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json/docs/mkdocs/docs/features/binary_values.md
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Niels Lohmann 63c10a51fc Review and extend the documentation, and check it in CI (#5638)
* Review and extend the documentation, and check it in CI

A review of all documentation pages found factual errors, dead links,
missing cross-references, and gaps in examples. This fixes them and adds
checks so the same problems are caught automatically.

Fixes:
- wrong signatures and version histories (operator!= C++20 member,
  binary() subtype type, get<PointerType>(), JSON_NO_THREAD_LOCAL, ...)
- stale descriptions (number parsing since #5283, UBJSON table, SAX
  example that no longer compiled, tsl::ordered_map advice)
- dead internal and external links; repology.org badges (the domain is
  suspended) replaced by badges that query the registries directly
- deprecation notes link the migration guide; the guide itself fixed

Additions:
- "See also" sections, cross-references, 25 runnable examples, 12
  Mermaid diagrams, new API pages for json_pointer::operator<=> and
  byte_container_with_subtype::operator==/!=
- landing page, guides for untrusted input and performance
- "unreleased" badge after versions newer than the latest release

Checks:
- strict documentation build (broken links/anchors fail it); CI and
  the publish workflow fetch the full history the build needs
- weekly external link check, Mermaid syntax check in CI
- check_structure.py: example titles, heading levels, alt texts,
  header links, docset index coverage; its unused-example check works
  again
- all examples produce the same output on every platform

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

* Keep the customer links that could not be fixed

A dead link on the customers page is still the evidence of where the
use of the library was documented. Keep the original URLs of the entries
without a working replacement (Marne, Cisco Webex Desk Camera, Philips
Hue, CyberArk) and exclude exactly these URLs from the link check.

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

* Correct the duplicate-key recipe's claim about SAX positions

The SAX interface's key() receives no position either; only parse_error()
does. Also note that the recipe does not report the path to the repeated
key (see discussion #5085).

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

* Say the library is available as a single header and mention json_fwd.hpp

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

* Correct documentation errors found while hunting for bugs

- patch/patch_inplace: list the JSON pointer errors parse_error.106-109
  and out_of_range.402/404, and quote the actual parse_error.105 message.
- unflatten: list parse_error.106/107/108 and out_of_range.404.
- to_bson: list out_of_range.415 (binary subtype above 255) and note
  that 412 and 415 are new in 3.13.0.
- to_string: state that string_t must be convertible to std::string, also
  in the StringType requirements table.
- JSON Lines: a `while (input >> j)` loop also throws after the last value
  for concatenated JSON values; show a loop that works for both.
- BON8: a string gets 0xFF only if nothing follows it in the message; a
  string at the end of an array or object is ended by 0xFE.
- custom_string_type.hpp: add operator+=(char), which the "Always
  required" list asks for (json_pointer::to_string, flatten, unflatten,
  and diff did not compile), and an ADL int_to_string for diff and items.

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

* Cache the release headers with functools.lru_cache

Codacy (Pylint) flagged the mutable default argument that header() used
as its cache. functools.lru_cache keeps the same memoization without it.
The script's output is unchanged.

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

---------

Signed-off-by: Niels Lohmann <mail@nlohmann.me>
2026-10-02 11:32:15 +02:00

13 KiB

Binary Values

The library implements several binary formats that encode JSON in an efficient way. Most of these formats support binary values; that is, values that have semantics defined outside the library and only define a sequence of bytes to be stored.

JSON itself does not have a binary value. As such, binary values are an extension that this library implements to store values received by a binary format. Binary values are never created by the JSON parser and are only part of a serialized JSON text if they have been created manually or via a binary format.

API for binary values

classDiagram

class binary_t ["json::binary_t"] {
    +void set_subtype(std::uint64_t subtype)
    +void clear_subtype()
    +std::uint64_t subtype() const
    +bool has_subtype() const
}

class vector ["std::vector<uint8_t>"]

vector <|-- binary_t

By default, binary values are stored as std::vector<std::uint8_t>. This type can be changed by providing a template parameter to the basic_json type. To store binary subtypes, the storage type is extended and exposed as json::binary_t:

auto binary = json::binary_t({0xCA, 0xFE, 0xBA, 0xBE});
auto binary_with_subtype = json::binary_t({0xCA, 0xFE, 0xBA, 0xBE}, 42);

There are several convenience functions to check and set the subtype:

binary.has_subtype();                   // returns false
binary_with_subtype.has_subtype();      // returns true

binary_with_subtype.clear_subtype();
binary_with_subtype.has_subtype();      // returns false

binary_with_subtype.set_subtype(42);
binary.set_subtype(23);

binary.subtype();                       // returns 23

As json::binary_t is subclassing std::vector<std::uint8_t>, all member functions are available:

binary.size();  // returns 4
binary[1];      // returns 0xFE

JSON values can be constructed from json::binary_t:

json j = binary;

Binary values are primitive values just like numbers or strings, as reflected by is_binary() and is_primitive():

j.is_binary();    // returns true
j.is_primitive(); // returns true

Given a binary JSON value, the binary_t can be accessed by reference via get_binary():

j.get_binary().has_subtype();  // returns true
j.get_binary().size();         // returns 4

For convenience, binary JSON values can be constructed via json::binary:

auto j2 = json::binary({0xCA, 0xFE, 0xBA, 0xBE}, 23);
auto j3 = json::binary({0xCA, 0xFE, 0xBA, 0xBE});

j2 == j;                        // returns true
j3.get_binary().has_subtype();  // returns false
j3.get_binary().subtype();      // returns std::uint64_t(-1) as j3 has no subtype

Serialization

Binary values are serialized differently according to the formats.

JSON

JSON does not have a binary type, and this library does not introduce a new type as this would break conformance. Instead, binary values are serialized as an object with two keys: bytes holds an array of integers, and subtype is an integer or null.

??? example "Example: serialize a binary value to JSON"

Code:

```cpp
// create a binary value of subtype 42
json j;
j["binary"] = json::binary({0xCA, 0xFE, 0xBA, 0xBE}, 42);

// serialize to standard output
std::cout << j.dump(2) << std::endl;
```

Output:

```json
{
  "binary": {
    "bytes": [202, 254, 186, 190],
    "subtype": 42
  }
}
```

!!! warning "No roundtrip for binary values"

The JSON parser will not parse the objects generated by binary values back to binary values. This is by design to
remain standards compliant. Serializing binary values to JSON is only implemented for debugging purposes.

BJData

BJData neither supports binary values nor subtypes and proposes to serialize binary values as an array of uint8 values. The library implements this translation.

??? example "Example: serialize a binary value to BJData"

Code:

```cpp
// create a binary value of subtype 42 (will be ignored in BJData)
json j;
j["binary"] = json::binary({0xCA, 0xFE, 0xBA, 0xBE}, 42);

// convert to BJData
auto v = json::to_bjdata(j);      
```
        
`v` is a `std::vector<std::uint8_t>` with the following 20 elements:

```c
0x7B                                             // '{'
    0x69 0x06                                    // i 6 (length of the key)
    0x62 0x69 0x6E 0x61 0x72 0x79                // "binary"
    0x5B                                         // '['
        0x55 0xCA 0x55 0xFE 0x55 0xBA 0x55 0xBE  // content (each byte prefixed with 'U')
    0x5D                                         // ']'
0x7D                                             // '}'
```

The following code uses the type and size optimization for BJData:

```cpp
// convert to BJData using the size and type optimization
auto v = json::to_bjdata(j, true, true);
```

The resulting vector has 22 elements; the optimization is not effective for examples with few values:

```c
0x7B                                // '{'
    0x23 0x69 0x01                  // '#' 'i' type of the array elements: unsigned integers
    0x69 0x06                       // i 6 (length of the key)
    0x62 0x69 0x6E 0x61 0x72 0x79   // "binary"
    0x5B                            // '[' array
        0x24 0x55                   // '$' 'U' type of the array elements: unsigned integers
        0x23 0x69 0x04              // '#' i 4 number of array elements
        0xCA 0xFE 0xBA 0xBE         // content
```

Note that subtype (42) is **not** serialized and that BJData has **no binary type**, and deserializing `v` would
yield the following value:

```json
{
  "binary": [202, 254, 186, 190]
}
```

BON8

BON8 neither supports binary values nor subtypes. The library serializes binary values as an array of integers.

??? example "Example: serialize a binary value to BON8"

Code:

```cpp
// create a binary value of subtype 42 (will be ignored in BON8)
json j;
j["binary"] = json::binary({0xCA, 0xFE, 0xBA, 0xBE}, 42);

// convert to BON8
auto v = json::to_bon8(j);
```

`v` is a `std::vector<std::uint8_t>` with the following 16 elements:

```c
0x87                                     // object with 1 member
    0x62 0x69 0x6E 0x61 0x72 0x79        // "binary"
    0x84                                 // array with 4 elements
        0xC3 0x22 0xC3 0x56 0xC3 0x12 0xC3 0x16  // content (each byte as a 2-byte integer)
```

Note that the subtype is lost, and deserializing `v` would yield the following value:

```json
{
  "binary": [202, 254, 186, 190]
}
```

BSON

BSON supports binary values and subtypes. If a subtype is given, it is used and added as an unsigned 8-bit integer. If no subtype is given, the generic binary subtype 0x00 is used.

??? example "Example: serialize a binary value to BSON"

Code:

```cpp
// create a binary value of subtype 42
json j;
j["binary"] = json::binary({0xCA, 0xFE, 0xBA, 0xBE}, 42);

// convert to BSON
auto v = json::to_bson(j);      
```
        
`v` is a `std::vector<std::uint8_t>` with the following 22 elements:

```c
0x16 0x00 0x00 0x00                         // number of bytes in the document
    0x05                                    // binary value
        0x62 0x69 0x6E 0x61 0x72 0x79 0x00  // key "binary" + null byte
        0x04 0x00 0x00 0x00                 // number of bytes
        0x2a                                // subtype
        0xCA 0xFE 0xBA 0xBE                 // content
0x00                                        // end of the document
```

Note that the serialization preserves the subtype, and deserializing `v` would yield the following value:

```json
{
  "binary": {
    "bytes": [202, 254, 186, 190],
    "subtype": 42
  }
}
```

CBOR

CBOR supports binary values, but no subtypes. Subtypes will be serialized as tags. Any binary value will be serialized as byte strings. The library will choose the smallest representation using the length of the byte array.

??? example "Example: serialize a binary value to CBOR"

Code:

```cpp
// create a binary value of subtype 42
json j;
j["binary"] = json::binary({0xCA, 0xFE, 0xBA, 0xBE}, 42);

// convert to CBOR
auto v = json::to_cbor(j);      
```
        
`v` is a `std::vector<std::uint8_t>` with the following 15 elements:

```c
0xA1                                   // map(1)
    0x66                               // text(6)
        0x62 0x69 0x6E 0x61 0x72 0x79  // "binary"
    0xD8 0x2A                          // tag(42)
    0x44                               // bytes(4)
        0xCA 0xFE 0xBA 0xBE            // content
```

Note that the subtype is serialized as tag. However, parsing tagged values yield a parse error unless
`json::cbor_tag_handler_t::ignore` or `json::cbor_tag_handler_t::store` is passed to
[`json::from_cbor`](../api/basic_json/from_cbor.md) (see
[`cbor_tag_handler_t`](../api/basic_json/cbor_tag_handler_t.md)).

```json
{
  "binary": {
    "bytes": [202, 254, 186, 190],
    "subtype": null
  }
}
```

MessagePack

MessagePack supports binary values and subtypes. If a subtype is given, the ext family is used. The library will choose the smallest representation among fixext1, fixext2, fixext4, fixext8, ext8, ext16, and ext32. The subtype is then added as a signed 8-bit integer.

If no subtype is given, the bin family (bin8, bin16, bin32) is used.

??? example "Example: serialize a binary value to MessagePack"

Code:

```cpp
// create a binary value of subtype 42
json j;
j["binary"] = json::binary({0xCA, 0xFE, 0xBA, 0xBE}, 42);

// convert to MessagePack
auto v = json::to_msgpack(j);      
```
        
`v` is a `std::vector<std::uint8_t>` with the following 14 elements:

```c
0x81                                   // fixmap1
    0xA6                               // fixstr6
        0x62 0x69 0x6E 0x61 0x72 0x79  // "binary"
    0xD6                               // fixext4
        0x2A                           // subtype
        0xCA 0xFE 0xBA 0xBE            // content
```

Note that the serialization preserves the subtype, and deserializing `v` would yield the following value:

```json
{
  "binary": {
    "bytes": [202, 254, 186, 190],
    "subtype": 42
  }
}
```

UBJSON

UBJSON neither supports binary values nor subtypes and proposes to serialize binary values as an array of uint8 values. The library implements this translation.

??? example "Example: serialize a binary value to UBJSON"

Code:

```cpp
// create a binary value of subtype 42 (will be ignored in UBJSON)
json j;
j["binary"] = json::binary({0xCA, 0xFE, 0xBA, 0xBE}, 42);

// convert to UBJSON
auto v = json::to_ubjson(j);      
```
        
`v` is a `std::vector<std::uint8_t>` with the following 20 elements:

```c
0x7B                                             // '{'
    0x69 0x06                                    // i 6 (length of the key)
    0x62 0x69 0x6E 0x61 0x72 0x79                // "binary"
    0x5B                                         // '['
        0x55 0xCA 0x55 0xFE 0x55 0xBA 0x55 0xBE  // content (each byte prefixed with 'U')
    0x5D                                         // ']'
0x7D                                             // '}'
```

The following code uses the type and size optimization for UBJSON:

```cpp
// convert to UBJSON using the size and type optimization
auto v = json::to_ubjson(j, true, true);
```

The resulting vector has 23 elements; the optimization is not effective for examples with few values:

```c
0x7B                                // '{'
    0x24                            // '$' type of the object elements
    0x5B                            // '[' array
    0x23 0x69 0x01                  // '#' i 1 number of object elements
    0x69 0x06                       // i 6 (length of the key)
    0x62 0x69 0x6E 0x61 0x72 0x79   // "binary"
        0x24 0x55                   // '$' 'U' type of the array elements: unsigned integers
        0x23 0x69 0x04              // '#' i 4 number of array elements
        0xCA 0xFE 0xBA 0xBE         // content
```

Note that subtype (42) is **not** serialized and that UBJSON has **no binary type**, and deserializing `v` would
yield the following value:

```json
{
  "binary": [202, 254, 186, 190]
}
```