strict parameter of from_*(InputType&&, bool)
CHECK_FALSE(from_cbor_ptr_len<json>::value);
CHECK_FALSE(from_msgpack_ptr_len<json>::value);
CHECK_FALSE(from_ubjson_ptr_len<json>::value);
CHECK_FALSE(from_bjdata_ptr_len<json>::value);
CHECK_FALSE(from_bon8_ptr_len<json>::value);
CHECK_FALSE(from_bson_ptr_len<json>::value);
// the replacement
CHECK(from_cbor_ptr_ptr<json>::value);
CHECK(from_msgpack_ptr_ptr<json>::value);
CHECK(from_ubjson_ptr_ptr<json>::value);
CHECK(from_bjdata_ptr_ptr<json>::value);
CHECK(from_bon8_ptr_ptr<json>::value);
CHECK(from_bson_ptr_ptr<json>::value);
}
SECTION("initializer lists of a pointer and a length")
{
CHECK_FALSE(from_cbor_init_list<json>::value);
CHECK_FALSE(from_msgpack_init_list<json>::value);
CHECK_FALSE(from_ubjson_init_list<json>::value);
CHECK_FALSE(from_bson_init_list<json>::value);
CHECK_FALSE(parse_init_list<json>::value);
CHECK_FALSE(accept_init_list<json>::value);
CHECK_FALSE(sax_parse_init_list<json>::value);
// the replacement
CHECK(parse_ptr_ptr<json>::value);
}
SECTION("iterator_wrapper")
{
CHECK_FALSE(iterator_wrapper<json>::value);
CHECK_FALSE(iterator_wrapper_const<json>::value);
// the replacement
CHECK(items<json>::value);
}
SECTION("stream operators with reversed operands")
{
CHECK_FALSE(json_ltlt_istream<json>::value);
CHECK_FALSE(json_gtgt_ostream<json>::value);
// the replacement
CHECK(istream_gtgt_json<json>::value);
CHECK(ostream_ltlt_json<json>::value);
}
SECTION("json_pointer")
{
// conversion to a string
CHECK_FALSE(std::is_constructible<std::string, json::json_pointer>::value);
CHECK_FALSE(std::is_convertible<json::json_pointer, std::string>::value);
// comparison with a string
CHECK_FALSE(ptr_eq_string<json>::value);
CHECK_FALSE(string_eq_ptr<json>::value);
CHECK_FALSE(ptr_eq_c_string<json>::value);
CHECK_FALSE(c_string_eq_ptr<json>::value);
CHECK_FALSE(ptr_ne_string<json>::value);
CHECK_FALSE(string_ne_ptr<json>::value);
// the replacement
CHECK(ptr_to_string<json>::value);
CHECK(ptr_eq_ptr<json>::value);
CHECK(ptr_ne_ptr<json>::value);
}
SECTION("json_pointer with a basic_json type as template argument")
{
CHECK_FALSE(legacy_ptr_value<json>::value);
CHECK_FALSE(legacy_ptr_value_rvalue<json>::value);
CHECK_FALSE(legacy_ptr_contains<json>::value);
CHECK_FALSE(legacy_ptr_subscript<json>::value);
CHECK_FALSE(legacy_ptr_subscript_const<json>::value);
CHECK_FALSE(legacy_ptr_at<json>::value);
CHECK_FALSE(legacy_ptr_at_const<json>::value);
// the replacement
CHECK(ptr_value<json>::value);
CHECK(ptr_at<json>::value);
}
SECTION("the non-deprecated functions still work")
{
const json j = {{"a", {1, 2}}};
const auto cbor = json::to_cbor(j);
CHECK(json::from_cbor(cbor.data(), cbor.data() + cbor.size()) == j);
const json::json_pointer ptr("/a/1");
CHECK(ptr == json::json_pointer("/a/1"));
CHECK(ptr.to_string() == "/a/1");
CHECK(j[ptr] == 2);
CHECK(j.at(ptr) == 2);
CHECK(j.value(ptr, 0) == 2);
CHECK(j.contains(ptr));
}
}
+14 -2
View File
@@ -16,6 +16,14 @@
#define JSON_TEST_STRICT_NUL_HANDLING_ENABLED 1
#endif
// capture whether JSON_DELETE_DEPRECATED_FUNCTIONS was enabled on the command
// line *before* including json.hpp, since the library #undefs it once the header
// has been fully processed (see include/nlohmann/detail/macro_unscope.hpp); the
// tests of deprecated functions are skipped if these functions are deleted
#if defined(JSON_DELETE_DEPRECATED_FUNCTIONS) && (JSON_DELETE_DEPRECATED_FUNCTIONS == 1)
#define JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
#endif
#include <nlohmann/json.hpp>
using nlohmann::json;
#ifdef JSON_TEST_NO_GLOBAL_UDLS
@@ -291,6 +299,7 @@ TEST_CASE("deserialization")
}));
}
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
SECTION("operator<<")
{
std::stringstream ss;
@@ -299,6 +308,7 @@ TEST_CASE("deserialization")
j << ss;
CHECK(j == json({"foo", 1, 2, 3, false, {{"one", 1}}}));
}
#endif
SECTION("operator>>")
{
@@ -423,6 +433,7 @@ TEST_CASE("deserialization")
CHECK_THROWS_WITH_AS(_ = json::parse(nullptr), "[json.exception.parse_error.101] parse error: attempting to parse an empty input; check that your input string or stream contains the expected JSON", json::parse_error&);
}
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
SECTION("operator<<")
{
std::stringstream ss;
@@ -430,6 +441,7 @@ TEST_CASE("deserialization")
json j;
CHECK_THROWS_WITH_AS(j << ss, "[json.exception.parse_error.101] parse error at line 1, column 29: syntax error while parsing array - unexpected end of input; expected ']'", json::parse_error&);
}
#endif
SECTION("operator>>")
{
@@ -1148,9 +1160,9 @@ TEST_CASE("deserialization")
{
std::istringstream s(bom + "123 456");
json j;
j << s;
s >> j;
CHECK(j == 123);
j << s;
s >> j;
CHECK(j == 456);
}
}
+10
View File
@@ -8,6 +8,14 @@
#include "doctest_compatibility.h"
// capture whether JSON_DELETE_DEPRECATED_FUNCTIONS was enabled on the command
// line *before* including json.hpp, since the library #undefs it once the header
// has been fully processed (see include/nlohmann/detail/macro_unscope.hpp); the
// tests of deprecated functions are skipped if these functions are deleted
#if defined(JSON_DELETE_DEPRECATED_FUNCTIONS) && (JSON_DELETE_DEPRECATED_FUNCTIONS == 1)
#define JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
#endif
#include <nlohmann/json.hpp>
using nlohmann::json;
@@ -19,6 +27,7 @@ DOCTEST_GCC_SUPPRESS_WARNING_PUSH
DOCTEST_CLANG_SUPPRESS_WARNING_PUSH
DOCTEST_CLANG_SUPPRESS_WARNING("-Wrange-loop-construct")
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
TEST_CASE("iterator_wrapper")
{
SECTION("object")
@@ -715,6 +724,7 @@ TEST_CASE("iterator_wrapper")
}
}
}
#endif
TEST_CASE("items()")
{
+19 -4
View File
@@ -9,6 +9,14 @@
#include "doctest_compatibility.h"
#define JSON_TESTS_PRIVATE
// capture whether JSON_DELETE_DEPRECATED_FUNCTIONS was enabled on the command
// line *before* including json.hpp, since the library #undefs it once the header
// has been fully processed (see include/nlohmann/detail/macro_unscope.hpp); the
// tests of deprecated functions are skipped if these functions are deleted
#if defined(JSON_DELETE_DEPRECATED_FUNCTIONS) && (JSON_DELETE_DEPRECATED_FUNCTIONS == 1)
#define JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
#endif
#include <nlohmann/json.hpp>
using nlohmann::json;
#ifdef JSON_TEST_NO_GLOBAL_UDLS
@@ -564,7 +572,9 @@ TEST_CASE("JSON pointers")
std::stringstream ss;
ss << ptr;
CHECK(ptr.to_string() == ptr_str);
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
CHECK(std::string(ptr) == ptr_str);
#endif
CHECK(ss.str() == ptr_str);
}
}
@@ -744,8 +754,6 @@ TEST_CASE("JSON pointers")
SECTION("equality comparison")
{
const char* ptr_cpstring = "/foo/bar";
const char ptr_castring[] = "/foo/bar"; // NOLINT(misc-const-correctness,hicpp-avoid-c-arrays,modernize-avoid-c-arrays,cppcoreguidelines-avoid-c-arrays)
std::string ptr_string{"/foo/bar"};
auto ptr1 = json::json_pointer(ptr_string);
auto ptr2 = json::json_pointer(ptr_string);
@@ -755,6 +763,12 @@ TEST_CASE("JSON pointers")
CHECK(ptr1 == ptr2);
CHECK_FALSE(ptr1 != ptr2);
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
const char* ptr_cpstring = "/foo/bar";
const char ptr_castring[] = "/foo/bar"; // NOLINT(misc-const-correctness,hicpp-avoid-c-arrays,modernize-avoid-c-arrays,cppcoreguidelines-avoid-c-arrays)
CHECK(ptr1 == "/foo/bar");
CHECK(ptr1 == ptr_cpstring);
CHECK(ptr1 == ptr_castring);
@@ -765,8 +779,6 @@ TEST_CASE("JSON pointers")
CHECK(ptr_castring == ptr1);
CHECK(ptr_string == ptr1);
CHECK_FALSE(ptr1 != ptr2);
CHECK_FALSE(ptr1 != "/foo/bar");
CHECK_FALSE(ptr1 != ptr_cpstring);
CHECK_FALSE(ptr1 != ptr_castring);
@@ -788,6 +800,7 @@ TEST_CASE("JSON pointers")
CHECK_THROWS_WITH_AS("/~~" == ptr1,
"[json.exception.parse_error.108] parse error: escape character '~' must be followed with '0' or '1'", json::parse_error&);
}
#endif
}
SECTION("less-than comparison")
@@ -839,6 +852,7 @@ TEST_CASE("JSON pointers")
json_ptr_j ptr_j{ptr_string};
json_ptr_oj ptr_oj{ptr_string};
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
CHECK(j.contains(ptr));
CHECK(j.contains(ptr_j));
CHECK(j.contains(ptr_oj));
@@ -851,6 +865,7 @@ TEST_CASE("JSON pointers")
CHECK(j.value(ptr, "x") == j.value(ptr_j, "x"));
CHECK(j.value(ptr, "x") == j.value(ptr_oj, "x"));
#endif
CHECK(ptr == ptr_j);
CHECK(ptr == ptr_oj);
+12
View File
@@ -8,6 +8,14 @@
#include "doctest_compatibility.h"
// capture whether JSON_DELETE_DEPRECATED_FUNCTIONS was enabled on the command
// line *before* including json.hpp, since the library #undefs it once the header
// has been fully processed (see include/nlohmann/detail/macro_unscope.hpp); the
// tests of deprecated functions are skipped if these functions are deleted
#if defined(JSON_DELETE_DEPRECATED_FUNCTIONS) && (JSON_DELETE_DEPRECATED_FUNCTIONS == 1)
#define JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
#endif
#include <nlohmann/json.hpp>
using nlohmann::json;
#ifdef JSON_TEST_NO_GLOBAL_UDLS
@@ -1795,8 +1803,10 @@ TEST_CASE("MessagePack input that cannot be read is discarded by every overload"
CHECK_THROWS_AS(_ = json::from_msgpack(input.begin(), input.end()), json::parse_error&);
CHECK(json::from_msgpack(input, true, false).is_discarded());
CHECK(json::from_msgpack(input.begin(), input.end(), true, false).is_discarded());
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
CHECK(json::from_msgpack(input.data(), input.size(), true, false).is_discarded());
CHECK(json::from_msgpack({input.data(), input.size()}, true, false).is_discarded());
#endif
}
TEST_CASE("MessagePack SAX parsing stops at every event")
@@ -2099,12 +2109,14 @@ TEST_CASE("MessagePack roundtrips" * doctest::skip())
CHECK(j1 == j2);
}
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
{
INFO_WITH_TEMP(filename + ": uint8_t* and size");
json j2;
CHECK_NOTHROW(j2 = json::from_msgpack({packed.data(), packed.size()}));
CHECK(j1 == j2);
}
#endif
{
INFO_WITH_TEMP(filename + ": output to output adapters");
+1 -578
View File
@@ -569,7 +569,7 @@ TEST_CASE("regression tests 2")
SECTION("issue #2067 - cannot serialize binary data to text JSON")
{
const std::array<unsigned char, 23> data = {{0x81, 0xA4, 0x64, 0x61, 0x74, 0x61, 0xC4, 0x0F, 0x33, 0x30, 0x30, 0x32, 0x33, 0x34, 0x30, 0x31, 0x30, 0x37, 0x30, 0x35, 0x30, 0x31, 0x30}};
const json j = json::from_msgpack(data.data(), data.size());
const json j = json::from_msgpack(data.begin(), data.end());
// dump() is nodiscard; this only checks that dumping does not throw
CHECK_NOTHROW(
utils::ignore_return_value(
@@ -940,581 +940,4 @@ TEST_CASE("regression test - excessive binary container size honors allow_except
CHECK(json::from_cbor(std::vector<std::uint8_t> {0x9b, 0, 0, 0, 0, 0, 0, 0, 0x02}, true, false).is_discarded());
}
namespace
{
/// builds a value from SAX events, asks the parser to recover from its first
/// 100 errors, and checks that the events are balanced (see #3989)
class RecoveringParser
{
public:
explicit RecoveringParser(json& j)
: dom(j, false)
{}
bool null()
{
value();
return dom.null();
}
bool boolean(bool val)
{
value();
return dom.boolean(val);
}
bool number_integer(json::number_integer_t val)
{
value();
return dom.number_integer(val);
}
bool number_unsigned(json::number_unsigned_t val)
{
value();
return dom.number_unsigned(val);
}
bool number_float(json::number_float_t val, const std::string& s)
{
value();
return dom.number_float(val, s);
}
bool string(std::string& val)
{
value();
return dom.string(val);
}
bool binary(json::binary_t& val)
{
value();
return dom.binary(val);
}
bool start_object(std::size_t elements)
{
value();
stack.push_back('o');
return dom.start_object(elements);
}
bool key(std::string& val)
{
if (stack.empty() || stack.back() != 'o')
{
well_formed = false;
return false;
}
stack.back() = 'v';
return dom.key(val);
}
bool end_object()
{
if (stack.empty() || stack.back() != 'o')
{
well_formed = false;
return false;
}
stack.pop_back();
return dom.end_object();
}
bool start_array(std::size_t elements)
{
value();
stack.push_back('a');
return dom.start_array(elements);
}
bool end_array()
{
if (stack.empty() || stack.back() != 'a')
{
well_formed = false;
return false;
}
stack.pop_back();
return dom.end_array();
}
bool parse_error(std::size_t /*unused*/, const std::string& /*unused*/, const json::exception& ex)
{
messages.emplace_back(ex.what());
// a limit, so that a reader that does not stop fails the test
// instead of making it hang
return ++errors < 100;
}
/// whether the events were balanced and every key was followed by a value
bool balanced() const
{
return well_formed && stack.empty();
}
/// builds the value
nlohmann::detail::json_sax_dom_parser<json> dom;
std::size_t errors = 0;
std::vector<std::string> messages {}; // NOLINT(readability-redundant-member-init)
std::vector<char> stack {}; // NOLINT(readability-redundant-member-init)
bool well_formed = true;
private:
void value()
{
if (!stack.empty())
{
if (stack.back() == 'v')
{
stack.back() = 'o';
}
else if (stack.back() == 'o')
{
well_formed = false;
}
}
}
};
struct BinaryParseResult
{
json value;
std::size_t errors;
std::vector<std::string> messages;
bool ok;
bool balanced;
};
BinaryParseResult parse_binary_recovering(const std::vector<std::uint8_t>& input, const json::input_format_t format)
{
json j;
RecoveringParser sax(j);
const bool ok = json::sax_parse(input, &sax, format);
return {j, sax.errors, sax.messages, ok, sax.balanced()};
}
#if !defined(JSON_NOEXCEPTION)
/// the message of the exception that reading @a input into a JSON value
/// throws, or an empty string if reading succeeds
std::string binary_error_message(const std::vector<std::uint8_t>& input, const json::input_format_t format)
{
try
{
json _;
switch (format)
{
case json::input_format_t::cbor:
_ = json::from_cbor(input);
break;
case json::input_format_t::msgpack:
_ = json::from_msgpack(input);
break;
case json::input_format_t::ubjson:
_ = json::from_ubjson(input);
break;
case json::input_format_t::bjdata:
_ = json::from_bjdata(input);
break;
case json::input_format_t::bson:
_ = json::from_bson(input);
break;
case json::input_format_t::bon8:
_ = json::from_bon8(input);
break;
case json::input_format_t::json:
default:
break;
}
}
catch (const json::exception& e)
{
return e.what();
}
return "";
}
#endif
/// a BSON element: its type, its name, and its value
std::vector<std::uint8_t> bson_element(const std::uint8_t type, const std::string& name, const std::vector<std::uint8_t>& value)
{
std::vector<std::uint8_t> result = {type};
result.insert(result.end(), name.begin(), name.end());
result.push_back(0x00);
result.insert(result.end(), value.begin(), value.end());
return result;
}
/// a BSON document of the given elements; @a size_offset is added to the
/// size it declares
std::vector<std::uint8_t> bson_document(const std::vector<std::vector<std::uint8_t>>& elements, const int size_offset = 0)
{
std::vector<std::uint8_t> body;
for (const auto& element : elements)
{
body.insert(body.end(), element.begin(), element.end());
}
const auto size = static_cast<std::uint32_t>(static_cast<int>(body.size()) + 5 + size_offset);
std::vector<std::uint8_t> result = {static_cast<std::uint8_t>(size & 0xFFu), static_cast<std::uint8_t>((size >> 8u) & 0xFFu),
static_cast<std::uint8_t>((size >> 16u) & 0xFFu), static_cast<std::uint8_t>((size >> 24u) & 0xFFu)
};
result.insert(result.end(), body.begin(), body.end());
result.push_back(0x00);
return result;
}
/// a BSON int32 value
std::vector<std::uint8_t> bson_int32(const std::int32_t value)
{
const auto u = static_cast<std::uint32_t>(value);
return {static_cast<std::uint8_t>(u & 0xFFu), static_cast<std::uint8_t>((u >> 8u) & 0xFFu),
static_cast<std::uint8_t>((u >> 16u) & 0xFFu), static_cast<std::uint8_t>((u >> 24u) & 0xFFu)};
}
/// a BSON string value, whose length is @a length_offset off
std::vector<std::uint8_t> bson_string(const std::string& value, const std::int32_t length_offset = 0)
{
auto result = bson_int32(static_cast<std::int32_t>(value.size() + 1) + length_offset);
result.insert(result.end(), value.begin(), value.end());
result.push_back(0x00);
return result;
}
/// @a count bytes of value 0xAB
std::vector<std::uint8_t> bytes(const std::size_t count)
{
return std::vector<std::uint8_t>(count, 0xAB);
}
template<typename... Parts>
std::vector<std::uint8_t> concatenated(const std::vector<std::uint8_t>& first, const Parts& ... rest)
{
std::vector<std::uint8_t> result = first;
for (const auto& part : std::initializer_list<std::vector<std::uint8_t>> {rest...})
{
result.insert(result.end(), part.begin(), part.end());
}
return result;
}
/// U+FFFD REPLACEMENT CHARACTER
std::string replacement_character()
{
return "\xEF\xBF\xBD";
}
} // namespace
TEST_CASE("regression test - #3989 SAX parse_error() returning true")
{
SECTION("binary formats complete what was read before the input ends")
{
const json j = {{"a", {1, -2, {{"b", "c"}}, json::array()}}, {"d", {{"e", nullptr}, {"f", true}}}, {"g", 1.5}, {"h", json::binary({1, 2, 3})}};
const std::vector<std::pair<json::input_format_t, std::vector<std::uint8_t>>> encodings =
{
{json::input_format_t::cbor, json::to_cbor(j)},
{json::input_format_t::msgpack, json::to_msgpack(j)},
{json::input_format_t::ubjson, json::to_ubjson(j)},
{json::input_format_t::ubjson, json::to_ubjson(j, true, true)},
{json::input_format_t::bjdata, json::to_bjdata(j)},
{json::input_format_t::bjdata, json::to_bjdata(j, true, true)},
{json::input_format_t::bson, json::to_bson(j)},
{json::input_format_t::bon8, json::to_bon8(j)},
};
for (const auto& encoding : encodings)
{
const auto format = encoding.first;
const auto& bytes = encoding.second;
CAPTURE(format)
// every prefix is truncated input
for (std::size_t length = 0; length < bytes.size(); ++length)
{
CAPTURE(length)
const auto result = parse_binary_recovering(std::vector<std::uint8_t>(bytes.begin(), bytes.begin() + static_cast<std::ptrdiff_t>(length)), format);
CHECK(!result.ok);
CHECK(result.errors == 1);
CHECK(result.balanced);
}
// the complete input is read as usual (binary values do not
// round-trip through every format, so compare with a plain parse)
json expected;
nlohmann::detail::json_sax_dom_parser<json> dom(expected);
CHECK(json::sax_parse(bytes, &dom, format));
const auto complete = parse_binary_recovering(bytes, format);
CHECK(complete.ok);
CHECK(complete.errors == 0);
CHECK(complete.value == expected);
// a byte after the value
auto trailing_bytes = bytes;
trailing_bytes.push_back(0x01);
const auto trailing = parse_binary_recovering(trailing_bytes, format);
CHECK(!trailing.ok);
CHECK(trailing.errors == 1);
CHECK(trailing.value == expected);
}
}
SECTION("containers without an end")
{
// these made the readers loop, or read on, after the error
const auto cbor_array = parse_binary_recovering({0x9F}, json::input_format_t::cbor);
CHECK(cbor_array.errors == 1);
CHECK(cbor_array.value == json::array());
const auto cbor_map = parse_binary_recovering({0xBF, 0x61, 'a'}, json::input_format_t::cbor);
CHECK(cbor_map.errors == 1);
CHECK(cbor_map.value == json({{"a", nullptr}}));
const auto msgpack_array = parse_binary_recovering({0xDD, 0xFF, 0xFF, 0xFF, 0xFF}, json::input_format_t::msgpack);
CHECK(msgpack_array.errors == 1);
CHECK(msgpack_array.value == json::array());
const auto msgpack_map = parse_binary_recovering({0x81, 0xA1, 'a', 0x92, 0x01}, json::input_format_t::msgpack);
CHECK(msgpack_map.errors == 1);
CHECK(msgpack_map.value == json({{"a", {1}}}));
}
SECTION("BJData ndarray")
{
// a 2x3 int8 array with two of its six elements; the annotated array
// format opens an object and two arrays of its own
const auto result = parse_binary_recovering({'[', '$', 'i', '#', '[', '$', 'i', '#', 'i', 2, 2, 3, 1, 2}, json::input_format_t::bjdata);
CHECK(result.errors == 1);
CHECK(result.balanced);
CHECK(result.value == json({{"_ArrayType_", "int8"}, {"_ArraySize_", {2, 3}}, {"_ArrayData_", {1, 2}}}));
}
SECTION("binary formats repair items whose end is known")
{
struct Repair
{
json::input_format_t format;
std::vector<std::uint8_t> input;
json expected;
std::size_t errors;
};
const std::vector<Repair> repairs =
{
// CBOR: tags are ignored (here tag 1 and the self-describe tag 55799)
{json::input_format_t::cbor, {0x82, 0xC1, 0x05, 0xD9, 0xD9, 0xF7, 0x06}, {5, 6}, 2},
// CBOR: undefined and other simple values become null
{json::input_format_t::cbor, {0x84, 0xF7, 0xE0, 0xF8, 0x20, 0x01}, {nullptr, nullptr, nullptr, 1}, 3},
// CBOR: members whose key is not a string are skipped, whatever their key and value
{json::input_format_t::cbor, {0xA4, 0x01, 0x02, 0x82, 0x01, 0x02, 0xA1, 0x61, 'x', 0x9F, 0xFF, 0xC1, 0x01, 0x5F, 0x41, 0x00, 0xFF, 0x61, 'a', 0x03}, {{"a", 3}}, 3},
{json::input_format_t::cbor, {0xBF, 0xF5, 0xBF, 0x61, 'x', 0x7F, 0x61, 'y', 0xFF, 0xFF, 0x61, 'a', 0x03, 0xFF}, {{"a", 3}}, 1},
// MessagePack: members whose key is not a string are skipped
{json::input_format_t::msgpack, {0x84, 0x01, 0x02, 0x81, 0xA1, 'x', 0x01, 0x92, 0x01, 0x02, 0xD4, 0x01, 0x02, 0xC0, 0xA1, 'a', 0x04}, {{"a", 4}}, 3},
// UBJSON: a char that is not ASCII becomes U+FFFD
{json::input_format_t::ubjson, {'[', 'C', 0x80, 'C', 'A', ']'}, {replacement_character(), "A"}, 1},
// UBJSON: the longest beginning of a high-precision number is kept
{json::input_format_t::ubjson, {'[', 'H', 'i', 5, '1', '2', 'a', 'b', 'c', 'H', 'i', 2, '1', '.', 'H', 'i', 3, 'a', 'b', 'c', 'H', 'i', 3, '4', '.', '5', ']'}, {12, 1, nullptr, 4.5}, 3},
// BJData, too
{json::input_format_t::bjdata, {'[', 'C', 0xFF, 'H', 'i', 2, '-', '1', 'H', 'i', 2, '-', 'x', ']'}, {replacement_character(), -1, nullptr}, 2},
// BON8: members whose key is not a string are skipped
{json::input_format_t::bon8, {0x89, 0x91, 0x92, 0xC9, 0x40, 0x82, 0x91, 0x92, 0x61, 0x93}, {{"a", 3}}, 2},
{json::input_format_t::bon8, {0x8B, 0x91, 0x85, 0x91, 0xFE, 0xFA, 0x8B, 'x', 0x91, 0xFE, 0x61, 0x93, 0xFE}, {{"a", 3}}, 2},
// BSON: elements of types the library does not read become null
{
json::input_format_t::bson, bson_document(
{
bson_element(0x07, "_id", bytes(12)), // ObjectId
bson_element(0x09, "date", bytes(8)), // UTC datetime
bson_element(0x13, "decimal", bytes(16)), // 128-bit decimal
bson_element(0x0B, "regex", {'a', '+', 0, 'i', 0}), // regular expression
bson_element(0x0D, "code", bson_string("f()")), // JavaScript code
bson_element(0x0E, "symbol", bson_string("s")), // symbol
bson_element(0x0C, "pointer", concatenated(bson_string("c"), bytes(12))), // DBPointer
bson_element(0x0F, "scope", concatenated(bson_int32(15), bson_string("g"), bson_document({}))), // code with scope
bson_element(0x06, "undefined", {}), // undefined
bson_element(0xFF, "min", {}), // min key
bson_element(0x7F, "max", {}), // max key
bson_element(0x10, "z", bson_int32(7)),
}),
{{"_id", nullptr}, {"date", nullptr}, {"decimal", nullptr}, {"regex", nullptr}, {"code", nullptr}, {"symbol", nullptr}, {"pointer", nullptr}, {"scope", nullptr}, {"undefined", nullptr}, {"min", nullptr}, {"max", nullptr}, {"z", 7}},
11
},
// BSON: an element of an unknown type becomes null, and the rest of its document is skipped
{
json::input_format_t::bson, bson_document(
{
bson_element(0x03, "inner", bson_document({bson_element(0x10, "a", bson_int32(1)), bson_element(0x42, "x", bytes(3)), bson_element(0x10, "b", bson_int32(2))})),
bson_element(0x04, "array", bson_document({bson_element(0x10, "0", bson_int32(1)), bson_element(0x42, "1", bytes(3))})),
bson_element(0x10, "after", bson_int32(3)),
}),
{{"inner", {{"a", 1}, {"x", nullptr}}}, {"array", {1, nullptr}}, {"after", 3}},
2
},
// BSON: so does a string or byte array whose length cannot be right
{
json::input_format_t::bson, bson_document(
{
bson_element(0x03, "inner", bson_document({bson_element(0x02, "s", bson_string("abc", -10)), bson_element(0x10, "b", bson_int32(2))})),
bson_element(0x03, "bin", bson_document({bson_element(0x05, "b", concatenated(bson_int32(-1), bytes(1))), bson_element(0x10, "b", bson_int32(2))})),
bson_element(0x10, "after", bson_int32(3)),
}),
{{"inner", {{"s", nullptr}}}, {"bin", {{"b", nullptr}}}, {"after", 3}},
2
},
// BSON: a string without its terminator, and a document whose size does not match, are kept
{
json::input_format_t::bson, bson_document(
{
bson_element(0x02, "s", {2, 0, 0, 0, 'a', 'X'}),
bson_element(0x03, "inner", bson_document({bson_element(0x10, "a", bson_int32(1))}, 1)),
}),
{{"s", "a"}, {"inner", {{"a", 1}}}},
2
},
};
for (const auto& repair : repairs)
{
CAPTURE(repair.format)
CAPTURE(repair.input)
const auto result = parse_binary_recovering(repair.input, repair.format);
CHECK(!result.ok);
CHECK(result.balanced);
CHECK(result.errors == repair.errors);
CHECK(result.value == repair.expected);
REQUIRE(!result.messages.empty());
#if !defined(JSON_NOEXCEPTION)
// the first error is the one reported without recovering; under
// JSON_NOEXCEPTION, reading without recovering aborts instead of
// throwing, so there is no message to compare with
CHECK(result.messages.front() == binary_error_message(repair.input, repair.format));
#endif
}
}
SECTION("binary formats repair numbers that are out of range")
{
// CBOR: a negative integer below the range of number_integer_t
const auto cbor = parse_binary_recovering({0x3B, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF}, json::input_format_t::cbor);
CHECK(cbor.errors == 1);
CHECK(cbor.value.is_number_float());
CHECK(cbor.value.get<double>() == -18446744073709551616.0);
// UBJSON: a high-precision number too large for number_float_t
const auto ubjson = parse_binary_recovering({'H', 'i', 5, '1', 'e', '9', '9', '9'}, json::input_format_t::ubjson);
CHECK(ubjson.errors == 1);
CHECK(ubjson.value.is_number_float());
CHECK(std::isinf(ubjson.value.get<double>()));
}
SECTION("binary formats stop where the end of an item is not known")
{
// a byte that begins no item
const auto cbor = parse_binary_recovering({0x82, 0x01, 0x1C, 0x02}, json::input_format_t::cbor);
CHECK(cbor.errors == 1);
CHECK(cbor.value == json({1}));
// a key that is no item: the unused MessagePack byte, a CBOR break
// in a map of known size, and the end of a BON8 container
const auto msgpack = parse_binary_recovering({0x82, 0xA1, 'a', 0x01, 0xC1, 0x02}, json::input_format_t::msgpack);
CHECK(msgpack.errors == 1);
CHECK(msgpack.value == json({{"a", 1}}));
const auto cbor_break = parse_binary_recovering({0xA2, 0x61, 'a', 0x01, 0xFF, 0x02}, json::input_format_t::cbor);
CHECK(cbor_break.errors == 1);
CHECK(cbor_break.value == json({{"a", 1}}));
const auto bon8 = parse_binary_recovering({0x88, 0x61, 0x91, 0xFE}, json::input_format_t::bon8);
CHECK(bon8.errors == 1);
CHECK(bon8.value == json({{"a", 1}}));
// a skipped member that the input ends in
const auto truncated = parse_binary_recovering({0xA2, 0x01, 0x82, 0x01}, json::input_format_t::cbor);
CHECK(truncated.errors == 2);
CHECK(truncated.balanced);
CHECK(truncated.value == json::object());
// a BSON element of an unknown type in a document whose size cannot be right
const auto bson = parse_binary_recovering(bson_document({bson_element(0x10, "a", bson_int32(1)), bson_element(0x42, "x", bytes(3))}, -10), json::input_format_t::bson);
CHECK(bson.errors == 1);
CHECK(bson.value == json({{"a", 1}, {"x", nullptr}}));
}
SECTION("changed bytes in binary input")
{
const json j = {{"a", {1, -2, {{"b", "c"}}, json::array()}}, {"d", {{"e", nullptr}, {"f", true}}}, {"g", 1.5}, {"h", json::binary({1, 2, 3})}, {"i", "\xC3\xA4"}};
const std::vector<std::pair<json::input_format_t, std::vector<std::uint8_t>>> encodings =
{
{json::input_format_t::cbor, json::to_cbor(j)},
{json::input_format_t::msgpack, json::to_msgpack(j)},
{json::input_format_t::ubjson, json::to_ubjson(j)},
{json::input_format_t::ubjson, json::to_ubjson(j, true, true)},
{json::input_format_t::bjdata, json::to_bjdata(j)},
{json::input_format_t::bjdata, json::to_bjdata(j, true, true)},
{json::input_format_t::bson, json::to_bson(j)},
{json::input_format_t::bon8, json::to_bon8(j)},
};
const std::vector<std::uint8_t> replacements = {0x00, 0x01, 0x7F, 0x80, 0xC1, 0xD9, 0xE0, 0xF7, 0xFE, 0xFF};
for (const auto& encoding : encodings)
{
const auto format = encoding.first;
const auto& original = encoding.second;
CAPTURE(format)
std::vector<std::vector<std::uint8_t>> inputs;
for (std::size_t position = 0; position < original.size(); ++position)
{
for (const auto replacement : replacements)
{
auto changed = original;
changed[position] = replacement;
inputs.push_back(changed);
}
auto removed = original;
removed.erase(removed.begin() + static_cast<std::ptrdiff_t>(position));
inputs.push_back(removed);
}
for (const auto& input : inputs)
{
CAPTURE(input)
const auto result = parse_binary_recovering(input, format);
CHECK(result.balanced);
CHECK(result.errors <= input.size() + 1);
#if !defined(JSON_NOEXCEPTION)
// an error is reported exactly if reading into a JSON value
// fails, and the first one is the same (under JSON_NOEXCEPTION,
// that reading aborts instead of throwing)
const auto message = binary_error_message(input, format);
CHECK(result.ok == message.empty());
if (!result.ok && result.errors < 100)
{
CHECK(result.messages.front() == message);
}
#endif
}
}
}
SECTION("JSON text")
{
// the parser stopped, but reported success
json j;
RecoveringParser sax(j);
CHECK(!json::sax_parse("[1,2,3,]", &sax));
CHECK(sax.errors == 1);
CHECK(j == json({1, 2, 3}));
}
SECTION("the SAX parsers of the library stop")
{
json _;
CHECK(json::from_cbor(std::vector<std::uint8_t> {0x9F}, true, false).is_discarded());
CHECK_THROWS_WITH_AS(_ = json::from_cbor(std::vector<std::uint8_t> {0x9F}), "[json.exception.parse_error.110] parse error at byte 2: syntax error while parsing CBOR value: unexpected end of input", json::parse_error&);
CHECK(json::parse("[1,2,3,]", nullptr, false).is_discarded());
CHECK(!json::accept("[1,2,3,]"));
}
}
DOCTEST_CLANG_SUPPRESS_WARNING_POP
+10
View File
@@ -8,6 +8,14 @@
#include "doctest_compatibility.h"
// capture whether JSON_DELETE_DEPRECATED_FUNCTIONS was enabled on the command
// line *before* including json.hpp, since the library #undefs it once the header
// has been fully processed (see include/nlohmann/detail/macro_unscope.hpp); the
// tests of deprecated functions are skipped if these functions are deleted
#if defined(JSON_DELETE_DEPRECATED_FUNCTIONS) && (JSON_DELETE_DEPRECATED_FUNCTIONS == 1)
#define JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
#endif
#include <nlohmann/json.hpp>
using nlohmann::json;
@@ -48,6 +56,7 @@ TEST_CASE("serialization")
}
}
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
SECTION("operator>>")
{
SECTION("no given width")
@@ -79,6 +88,7 @@ TEST_CASE("serialization")
"[\n\t\"foo\",\n\t1,\n\t2,\n\t3,\n\tfalse,\n\t{\n\t\t\"one\": 1\n\t}\n]");
}
}
#endif
SECTION("dump")
{
+12
View File
@@ -8,6 +8,14 @@
#include "doctest_compatibility.h"
// capture whether JSON_DELETE_DEPRECATED_FUNCTIONS was enabled on the command
// line *before* including json.hpp, since the library #undefs it once the header
// has been fully processed (see include/nlohmann/detail/macro_unscope.hpp); the
// tests of deprecated functions are skipped if these functions are deleted
#if defined(JSON_DELETE_DEPRECATED_FUNCTIONS) && (JSON_DELETE_DEPRECATED_FUNCTIONS == 1)
#define JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
#endif
#include <nlohmann/json.hpp>
using nlohmann::json;
@@ -2212,8 +2220,10 @@ TEST_CASE("UBJSON input that cannot be read is discarded by every overload")
CHECK_THROWS_AS(_ = json::from_ubjson(input.begin(), input.end()), json::parse_error&);
CHECK(json::from_ubjson(input, true, false).is_discarded());
CHECK(json::from_ubjson(input.begin(), input.end(), true, false).is_discarded());
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
CHECK(json::from_ubjson(input.data(), input.size(), true, false).is_discarded());
CHECK(json::from_ubjson({input.data(), input.size()}, true, false).is_discarded());
#endif
}
TEST_CASE("UBJSON SAX parsing stops at every event")
@@ -2961,12 +2971,14 @@ TEST_CASE("UBJSON roundtrips" * doctest::skip())
CHECK(j1 == j2);
}
#ifndef JSON_TEST_DEPRECATED_FUNCTIONS_DELETED
{
INFO_WITH_TEMP(filename + ": uint8_t* and size");
json j2;
CHECK_NOTHROW(j2 = json::from_ubjson({packed.data(), packed.size()}));
CHECK(j1 == j2);
}
#endif
{
INFO_WITH_TEMP(filename + ": output to output adapters");