Coverage Report

Created: 2026-01-10 06:06

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/rust/registry/src/index.crates.io-1949cf8c6b5b557f/uuid-1.19.0/src/lib.rs
Line
Count
Source
1
// Copyright 2013-2014 The Rust Project Developers.
2
// Copyright 2018 The Uuid Project Developers.
3
//
4
// See the COPYRIGHT file at the top-level directory of this distribution.
5
//
6
// Licensed under the Apache License, Version 2.0 <LICENSE-APACHE or
7
// http://www.apache.org/licenses/LICENSE-2.0> or the MIT license
8
// <LICENSE-MIT or http://opensource.org/licenses/MIT>, at your
9
// option. This file may not be copied, modified, or distributed
10
// except according to those terms.
11
12
//! Generate and parse universally unique identifiers (UUIDs).
13
//!
14
//! Here's an example of a UUID:
15
//!
16
//! ```text
17
//! 67e55044-10b1-426f-9247-bb680e5fe0c8
18
//! ```
19
//!
20
//! A UUID is a unique 128-bit value, stored as 16 octets, and regularly
21
//! formatted as a hex string in five groups. UUIDs are used to assign unique
22
//! identifiers to entities without requiring a central allocating authority.
23
//!
24
//! They are particularly useful in distributed systems, though can be used in
25
//! disparate areas, such as databases and network protocols.  Typically a UUID
26
//! is displayed in a readable string form as a sequence of hexadecimal digits,
27
//! separated into groups by hyphens.
28
//!
29
//! The uniqueness property is not strictly guaranteed, however for all
30
//! practical purposes, it can be assumed that an unintentional collision would
31
//! be extremely unlikely.
32
//!
33
//! UUIDs have a number of standardized encodings that are specified in [RFC 9562](https://www.ietf.org/rfc/rfc9562.html).
34
//!
35
//! # Getting started
36
//!
37
//! Add the following to your `Cargo.toml`:
38
//!
39
//! ```toml
40
//! [dependencies.uuid]
41
//! version = "1.19.0"
42
//! # Lets you generate random UUIDs
43
//! features = [
44
//!     "v4",
45
//! ]
46
//! ```
47
//!
48
//! When you want a UUID, you can generate one:
49
//!
50
//! ```
51
//! # fn main() {
52
//! # #[cfg(feature = "v4")]
53
//! # {
54
//! use uuid::Uuid;
55
//!
56
//! let id = Uuid::new_v4();
57
//! # }
58
//! # }
59
//! ```
60
//!
61
//! If you have a UUID value, you can use its string literal form inline:
62
//!
63
//! ```
64
//! use uuid::{uuid, Uuid};
65
//!
66
//! const ID: Uuid = uuid!("67e55044-10b1-426f-9247-bb680e5fe0c8");
67
//! ```
68
//!
69
//! # Working with different UUID versions
70
//!
71
//! This library supports all standardized methods for generating UUIDs through individual Cargo features.
72
//!
73
//! By default, this crate depends on nothing but the Rust standard library and can parse and format
74
//! UUIDs, but cannot generate them. Depending on the kind of UUID you'd like to work with, there
75
//! are Cargo features that enable generating them:
76
//!
77
//! * `v1` - Version 1 UUIDs using a timestamp and monotonic counter.
78
//! * `v3` - Version 3 UUIDs based on the MD5 hash of some data.
79
//! * `v4` - Version 4 UUIDs with random data.
80
//! * `v5` - Version 5 UUIDs based on the SHA1 hash of some data.
81
//! * `v6` - Version 6 UUIDs using a timestamp and monotonic counter.
82
//! * `v7` - Version 7 UUIDs using a Unix timestamp.
83
//! * `v8` - Version 8 UUIDs using user-defined data.
84
//!
85
//! This library also includes a [`Builder`] type that can be used to help construct UUIDs of any
86
//! version without any additional dependencies or features. It's a lower-level API than [`Uuid`]
87
//! that can be used when you need control over implicit requirements on things like a source
88
//! of randomness.
89
//!
90
//! ## Which UUID version should I use?
91
//!
92
//! If you just want to generate unique identifiers then consider version 4 (`v4`) UUIDs. If you want
93
//! to use UUIDs as database keys or need to sort them then consider version 7 (`v7`) UUIDs.
94
//! Other versions should generally be avoided unless there's an existing need for them.
95
//!
96
//! Some UUID versions supersede others. Prefer version 6 over version 1 and version 5 over version 3.
97
//!
98
//! # Other features
99
//!
100
//! Other crate features can also be useful beyond the version support:
101
//!
102
//! * `macro-diagnostics` - enhances the diagnostics of `uuid!` macro.
103
//! * `serde` - adds the ability to serialize and deserialize a UUID using
104
//!   `serde`.
105
//! * `borsh` - adds the ability to serialize and deserialize a UUID using
106
//!   `borsh`.
107
//! * `arbitrary` - adds an `Arbitrary` trait implementation to `Uuid` for
108
//!   fuzzing.
109
//! * `fast-rng` - uses a faster algorithm for generating random UUIDs when available.
110
//!   This feature requires more dependencies to compile, but is just as suitable for
111
//!   UUIDs as the default algorithm.
112
//! * `rng-rand` - forces `rand` as the backend for randomness.
113
//! * `rng-getrandom` - forces `getrandom` as the backend for randomness.
114
//! * `bytemuck` - adds a `Pod` trait implementation to `Uuid` for byte manipulation
115
//!
116
//! # Unstable features
117
//!
118
//! Some features are unstable. They may be incomplete or depend on other
119
//! unstable libraries. These include:
120
//!
121
//! * `zerocopy` - adds support for zero-copy deserialization using the
122
//!   `zerocopy` library.
123
//!
124
//! Unstable features may break between minor releases.
125
//!
126
//! To allow unstable features, you'll need to enable the Cargo feature as
127
//! normal, but also pass an additional flag through your environment to opt-in
128
//! to unstable `uuid` features:
129
//!
130
//! ```text
131
//! RUSTFLAGS="--cfg uuid_unstable"
132
//! ```
133
//!
134
//! # Building for other targets
135
//!
136
//! ## WebAssembly
137
//!
138
//! For WebAssembly, enable the `js` feature:
139
//!
140
//! ```toml
141
//! [dependencies.uuid]
142
//! version = "1.19.0"
143
//! features = [
144
//!     "v4",
145
//!     "v7",
146
//!     "js",
147
//! ]
148
//! ```
149
//!
150
//! ## Embedded
151
//!
152
//! For embedded targets without the standard library, you'll need to
153
//! disable default features when building `uuid`:
154
//!
155
//! ```toml
156
//! [dependencies.uuid]
157
//! version = "1.19.0"
158
//! default-features = false
159
//! ```
160
//!
161
//! Some additional features are supported in no-std environments:
162
//!
163
//! * `v1`, `v3`, `v5`, `v6`, and `v8`.
164
//! * `serde`.
165
//!
166
//! If you need to use `v4` or `v7` in a no-std environment, you'll need to
167
//! produce random bytes yourself and then pass them to [`Builder::from_random_bytes`]
168
//! without enabling the `v4` or `v7` features.
169
//!
170
//! If you're using `getrandom`, you can specify the `rng-getrandom` or `rng-rand`
171
//! features of `uuid` and configure `getrandom`'s provider per its docs. `uuid`
172
//! may upgrade its version of `getrandom` in minor releases.
173
//!
174
//! # Examples
175
//!
176
//! Parse a UUID given in the simple format and print it as a URN:
177
//!
178
//! ```
179
//! # use uuid::Uuid;
180
//! # fn main() -> Result<(), uuid::Error> {
181
//! let my_uuid = Uuid::parse_str("a1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8")?;
182
//!
183
//! println!("{}", my_uuid.urn());
184
//! # Ok(())
185
//! # }
186
//! ```
187
//!
188
//! Generate a random UUID and print it out in hexadecimal form:
189
//!
190
//! ```
191
//! // Note that this requires the `v4` feature to be enabled.
192
//! # use uuid::Uuid;
193
//! # fn main() {
194
//! # #[cfg(feature = "v4")] {
195
//! let my_uuid = Uuid::new_v4();
196
//!
197
//! println!("{}", my_uuid);
198
//! # }
199
//! # }
200
//! ```
201
//!
202
//! # References
203
//!
204
//! * [Wikipedia: Universally Unique Identifier](http://en.wikipedia.org/wiki/Universally_unique_identifier)
205
//! * [RFC 9562: Universally Unique IDentifiers (UUID)](https://www.ietf.org/rfc/rfc9562.html).
206
//!
207
//! [`wasm-bindgen`]: https://crates.io/crates/wasm-bindgen
208
209
#![no_std]
210
#![deny(missing_debug_implementations, missing_docs)]
211
#![allow(clippy::mixed_attributes_style)]
212
#![doc(
213
    html_logo_url = "https://www.rust-lang.org/logos/rust-logo-128x128-blk-v2.png",
214
    html_favicon_url = "https://www.rust-lang.org/favicon.ico",
215
    html_root_url = "https://docs.rs/uuid/1.19.0"
216
)]
217
218
#[cfg(any(feature = "std", test))]
219
#[macro_use]
220
extern crate std;
221
222
#[cfg(all(not(feature = "std"), not(test)))]
223
#[macro_use]
224
extern crate core as std;
225
226
#[macro_use]
227
mod macros;
228
229
mod builder;
230
mod error;
231
mod non_nil;
232
mod parser;
233
234
pub mod fmt;
235
pub mod timestamp;
236
237
use core::hash::{Hash, Hasher};
238
pub use timestamp::{context::NoContext, ClockSequence, Timestamp};
239
240
#[cfg(any(feature = "v1", feature = "v6"))]
241
pub use timestamp::context::Context;
242
243
#[cfg(feature = "v7")]
244
pub use timestamp::context::ContextV7;
245
246
#[cfg(feature = "v1")]
247
#[doc(hidden)]
248
// Soft-deprecated (Rust doesn't support deprecating re-exports)
249
// Use `Context` from the crate root instead
250
pub mod v1;
251
#[cfg(feature = "v3")]
252
mod v3;
253
#[cfg(feature = "v4")]
254
mod v4;
255
#[cfg(feature = "v5")]
256
mod v5;
257
#[cfg(feature = "v6")]
258
mod v6;
259
#[cfg(feature = "v7")]
260
mod v7;
261
#[cfg(feature = "v8")]
262
mod v8;
263
264
#[cfg(feature = "md5")]
265
mod md5;
266
#[cfg(feature = "rng")]
267
mod rng;
268
#[cfg(feature = "sha1")]
269
mod sha1;
270
271
mod external;
272
273
#[doc(hidden)]
274
#[cfg(feature = "macro-diagnostics")]
275
pub extern crate uuid_macro_internal;
276
277
#[doc(hidden)]
278
pub mod __macro_support {
279
    pub use crate::std::result::Result::{Err, Ok};
280
}
281
282
pub use crate::{builder::Builder, error::Error, non_nil::NonNilUuid};
283
284
/// A 128-bit (16 byte) buffer containing the UUID.
285
///
286
/// # ABI
287
///
288
/// The `Bytes` type is always guaranteed to be have the same ABI as [`Uuid`].
289
pub type Bytes = [u8; 16];
290
291
/// The version of the UUID, denoting the generating algorithm.
292
///
293
/// # References
294
///
295
/// * [Version Field in RFC 9562](https://www.ietf.org/rfc/rfc9562.html#section-4.2)
296
#[derive(Clone, Copy, Debug, PartialEq)]
297
#[non_exhaustive]
298
#[repr(u8)]
299
pub enum Version {
300
    /// The "nil" (all zeros) UUID.
301
    Nil = 0u8,
302
    /// Version 1: Timestamp and node ID.
303
    Mac = 1,
304
    /// Version 2: DCE Security.
305
    Dce = 2,
306
    /// Version 3: MD5 hash.
307
    Md5 = 3,
308
    /// Version 4: Random.
309
    Random = 4,
310
    /// Version 5: SHA-1 hash.
311
    Sha1 = 5,
312
    /// Version 6: Sortable Timestamp and node ID.
313
    SortMac = 6,
314
    /// Version 7: Timestamp and random.
315
    SortRand = 7,
316
    /// Version 8: Custom.
317
    Custom = 8,
318
    /// The "max" (all ones) UUID.
319
    Max = 0xff,
320
}
321
322
/// The reserved variants of UUIDs.
323
///
324
/// # References
325
///
326
/// * [Variant Field in RFC 9562](https://www.ietf.org/rfc/rfc9562.html#section-4.1)
327
#[derive(Clone, Copy, Debug, PartialEq)]
328
#[non_exhaustive]
329
#[repr(u8)]
330
pub enum Variant {
331
    /// Reserved by the NCS for backward compatibility.
332
    NCS = 0u8,
333
    /// As described in the RFC 9562 Specification (default).
334
    /// (for backward compatibility it is not yet renamed)
335
    RFC4122,
336
    /// Reserved by Microsoft for backward compatibility.
337
    Microsoft,
338
    /// Reserved for future expansion.
339
    Future,
340
}
341
342
/// A Universally Unique Identifier (UUID).
343
///
344
/// # Examples
345
///
346
/// Parse a UUID given in the simple format and print it as a urn:
347
///
348
/// ```
349
/// # use uuid::Uuid;
350
/// # fn main() -> Result<(), uuid::Error> {
351
/// let my_uuid = Uuid::parse_str("a1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8")?;
352
///
353
/// println!("{}", my_uuid.urn());
354
/// # Ok(())
355
/// # }
356
/// ```
357
///
358
/// Create a new random (V4) UUID and print it out in hexadecimal form:
359
///
360
/// ```
361
/// // Note that this requires the `v4` feature enabled in the uuid crate.
362
/// # use uuid::Uuid;
363
/// # fn main() {
364
/// # #[cfg(feature = "v4")] {
365
/// let my_uuid = Uuid::new_v4();
366
///
367
/// println!("{}", my_uuid);
368
/// # }
369
/// # }
370
/// ```
371
///
372
/// # Formatting
373
///
374
/// A UUID can be formatted in one of a few ways:
375
///
376
/// * [`simple`](#method.simple): `a1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8`.
377
/// * [`hyphenated`](#method.hyphenated):
378
///   `a1a2a3a4-b1b2-c1c2-d1d2-d3d4d5d6d7d8`.
379
/// * [`urn`](#method.urn): `urn:uuid:A1A2A3A4-B1B2-C1C2-D1D2-D3D4D5D6D7D8`.
380
/// * [`braced`](#method.braced): `{a1a2a3a4-b1b2-c1c2-d1d2-d3d4d5d6d7d8}`.
381
///
382
/// The default representation when formatting a UUID with `Display` is
383
/// hyphenated:
384
///
385
/// ```
386
/// # use uuid::Uuid;
387
/// # fn main() -> Result<(), uuid::Error> {
388
/// let my_uuid = Uuid::parse_str("a1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8")?;
389
///
390
/// assert_eq!(
391
///     "a1a2a3a4-b1b2-c1c2-d1d2-d3d4d5d6d7d8",
392
///     my_uuid.to_string(),
393
/// );
394
/// # Ok(())
395
/// # }
396
/// ```
397
///
398
/// Other formats can be specified using adapter methods on the UUID:
399
///
400
/// ```
401
/// # use uuid::Uuid;
402
/// # fn main() -> Result<(), uuid::Error> {
403
/// let my_uuid = Uuid::parse_str("a1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8")?;
404
///
405
/// assert_eq!(
406
///     "urn:uuid:a1a2a3a4-b1b2-c1c2-d1d2-d3d4d5d6d7d8",
407
///     my_uuid.urn().to_string(),
408
/// );
409
/// # Ok(())
410
/// # }
411
/// ```
412
///
413
/// # Endianness
414
///
415
/// The specification for UUIDs encodes the integer fields that make up the
416
/// value in big-endian order. This crate assumes integer inputs are already in
417
/// the correct order by default, regardless of the endianness of the
418
/// environment. Most methods that accept integers have a `_le` variant (such as
419
/// `from_fields_le`) that assumes any integer values will need to have their
420
/// bytes flipped, regardless of the endianness of the environment.
421
///
422
/// Most users won't need to worry about endianness unless they need to operate
423
/// on individual fields (such as when converting between Microsoft GUIDs). The
424
/// important things to remember are:
425
///
426
/// - The endianness is in terms of the fields of the UUID, not the environment.
427
/// - The endianness is assumed to be big-endian when there's no `_le` suffix
428
///   somewhere.
429
/// - Byte-flipping in `_le` methods applies to each integer.
430
/// - Endianness roundtrips, so if you create a UUID with `from_fields_le`
431
///   you'll get the same values back out with `to_fields_le`.
432
///
433
/// # ABI
434
///
435
/// The `Uuid` type is always guaranteed to be have the same ABI as [`Bytes`].
436
#[derive(Clone, Copy, Eq, Ord, PartialEq, PartialOrd)]
437
#[repr(transparent)]
438
// NOTE: Also check `NonNilUuid` when ading new derives here
439
#[cfg_attr(
440
    feature = "borsh",
441
    derive(borsh_derive::BorshDeserialize, borsh_derive::BorshSerialize)
442
)]
443
#[cfg_attr(
444
    feature = "bytemuck",
445
    derive(bytemuck::Zeroable, bytemuck::Pod, bytemuck::TransparentWrapper)
446
)]
447
#[cfg_attr(
448
    all(uuid_unstable, feature = "zerocopy"),
449
    derive(
450
        zerocopy::IntoBytes,
451
        zerocopy::FromBytes,
452
        zerocopy::KnownLayout,
453
        zerocopy::Immutable,
454
        zerocopy::Unaligned
455
    )
456
)]
457
pub struct Uuid(Bytes);
458
459
impl Uuid {
460
    /// UUID namespace for Domain Name System (DNS).
461
    pub const NAMESPACE_DNS: Self = Uuid([
462
        0x6b, 0xa7, 0xb8, 0x10, 0x9d, 0xad, 0x11, 0xd1, 0x80, 0xb4, 0x00, 0xc0, 0x4f, 0xd4, 0x30,
463
        0xc8,
464
    ]);
465
466
    /// UUID namespace for ISO Object Identifiers (OIDs).
467
    pub const NAMESPACE_OID: Self = Uuid([
468
        0x6b, 0xa7, 0xb8, 0x12, 0x9d, 0xad, 0x11, 0xd1, 0x80, 0xb4, 0x00, 0xc0, 0x4f, 0xd4, 0x30,
469
        0xc8,
470
    ]);
471
472
    /// UUID namespace for Uniform Resource Locators (URLs).
473
    pub const NAMESPACE_URL: Self = Uuid([
474
        0x6b, 0xa7, 0xb8, 0x11, 0x9d, 0xad, 0x11, 0xd1, 0x80, 0xb4, 0x00, 0xc0, 0x4f, 0xd4, 0x30,
475
        0xc8,
476
    ]);
477
478
    /// UUID namespace for X.500 Distinguished Names (DNs).
479
    pub const NAMESPACE_X500: Self = Uuid([
480
        0x6b, 0xa7, 0xb8, 0x14, 0x9d, 0xad, 0x11, 0xd1, 0x80, 0xb4, 0x00, 0xc0, 0x4f, 0xd4, 0x30,
481
        0xc8,
482
    ]);
483
484
    /// Returns the variant of the UUID structure.
485
    ///
486
    /// This determines the interpretation of the structure of the UUID.
487
    /// This method simply reads the value of the variant byte. It doesn't
488
    /// validate the rest of the UUID as conforming to that variant.
489
    ///
490
    /// # Examples
491
    ///
492
    /// Basic usage:
493
    ///
494
    /// ```
495
    /// # use uuid::{Uuid, Variant};
496
    /// # fn main() -> Result<(), uuid::Error> {
497
    /// let my_uuid = Uuid::parse_str("02f09a3f-1624-3b1d-8409-44eff7708208")?;
498
    ///
499
    /// assert_eq!(Variant::RFC4122, my_uuid.get_variant());
500
    /// # Ok(())
501
    /// # }
502
    /// ```
503
    ///
504
    /// # References
505
    ///
506
    /// * [Variant Field in RFC 9562](https://www.ietf.org/rfc/rfc9562.html#section-4.1)
507
0
    pub const fn get_variant(&self) -> Variant {
508
0
        match self.as_bytes()[8] {
509
0
            x if x & 0x80 == 0x00 => Variant::NCS,
510
0
            x if x & 0xc0 == 0x80 => Variant::RFC4122,
511
0
            x if x & 0xe0 == 0xc0 => Variant::Microsoft,
512
0
            x if x & 0xe0 == 0xe0 => Variant::Future,
513
            // The above match arms are actually exhaustive
514
            // We just return `Future` here because we can't
515
            // use `unreachable!()` in a `const fn`
516
0
            _ => Variant::Future,
517
        }
518
0
    }
519
520
    /// Returns the version number of the UUID.
521
    ///
522
    /// This represents the algorithm used to generate the value.
523
    /// This method is the future-proof alternative to [`Uuid::get_version`].
524
    ///
525
    /// # Examples
526
    ///
527
    /// Basic usage:
528
    ///
529
    /// ```
530
    /// # use uuid::Uuid;
531
    /// # fn main() -> Result<(), uuid::Error> {
532
    /// let my_uuid = Uuid::parse_str("02f09a3f-1624-3b1d-8409-44eff7708208")?;
533
    ///
534
    /// assert_eq!(3, my_uuid.get_version_num());
535
    /// # Ok(())
536
    /// # }
537
    /// ```
538
    ///
539
    /// # References
540
    ///
541
    /// * [Version Field in RFC 9562](https://www.ietf.org/rfc/rfc9562.html#section-4.2)
542
0
    pub const fn get_version_num(&self) -> usize {
543
0
        (self.as_bytes()[6] >> 4) as usize
544
0
    }
545
546
    /// Returns the version of the UUID.
547
    ///
548
    /// This represents the algorithm used to generate the value.
549
    /// If the version field doesn't contain a recognized version then `None`
550
    /// is returned. If you're trying to read the version for a future extension
551
    /// you can also use [`Uuid::get_version_num`] to unconditionally return a
552
    /// number. Future extensions may start to return `Some` once they're
553
    /// standardized and supported.
554
    ///
555
    /// # Examples
556
    ///
557
    /// Basic usage:
558
    ///
559
    /// ```
560
    /// # use uuid::{Uuid, Version};
561
    /// # fn main() -> Result<(), uuid::Error> {
562
    /// let my_uuid = Uuid::parse_str("02f09a3f-1624-3b1d-8409-44eff7708208")?;
563
    ///
564
    /// assert_eq!(Some(Version::Md5), my_uuid.get_version());
565
    /// # Ok(())
566
    /// # }
567
    /// ```
568
    ///
569
    /// # References
570
    ///
571
    /// * [Version Field in RFC 9562](https://www.ietf.org/rfc/rfc9562.html#section-4.2)
572
0
    pub const fn get_version(&self) -> Option<Version> {
573
0
        match self.get_version_num() {
574
0
            0 if self.is_nil() => Some(Version::Nil),
575
0
            1 => Some(Version::Mac),
576
0
            2 => Some(Version::Dce),
577
0
            3 => Some(Version::Md5),
578
0
            4 => Some(Version::Random),
579
0
            5 => Some(Version::Sha1),
580
0
            6 => Some(Version::SortMac),
581
0
            7 => Some(Version::SortRand),
582
0
            8 => Some(Version::Custom),
583
0
            0xf => Some(Version::Max),
584
0
            _ => None,
585
        }
586
0
    }
587
588
    /// Returns the four field values of the UUID.
589
    ///
590
    /// These values can be passed to the [`Uuid::from_fields`] method to get
591
    /// the original `Uuid` back.
592
    ///
593
    /// * The first field value represents the first group of (eight) hex
594
    ///   digits, taken as a big-endian `u32` value.  For V1 UUIDs, this field
595
    ///   represents the low 32 bits of the timestamp.
596
    /// * The second field value represents the second group of (four) hex
597
    ///   digits, taken as a big-endian `u16` value.  For V1 UUIDs, this field
598
    ///   represents the middle 16 bits of the timestamp.
599
    /// * The third field value represents the third group of (four) hex digits,
600
    ///   taken as a big-endian `u16` value.  The 4 most significant bits give
601
    ///   the UUID version, and for V1 UUIDs, the last 12 bits represent the
602
    ///   high 12 bits of the timestamp.
603
    /// * The last field value represents the last two groups of four and twelve
604
    ///   hex digits, taken in order.  The first 1-3 bits of this indicate the
605
    ///   UUID variant, and for V1 UUIDs, the next 13-15 bits indicate the clock
606
    ///   sequence and the last 48 bits indicate the node ID.
607
    ///
608
    /// # Examples
609
    ///
610
    /// ```
611
    /// # use uuid::Uuid;
612
    /// # fn main() -> Result<(), uuid::Error> {
613
    /// let uuid = Uuid::nil();
614
    ///
615
    /// assert_eq!(uuid.as_fields(), (0, 0, 0, &[0u8; 8]));
616
    ///
617
    /// let uuid = Uuid::parse_str("a1a2a3a4-b1b2-c1c2-d1d2-d3d4d5d6d7d8")?;
618
    ///
619
    /// assert_eq!(
620
    ///     uuid.as_fields(),
621
    ///     (
622
    ///         0xa1a2a3a4,
623
    ///         0xb1b2,
624
    ///         0xc1c2,
625
    ///         &[0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6, 0xd7, 0xd8],
626
    ///     )
627
    /// );
628
    /// # Ok(())
629
    /// # }
630
    /// ```
631
0
    pub fn as_fields(&self) -> (u32, u16, u16, &[u8; 8]) {
632
0
        let bytes = self.as_bytes();
633
634
0
        let d1 = (bytes[0] as u32) << 24
635
0
            | (bytes[1] as u32) << 16
636
0
            | (bytes[2] as u32) << 8
637
0
            | (bytes[3] as u32);
638
639
0
        let d2 = (bytes[4] as u16) << 8 | (bytes[5] as u16);
640
641
0
        let d3 = (bytes[6] as u16) << 8 | (bytes[7] as u16);
642
643
0
        let d4: &[u8; 8] = bytes[8..16].try_into().unwrap();
644
0
        (d1, d2, d3, d4)
645
0
    }
646
647
    /// Returns the four field values of the UUID in little-endian order.
648
    ///
649
    /// The bytes in the returned integer fields will be converted from
650
    /// big-endian order. This is based on the endianness of the UUID,
651
    /// rather than the target environment so bytes will be flipped on both
652
    /// big and little endian machines.
653
    ///
654
    /// # Examples
655
    ///
656
    /// ```
657
    /// use uuid::Uuid;
658
    ///
659
    /// # fn main() -> Result<(), uuid::Error> {
660
    /// let uuid = Uuid::parse_str("a1a2a3a4-b1b2-c1c2-d1d2-d3d4d5d6d7d8")?;
661
    ///
662
    /// assert_eq!(
663
    ///     uuid.to_fields_le(),
664
    ///     (
665
    ///         0xa4a3a2a1,
666
    ///         0xb2b1,
667
    ///         0xc2c1,
668
    ///         &[0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6, 0xd7, 0xd8],
669
    ///     )
670
    /// );
671
    /// # Ok(())
672
    /// # }
673
    /// ```
674
0
    pub fn to_fields_le(&self) -> (u32, u16, u16, &[u8; 8]) {
675
0
        let d1 = (self.as_bytes()[0] as u32)
676
0
            | (self.as_bytes()[1] as u32) << 8
677
0
            | (self.as_bytes()[2] as u32) << 16
678
0
            | (self.as_bytes()[3] as u32) << 24;
679
680
0
        let d2 = (self.as_bytes()[4] as u16) | (self.as_bytes()[5] as u16) << 8;
681
682
0
        let d3 = (self.as_bytes()[6] as u16) | (self.as_bytes()[7] as u16) << 8;
683
684
0
        let d4: &[u8; 8] = self.as_bytes()[8..16].try_into().unwrap();
685
0
        (d1, d2, d3, d4)
686
0
    }
687
688
    /// Returns a 128bit value containing the value.
689
    ///
690
    /// The bytes in the UUID will be packed directly into a `u128`.
691
    ///
692
    /// # Examples
693
    ///
694
    /// ```
695
    /// # use uuid::Uuid;
696
    /// # fn main() -> Result<(), uuid::Error> {
697
    /// let uuid = Uuid::parse_str("a1a2a3a4-b1b2-c1c2-d1d2-d3d4d5d6d7d8")?;
698
    ///
699
    /// assert_eq!(
700
    ///     uuid.as_u128(),
701
    ///     0xa1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8,
702
    /// );
703
    /// # Ok(())
704
    /// # }
705
    /// ```
706
0
    pub const fn as_u128(&self) -> u128 {
707
0
        u128::from_be_bytes(*self.as_bytes())
708
0
    }
709
710
    /// Returns a 128bit little-endian value containing the value.
711
    ///
712
    /// The bytes in the `u128` will be flipped to convert into big-endian
713
    /// order. This is based on the endianness of the UUID, rather than the
714
    /// target environment so bytes will be flipped on both big and little
715
    /// endian machines.
716
    ///
717
    /// Note that this will produce a different result than
718
    /// [`Uuid::to_fields_le`], because the entire UUID is reversed, rather
719
    /// than reversing the individual fields in-place.
720
    ///
721
    /// # Examples
722
    ///
723
    /// ```
724
    /// # use uuid::Uuid;
725
    /// # fn main() -> Result<(), uuid::Error> {
726
    /// let uuid = Uuid::parse_str("a1a2a3a4-b1b2-c1c2-d1d2-d3d4d5d6d7d8")?;
727
    ///
728
    /// assert_eq!(
729
    ///     uuid.to_u128_le(),
730
    ///     0xd8d7d6d5d4d3d2d1c2c1b2b1a4a3a2a1,
731
    /// );
732
    /// # Ok(())
733
    /// # }
734
    /// ```
735
0
    pub const fn to_u128_le(&self) -> u128 {
736
0
        u128::from_le_bytes(*self.as_bytes())
737
0
    }
738
739
    /// Returns two 64bit values containing the value.
740
    ///
741
    /// The bytes in the UUID will be split into two `u64`.
742
    /// The first u64 represents the 64 most significant bits,
743
    /// the second one represents the 64 least significant.
744
    ///
745
    /// # Examples
746
    ///
747
    /// ```
748
    /// # use uuid::Uuid;
749
    /// # fn main() -> Result<(), uuid::Error> {
750
    /// let uuid = Uuid::parse_str("a1a2a3a4-b1b2-c1c2-d1d2-d3d4d5d6d7d8")?;
751
    /// assert_eq!(
752
    ///     uuid.as_u64_pair(),
753
    ///     (0xa1a2a3a4b1b2c1c2, 0xd1d2d3d4d5d6d7d8),
754
    /// );
755
    /// # Ok(())
756
    /// # }
757
    /// ```
758
0
    pub const fn as_u64_pair(&self) -> (u64, u64) {
759
0
        let value = self.as_u128();
760
0
        ((value >> 64) as u64, value as u64)
761
0
    }
762
763
    /// Returns a slice of 16 octets containing the value.
764
    ///
765
    /// This method borrows the underlying byte value of the UUID.
766
    ///
767
    /// # Examples
768
    ///
769
    /// ```
770
    /// # use uuid::Uuid;
771
    /// let bytes1 = [
772
    ///     0xa1, 0xa2, 0xa3, 0xa4,
773
    ///     0xb1, 0xb2,
774
    ///     0xc1, 0xc2,
775
    ///     0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6, 0xd7, 0xd8,
776
    /// ];
777
    /// let uuid1 = Uuid::from_bytes_ref(&bytes1);
778
    ///
779
    /// let bytes2 = uuid1.as_bytes();
780
    /// let uuid2 = Uuid::from_bytes_ref(bytes2);
781
    ///
782
    /// assert_eq!(uuid1, uuid2);
783
    ///
784
    /// assert!(std::ptr::eq(
785
    ///     uuid2 as *const Uuid as *const u8,
786
    ///     &bytes1 as *const [u8; 16] as *const u8,
787
    /// ));
788
    /// ```
789
    #[inline]
790
1.46k
    pub const fn as_bytes(&self) -> &Bytes {
791
1.46k
        &self.0
792
1.46k
    }
<uuid::Uuid>::as_bytes
Line
Count
Source
790
1.46k
    pub const fn as_bytes(&self) -> &Bytes {
791
1.46k
        &self.0
792
1.46k
    }
Unexecuted instantiation: <uuid::Uuid>::as_bytes
793
794
    /// Consumes self and returns the underlying byte value of the UUID.
795
    ///
796
    /// # Examples
797
    ///
798
    /// ```
799
    /// # use uuid::Uuid;
800
    /// let bytes = [
801
    ///     0xa1, 0xa2, 0xa3, 0xa4,
802
    ///     0xb1, 0xb2,
803
    ///     0xc1, 0xc2,
804
    ///     0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6, 0xd7, 0xd8,
805
    /// ];
806
    /// let uuid = Uuid::from_bytes(bytes);
807
    /// assert_eq!(bytes, uuid.into_bytes());
808
    /// ```
809
    #[inline]
810
0
    pub const fn into_bytes(self) -> Bytes {
811
0
        self.0
812
0
    }
813
814
    /// Returns the bytes of the UUID in little-endian order.
815
    ///
816
    /// The bytes will be flipped to convert into little-endian order. This is
817
    /// based on the endianness of the UUID, rather than the target environment
818
    /// so bytes will be flipped on both big and little endian machines.
819
    ///
820
    /// # Examples
821
    ///
822
    /// ```
823
    /// use uuid::Uuid;
824
    ///
825
    /// # fn main() -> Result<(), uuid::Error> {
826
    /// let uuid = Uuid::parse_str("a1a2a3a4-b1b2-c1c2-d1d2-d3d4d5d6d7d8")?;
827
    ///
828
    /// assert_eq!(
829
    ///     uuid.to_bytes_le(),
830
    ///     ([
831
    ///         0xa4, 0xa3, 0xa2, 0xa1, 0xb2, 0xb1, 0xc2, 0xc1, 0xd1, 0xd2,
832
    ///         0xd3, 0xd4, 0xd5, 0xd6, 0xd7, 0xd8
833
    ///     ])
834
    /// );
835
    /// # Ok(())
836
    /// # }
837
    /// ```
838
0
    pub const fn to_bytes_le(&self) -> Bytes {
839
0
        [
840
0
            self.0[3], self.0[2], self.0[1], self.0[0], self.0[5], self.0[4], self.0[7], self.0[6],
841
0
            self.0[8], self.0[9], self.0[10], self.0[11], self.0[12], self.0[13], self.0[14],
842
0
            self.0[15],
843
0
        ]
844
0
    }
845
846
    /// Tests if the UUID is nil (all zeros).
847
0
    pub const fn is_nil(&self) -> bool {
848
0
        self.as_u128() == u128::MIN
849
0
    }
850
851
    /// Tests if the UUID is max (all ones).
852
0
    pub const fn is_max(&self) -> bool {
853
0
        self.as_u128() == u128::MAX
854
0
    }
855
856
    /// A buffer that can be used for `encode_...` calls, that is
857
    /// guaranteed to be long enough for any of the format adapters.
858
    ///
859
    /// # Examples
860
    ///
861
    /// ```
862
    /// # use uuid::Uuid;
863
    /// let uuid = Uuid::nil();
864
    ///
865
    /// assert_eq!(
866
    ///     uuid.simple().encode_lower(&mut Uuid::encode_buffer()),
867
    ///     "00000000000000000000000000000000"
868
    /// );
869
    ///
870
    /// assert_eq!(
871
    ///     uuid.hyphenated()
872
    ///         .encode_lower(&mut Uuid::encode_buffer()),
873
    ///     "00000000-0000-0000-0000-000000000000"
874
    /// );
875
    ///
876
    /// assert_eq!(
877
    ///     uuid.urn().encode_lower(&mut Uuid::encode_buffer()),
878
    ///     "urn:uuid:00000000-0000-0000-0000-000000000000"
879
    /// );
880
    /// ```
881
0
    pub const fn encode_buffer() -> [u8; fmt::Urn::LENGTH] {
882
0
        [0; fmt::Urn::LENGTH]
883
0
    }
884
885
    /// If the UUID is the correct version (v1, v6, or v7) this will return
886
    /// the timestamp in a version-agnostic [`Timestamp`]. For other versions
887
    /// this will return `None`.
888
    ///
889
    /// # Roundtripping
890
    ///
891
    /// This method is unlikely to roundtrip a timestamp in a UUID due to the way
892
    /// UUIDs encode timestamps. The timestamp returned from this method will be truncated to
893
    /// 100ns precision for version 1 and 6 UUIDs, and to millisecond precision for version 7 UUIDs.
894
0
    pub const fn get_timestamp(&self) -> Option<Timestamp> {
895
0
        match self.get_version() {
896
            Some(Version::Mac) => {
897
0
                let (ticks, counter) = timestamp::decode_gregorian_timestamp(self);
898
899
0
                Some(Timestamp::from_gregorian(ticks, counter))
900
            }
901
            Some(Version::SortMac) => {
902
0
                let (ticks, counter) = timestamp::decode_sorted_gregorian_timestamp(self);
903
904
0
                Some(Timestamp::from_gregorian(ticks, counter))
905
            }
906
            Some(Version::SortRand) => {
907
0
                let millis = timestamp::decode_unix_timestamp_millis(self);
908
909
0
                let seconds = millis / 1000;
910
0
                let nanos = ((millis % 1000) * 1_000_000) as u32;
911
912
0
                Some(Timestamp::from_unix_time(seconds, nanos, 0, 0))
913
            }
914
0
            _ => None,
915
        }
916
0
    }
917
918
    /// If the UUID is the correct version (v1, or v6) this will return the
919
    /// node value as a 6-byte array. For other versions this will return `None`.
920
0
    pub const fn get_node_id(&self) -> Option<[u8; 6]> {
921
0
        match self.get_version() {
922
            Some(Version::Mac) | Some(Version::SortMac) => {
923
0
                let mut node_id = [0; 6];
924
925
0
                node_id[0] = self.0[10];
926
0
                node_id[1] = self.0[11];
927
0
                node_id[2] = self.0[12];
928
0
                node_id[3] = self.0[13];
929
0
                node_id[4] = self.0[14];
930
0
                node_id[5] = self.0[15];
931
932
0
                Some(node_id)
933
            }
934
0
            _ => None,
935
        }
936
0
    }
937
}
938
939
impl Hash for Uuid {
940
0
    fn hash<H: Hasher>(&self, state: &mut H) {
941
0
        state.write(&self.0);
942
0
    }
943
}
944
945
impl Default for Uuid {
946
    #[inline]
947
0
    fn default() -> Self {
948
0
        Uuid::nil()
949
0
    }
950
}
951
952
impl AsRef<Uuid> for Uuid {
953
    #[inline]
954
0
    fn as_ref(&self) -> &Uuid {
955
0
        self
956
0
    }
957
}
958
959
impl AsRef<[u8]> for Uuid {
960
    #[inline]
961
0
    fn as_ref(&self) -> &[u8] {
962
0
        &self.0
963
0
    }
964
}
965
966
#[cfg(feature = "std")]
967
impl From<Uuid> for std::vec::Vec<u8> {
968
0
    fn from(value: Uuid) -> Self {
969
0
        value.0.to_vec()
970
0
    }
971
}
972
973
#[cfg(feature = "std")]
974
impl TryFrom<std::vec::Vec<u8>> for Uuid {
975
    type Error = Error;
976
977
0
    fn try_from(value: std::vec::Vec<u8>) -> Result<Self, Self::Error> {
978
0
        Uuid::from_slice(&value)
979
0
    }
980
}
981
982
#[cfg(feature = "serde")]
983
pub mod serde {
984
    //! Adapters for alternative `serde` formats.
985
    //!
986
    //! This module contains adapters you can use with [`#[serde(with)]`](https://serde.rs/field-attrs.html#with)
987
    //! to change the way a [`Uuid`](../struct.Uuid.html) is serialized
988
    //! and deserialized.
989
990
    pub use crate::external::serde_support::{braced, compact, simple, urn};
991
}
992
993
#[cfg(test)]
994
mod tests {
995
    use super::*;
996
997
    use crate::std::string::{String, ToString};
998
999
    #[cfg(all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")))]
1000
    use wasm_bindgen_test::*;
1001
1002
    macro_rules! check {
1003
        ($buf:ident, $format:expr, $target:expr, $len:expr, $cond:expr) => {
1004
            $buf.clear();
1005
            write!($buf, $format, $target).unwrap();
1006
            assert!($buf.len() == $len);
1007
            assert!($buf.chars().all($cond), "{}", $buf);
1008
        };
1009
    }
1010
1011
    pub const fn new() -> Uuid {
1012
        Uuid::from_bytes([
1013
            0xF9, 0x16, 0x8C, 0x5E, 0xCE, 0xB2, 0x4F, 0xAA, 0xB6, 0xBF, 0x32, 0x9B, 0xF3, 0x9F,
1014
            0xA1, 0xE4,
1015
        ])
1016
    }
1017
1018
    pub const fn new2() -> Uuid {
1019
        Uuid::from_bytes([
1020
            0xF9, 0x16, 0x8C, 0x5E, 0xCE, 0xB2, 0x4F, 0xAB, 0xB6, 0xBF, 0x32, 0x9B, 0xF3, 0x9F,
1021
            0xA1, 0xE4,
1022
        ])
1023
    }
1024
1025
    #[test]
1026
    #[cfg_attr(
1027
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1028
        wasm_bindgen_test
1029
    )]
1030
    fn test_uuid_compare() {
1031
        let uuid1 = new();
1032
        let uuid2 = new2();
1033
1034
        assert_eq!(uuid1, uuid1);
1035
        assert_eq!(uuid2, uuid2);
1036
1037
        assert_ne!(uuid1, uuid2);
1038
        assert_ne!(uuid2, uuid1);
1039
    }
1040
1041
    #[test]
1042
    #[cfg_attr(
1043
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1044
        wasm_bindgen_test
1045
    )]
1046
    fn test_uuid_default() {
1047
        let default_uuid = Uuid::default();
1048
        let nil_uuid = Uuid::nil();
1049
1050
        assert_eq!(default_uuid, nil_uuid);
1051
    }
1052
1053
    #[test]
1054
    #[cfg_attr(
1055
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1056
        wasm_bindgen_test
1057
    )]
1058
    fn test_uuid_display() {
1059
        use crate::std::fmt::Write;
1060
1061
        let uuid = new();
1062
        let s = uuid.to_string();
1063
        let mut buffer = String::new();
1064
1065
        assert_eq!(s, uuid.hyphenated().to_string());
1066
1067
        check!(buffer, "{}", uuid, 36, |c| c.is_lowercase()
1068
            || c.is_ascii_digit()
1069
            || c == '-');
1070
    }
1071
1072
    #[test]
1073
    #[cfg_attr(
1074
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1075
        wasm_bindgen_test
1076
    )]
1077
    fn test_uuid_lowerhex() {
1078
        use crate::std::fmt::Write;
1079
1080
        let mut buffer = String::new();
1081
        let uuid = new();
1082
1083
        check!(buffer, "{:x}", uuid, 36, |c| c.is_lowercase()
1084
            || c.is_ascii_digit()
1085
            || c == '-');
1086
    }
1087
1088
    // noinspection RsAssertEqual
1089
    #[test]
1090
    #[cfg_attr(
1091
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1092
        wasm_bindgen_test
1093
    )]
1094
    fn test_uuid_operator_eq() {
1095
        let uuid1 = new();
1096
        let uuid1_dup = uuid1;
1097
        let uuid2 = new2();
1098
1099
        assert!(uuid1 == uuid1);
1100
        assert!(uuid1 == uuid1_dup);
1101
        assert!(uuid1_dup == uuid1);
1102
1103
        assert!(uuid1 != uuid2);
1104
        assert!(uuid2 != uuid1);
1105
        assert!(uuid1_dup != uuid2);
1106
        assert!(uuid2 != uuid1_dup);
1107
    }
1108
1109
    #[test]
1110
    #[cfg_attr(
1111
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1112
        wasm_bindgen_test
1113
    )]
1114
    fn test_uuid_to_string() {
1115
        use crate::std::fmt::Write;
1116
1117
        let uuid = new();
1118
        let s = uuid.to_string();
1119
        let mut buffer = String::new();
1120
1121
        assert_eq!(s.len(), 36);
1122
1123
        check!(buffer, "{}", s, 36, |c| c.is_lowercase()
1124
            || c.is_ascii_digit()
1125
            || c == '-');
1126
    }
1127
1128
    #[test]
1129
    #[cfg_attr(
1130
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1131
        wasm_bindgen_test
1132
    )]
1133
    fn test_non_conforming() {
1134
        let from_bytes =
1135
            Uuid::from_bytes([4, 54, 67, 12, 43, 2, 2, 76, 32, 50, 87, 5, 1, 33, 43, 87]);
1136
1137
        assert_eq!(from_bytes.get_version(), None);
1138
    }
1139
1140
    #[test]
1141
    #[cfg_attr(
1142
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1143
        wasm_bindgen_test
1144
    )]
1145
    fn test_nil() {
1146
        let nil = Uuid::nil();
1147
        let not_nil = new();
1148
1149
        assert!(nil.is_nil());
1150
        assert!(!not_nil.is_nil());
1151
1152
        assert_eq!(nil.get_version(), Some(Version::Nil));
1153
        assert_eq!(not_nil.get_version(), Some(Version::Random));
1154
1155
        assert_eq!(
1156
            nil,
1157
            Builder::from_bytes([0; 16])
1158
                .with_version(Version::Nil)
1159
                .into_uuid()
1160
        );
1161
    }
1162
1163
    #[test]
1164
    #[cfg_attr(
1165
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1166
        wasm_bindgen_test
1167
    )]
1168
    fn test_max() {
1169
        let max = Uuid::max();
1170
        let not_max = new();
1171
1172
        assert!(max.is_max());
1173
        assert!(!not_max.is_max());
1174
1175
        assert_eq!(max.get_version(), Some(Version::Max));
1176
        assert_eq!(not_max.get_version(), Some(Version::Random));
1177
1178
        assert_eq!(
1179
            max,
1180
            Builder::from_bytes([0xff; 16])
1181
                .with_version(Version::Max)
1182
                .into_uuid()
1183
        );
1184
    }
1185
1186
    #[test]
1187
    #[cfg_attr(
1188
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1189
        wasm_bindgen_test
1190
    )]
1191
    fn test_predefined_namespaces() {
1192
        assert_eq!(
1193
            Uuid::NAMESPACE_DNS.hyphenated().to_string(),
1194
            "6ba7b810-9dad-11d1-80b4-00c04fd430c8"
1195
        );
1196
        assert_eq!(
1197
            Uuid::NAMESPACE_URL.hyphenated().to_string(),
1198
            "6ba7b811-9dad-11d1-80b4-00c04fd430c8"
1199
        );
1200
        assert_eq!(
1201
            Uuid::NAMESPACE_OID.hyphenated().to_string(),
1202
            "6ba7b812-9dad-11d1-80b4-00c04fd430c8"
1203
        );
1204
        assert_eq!(
1205
            Uuid::NAMESPACE_X500.hyphenated().to_string(),
1206
            "6ba7b814-9dad-11d1-80b4-00c04fd430c8"
1207
        );
1208
    }
1209
1210
    #[cfg(feature = "v3")]
1211
    #[test]
1212
    #[cfg_attr(
1213
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1214
        wasm_bindgen_test
1215
    )]
1216
    fn test_get_version_v3() {
1217
        let uuid = Uuid::new_v3(&Uuid::NAMESPACE_DNS, "rust-lang.org".as_bytes());
1218
1219
        assert_eq!(uuid.get_version().unwrap(), Version::Md5);
1220
        assert_eq!(uuid.get_version_num(), 3);
1221
    }
1222
1223
    #[test]
1224
    #[cfg_attr(
1225
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1226
        wasm_bindgen_test
1227
    )]
1228
    fn test_get_timestamp_unsupported_version() {
1229
        let uuid = new();
1230
1231
        assert_ne!(Version::Mac, uuid.get_version().unwrap());
1232
        assert_ne!(Version::SortMac, uuid.get_version().unwrap());
1233
        assert_ne!(Version::SortRand, uuid.get_version().unwrap());
1234
1235
        assert!(uuid.get_timestamp().is_none());
1236
    }
1237
1238
    #[test]
1239
    #[cfg_attr(
1240
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1241
        wasm_bindgen_test
1242
    )]
1243
    fn test_get_node_id_unsupported_version() {
1244
        let uuid = new();
1245
1246
        assert_ne!(Version::Mac, uuid.get_version().unwrap());
1247
        assert_ne!(Version::SortMac, uuid.get_version().unwrap());
1248
1249
        assert!(uuid.get_node_id().is_none());
1250
    }
1251
1252
    #[test]
1253
    #[cfg_attr(
1254
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1255
        wasm_bindgen_test
1256
    )]
1257
    fn test_get_variant() {
1258
        let uuid1 = new();
1259
        let uuid2 = Uuid::parse_str("550e8400-e29b-41d4-a716-446655440000").unwrap();
1260
        let uuid3 = Uuid::parse_str("67e55044-10b1-426f-9247-bb680e5fe0c8").unwrap();
1261
        let uuid4 = Uuid::parse_str("936DA01F9ABD4d9dC0C702AF85C822A8").unwrap();
1262
        let uuid5 = Uuid::parse_str("F9168C5E-CEB2-4faa-D6BF-329BF39FA1E4").unwrap();
1263
        let uuid6 = Uuid::parse_str("f81d4fae-7dec-11d0-7765-00a0c91e6bf6").unwrap();
1264
1265
        assert_eq!(uuid1.get_variant(), Variant::RFC4122);
1266
        assert_eq!(uuid2.get_variant(), Variant::RFC4122);
1267
        assert_eq!(uuid3.get_variant(), Variant::RFC4122);
1268
        assert_eq!(uuid4.get_variant(), Variant::Microsoft);
1269
        assert_eq!(uuid5.get_variant(), Variant::Microsoft);
1270
        assert_eq!(uuid6.get_variant(), Variant::NCS);
1271
    }
1272
1273
    #[test]
1274
    #[cfg_attr(
1275
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1276
        wasm_bindgen_test
1277
    )]
1278
    fn test_to_simple_string() {
1279
        let uuid1 = new();
1280
        let s = uuid1.simple().to_string();
1281
1282
        assert_eq!(s.len(), 32);
1283
        assert!(s.chars().all(|c| c.is_ascii_hexdigit()));
1284
    }
1285
1286
    #[test]
1287
    #[cfg_attr(
1288
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1289
        wasm_bindgen_test
1290
    )]
1291
    fn test_hyphenated_string() {
1292
        let uuid1 = new();
1293
        let s = uuid1.hyphenated().to_string();
1294
1295
        assert_eq!(36, s.len());
1296
        assert!(s.chars().all(|c| c.is_ascii_hexdigit() || c == '-'));
1297
    }
1298
1299
    #[test]
1300
    #[cfg_attr(
1301
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1302
        wasm_bindgen_test
1303
    )]
1304
    fn test_upper_lower_hex() {
1305
        use std::fmt::Write;
1306
1307
        let mut buf = String::new();
1308
        let u = new();
1309
1310
        macro_rules! check {
1311
            ($buf:ident, $format:expr, $target:expr, $len:expr, $cond:expr) => {
1312
                $buf.clear();
1313
                write!($buf, $format, $target).unwrap();
1314
                assert_eq!($len, buf.len());
1315
                assert!($buf.chars().all($cond), "{}", $buf);
1316
            };
1317
        }
1318
1319
        check!(buf, "{:x}", u, 36, |c| c.is_lowercase()
1320
            || c.is_ascii_digit()
1321
            || c == '-');
1322
        check!(buf, "{:X}", u, 36, |c| c.is_uppercase()
1323
            || c.is_ascii_digit()
1324
            || c == '-');
1325
        check!(buf, "{:#x}", u, 36, |c| c.is_lowercase()
1326
            || c.is_ascii_digit()
1327
            || c == '-');
1328
        check!(buf, "{:#X}", u, 36, |c| c.is_uppercase()
1329
            || c.is_ascii_digit()
1330
            || c == '-');
1331
1332
        check!(buf, "{:X}", u.hyphenated(), 36, |c| c.is_uppercase()
1333
            || c.is_ascii_digit()
1334
            || c == '-');
1335
        check!(buf, "{:X}", u.simple(), 32, |c| c.is_uppercase()
1336
            || c.is_ascii_digit());
1337
        check!(buf, "{:#X}", u.hyphenated(), 36, |c| c.is_uppercase()
1338
            || c.is_ascii_digit()
1339
            || c == '-');
1340
        check!(buf, "{:#X}", u.simple(), 32, |c| c.is_uppercase()
1341
            || c.is_ascii_digit());
1342
1343
        check!(buf, "{:x}", u.hyphenated(), 36, |c| c.is_lowercase()
1344
            || c.is_ascii_digit()
1345
            || c == '-');
1346
        check!(buf, "{:x}", u.simple(), 32, |c| c.is_lowercase()
1347
            || c.is_ascii_digit());
1348
        check!(buf, "{:#x}", u.hyphenated(), 36, |c| c.is_lowercase()
1349
            || c.is_ascii_digit()
1350
            || c == '-');
1351
        check!(buf, "{:#x}", u.simple(), 32, |c| c.is_lowercase()
1352
            || c.is_ascii_digit());
1353
    }
1354
1355
    #[test]
1356
    #[cfg_attr(
1357
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1358
        wasm_bindgen_test
1359
    )]
1360
    fn test_to_urn_string() {
1361
        let uuid1 = new();
1362
        let ss = uuid1.urn().to_string();
1363
        let s = &ss[9..];
1364
1365
        assert!(ss.starts_with("urn:uuid:"));
1366
        assert_eq!(s.len(), 36);
1367
        assert!(s.chars().all(|c| c.is_ascii_hexdigit() || c == '-'));
1368
    }
1369
1370
    #[test]
1371
    #[cfg_attr(
1372
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1373
        wasm_bindgen_test
1374
    )]
1375
    fn test_to_simple_string_matching() {
1376
        let uuid1 = new();
1377
1378
        let hs = uuid1.hyphenated().to_string();
1379
        let ss = uuid1.simple().to_string();
1380
1381
        let hsn = hs.chars().filter(|&c| c != '-').collect::<String>();
1382
1383
        assert_eq!(hsn, ss);
1384
    }
1385
1386
    #[test]
1387
    #[cfg_attr(
1388
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1389
        wasm_bindgen_test
1390
    )]
1391
    fn test_string_roundtrip() {
1392
        let uuid = new();
1393
1394
        let hs = uuid.hyphenated().to_string();
1395
        let uuid_hs = Uuid::parse_str(&hs).unwrap();
1396
        assert_eq!(uuid_hs, uuid);
1397
1398
        let ss = uuid.to_string();
1399
        let uuid_ss = Uuid::parse_str(&ss).unwrap();
1400
        assert_eq!(uuid_ss, uuid);
1401
    }
1402
1403
    #[test]
1404
    #[cfg_attr(
1405
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1406
        wasm_bindgen_test
1407
    )]
1408
    fn test_from_fields() {
1409
        let d1: u32 = 0xa1a2a3a4;
1410
        let d2: u16 = 0xb1b2;
1411
        let d3: u16 = 0xc1c2;
1412
        let d4 = [0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6, 0xd7, 0xd8];
1413
1414
        let u = Uuid::from_fields(d1, d2, d3, &d4);
1415
1416
        let expected = "a1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8";
1417
        let result = u.simple().to_string();
1418
        assert_eq!(result, expected);
1419
    }
1420
1421
    #[test]
1422
    #[cfg_attr(
1423
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1424
        wasm_bindgen_test
1425
    )]
1426
    fn test_from_fields_le() {
1427
        let d1: u32 = 0xa4a3a2a1;
1428
        let d2: u16 = 0xb2b1;
1429
        let d3: u16 = 0xc2c1;
1430
        let d4 = [0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6, 0xd7, 0xd8];
1431
1432
        let u = Uuid::from_fields_le(d1, d2, d3, &d4);
1433
1434
        let expected = "a1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8";
1435
        let result = u.simple().to_string();
1436
        assert_eq!(result, expected);
1437
    }
1438
1439
    #[test]
1440
    #[cfg_attr(
1441
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1442
        wasm_bindgen_test
1443
    )]
1444
    fn test_as_fields() {
1445
        let u = new();
1446
        let (d1, d2, d3, d4) = u.as_fields();
1447
1448
        assert_ne!(d1, 0);
1449
        assert_ne!(d2, 0);
1450
        assert_ne!(d3, 0);
1451
        assert_eq!(d4.len(), 8);
1452
        assert!(!d4.iter().all(|&b| b == 0));
1453
    }
1454
1455
    #[test]
1456
    #[cfg_attr(
1457
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1458
        wasm_bindgen_test
1459
    )]
1460
    fn test_fields_roundtrip() {
1461
        let d1_in: u32 = 0xa1a2a3a4;
1462
        let d2_in: u16 = 0xb1b2;
1463
        let d3_in: u16 = 0xc1c2;
1464
        let d4_in = &[0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6, 0xd7, 0xd8];
1465
1466
        let u = Uuid::from_fields(d1_in, d2_in, d3_in, d4_in);
1467
        let (d1_out, d2_out, d3_out, d4_out) = u.as_fields();
1468
1469
        assert_eq!(d1_in, d1_out);
1470
        assert_eq!(d2_in, d2_out);
1471
        assert_eq!(d3_in, d3_out);
1472
        assert_eq!(d4_in, d4_out);
1473
    }
1474
1475
    #[test]
1476
    #[cfg_attr(
1477
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1478
        wasm_bindgen_test
1479
    )]
1480
    fn test_fields_le_roundtrip() {
1481
        let d1_in: u32 = 0xa4a3a2a1;
1482
        let d2_in: u16 = 0xb2b1;
1483
        let d3_in: u16 = 0xc2c1;
1484
        let d4_in = &[0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6, 0xd7, 0xd8];
1485
1486
        let u = Uuid::from_fields_le(d1_in, d2_in, d3_in, d4_in);
1487
        let (d1_out, d2_out, d3_out, d4_out) = u.to_fields_le();
1488
1489
        assert_eq!(d1_in, d1_out);
1490
        assert_eq!(d2_in, d2_out);
1491
        assert_eq!(d3_in, d3_out);
1492
        assert_eq!(d4_in, d4_out);
1493
    }
1494
1495
    #[test]
1496
    #[cfg_attr(
1497
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1498
        wasm_bindgen_test
1499
    )]
1500
    fn test_fields_le_are_actually_le() {
1501
        let d1_in: u32 = 0xa1a2a3a4;
1502
        let d2_in: u16 = 0xb1b2;
1503
        let d3_in: u16 = 0xc1c2;
1504
        let d4_in = &[0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6, 0xd7, 0xd8];
1505
1506
        let u = Uuid::from_fields(d1_in, d2_in, d3_in, d4_in);
1507
        let (d1_out, d2_out, d3_out, d4_out) = u.to_fields_le();
1508
1509
        assert_eq!(d1_in, d1_out.swap_bytes());
1510
        assert_eq!(d2_in, d2_out.swap_bytes());
1511
        assert_eq!(d3_in, d3_out.swap_bytes());
1512
        assert_eq!(d4_in, d4_out);
1513
    }
1514
1515
    #[test]
1516
    #[cfg_attr(
1517
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1518
        wasm_bindgen_test
1519
    )]
1520
    fn test_from_u128() {
1521
        let v_in: u128 = 0xa1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8;
1522
1523
        let u = Uuid::from_u128(v_in);
1524
1525
        let expected = "a1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8";
1526
        let result = u.simple().to_string();
1527
        assert_eq!(result, expected);
1528
    }
1529
1530
    #[test]
1531
    #[cfg_attr(
1532
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1533
        wasm_bindgen_test
1534
    )]
1535
    fn test_from_u128_le() {
1536
        let v_in: u128 = 0xd8d7d6d5d4d3d2d1c2c1b2b1a4a3a2a1;
1537
1538
        let u = Uuid::from_u128_le(v_in);
1539
1540
        let expected = "a1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8";
1541
        let result = u.simple().to_string();
1542
        assert_eq!(result, expected);
1543
    }
1544
1545
    #[test]
1546
    #[cfg_attr(
1547
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1548
        wasm_bindgen_test
1549
    )]
1550
    fn test_from_u64_pair() {
1551
        let high_in: u64 = 0xa1a2a3a4b1b2c1c2;
1552
        let low_in: u64 = 0xd1d2d3d4d5d6d7d8;
1553
1554
        let u = Uuid::from_u64_pair(high_in, low_in);
1555
1556
        let expected = "a1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8";
1557
        let result = u.simple().to_string();
1558
        assert_eq!(result, expected);
1559
    }
1560
1561
    #[test]
1562
    #[cfg_attr(
1563
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1564
        wasm_bindgen_test
1565
    )]
1566
    fn test_u128_roundtrip() {
1567
        let v_in: u128 = 0xa1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8;
1568
1569
        let u = Uuid::from_u128(v_in);
1570
        let v_out = u.as_u128();
1571
1572
        assert_eq!(v_in, v_out);
1573
    }
1574
1575
    #[test]
1576
    #[cfg_attr(
1577
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1578
        wasm_bindgen_test
1579
    )]
1580
    fn test_u128_le_roundtrip() {
1581
        let v_in: u128 = 0xd8d7d6d5d4d3d2d1c2c1b2b1a4a3a2a1;
1582
1583
        let u = Uuid::from_u128_le(v_in);
1584
        let v_out = u.to_u128_le();
1585
1586
        assert_eq!(v_in, v_out);
1587
    }
1588
1589
    #[test]
1590
    #[cfg_attr(
1591
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1592
        wasm_bindgen_test
1593
    )]
1594
    fn test_u64_pair_roundtrip() {
1595
        let high_in: u64 = 0xa1a2a3a4b1b2c1c2;
1596
        let low_in: u64 = 0xd1d2d3d4d5d6d7d8;
1597
1598
        let u = Uuid::from_u64_pair(high_in, low_in);
1599
        let (high_out, low_out) = u.as_u64_pair();
1600
1601
        assert_eq!(high_in, high_out);
1602
        assert_eq!(low_in, low_out);
1603
    }
1604
1605
    #[test]
1606
    #[cfg_attr(
1607
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1608
        wasm_bindgen_test
1609
    )]
1610
    fn test_u128_le_is_actually_le() {
1611
        let v_in: u128 = 0xa1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8;
1612
1613
        let u = Uuid::from_u128(v_in);
1614
        let v_out = u.to_u128_le();
1615
1616
        assert_eq!(v_in, v_out.swap_bytes());
1617
    }
1618
1619
    #[test]
1620
    #[cfg_attr(
1621
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1622
        wasm_bindgen_test
1623
    )]
1624
    fn test_from_slice() {
1625
        let b = [
1626
            0xa1, 0xa2, 0xa3, 0xa4, 0xb1, 0xb2, 0xc1, 0xc2, 0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6,
1627
            0xd7, 0xd8,
1628
        ];
1629
1630
        let u = Uuid::from_slice(&b).unwrap();
1631
        let expected = "a1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8";
1632
1633
        assert_eq!(u.simple().to_string(), expected);
1634
    }
1635
1636
    #[test]
1637
    #[cfg_attr(
1638
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1639
        wasm_bindgen_test
1640
    )]
1641
    fn test_from_bytes() {
1642
        let b = [
1643
            0xa1, 0xa2, 0xa3, 0xa4, 0xb1, 0xb2, 0xc1, 0xc2, 0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6,
1644
            0xd7, 0xd8,
1645
        ];
1646
1647
        let u = Uuid::from_bytes(b);
1648
        let expected = "a1a2a3a4b1b2c1c2d1d2d3d4d5d6d7d8";
1649
1650
        assert_eq!(u.simple().to_string(), expected);
1651
    }
1652
1653
    #[test]
1654
    #[cfg_attr(
1655
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1656
        wasm_bindgen_test
1657
    )]
1658
    fn test_as_bytes() {
1659
        let u = new();
1660
        let ub = u.as_bytes();
1661
        let ur: &[u8] = u.as_ref();
1662
1663
        assert_eq!(ub.len(), 16);
1664
        assert_eq!(ur.len(), 16);
1665
        assert!(!ub.iter().all(|&b| b == 0));
1666
        assert!(!ur.iter().all(|&b| b == 0));
1667
    }
1668
1669
    #[test]
1670
    #[cfg(feature = "std")]
1671
    #[cfg_attr(
1672
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1673
        wasm_bindgen_test
1674
    )]
1675
    fn test_convert_vec() {
1676
        let u = new();
1677
        let ub: &[u8] = u.as_ref();
1678
1679
        let v: std::vec::Vec<u8> = u.into();
1680
1681
        assert_eq!(&v, ub);
1682
1683
        let uv: Uuid = v.try_into().unwrap();
1684
1685
        assert_eq!(uv, u);
1686
    }
1687
1688
    #[test]
1689
    #[cfg_attr(
1690
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1691
        wasm_bindgen_test
1692
    )]
1693
    fn test_bytes_roundtrip() {
1694
        let b_in: crate::Bytes = [
1695
            0xa1, 0xa2, 0xa3, 0xa4, 0xb1, 0xb2, 0xc1, 0xc2, 0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6,
1696
            0xd7, 0xd8,
1697
        ];
1698
1699
        let u = Uuid::from_slice(&b_in).unwrap();
1700
1701
        let b_out = u.as_bytes();
1702
1703
        assert_eq!(&b_in, b_out);
1704
    }
1705
1706
    #[test]
1707
    #[cfg_attr(
1708
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1709
        wasm_bindgen_test
1710
    )]
1711
    fn test_bytes_le_roundtrip() {
1712
        let b = [
1713
            0xa1, 0xa2, 0xa3, 0xa4, 0xb1, 0xb2, 0xc1, 0xc2, 0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6,
1714
            0xd7, 0xd8,
1715
        ];
1716
1717
        let u1 = Uuid::from_bytes(b);
1718
1719
        let b_le = u1.to_bytes_le();
1720
1721
        let u2 = Uuid::from_bytes_le(b_le);
1722
1723
        assert_eq!(u1, u2);
1724
    }
1725
1726
    #[test]
1727
    #[cfg_attr(
1728
        all(target_arch = "wasm32", any(target_os = "unknown", target_os = "none")),
1729
        wasm_bindgen_test
1730
    )]
1731
    fn test_iterbytes_impl_for_uuid() {
1732
        let mut set = std::collections::HashSet::new();
1733
        let id1 = new();
1734
        let id2 = new2();
1735
        set.insert(id1);
1736
1737
        assert!(set.contains(&id1));
1738
        assert!(!set.contains(&id2));
1739
    }
1740
}