python-cattrs
Port variant v11
Summary Composable complex class support for attrs (3.11)
Package version 23.2.3
Homepage https://catt.rs
Keywords python
Maintainer Python Automaton
License Not yet specified
Other variants v12
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Last modified 01 DEC 2023, 16:14:35 UTC
Port created 03 JAN 2020, 01:03:23 UTC
Subpackage Descriptions
single # cattrs [image] [image] [image] [image] [image] [image] --- **cattrs** is an open source Python library for structuring and unstructuring data. _cattrs_ works best with _attrs_ classes, dataclasses and the usual Python collections, but other kinds of classes are supported by manually registering converters. Python has a rich set of powerful, easy to use, built-in data types like dictionaries, lists and tuples. These data types are also the lingua franca of most data serialization libraries, for formats like json, msgpack, cbor, yaml or toml. Data types like this, and mappings like `dict` s in particular, represent unstructured data. Your data is, in all likelihood, structured: not all combinations of field names or values are valid inputs to your programs. In Python, structured data is better represented with classes and enumerations. _attrs_ is an excellent library for declaratively describing the structure of your data, and validating it. When you're handed unstructured data (by your network, file system, database...), _cattrs_ helps to convert this data into structured data. When you have to convert your structured data into data types other libraries can handle, _cattrs_ turns your classes and enumerations into dictionaries, integers and strings. Here's a simple taste. The list containing a float, an int and a string gets converted into a tuple of three ints. ```python >>> import cattrs >>> cattrs.structure([1.0, 2, "3"], tuple[int, int, int]) (1, 2, 3) ``` _cattrs_ works well with _attrs_ classes out of the box. ```python >>> from attrs import frozen >>> import cattrs >>> @frozen # It works with non-frozen classes too. ... class C: ... a: int ... b: str >>> instance = C(1, 'a') >>> cattrs.unstructure(instance) {'a': 1, 'b': 'a'} >>> cattrs.structure({'a': 1, 'b': 'a'}, C) C(a=1, b='a') ``` Here's a much more complex example, involving `attrs` classes with type metadata. ```python >>> from enum import unique, Enum >>> from typing import Optional, Sequence, Union >>> from cattrs import structure, unstructure >>> from attrs import define, field >>> @unique ... class CatBreed(Enum): ... SIAMESE = "siamese" ... MAINE_COON = "maine_coon" ... SACRED_BIRMAN = "birman" >>> @define ... class Cat: ... breed: CatBreed ... names: Sequence[str] >>> @define ... class DogMicrochip: ... chip_id = field() # Type annotations are optional, but recommended ... time_chipped: float = field() >>> @define ... class Dog: ... cuteness: int ... chip: Optional[DogMicrochip] = None >>> p = unstructure([Dog(cuteness=1, chip=DogMicrochip(chip_id=1, time_chipped=10.0)), ... Cat(breed=CatBreed.MAINE_COON, names=('Fluffly',
Configuration Switches (platform-specific settings discarded)
PY311 ON Build using Python 3.11 PY312 OFF Build using Python 3.12
Package Dependencies by Type
Build (only) python-pip:single:v11
autoselect-python:single:standard
Build and Runtime python311:single:standard
Runtime (only) python-attrs:single:v11
Download groups
main mirror://PYPIWHL/b3/0d/cd4a4071c7f38385dc5ba91286723b4d1090b87815db48216212c6c6c30e
Distribution File Information
0341994d94971052e9ee70662542699a3162ea1e0c62f7ce1b4a57f563685108 57474 cattrs-23.2.3-py3-none-any.whl
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