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Metadata-Version: 2.3
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Name: annotated-types
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Version: 0.7.0
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Summary: Reusable constraint types to use with typing.Annotated
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Project-URL: Homepage, https://github.com/annotated-types/annotated-types
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Project-URL: Source, https://github.com/annotated-types/annotated-types
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Project-URL: Changelog, https://github.com/annotated-types/annotated-types/releases
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Author-email: Adrian Garcia Badaracco <1755071+adriangb@users.noreply.github.com>, Samuel Colvin <s@muelcolvin.com>, Zac Hatfield-Dodds <zac@zhd.dev>
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License-File: LICENSE
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Classifier: Development Status :: 4 - Beta
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Classifier: Environment :: Console
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Classifier: Environment :: MacOS X
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Classifier: Intended Audience :: Developers
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Classifier: Intended Audience :: Information Technology
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Classifier: License :: OSI Approved :: MIT License
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Classifier: Operating System :: POSIX :: Linux
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Classifier: Operating System :: Unix
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Classifier: Programming Language :: Python :: 3 :: Only
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Classifier: Programming Language :: Python :: 3.8
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Classifier: Programming Language :: Python :: 3.9
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Classifier: Programming Language :: Python :: 3.10
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Classifier: Programming Language :: Python :: 3.11
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Classifier: Programming Language :: Python :: 3.12
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Classifier: Topic :: Software Development :: Libraries :: Python Modules
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Classifier: Typing :: Typed
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Requires-Python: >=3.8
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Requires-Dist: typing-extensions>=4.0.0; python_version < '3.9'
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Description-Content-Type: text/markdown
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# annotated-types
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[](https://github.com/annotated-types/annotated-types/actions?query=event%3Apush+branch%3Amain+workflow%3ACI)
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[](https://pypi.python.org/pypi/annotated-types)
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[](https://github.com/annotated-types/annotated-types)
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[](https://github.com/annotated-types/annotated-types/blob/main/LICENSE)
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[PEP-593](https://peps.python.org/pep-0593/) added `typing.Annotated` as a way of
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adding context-specific metadata to existing types, and specifies that
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`Annotated[T, x]` _should_ be treated as `T` by any tool or library without special
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logic for `x`.
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This package provides metadata objects which can be used to represent common
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constraints such as upper and lower bounds on scalar values and collection sizes,
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a `Predicate` marker for runtime checks, and
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descriptions of how we intend these metadata to be interpreted. In some cases,
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we also note alternative representations which do not require this package.
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## Install
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```bash
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pip install annotated-types
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```
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## Examples
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```python
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from typing import Annotated
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from annotated_types import Gt, Len, Predicate
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class MyClass:
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age: Annotated[int, Gt(18)] # Valid: 19, 20, ...
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# Invalid: 17, 18, "19", 19.0, ...
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factors: list[Annotated[int, Predicate(is_prime)]] # Valid: 2, 3, 5, 7, 11, ...
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# Invalid: 4, 8, -2, 5.0, "prime", ...
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my_list: Annotated[list[int], Len(0, 10)] # Valid: [], [10, 20, 30, 40, 50]
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# Invalid: (1, 2), ["abc"], [0] * 20
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```
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## Documentation
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_While `annotated-types` avoids runtime checks for performance, users should not
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construct invalid combinations such as `MultipleOf("non-numeric")` or `Annotated[int, Len(3)]`.
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Downstream implementors may choose to raise an error, emit a warning, silently ignore
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a metadata item, etc., if the metadata objects described below are used with an
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incompatible type - or for any other reason!_
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### Gt, Ge, Lt, Le
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Express inclusive and/or exclusive bounds on orderable values - which may be numbers,
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dates, times, strings, sets, etc. Note that the boundary value need not be of the
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same type that was annotated, so long as they can be compared: `Annotated[int, Gt(1.5)]`
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is fine, for example, and implies that the value is an integer x such that `x > 1.5`.
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We suggest that implementors may also interpret `functools.partial(operator.le, 1.5)`
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as being equivalent to `Gt(1.5)`, for users who wish to avoid a runtime dependency on
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the `annotated-types` package.
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To be explicit, these types have the following meanings:
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* `Gt(x)` - value must be "Greater Than" `x` - equivalent to exclusive minimum
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* `Ge(x)` - value must be "Greater than or Equal" to `x` - equivalent to inclusive minimum
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* `Lt(x)` - value must be "Less Than" `x` - equivalent to exclusive maximum
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* `Le(x)` - value must be "Less than or Equal" to `x` - equivalent to inclusive maximum
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### Interval
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`Interval(gt, ge, lt, le)` allows you to specify an upper and lower bound with a single
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metadata object. `None` attributes should be ignored, and non-`None` attributes
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treated as per the single bounds above.
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### MultipleOf
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`MultipleOf(multiple_of=x)` might be interpreted in two ways:
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1. Python semantics, implying `value % multiple_of == 0`, or
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2. [JSONschema semantics](https://json-schema.org/draft/2020-12/json-schema-validation.html#rfc.section.6.2.1),
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where `int(value / multiple_of) == value / multiple_of`.
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We encourage users to be aware of these two common interpretations and their
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distinct behaviours, especially since very large or non-integer numbers make
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it easy to cause silent data corruption due to floating-point imprecision.
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We encourage libraries to carefully document which interpretation they implement.
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### MinLen, MaxLen, Len
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`Len()` implies that `min_length <= len(value) <= max_length` - lower and upper bounds are inclusive.
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As well as `Len()` which can optionally include upper and lower bounds, we also
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provide `MinLen(x)` and `MaxLen(y)` which are equivalent to `Len(min_length=x)`
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and `Len(max_length=y)` respectively.
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`Len`, `MinLen`, and `MaxLen` may be used with any type which supports `len(value)`.
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Examples of usage:
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* `Annotated[list, MaxLen(10)]` (or `Annotated[list, Len(max_length=10))`) - list must have a length of 10 or less
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* `Annotated[str, MaxLen(10)]` - string must have a length of 10 or less
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* `Annotated[list, MinLen(3))` (or `Annotated[list, Len(min_length=3))`) - list must have a length of 3 or more
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* `Annotated[list, Len(4, 6)]` - list must have a length of 4, 5, or 6
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* `Annotated[list, Len(8, 8)]` - list must have a length of exactly 8
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#### Changed in v0.4.0
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* `min_inclusive` has been renamed to `min_length`, no change in meaning
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* `max_exclusive` has been renamed to `max_length`, upper bound is now **inclusive** instead of **exclusive**
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* The recommendation that slices are interpreted as `Len` has been removed due to ambiguity and different semantic
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meaning of the upper bound in slices vs. `Len`
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See [issue #23](https://github.com/annotated-types/annotated-types/issues/23) for discussion.
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### Timezone
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`Timezone` can be used with a `datetime` or a `time` to express which timezones
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are allowed. `Annotated[datetime, Timezone(None)]` must be a naive datetime.
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`Timezone[...]` ([literal ellipsis](https://docs.python.org/3/library/constants.html#Ellipsis))
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expresses that any timezone-aware datetime is allowed. You may also pass a specific
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timezone string or [`tzinfo`](https://docs.python.org/3/library/datetime.html#tzinfo-objects)
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object such as `Timezone(timezone.utc)` or `Timezone("Africa/Abidjan")` to express that you only
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allow a specific timezone, though we note that this is often a symptom of fragile design.
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#### Changed in v0.x.x
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* `Timezone` accepts [`tzinfo`](https://docs.python.org/3/library/datetime.html#tzinfo-objects) objects instead of
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`timezone`, extending compatibility to [`zoneinfo`](https://docs.python.org/3/library/zoneinfo.html) and third party libraries.
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### Unit
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`Unit(unit: str)` expresses that the annotated numeric value is the magnitude of
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a quantity with the specified unit. For example, `Annotated[float, Unit("m/s")]`
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would be a float representing a velocity in meters per second.
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Please note that `annotated_types` itself makes no attempt to parse or validate
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the unit string in any way. That is left entirely to downstream libraries,
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such as [`pint`](https://pint.readthedocs.io) or
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[`astropy.units`](https://docs.astropy.org/en/stable/units/).
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An example of how a library might use this metadata:
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```python
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from annotated_types import Unit
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from typing import Annotated, TypeVar, Callable, Any, get_origin, get_args
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# given a type annotated with a unit:
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Meters = Annotated[float, Unit("m")]
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# you can cast the annotation to a specific unit type with any
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# callable that accepts a string and returns the desired type
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T = TypeVar("T")
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def cast_unit(tp: Any, unit_cls: Callable[[str], T]) -> T | None:
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if get_origin(tp) is Annotated:
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for arg in get_args(tp):
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if isinstance(arg, Unit):
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return unit_cls(arg.unit)
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return None
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# using `pint`
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import pint
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pint_unit = cast_unit(Meters, pint.Unit)
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# using `astropy.units`
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import astropy.units as u
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astropy_unit = cast_unit(Meters, u.Unit)
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```
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### Predicate
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`Predicate(func: Callable)` expresses that `func(value)` is truthy for valid values.
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Users should prefer the statically inspectable metadata above, but if you need
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the full power and flexibility of arbitrary runtime predicates... here it is.
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For some common constraints, we provide generic types:
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* `IsLower = Annotated[T, Predicate(str.islower)]`
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* `IsUpper = Annotated[T, Predicate(str.isupper)]`
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* `IsDigit = Annotated[T, Predicate(str.isdigit)]`
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* `IsFinite = Annotated[T, Predicate(math.isfinite)]`
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* `IsNotFinite = Annotated[T, Predicate(Not(math.isfinite))]`
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* `IsNan = Annotated[T, Predicate(math.isnan)]`
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* `IsNotNan = Annotated[T, Predicate(Not(math.isnan))]`
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* `IsInfinite = Annotated[T, Predicate(math.isinf)]`
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* `IsNotInfinite = Annotated[T, Predicate(Not(math.isinf))]`
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so that you can write e.g. `x: IsFinite[float] = 2.0` instead of the longer
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(but exactly equivalent) `x: Annotated[float, Predicate(math.isfinite)] = 2.0`.
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Some libraries might have special logic to handle known or understandable predicates,
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for example by checking for `str.isdigit` and using its presence to both call custom
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logic to enforce digit-only strings, and customise some generated external schema.
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Users are therefore encouraged to avoid indirection like `lambda s: s.lower()`, in
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favor of introspectable methods such as `str.lower` or `re.compile("pattern").search`.
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To enable basic negation of commonly used predicates like `math.isnan` without introducing introspection that makes it impossible for implementers to introspect the predicate we provide a `Not` wrapper that simply negates the predicate in an introspectable manner. Several of the predicates listed above are created in this manner.
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We do not specify what behaviour should be expected for predicates that raise
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an exception. For example `Annotated[int, Predicate(str.isdigit)]` might silently
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skip invalid constraints, or statically raise an error; or it might try calling it
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and then propagate or discard the resulting
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`TypeError: descriptor 'isdigit' for 'str' objects doesn't apply to a 'int' object`
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exception. We encourage libraries to document the behaviour they choose.
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### Doc
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`doc()` can be used to add documentation information in `Annotated`, for function and method parameters, variables, class attributes, return types, and any place where `Annotated` can be used.
|
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It expects a value that can be statically analyzed, as the main use case is for static analysis, editors, documentation generators, and similar tools.
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It returns a `DocInfo` class with a single attribute `documentation` containing the value passed to `doc()`.
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This is the early adopter's alternative form of the [`typing-doc` proposal](https://github.com/tiangolo/fastapi/blob/typing-doc/typing_doc.md).
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### Integrating downstream types with `GroupedMetadata`
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Implementers may choose to provide a convenience wrapper that groups multiple pieces of metadata.
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This can help reduce verbosity and cognitive overhead for users.
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For example, an implementer like Pydantic might provide a `Field` or `Meta` type that accepts keyword arguments and transforms these into low-level metadata:
|
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|
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|
```python
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|
from dataclasses import dataclass
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|
from typing import Iterator
|
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|
from annotated_types import GroupedMetadata, Ge
|
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|
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@dataclass
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class Field(GroupedMetadata):
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ge: int | None = None
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description: str | None = None
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def __iter__(self) -> Iterator[object]:
|
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|
# Iterating over a GroupedMetadata object should yield annotated-types
|
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# constraint metadata objects which describe it as fully as possible,
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# and may include other unknown objects too.
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if self.ge is not None:
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yield Ge(self.ge)
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|
if self.description is not None:
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|
yield Description(self.description)
|
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|
```
|
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|
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|
Libraries consuming annotated-types constraints should check for `GroupedMetadata` and unpack it by iterating over the object and treating the results as if they had been "unpacked" in the `Annotated` type. The same logic should be applied to the [PEP 646 `Unpack` type](https://peps.python.org/pep-0646/), so that `Annotated[T, Field(...)]`, `Annotated[T, Unpack[Field(...)]]` and `Annotated[T, *Field(...)]` are all treated consistently.
|
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|
|
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|
Libraries consuming annotated-types should also ignore any metadata they do not recongize that came from unpacking a `GroupedMetadata`, just like they ignore unrecognized metadata in `Annotated` itself.
|
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|
|
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|
Our own `annotated_types.Interval` class is a `GroupedMetadata` which unpacks itself into `Gt`, `Lt`, etc., so this is not an abstract concern. Similarly, `annotated_types.Len` is a `GroupedMetadata` which unpacks itself into `MinLen` (optionally) and `MaxLen`.
|
||||||
|
|
||||||
|
### Consuming metadata
|
||||||
|
|
||||||
|
We intend to not be prescriptive as to _how_ the metadata and constraints are used, but as an example of how one might parse constraints from types annotations see our [implementation in `test_main.py`](https://github.com/annotated-types/annotated-types/blob/f59cf6d1b5255a0fe359b93896759a180bec30ae/tests/test_main.py#L94-L103).
|
||||||
|
|
||||||
|
It is up to the implementer to determine how this metadata is used.
|
||||||
|
You could use the metadata for runtime type checking, for generating schemas or to generate example data, amongst other use cases.
|
||||||
|
|
||||||
|
## Design & History
|
||||||
|
|
||||||
|
This package was designed at the PyCon 2022 sprints by the maintainers of Pydantic
|
||||||
|
and Hypothesis, with the goal of making it as easy as possible for end-users to
|
||||||
|
provide more informative annotations for use by runtime libraries.
|
||||||
|
|
||||||
|
It is deliberately minimal, and following PEP-593 allows considerable downstream
|
||||||
|
discretion in what (if anything!) they choose to support. Nonetheless, we expect
|
||||||
|
that staying simple and covering _only_ the most common use-cases will give users
|
||||||
|
and maintainers the best experience we can. If you'd like more constraints for your
|
||||||
|
types - follow our lead, by defining them and documenting them downstream!
|
||||||
@@ -0,0 +1,10 @@
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|
annotated_types-0.7.0.dist-info/INSTALLER,sha256=zuuue4knoyJ-UwPPXg8fezS7VCrXJQrAP7zeNuwvFQg,4
|
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|
annotated_types-0.7.0.dist-info/METADATA,sha256=7ltqxksJJ0wCYFGBNIQCWTlWQGeAH0hRFdnK3CB895E,15046
|
||||||
|
annotated_types-0.7.0.dist-info/RECORD,,
|
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|
annotated_types-0.7.0.dist-info/WHEEL,sha256=zEMcRr9Kr03x1ozGwg5v9NQBKn3kndp6LSoSlVg-jhU,87
|
||||||
|
annotated_types-0.7.0.dist-info/licenses/LICENSE,sha256=_hBJiEsaDZNCkB6I4H8ykl0ksxIdmXK2poBfuYJLCV0,1083
|
||||||
|
annotated_types/__init__.py,sha256=RynLsRKUEGI0KimXydlD1fZEfEzWwDo0Uon3zOKhG1Q,13819
|
||||||
|
annotated_types/__pycache__/__init__.cpython-314.pyc,,
|
||||||
|
annotated_types/__pycache__/test_cases.cpython-314.pyc,,
|
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|
annotated_types/py.typed,sha256=47DEQpj8HBSa-_TImW-5JCeuQeRkm5NMpJWZG3hSuFU,0
|
||||||
|
annotated_types/test_cases.py,sha256=zHFX6EpcMbGJ8FzBYDbO56bPwx_DYIVSKbZM-4B3_lg,6421
|
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@@ -0,0 +1,4 @@
|
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|
Wheel-Version: 1.0
|
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|
Generator: hatchling 1.24.2
|
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|
Root-Is-Purelib: true
|
||||||
|
Tag: py3-none-any
|
||||||
Reference in New Issue
Block a user