Загрузить файлы в «venv/Lib/site-packages/sqlalchemy/ext»
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venv/Lib/site-packages/sqlalchemy/ext/__init__.py
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venv/Lib/site-packages/sqlalchemy/ext/__init__.py
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# ext/__init__.py
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# Copyright (C) 2005-2026 the SQLAlchemy authors and contributors
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# <see AUTHORS file>
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#
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# This module is part of SQLAlchemy and is released under
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# the MIT License: https://www.opensource.org/licenses/mit-license.php
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from .. import util as _sa_util
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_sa_util.preloaded.import_prefix("sqlalchemy.ext")
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venv/Lib/site-packages/sqlalchemy/ext/associationproxy.py
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venv/Lib/site-packages/sqlalchemy/ext/associationproxy.py
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venv/Lib/site-packages/sqlalchemy/ext/automap.py
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venv/Lib/site-packages/sqlalchemy/ext/automap.py
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venv/Lib/site-packages/sqlalchemy/ext/baked.py
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venv/Lib/site-packages/sqlalchemy/ext/baked.py
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# ext/baked.py
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# Copyright (C) 2005-2026 the SQLAlchemy authors and contributors
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# <see AUTHORS file>
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#
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# This module is part of SQLAlchemy and is released under
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# the MIT License: https://www.opensource.org/licenses/mit-license.php
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# mypy: ignore-errors
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"""Baked query extension.
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Provides a creational pattern for the :class:`.query.Query` object which
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allows the fully constructed object, Core select statement, and string
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compiled result to be fully cached.
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"""
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import collections.abc as collections_abc
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import logging
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from .. import exc as sa_exc
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from .. import util
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from ..orm import exc as orm_exc
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from ..orm.query import Query
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from ..orm.session import Session
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from ..sql import func
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from ..sql import literal_column
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from ..sql import util as sql_util
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log = logging.getLogger(__name__)
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class Bakery:
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"""Callable which returns a :class:`.BakedQuery`.
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This object is returned by the class method
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:meth:`.BakedQuery.bakery`. It exists as an object
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so that the "cache" can be easily inspected.
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.. versionadded:: 1.2
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"""
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__slots__ = "cls", "cache"
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def __init__(self, cls_, cache):
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self.cls = cls_
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self.cache = cache
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def __call__(self, initial_fn, *args):
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return self.cls(self.cache, initial_fn, args)
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class BakedQuery:
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"""A builder object for :class:`.query.Query` objects."""
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__slots__ = "steps", "_bakery", "_cache_key", "_spoiled"
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def __init__(self, bakery, initial_fn, args=()):
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self._cache_key = ()
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self._update_cache_key(initial_fn, args)
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self.steps = [initial_fn]
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self._spoiled = False
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self._bakery = bakery
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@classmethod
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def bakery(cls, size=200, _size_alert=None):
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"""Construct a new bakery.
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:return: an instance of :class:`.Bakery`
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"""
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return Bakery(cls, util.LRUCache(size, size_alert=_size_alert))
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def _clone(self):
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b1 = BakedQuery.__new__(BakedQuery)
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b1._cache_key = self._cache_key
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b1.steps = list(self.steps)
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b1._bakery = self._bakery
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b1._spoiled = self._spoiled
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return b1
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def _update_cache_key(self, fn, args=()):
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self._cache_key += (fn.__code__,) + args
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def __iadd__(self, other):
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if isinstance(other, tuple):
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self.add_criteria(*other)
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else:
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self.add_criteria(other)
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return self
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def __add__(self, other):
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if isinstance(other, tuple):
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return self.with_criteria(*other)
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else:
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return self.with_criteria(other)
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def add_criteria(self, fn, *args):
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"""Add a criteria function to this :class:`.BakedQuery`.
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This is equivalent to using the ``+=`` operator to
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modify a :class:`.BakedQuery` in-place.
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"""
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self._update_cache_key(fn, args)
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self.steps.append(fn)
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return self
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def with_criteria(self, fn, *args):
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"""Add a criteria function to a :class:`.BakedQuery` cloned from this
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one.
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This is equivalent to using the ``+`` operator to
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produce a new :class:`.BakedQuery` with modifications.
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"""
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return self._clone().add_criteria(fn, *args)
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def for_session(self, session):
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"""Return a :class:`_baked.Result` object for this
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:class:`.BakedQuery`.
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This is equivalent to calling the :class:`.BakedQuery` as a
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Python callable, e.g. ``result = my_baked_query(session)``.
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"""
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return Result(self, session)
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def __call__(self, session):
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return self.for_session(session)
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def spoil(self, full=False):
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"""Cancel any query caching that will occur on this BakedQuery object.
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The BakedQuery can continue to be used normally, however additional
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creational functions will not be cached; they will be called
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on every invocation.
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This is to support the case where a particular step in constructing
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a baked query disqualifies the query from being cacheable, such
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as a variant that relies upon some uncacheable value.
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:param full: if False, only functions added to this
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:class:`.BakedQuery` object subsequent to the spoil step will be
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non-cached; the state of the :class:`.BakedQuery` up until
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this point will be pulled from the cache. If True, then the
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entire :class:`_query.Query` object is built from scratch each
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time, with all creational functions being called on each
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invocation.
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"""
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if not full and not self._spoiled:
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_spoil_point = self._clone()
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_spoil_point._cache_key += ("_query_only",)
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self.steps = [_spoil_point._retrieve_baked_query]
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self._spoiled = True
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return self
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def _effective_key(self, session):
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"""Return the key that actually goes into the cache dictionary for
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this :class:`.BakedQuery`, taking into account the given
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:class:`.Session`.
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This basically means we also will include the session's query_class,
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as the actual :class:`_query.Query` object is part of what's cached
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and needs to match the type of :class:`_query.Query` that a later
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session will want to use.
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"""
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return self._cache_key + (session._query_cls,)
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def _with_lazyload_options(self, options, effective_path, cache_path=None):
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"""Cloning version of _add_lazyload_options."""
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q = self._clone()
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q._add_lazyload_options(options, effective_path, cache_path=cache_path)
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return q
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def _add_lazyload_options(self, options, effective_path, cache_path=None):
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"""Used by per-state lazy loaders to add options to the
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"lazy load" query from a parent query.
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Creates a cache key based on given load path and query options;
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if a repeatable cache key cannot be generated, the query is
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"spoiled" so that it won't use caching.
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"""
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key = ()
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if not cache_path:
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cache_path = effective_path
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for opt in options:
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if opt._is_legacy_option or opt._is_compile_state:
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ck = opt._generate_cache_key()
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if ck is None:
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self.spoil(full=True)
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else:
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assert not ck[1], (
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"loader options with variable bound parameters "
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"not supported with baked queries. Please "
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"use new-style select() statements for cached "
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"ORM queries."
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)
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key += ck[0]
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self.add_criteria(
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lambda q: q._with_current_path(effective_path).options(*options),
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cache_path.path,
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key,
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)
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def _retrieve_baked_query(self, session):
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query = self._bakery.get(self._effective_key(session), None)
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if query is None:
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query = self._as_query(session)
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self._bakery[self._effective_key(session)] = query.with_session(
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None
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)
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return query.with_session(session)
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def _bake(self, session):
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query = self._as_query(session)
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query.session = None
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# in 1.4, this is where before_compile() event is
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# invoked
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statement = query._statement_20()
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# if the query is not safe to cache, we still do everything as though
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# we did cache it, since the receiver of _bake() assumes subqueryload
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# context was set up, etc.
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#
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# note also we want to cache the statement itself because this
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# allows the statement itself to hold onto its cache key that is
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# used by the Connection, which in itself is more expensive to
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# generate than what BakedQuery was able to provide in 1.3 and prior
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if statement._compile_options._bake_ok:
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self._bakery[self._effective_key(session)] = (
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query,
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statement,
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)
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return query, statement
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def to_query(self, query_or_session):
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"""Return the :class:`_query.Query` object for use as a subquery.
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This method should be used within the lambda callable being used
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to generate a step of an enclosing :class:`.BakedQuery`. The
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parameter should normally be the :class:`_query.Query` object that
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is passed to the lambda::
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sub_bq = self.bakery(lambda s: s.query(User.name))
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sub_bq += lambda q: q.filter(User.id == Address.user_id).correlate(Address)
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main_bq = self.bakery(lambda s: s.query(Address))
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main_bq += lambda q: q.filter(sub_bq.to_query(q).exists())
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In the case where the subquery is used in the first callable against
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a :class:`.Session`, the :class:`.Session` is also accepted::
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sub_bq = self.bakery(lambda s: s.query(User.name))
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sub_bq += lambda q: q.filter(User.id == Address.user_id).correlate(Address)
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main_bq = self.bakery(
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lambda s: s.query(Address.id, sub_bq.to_query(q).scalar_subquery())
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)
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:param query_or_session: a :class:`_query.Query` object or a class
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:class:`.Session` object, that is assumed to be within the context
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of an enclosing :class:`.BakedQuery` callable.
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.. versionadded:: 1.3
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""" # noqa: E501
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if isinstance(query_or_session, Session):
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session = query_or_session
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elif isinstance(query_or_session, Query):
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session = query_or_session.session
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if session is None:
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raise sa_exc.ArgumentError(
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"Given Query needs to be associated with a Session"
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)
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else:
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raise TypeError(
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"Query or Session object expected, got %r."
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% type(query_or_session)
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)
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return self._as_query(session)
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def _as_query(self, session):
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query = self.steps[0](session)
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for step in self.steps[1:]:
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query = step(query)
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return query
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class Result:
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"""Invokes a :class:`.BakedQuery` against a :class:`.Session`.
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The :class:`_baked.Result` object is where the actual :class:`.query.Query`
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object gets created, or retrieved from the cache,
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against a target :class:`.Session`, and is then invoked for results.
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"""
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__slots__ = "bq", "session", "_params", "_post_criteria"
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def __init__(self, bq, session):
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self.bq = bq
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self.session = session
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self._params = {}
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self._post_criteria = []
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def params(self, *args, **kw):
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"""Specify parameters to be replaced into the string SQL statement."""
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if len(args) == 1:
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kw.update(args[0])
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elif len(args) > 0:
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raise sa_exc.ArgumentError(
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"params() takes zero or one positional argument, "
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"which is a dictionary."
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)
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self._params.update(kw)
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return self
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def _using_post_criteria(self, fns):
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if fns:
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self._post_criteria.extend(fns)
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return self
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def with_post_criteria(self, fn):
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"""Add a criteria function that will be applied post-cache.
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This adds a function that will be run against the
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:class:`_query.Query` object after it is retrieved from the
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cache. This currently includes **only** the
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:meth:`_query.Query.params` and :meth:`_query.Query.execution_options`
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methods.
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.. warning:: :meth:`_baked.Result.with_post_criteria`
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functions are applied
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to the :class:`_query.Query`
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object **after** the query's SQL statement
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object has been retrieved from the cache. Only
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:meth:`_query.Query.params` and
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:meth:`_query.Query.execution_options`
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methods should be used.
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.. versionadded:: 1.2
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"""
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return self._using_post_criteria([fn])
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def _as_query(self):
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q = self.bq._as_query(self.session).params(self._params)
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for fn in self._post_criteria:
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q = fn(q)
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return q
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def __str__(self):
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return str(self._as_query())
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def __iter__(self):
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return self._iter().__iter__()
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def _iter(self):
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bq = self.bq
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if not self.session.enable_baked_queries or bq._spoiled:
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return self._as_query()._iter()
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query, statement = bq._bakery.get(
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bq._effective_key(self.session), (None, None)
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)
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if query is None:
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query, statement = bq._bake(self.session)
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if self._params:
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q = query.params(self._params)
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else:
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q = query
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for fn in self._post_criteria:
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q = fn(q)
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params = q._params
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execution_options = dict(q._execution_options)
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execution_options.update(
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{
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"_sa_orm_load_options": q.load_options,
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"compiled_cache": bq._bakery,
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}
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)
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result = self.session.execute(
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statement, params, execution_options=execution_options
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)
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if result._attributes.get("is_single_entity", False):
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result = result.scalars()
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if result._attributes.get("filtered", False):
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result = result.unique()
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return result
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def count(self):
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"""return the 'count'.
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Equivalent to :meth:`_query.Query.count`.
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||||
|
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Note this uses a subquery to ensure an accurate count regardless
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of the structure of the original statement.
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"""
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col = func.count(literal_column("*"))
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bq = self.bq.with_criteria(lambda q: q._legacy_from_self(col))
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return bq.for_session(self.session).params(self._params).scalar()
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def scalar(self):
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"""Return the first element of the first result or None
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if no rows present. If multiple rows are returned,
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raises MultipleResultsFound.
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Equivalent to :meth:`_query.Query.scalar`.
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||||
"""
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try:
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ret = self.one()
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if not isinstance(ret, collections_abc.Sequence):
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return ret
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||||
return ret[0]
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except orm_exc.NoResultFound:
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return None
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||||
def first(self):
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"""Return the first row.
|
||||
|
||||
Equivalent to :meth:`_query.Query.first`.
|
||||
|
||||
"""
|
||||
|
||||
bq = self.bq.with_criteria(lambda q: q.slice(0, 1))
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||||
return (
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bq.for_session(self.session)
|
||||
.params(self._params)
|
||||
._using_post_criteria(self._post_criteria)
|
||||
._iter()
|
||||
.first()
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||||
)
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||||
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def one(self):
|
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"""Return exactly one result or raise an exception.
|
||||
|
||||
Equivalent to :meth:`_query.Query.one`.
|
||||
|
||||
"""
|
||||
return self._iter().one()
|
||||
|
||||
def one_or_none(self):
|
||||
"""Return one or zero results, or raise an exception for multiple
|
||||
rows.
|
||||
|
||||
Equivalent to :meth:`_query.Query.one_or_none`.
|
||||
|
||||
"""
|
||||
return self._iter().one_or_none()
|
||||
|
||||
def all(self):
|
||||
"""Return all rows.
|
||||
|
||||
Equivalent to :meth:`_query.Query.all`.
|
||||
|
||||
"""
|
||||
return self._iter().all()
|
||||
|
||||
def get(self, ident):
|
||||
"""Retrieve an object based on identity.
|
||||
|
||||
Equivalent to :meth:`_query.Query.get`.
|
||||
|
||||
"""
|
||||
|
||||
query = self.bq.steps[0](self.session)
|
||||
return query._get_impl(ident, self._load_on_pk_identity)
|
||||
|
||||
def _load_on_pk_identity(self, session, query, primary_key_identity, **kw):
|
||||
"""Load the given primary key identity from the database."""
|
||||
|
||||
mapper = query._raw_columns[0]._annotations["parententity"]
|
||||
|
||||
_get_clause, _get_params = mapper._get_clause
|
||||
|
||||
def setup(query):
|
||||
_lcl_get_clause = _get_clause
|
||||
q = query._clone()
|
||||
q._get_condition()
|
||||
q._order_by = None
|
||||
|
||||
# None present in ident - turn those comparisons
|
||||
# into "IS NULL"
|
||||
if None in primary_key_identity:
|
||||
nones = {
|
||||
_get_params[col].key
|
||||
for col, value in zip(
|
||||
mapper.primary_key, primary_key_identity
|
||||
)
|
||||
if value is None
|
||||
}
|
||||
_lcl_get_clause = sql_util.adapt_criterion_to_null(
|
||||
_lcl_get_clause, nones
|
||||
)
|
||||
|
||||
# TODO: can mapper._get_clause be pre-adapted?
|
||||
q._where_criteria = (
|
||||
sql_util._deep_annotate(_lcl_get_clause, {"_orm_adapt": True}),
|
||||
)
|
||||
|
||||
for fn in self._post_criteria:
|
||||
q = fn(q)
|
||||
return q
|
||||
|
||||
# cache the query against a key that includes
|
||||
# which positions in the primary key are NULL
|
||||
# (remember, we can map to an OUTER JOIN)
|
||||
bq = self.bq
|
||||
|
||||
# add the clause we got from mapper._get_clause to the cache
|
||||
# key so that if a race causes multiple calls to _get_clause,
|
||||
# we've cached on ours
|
||||
bq = bq._clone()
|
||||
bq._cache_key += (_get_clause,)
|
||||
|
||||
bq = bq.with_criteria(
|
||||
setup, tuple(elem is None for elem in primary_key_identity)
|
||||
)
|
||||
|
||||
params = {
|
||||
_get_params[primary_key].key: id_val
|
||||
for id_val, primary_key in zip(
|
||||
primary_key_identity, mapper.primary_key
|
||||
)
|
||||
}
|
||||
|
||||
result = list(bq.for_session(self.session).params(**params))
|
||||
l = len(result)
|
||||
if l > 1:
|
||||
raise orm_exc.MultipleResultsFound()
|
||||
elif l:
|
||||
return result[0]
|
||||
else:
|
||||
return None
|
||||
|
||||
|
||||
bakery = BakedQuery.bakery
|
||||
601
venv/Lib/site-packages/sqlalchemy/ext/compiler.py
Normal file
601
venv/Lib/site-packages/sqlalchemy/ext/compiler.py
Normal file
@@ -0,0 +1,601 @@
|
||||
# ext/compiler.py
|
||||
# Copyright (C) 2005-2026 the SQLAlchemy authors and contributors
|
||||
# <see AUTHORS file>
|
||||
#
|
||||
# This module is part of SQLAlchemy and is released under
|
||||
# the MIT License: https://www.opensource.org/licenses/mit-license.php
|
||||
|
||||
r"""Provides an API for creation of custom ClauseElements and compilers.
|
||||
|
||||
Synopsis
|
||||
========
|
||||
|
||||
Usage involves the creation of one or more
|
||||
:class:`~sqlalchemy.sql.expression.ClauseElement` subclasses and one or
|
||||
more callables defining its compilation::
|
||||
|
||||
from sqlalchemy.ext.compiler import compiles
|
||||
from sqlalchemy.sql.expression import ColumnClause
|
||||
|
||||
|
||||
class MyColumn(ColumnClause):
|
||||
inherit_cache = True
|
||||
|
||||
|
||||
@compiles(MyColumn)
|
||||
def compile_mycolumn(element, compiler, **kw):
|
||||
return "[%s]" % element.name
|
||||
|
||||
Above, ``MyColumn`` extends :class:`~sqlalchemy.sql.expression.ColumnClause`,
|
||||
the base expression element for named column objects. The ``compiles``
|
||||
decorator registers itself with the ``MyColumn`` class so that it is invoked
|
||||
when the object is compiled to a string::
|
||||
|
||||
from sqlalchemy import select
|
||||
|
||||
s = select(MyColumn("x"), MyColumn("y"))
|
||||
print(str(s))
|
||||
|
||||
Produces:
|
||||
|
||||
.. sourcecode:: sql
|
||||
|
||||
SELECT [x], [y]
|
||||
|
||||
Dialect-specific compilation rules
|
||||
==================================
|
||||
|
||||
Compilers can also be made dialect-specific. The appropriate compiler will be
|
||||
invoked for the dialect in use::
|
||||
|
||||
from sqlalchemy.schema import DDLElement
|
||||
|
||||
|
||||
class AlterColumn(DDLElement):
|
||||
inherit_cache = False
|
||||
|
||||
def __init__(self, column, cmd):
|
||||
self.column = column
|
||||
self.cmd = cmd
|
||||
|
||||
|
||||
@compiles(AlterColumn)
|
||||
def visit_alter_column(element, compiler, **kw):
|
||||
return "ALTER COLUMN %s ..." % element.column.name
|
||||
|
||||
|
||||
@compiles(AlterColumn, "postgresql")
|
||||
def visit_alter_column(element, compiler, **kw):
|
||||
return "ALTER TABLE %s ALTER COLUMN %s ..." % (
|
||||
element.table.name,
|
||||
element.column.name,
|
||||
)
|
||||
|
||||
The second ``visit_alter_table`` will be invoked when any ``postgresql``
|
||||
dialect is used.
|
||||
|
||||
.. _compilerext_compiling_subelements:
|
||||
|
||||
Compiling sub-elements of a custom expression construct
|
||||
=======================================================
|
||||
|
||||
The ``compiler`` argument is the
|
||||
:class:`~sqlalchemy.engine.interfaces.Compiled` object in use. This object
|
||||
can be inspected for any information about the in-progress compilation,
|
||||
including ``compiler.dialect``, ``compiler.statement`` etc. The
|
||||
:class:`~sqlalchemy.sql.compiler.SQLCompiler` and
|
||||
:class:`~sqlalchemy.sql.compiler.DDLCompiler` both include a ``process()``
|
||||
method which can be used for compilation of embedded attributes::
|
||||
|
||||
from sqlalchemy.sql.expression import Executable, ClauseElement
|
||||
|
||||
|
||||
class InsertFromSelect(Executable, ClauseElement):
|
||||
inherit_cache = False
|
||||
|
||||
def __init__(self, table, select):
|
||||
self.table = table
|
||||
self.select = select
|
||||
|
||||
|
||||
@compiles(InsertFromSelect)
|
||||
def visit_insert_from_select(element, compiler, **kw):
|
||||
return "INSERT INTO %s (%s)" % (
|
||||
compiler.process(element.table, asfrom=True, **kw),
|
||||
compiler.process(element.select, **kw),
|
||||
)
|
||||
|
||||
|
||||
insert = InsertFromSelect(t1, select(t1).where(t1.c.x > 5))
|
||||
print(insert)
|
||||
|
||||
Produces (formatted for readability):
|
||||
|
||||
.. sourcecode:: sql
|
||||
|
||||
INSERT INTO mytable (
|
||||
SELECT mytable.x, mytable.y, mytable.z
|
||||
FROM mytable
|
||||
WHERE mytable.x > :x_1
|
||||
)
|
||||
|
||||
.. note::
|
||||
|
||||
The above ``InsertFromSelect`` construct is only an example, this actual
|
||||
functionality is already available using the
|
||||
:meth:`_expression.Insert.from_select` method.
|
||||
|
||||
|
||||
Cross Compiling between SQL and DDL compilers
|
||||
---------------------------------------------
|
||||
|
||||
SQL and DDL constructs are each compiled using different base compilers -
|
||||
``SQLCompiler`` and ``DDLCompiler``. A common need is to access the
|
||||
compilation rules of SQL expressions from within a DDL expression. The
|
||||
``DDLCompiler`` includes an accessor ``sql_compiler`` for this reason, such as
|
||||
below where we generate a CHECK constraint that embeds a SQL expression::
|
||||
|
||||
@compiles(MyConstraint)
|
||||
def compile_my_constraint(constraint, ddlcompiler, **kw):
|
||||
kw["literal_binds"] = True
|
||||
return "CONSTRAINT %s CHECK (%s)" % (
|
||||
constraint.name,
|
||||
ddlcompiler.sql_compiler.process(constraint.expression, **kw),
|
||||
)
|
||||
|
||||
Above, we add an additional flag to the process step as called by
|
||||
:meth:`.SQLCompiler.process`, which is the ``literal_binds`` flag. This
|
||||
indicates that any SQL expression which refers to a :class:`.BindParameter`
|
||||
object or other "literal" object such as those which refer to strings or
|
||||
integers should be rendered **in-place**, rather than being referred to as
|
||||
a bound parameter; when emitting DDL, bound parameters are typically not
|
||||
supported.
|
||||
|
||||
|
||||
Changing the default compilation of existing constructs
|
||||
=======================================================
|
||||
|
||||
The compiler extension applies just as well to the existing constructs. When
|
||||
overriding the compilation of a built in SQL construct, the @compiles
|
||||
decorator is invoked upon the appropriate class (be sure to use the class,
|
||||
i.e. ``Insert`` or ``Select``, instead of the creation function such
|
||||
as ``insert()`` or ``select()``).
|
||||
|
||||
Within the new compilation function, to get at the "original" compilation
|
||||
routine, use the appropriate visit_XXX method - this
|
||||
because compiler.process() will call upon the overriding routine and cause
|
||||
an endless loop. Such as, to add "prefix" to all insert statements::
|
||||
|
||||
from sqlalchemy.sql.expression import Insert
|
||||
|
||||
|
||||
@compiles(Insert)
|
||||
def prefix_inserts(insert, compiler, **kw):
|
||||
return compiler.visit_insert(insert.prefix_with("some prefix"), **kw)
|
||||
|
||||
The above compiler will prefix all INSERT statements with "some prefix" when
|
||||
compiled.
|
||||
|
||||
.. _type_compilation_extension:
|
||||
|
||||
Changing Compilation of Types
|
||||
=============================
|
||||
|
||||
``compiler`` works for types, too, such as below where we implement the
|
||||
MS-SQL specific 'max' keyword for ``String``/``VARCHAR``::
|
||||
|
||||
@compiles(String, "mssql")
|
||||
@compiles(VARCHAR, "mssql")
|
||||
def compile_varchar(element, compiler, **kw):
|
||||
if element.length == "max":
|
||||
return "VARCHAR('max')"
|
||||
else:
|
||||
return compiler.visit_VARCHAR(element, **kw)
|
||||
|
||||
|
||||
foo = Table("foo", metadata, Column("data", VARCHAR("max")))
|
||||
|
||||
Subclassing Guidelines
|
||||
======================
|
||||
|
||||
A big part of using the compiler extension is subclassing SQLAlchemy
|
||||
expression constructs. To make this easier, the expression and
|
||||
schema packages feature a set of "bases" intended for common tasks.
|
||||
A synopsis is as follows:
|
||||
|
||||
* :class:`~sqlalchemy.sql.expression.ClauseElement` - This is the root
|
||||
expression class. Any SQL expression can be derived from this base, and is
|
||||
probably the best choice for longer constructs such as specialized INSERT
|
||||
statements.
|
||||
|
||||
* :class:`~sqlalchemy.sql.expression.ColumnElement` - The root of all
|
||||
"column-like" elements. Anything that you'd place in the "columns" clause of
|
||||
a SELECT statement (as well as order by and group by) can derive from this -
|
||||
the object will automatically have Python "comparison" behavior.
|
||||
|
||||
:class:`~sqlalchemy.sql.expression.ColumnElement` classes want to have a
|
||||
``type`` member which is expression's return type. This can be established
|
||||
at the instance level in the constructor, or at the class level if its
|
||||
generally constant::
|
||||
|
||||
class timestamp(ColumnElement):
|
||||
type = TIMESTAMP()
|
||||
inherit_cache = True
|
||||
|
||||
* :class:`~sqlalchemy.sql.functions.FunctionElement` - This is a hybrid of a
|
||||
``ColumnElement`` and a "from clause" like object, and represents a SQL
|
||||
function or stored procedure type of call. Since most databases support
|
||||
statements along the line of "SELECT FROM <some function>"
|
||||
``FunctionElement`` adds in the ability to be used in the FROM clause of a
|
||||
``select()`` construct::
|
||||
|
||||
from sqlalchemy.sql.expression import FunctionElement
|
||||
|
||||
|
||||
class coalesce(FunctionElement):
|
||||
name = "coalesce"
|
||||
inherit_cache = True
|
||||
|
||||
|
||||
@compiles(coalesce)
|
||||
def compile(element, compiler, **kw):
|
||||
return "coalesce(%s)" % compiler.process(element.clauses, **kw)
|
||||
|
||||
|
||||
@compiles(coalesce, "oracle")
|
||||
def compile(element, compiler, **kw):
|
||||
if len(element.clauses) > 2:
|
||||
raise TypeError(
|
||||
"coalesce only supports two arguments on " "Oracle Database"
|
||||
)
|
||||
return "nvl(%s)" % compiler.process(element.clauses, **kw)
|
||||
|
||||
* :class:`.ExecutableDDLElement` - The root of all DDL expressions,
|
||||
like CREATE TABLE, ALTER TABLE, etc. Compilation of
|
||||
:class:`.ExecutableDDLElement` subclasses is issued by a
|
||||
:class:`.DDLCompiler` instead of a :class:`.SQLCompiler`.
|
||||
:class:`.ExecutableDDLElement` can also be used as an event hook in
|
||||
conjunction with event hooks like :meth:`.DDLEvents.before_create` and
|
||||
:meth:`.DDLEvents.after_create`, allowing the construct to be invoked
|
||||
automatically during CREATE TABLE and DROP TABLE sequences.
|
||||
|
||||
.. seealso::
|
||||
|
||||
:ref:`metadata_ddl_toplevel` - contains examples of associating
|
||||
:class:`.DDL` objects (which are themselves :class:`.ExecutableDDLElement`
|
||||
instances) with :class:`.DDLEvents` event hooks.
|
||||
|
||||
* :class:`~sqlalchemy.sql.expression.Executable` - This is a mixin which
|
||||
should be used with any expression class that represents a "standalone"
|
||||
SQL statement that can be passed directly to an ``execute()`` method. It
|
||||
is already implicit within ``DDLElement`` and ``FunctionElement``.
|
||||
|
||||
Most of the above constructs also respond to SQL statement caching. A
|
||||
subclassed construct will want to define the caching behavior for the object,
|
||||
which usually means setting the flag ``inherit_cache`` to the value of
|
||||
``False`` or ``True``. See the next section :ref:`compilerext_caching`
|
||||
for background.
|
||||
|
||||
|
||||
.. _compilerext_caching:
|
||||
|
||||
Enabling Caching Support for Custom Constructs
|
||||
==============================================
|
||||
|
||||
SQLAlchemy as of version 1.4 includes a
|
||||
:ref:`SQL compilation caching facility <sql_caching>` which will allow
|
||||
equivalent SQL constructs to cache their stringified form, along with other
|
||||
structural information used to fetch results from the statement.
|
||||
|
||||
For reasons discussed at :ref:`caching_caveats`, the implementation of this
|
||||
caching system takes a conservative approach towards including custom SQL
|
||||
constructs and/or subclasses within the caching system. This includes that
|
||||
any user-defined SQL constructs, including all the examples for this
|
||||
extension, will not participate in caching by default unless they positively
|
||||
assert that they are able to do so. The :attr:`.HasCacheKey.inherit_cache`
|
||||
attribute when set to ``True`` at the class level of a specific subclass
|
||||
will indicate that instances of this class may be safely cached, using the
|
||||
cache key generation scheme of the immediate superclass. This applies
|
||||
for example to the "synopsis" example indicated previously::
|
||||
|
||||
class MyColumn(ColumnClause):
|
||||
inherit_cache = True
|
||||
|
||||
|
||||
@compiles(MyColumn)
|
||||
def compile_mycolumn(element, compiler, **kw):
|
||||
return "[%s]" % element.name
|
||||
|
||||
Above, the ``MyColumn`` class does not include any new state that
|
||||
affects its SQL compilation; the cache key of ``MyColumn`` instances will
|
||||
make use of that of the ``ColumnClause`` superclass, meaning it will take
|
||||
into account the class of the object (``MyColumn``), the string name and
|
||||
datatype of the object::
|
||||
|
||||
>>> MyColumn("some_name", String())._generate_cache_key()
|
||||
CacheKey(
|
||||
key=('0', <class '__main__.MyColumn'>,
|
||||
'name', 'some_name',
|
||||
'type', (<class 'sqlalchemy.sql.sqltypes.String'>,
|
||||
('length', None), ('collation', None))
|
||||
), bindparams=[])
|
||||
|
||||
For objects that are likely to be **used liberally as components within many
|
||||
larger statements**, such as :class:`_schema.Column` subclasses and custom SQL
|
||||
datatypes, it's important that **caching be enabled as much as possible**, as
|
||||
this may otherwise negatively affect performance.
|
||||
|
||||
An example of an object that **does** contain state which affects its SQL
|
||||
compilation is the one illustrated at :ref:`compilerext_compiling_subelements`;
|
||||
this is an "INSERT FROM SELECT" construct that combines together a
|
||||
:class:`_schema.Table` as well as a :class:`_sql.Select` construct, each of
|
||||
which independently affect the SQL string generation of the construct. For
|
||||
this class, the example illustrates that it simply does not participate in
|
||||
caching::
|
||||
|
||||
class InsertFromSelect(Executable, ClauseElement):
|
||||
inherit_cache = False
|
||||
|
||||
def __init__(self, table, select):
|
||||
self.table = table
|
||||
self.select = select
|
||||
|
||||
|
||||
@compiles(InsertFromSelect)
|
||||
def visit_insert_from_select(element, compiler, **kw):
|
||||
return "INSERT INTO %s (%s)" % (
|
||||
compiler.process(element.table, asfrom=True, **kw),
|
||||
compiler.process(element.select, **kw),
|
||||
)
|
||||
|
||||
While it is also possible that the above ``InsertFromSelect`` could be made to
|
||||
produce a cache key that is composed of that of the :class:`_schema.Table` and
|
||||
:class:`_sql.Select` components together, the API for this is not at the moment
|
||||
fully public. However, for an "INSERT FROM SELECT" construct, which is only
|
||||
used by itself for specific operations, caching is not as critical as in the
|
||||
previous example.
|
||||
|
||||
For objects that are **used in relative isolation and are generally
|
||||
standalone**, such as custom :term:`DML` constructs like an "INSERT FROM
|
||||
SELECT", **caching is generally less critical** as the lack of caching for such
|
||||
a construct will have only localized implications for that specific operation.
|
||||
|
||||
|
||||
Further Examples
|
||||
================
|
||||
|
||||
"UTC timestamp" function
|
||||
-------------------------
|
||||
|
||||
A function that works like "CURRENT_TIMESTAMP" except applies the
|
||||
appropriate conversions so that the time is in UTC time. Timestamps are best
|
||||
stored in relational databases as UTC, without time zones. UTC so that your
|
||||
database doesn't think time has gone backwards in the hour when daylight
|
||||
savings ends, without timezones because timezones are like character
|
||||
encodings - they're best applied only at the endpoints of an application
|
||||
(i.e. convert to UTC upon user input, re-apply desired timezone upon display).
|
||||
|
||||
For PostgreSQL and Microsoft SQL Server::
|
||||
|
||||
from sqlalchemy.sql import expression
|
||||
from sqlalchemy.ext.compiler import compiles
|
||||
from sqlalchemy.types import DateTime
|
||||
|
||||
|
||||
class utcnow(expression.FunctionElement):
|
||||
type = DateTime()
|
||||
inherit_cache = True
|
||||
|
||||
|
||||
@compiles(utcnow, "postgresql")
|
||||
def pg_utcnow(element, compiler, **kw):
|
||||
return "TIMEZONE('utc', CURRENT_TIMESTAMP)"
|
||||
|
||||
|
||||
@compiles(utcnow, "mssql")
|
||||
def ms_utcnow(element, compiler, **kw):
|
||||
return "GETUTCDATE()"
|
||||
|
||||
Example usage::
|
||||
|
||||
from sqlalchemy import Table, Column, Integer, String, DateTime, MetaData
|
||||
|
||||
metadata = MetaData()
|
||||
event = Table(
|
||||
"event",
|
||||
metadata,
|
||||
Column("id", Integer, primary_key=True),
|
||||
Column("description", String(50), nullable=False),
|
||||
Column("timestamp", DateTime, server_default=utcnow()),
|
||||
)
|
||||
|
||||
"GREATEST" function
|
||||
-------------------
|
||||
|
||||
The "GREATEST" function is given any number of arguments and returns the one
|
||||
that is of the highest value - its equivalent to Python's ``max``
|
||||
function. A SQL standard version versus a CASE based version which only
|
||||
accommodates two arguments::
|
||||
|
||||
from sqlalchemy.sql import expression, case
|
||||
from sqlalchemy.ext.compiler import compiles
|
||||
from sqlalchemy.types import Numeric
|
||||
|
||||
|
||||
class greatest(expression.FunctionElement):
|
||||
type = Numeric()
|
||||
name = "greatest"
|
||||
inherit_cache = True
|
||||
|
||||
|
||||
@compiles(greatest)
|
||||
def default_greatest(element, compiler, **kw):
|
||||
return compiler.visit_function(element)
|
||||
|
||||
|
||||
@compiles(greatest, "sqlite")
|
||||
@compiles(greatest, "mssql")
|
||||
@compiles(greatest, "oracle")
|
||||
def case_greatest(element, compiler, **kw):
|
||||
arg1, arg2 = list(element.clauses)
|
||||
return compiler.process(case((arg1 > arg2, arg1), else_=arg2), **kw)
|
||||
|
||||
Example usage::
|
||||
|
||||
Session.query(Account).filter(
|
||||
greatest(Account.checking_balance, Account.savings_balance) > 10000
|
||||
)
|
||||
|
||||
"false" expression
|
||||
------------------
|
||||
|
||||
Render a "false" constant expression, rendering as "0" on platforms that
|
||||
don't have a "false" constant::
|
||||
|
||||
from sqlalchemy.sql import expression
|
||||
from sqlalchemy.ext.compiler import compiles
|
||||
|
||||
|
||||
class sql_false(expression.ColumnElement):
|
||||
inherit_cache = True
|
||||
|
||||
|
||||
@compiles(sql_false)
|
||||
def default_false(element, compiler, **kw):
|
||||
return "false"
|
||||
|
||||
|
||||
@compiles(sql_false, "mssql")
|
||||
@compiles(sql_false, "mysql")
|
||||
@compiles(sql_false, "oracle")
|
||||
def int_false(element, compiler, **kw):
|
||||
return "0"
|
||||
|
||||
Example usage::
|
||||
|
||||
from sqlalchemy import select, union_all
|
||||
|
||||
exp = union_all(
|
||||
select(users.c.name, sql_false().label("enrolled")),
|
||||
select(customers.c.name, customers.c.enrolled),
|
||||
)
|
||||
|
||||
"""
|
||||
|
||||
from __future__ import annotations
|
||||
|
||||
from typing import Any
|
||||
from typing import Callable
|
||||
from typing import Dict
|
||||
from typing import Type
|
||||
from typing import TYPE_CHECKING
|
||||
from typing import TypeVar
|
||||
|
||||
from .. import exc
|
||||
from ..sql import sqltypes
|
||||
|
||||
if TYPE_CHECKING:
|
||||
from ..sql.compiler import SQLCompiler
|
||||
|
||||
_F = TypeVar("_F", bound=Callable[..., Any])
|
||||
|
||||
|
||||
def compiles(class_: Type[Any], *specs: str) -> Callable[[_F], _F]:
|
||||
"""Register a function as a compiler for a
|
||||
given :class:`_expression.ClauseElement` type."""
|
||||
|
||||
def decorate(fn: _F) -> _F:
|
||||
# get an existing @compiles handler
|
||||
existing = class_.__dict__.get("_compiler_dispatcher", None)
|
||||
|
||||
# get the original handler. All ClauseElement classes have one
|
||||
# of these, but some TypeEngine classes will not.
|
||||
existing_dispatch = getattr(class_, "_compiler_dispatch", None)
|
||||
|
||||
if not existing:
|
||||
existing = _dispatcher()
|
||||
|
||||
if existing_dispatch:
|
||||
|
||||
def _wrap_existing_dispatch(
|
||||
element: Any, compiler: SQLCompiler, **kw: Any
|
||||
) -> Any:
|
||||
try:
|
||||
return existing_dispatch(element, compiler, **kw)
|
||||
except exc.UnsupportedCompilationError as uce:
|
||||
raise exc.UnsupportedCompilationError(
|
||||
compiler,
|
||||
type(element),
|
||||
message="%s construct has no default "
|
||||
"compilation handler." % type(element),
|
||||
) from uce
|
||||
|
||||
existing.specs["default"] = _wrap_existing_dispatch
|
||||
|
||||
# TODO: why is the lambda needed ?
|
||||
setattr(
|
||||
class_,
|
||||
"_compiler_dispatch",
|
||||
lambda *arg, **kw: existing(*arg, **kw),
|
||||
)
|
||||
setattr(class_, "_compiler_dispatcher", existing)
|
||||
|
||||
if specs:
|
||||
for s in specs:
|
||||
existing.specs[s] = fn
|
||||
|
||||
else:
|
||||
existing.specs["default"] = fn
|
||||
return fn
|
||||
|
||||
return decorate
|
||||
|
||||
|
||||
def deregister(class_: Type[Any]) -> None:
|
||||
"""Remove all custom compilers associated with a given
|
||||
:class:`_expression.ClauseElement` type.
|
||||
|
||||
"""
|
||||
|
||||
if hasattr(class_, "_compiler_dispatcher"):
|
||||
class_._compiler_dispatch = class_._original_compiler_dispatch
|
||||
del class_._compiler_dispatcher
|
||||
|
||||
|
||||
class _dispatcher:
|
||||
def __init__(self) -> None:
|
||||
self.specs: Dict[str, Callable[..., Any]] = {}
|
||||
|
||||
def __call__(self, element: Any, compiler: SQLCompiler, **kw: Any) -> Any:
|
||||
# TODO: yes, this could also switch off of DBAPI in use.
|
||||
fn = self.specs.get(compiler.dialect.name, None)
|
||||
if not fn:
|
||||
try:
|
||||
fn = self.specs["default"]
|
||||
except KeyError as ke:
|
||||
raise exc.UnsupportedCompilationError(
|
||||
compiler,
|
||||
type(element),
|
||||
message="%s construct has no default "
|
||||
"compilation handler." % type(element),
|
||||
) from ke
|
||||
|
||||
# if compilation includes add_to_result_map, collect add_to_result_map
|
||||
# arguments from the user-defined callable, which are probably none
|
||||
# because this is not public API. if it wasn't called, then call it
|
||||
# ourselves.
|
||||
arm = kw.get("add_to_result_map", None)
|
||||
if arm:
|
||||
arm_collection = []
|
||||
kw["add_to_result_map"] = lambda *args: arm_collection.append(args)
|
||||
|
||||
expr = fn(element, compiler, **kw)
|
||||
|
||||
if arm:
|
||||
if not arm_collection:
|
||||
arm_collection.append(
|
||||
(None, None, (element,), sqltypes.NULLTYPE)
|
||||
)
|
||||
for tup in arm_collection:
|
||||
arm(*tup)
|
||||
return expr
|
||||
Reference in New Issue
Block a user