Metadata-Version: 2.4
Name: tibs
Version: 2.0.1
Classifier: Development Status :: 5 - Production/Stable
Classifier: Intended Audience :: Developers
Classifier: Operating System :: OS Independent
Classifier: Programming Language :: Python :: 3.11
Classifier: Programming Language :: Python :: 3.12
Classifier: Programming Language :: Python :: 3.13
Classifier: Programming Language :: Python :: 3.14
Classifier: Programming Language :: Python :: Free Threading :: 3 - Stable
Classifier: Programming Language :: Rust
Classifier: Programming Language :: Python :: Implementation :: CPython
Classifier: License :: OSI Approved :: MIT License
Classifier: Topic :: Software Development :: Libraries :: Python Modules
Classifier: Typing :: Typed
Requires-Dist: gfloat==0.5.2 ; extra == 'conformance'
Requires-Dist: ml-dtypes==0.5.4 ; extra == 'conformance'
Requires-Dist: pytest>=9.0.0 ; extra == 'dev'
Requires-Dist: hypothesis>=6.151.0 ; extra == 'dev'
Requires-Dist: pytest-benchmark>=5.2.0 ; extra == 'dev'
Requires-Dist: pyright>=1.1.389 ; extra == 'dev'
Requires-Dist: build ; extra == 'dev'
Requires-Dist: bitarray ; extra == 'dev'
Provides-Extra: conformance
Provides-Extra: dev
License-File: LICENSE
Summary: A sleek Python library for binary data.
Home-Page: https://github.com/scott-griffiths/tibs
Author-email: Scott Griffiths <dr.scottgriffiths@gmail.com>
License: The MIT License
	
	Copyright (c) 2025 Scott Griffiths (dr.scottgriffiths@gmail.com)
	
	Permission is hereby granted, free of charge, to any person obtaining a copy
	of this software and associated documentation files (the "Software"), to deal
	in the Software without restriction, including without limitation the rights
	to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
	copies of the Software, and to permit persons to whom the Software is
	furnished to do so, subject to the following conditions:
	
	The above copyright notice and this permission notice shall be included in
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	THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
	IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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	THE SOFTWARE.
	
Requires-Python: >=3.11
Description-Content-Type: text/markdown; charset=UTF-8; variant=GFM
Project-URL: documentation, https://tibs.readthedocs.io/
Project-URL: homepage, https://github.com/scott-griffiths/tibs

<p>
  <img src="https://raw.githubusercontent.com/scott-griffiths/tibs/main/doc/_static/tibs_cat.png" alt="Tibs cat" height="130" align="left" />
  <a href="https://github.com/scott-griffiths/tibs">
    <img src="https://raw.githubusercontent.com/scott-griffiths/tibs/main/doc/tibs.png" alt="tibs" height="110" />
  </a><br />
  A sleek Python library for binary data
</p>

<br clear="left" />


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&nbsp; &nbsp;
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----

``tibs`` is a Python library for binary data.
It's 100% written in Rust and has excellent performance.

Use it for packets, registers, instruction
formats, bitsets, compressed data and streams where fields can have many different
interpretations and be any number of bits long.

It is used to power the popular [bitstring](https://github.com/scott-griffiths/bitstring)
library, which is by the same author. The full documentation is available on [Read the Docs](https://tibs.readthedocs.io/en/latest/).


## Install

```bash
pip install tibs
```

Tibs works with Python 3.11 and later. There are pre-built wheels for most
common platforms; if there are issues then please let me know.

## Overview

The tibs library provides two main classes: `Tibs`, which is an immutable sequence of bits
(similar to how `bytes` works in Python as a sequence of bytes) and `Mutibs`, which is a mutable version (similar to `bytearray` in Python).

They can be used in a few ways, depending on what you need:

### 1. As a container of bits

`Tibs` provides an interface very similar
to `bytes` and other Python containers - you can slice it, concatenate, search it etc. in a
familiar way, with `Mutibs` adding on mutating methods.

`find` · `rfind` · `find_all` · `replace` · `count` · `starts_with` · `split_at` · `chunks` · `+` · `in`

This 'container of bits' mental model might be all that you need, but the library also gives
you two broad views of the binary data.

### 2. As Typed fields

Pull integers, floats, bytes, hex or binary of any
bit length straight out of the bits, without hand-rolling shifts and masks.
Little-endian ordering and LSB0 field labels are handled elegantly so you don't reshuffle data
yourself, and `extracted` / `deposit` reach fields that are scattered across a word.

When parsing streams, a `Reader` can wrap the `Tibs` to hold a bit position for
you, so a parsing loop never has to work out where the next one starts.

`from_u` · `to_f` · `bin` / `hex` · `Dtype` · `pack` / `unpack` · `.le` · `.lsb0` · `field()` · `extracted` / `deposit` · `Reader` · f-string formatting

### 3. As a set of bits

For bitwise algebra, cardinalities and set predicates, with
no intermediate object built along the way. `Mutibs` can also be used as a large mutable bitset.

`&` `|` `^` `~` · `count_and` · `count_xor` · `intersects` · `is_subset_of` · `set` / `unset` · `all` / `any`


And it's fast — usually significantly faster than similar libraries.


## A Taster

Some real code to illustrate.

**As a container of bits.** `Tibs` works like `bytes`, except that the unit is the bit.
`Mutibs` is its mutable counterpart, for patching in place.

```pycon
>>> from tibs import Tibs
>>> # A 5-bit header, a message, then 3 bits of padding: nothing is byte aligned.
>>> frame = Tibs('0b10110') + b'the cat rarely blinked' + [0, 0, 0]
>>> bytes(frame).find(b'cat')      # using bytes, the message can't be found
-1
>>> pos = frame.find(b'cat')       # but the tibs still knows where it is
>>> pos, frame[pos:pos + 24].bytes
(37, b'cat')

>>> patched = frame.to_mutibs()
>>> patched[pos:pos + 24] = b'squirrel'
>>> patched[5:-3].bytes
b'the squirrel rarely blinked'
>>> len(frame), len(patched)       # 40 bits longer, spliced in at bit 37
(184, 224)

```

**As typed fields.** Read and write integers, floats and strings of any bit length,
with a view taking care of byte order and bit numbering — the sort of job that gets
awkward quickly with plain bytes and masks.

```pycon
>>> # What's inside a float? A sign bit, an 8-bit exponent and a 23-bit fraction.
>>> x = Tibs.from_f(-118.625, 32)
>>> f"{x:_.8b}"                    # grouped into bytes to make it readable
'11000010_11101101_01000000_00000000'
>>> sign, exponent, fraction = x.split_at([1, 9])
>>> (-1) ** sign.u * 2 ** (exponent.u - 127) * (1 + fraction.u / 2 ** 23)
-118.625

>>> Tibs(b'\x00\x40\xed\xc2').le.f     # the same value, from a little-endian file
-118.625
>>> Tibs.from_u(x.u + 1, 32).f         # the adjacent float32, one bit away
-118.62500762939453

```

**As a set of bits.** Bitwise algebra and cardinalities over millions of bits, without
building an intermediate object just to count it.

```pycon
>>> from math import isqrt
>>> from tibs import Mutibs
>>> # A sieve of Eratosthenes over ten million numbers, one bit each.
>>> limit = 10_000_000
>>> sieve = Mutibs.from_ones(limit)
>>> sieve.unset([0, 1])
>>> for p in range(2, isqrt(limit) + 1):
...     if sieve[p]:
...         sieve.unset(range(p * p, limit, p))
...
>>> sieve.count(1)                     # primes below ten million
664579

>>> # Counting twin, cousin and sexy primes: pairs 2, 4 and 6 apart:
>>> [sieve.count_and(sieve >> d) for d in (2, 4, 6)]
[58980, 58622, 117207]

```

The full documentation covers construction, interpretation, endianness, searching and replacing,
indexing, serialization, views, dtypes and much more.

## Performance

Tibs is written in Rust with PyO3. The repository contains a dedicated
[performance regression suite](tests/performance_regression.py) and
[CI workflow](.github/workflows/performance.yaml) that compare benchmark
medians against the base commit.

For local comparisons, [`tests/performance_comparison.py`](tests/performance_comparison.py)
checks common operations against the `bitarray` library and the standard Python library. With
`bitarray` installed, run:

```bash
python tests/performance_comparison.py
```

Benchmarks are machine-dependent, but tibs is often almost unreasonably fast.

## Examples

The examples are small, but they are meant to look like real binary-data tasks.
Each is walked through in the documentation, with the runnable code in
[`examples/`](examples/). Some examples of the examples:


| Example |  |
| --- | --- |
| [Record stream](https://tibs.readthedocs.io/en/latest/example_record_stream.html) | Read tagged, variable-length records with a `Reader`. |
| [eBPF instruction](https://tibs.readthedocs.io/en/latest/example_ebpf_instruction.html) | Decode a real eBPF instruction by chaining LSB0 and little-endian views. |
| [Fingerprints](https://tibs.readthedocs.io/en/latest/example_fingerprints.html) | Compare items as sets of bits with `count_and`, `count_xor` and `is_subset_of`. |
| [Parallel decode](https://tibs.readthedocs.io/en/latest/example_parallel_decode.html) | Decode millions of samples across threads on a free-threaded build, with no copying and no locks. |

The [rest of the examples](https://tibs.readthedocs.io/en/latest/examples.html)
cover stream scanning, in-place patching, structured headers, bulk sample
packing and scattered register fields.


## Project status

Tibs is considered 'stable' and has reached version 2. Documented public behavior will
remain compatible across future 2.x releases. It is already used to power the `bitstring` 
library and gets several million downloads per month.

There are thousands of unit tests, including Hypothesis tests and performance
benchmarks.


For the full API reference, see the
[documentation](https://tibs.readthedocs.io/en/latest/).


## Credits

The `tibs` library was created by Scott Griffiths and is released under the MIT License.

The Tibs cat artwork was created by Ada Griffiths and is not covered by the software license. All rights reserved.

<p>
  <img src="https://raw.githubusercontent.com/scott-griffiths/tibs/main/doc/_static/tibs_white_sleeping.png" alt="Tibs cat" height="110" align="left" />
</p>

