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263 lines
7.5 KiB
263 lines
7.5 KiB
"""
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Support pre-0.12 series pickle compatibility.
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"""
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from __future__ import annotations
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import contextlib
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import copy
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import io
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import pickle as pkl
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from typing import TYPE_CHECKING
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import numpy as np
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from pandas._libs.arrays import NDArrayBacked
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from pandas._libs.tslibs import BaseOffset
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from pandas import Index
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from pandas.core.arrays import (
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DatetimeArray,
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PeriodArray,
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TimedeltaArray,
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)
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from pandas.core.internals import BlockManager
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if TYPE_CHECKING:
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from collections.abc import Generator
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def load_reduce(self) -> None:
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stack = self.stack
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args = stack.pop()
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func = stack[-1]
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try:
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stack[-1] = func(*args)
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return
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except TypeError as err:
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# If we have a deprecated function,
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# try to replace and try again.
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msg = "_reconstruct: First argument must be a sub-type of ndarray"
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if msg in str(err):
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try:
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cls = args[0]
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stack[-1] = object.__new__(cls)
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return
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except TypeError:
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pass
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elif args and isinstance(args[0], type) and issubclass(args[0], BaseOffset):
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# TypeError: object.__new__(Day) is not safe, use Day.__new__()
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cls = args[0]
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stack[-1] = cls.__new__(*args)
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return
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elif args and issubclass(args[0], PeriodArray):
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cls = args[0]
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stack[-1] = NDArrayBacked.__new__(*args)
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return
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raise
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# If classes are moved, provide compat here.
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_class_locations_map = {
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("pandas.core.sparse.array", "SparseArray"): ("pandas.core.arrays", "SparseArray"),
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# 15477
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("pandas.core.base", "FrozenNDArray"): ("numpy", "ndarray"),
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# Re-routing unpickle block logic to go through _unpickle_block instead
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# for pandas <= 1.3.5
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("pandas.core.internals.blocks", "new_block"): (
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"pandas._libs.internals",
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"_unpickle_block",
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),
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("pandas.core.indexes.frozen", "FrozenNDArray"): ("numpy", "ndarray"),
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("pandas.core.base", "FrozenList"): ("pandas.core.indexes.frozen", "FrozenList"),
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# 10890
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("pandas.core.series", "TimeSeries"): ("pandas.core.series", "Series"),
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("pandas.sparse.series", "SparseTimeSeries"): (
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"pandas.core.sparse.series",
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"SparseSeries",
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),
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# 12588, extensions moving
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("pandas._sparse", "BlockIndex"): ("pandas._libs.sparse", "BlockIndex"),
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("pandas.tslib", "Timestamp"): ("pandas._libs.tslib", "Timestamp"),
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# 18543 moving period
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("pandas._period", "Period"): ("pandas._libs.tslibs.period", "Period"),
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("pandas._libs.period", "Period"): ("pandas._libs.tslibs.period", "Period"),
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# 18014 moved __nat_unpickle from _libs.tslib-->_libs.tslibs.nattype
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("pandas.tslib", "__nat_unpickle"): (
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"pandas._libs.tslibs.nattype",
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"__nat_unpickle",
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),
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("pandas._libs.tslib", "__nat_unpickle"): (
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"pandas._libs.tslibs.nattype",
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"__nat_unpickle",
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),
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# 15998 top-level dirs moving
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("pandas.sparse.array", "SparseArray"): (
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"pandas.core.arrays.sparse",
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"SparseArray",
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),
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("pandas.indexes.base", "_new_Index"): ("pandas.core.indexes.base", "_new_Index"),
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("pandas.indexes.base", "Index"): ("pandas.core.indexes.base", "Index"),
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("pandas.indexes.numeric", "Int64Index"): (
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"pandas.core.indexes.base",
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"Index", # updated in 50775
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),
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("pandas.indexes.range", "RangeIndex"): ("pandas.core.indexes.range", "RangeIndex"),
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("pandas.indexes.multi", "MultiIndex"): ("pandas.core.indexes.multi", "MultiIndex"),
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("pandas.tseries.index", "_new_DatetimeIndex"): (
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"pandas.core.indexes.datetimes",
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"_new_DatetimeIndex",
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),
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("pandas.tseries.index", "DatetimeIndex"): (
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"pandas.core.indexes.datetimes",
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"DatetimeIndex",
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),
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("pandas.tseries.period", "PeriodIndex"): (
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"pandas.core.indexes.period",
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"PeriodIndex",
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),
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# 19269, arrays moving
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("pandas.core.categorical", "Categorical"): ("pandas.core.arrays", "Categorical"),
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# 19939, add timedeltaindex, float64index compat from 15998 move
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("pandas.tseries.tdi", "TimedeltaIndex"): (
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"pandas.core.indexes.timedeltas",
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"TimedeltaIndex",
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),
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("pandas.indexes.numeric", "Float64Index"): (
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"pandas.core.indexes.base",
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"Index", # updated in 50775
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),
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# 50775, remove Int64Index, UInt64Index & Float64Index from codabase
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("pandas.core.indexes.numeric", "Int64Index"): (
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"pandas.core.indexes.base",
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"Index",
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),
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("pandas.core.indexes.numeric", "UInt64Index"): (
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"pandas.core.indexes.base",
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"Index",
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),
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("pandas.core.indexes.numeric", "Float64Index"): (
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"pandas.core.indexes.base",
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"Index",
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),
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("pandas.core.arrays.sparse.dtype", "SparseDtype"): (
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"pandas.core.dtypes.dtypes",
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"SparseDtype",
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),
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}
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# our Unpickler sub-class to override methods and some dispatcher
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# functions for compat and uses a non-public class of the pickle module.
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class Unpickler(pkl._Unpickler):
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def find_class(self, module, name):
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# override superclass
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key = (module, name)
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module, name = _class_locations_map.get(key, key)
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return super().find_class(module, name)
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Unpickler.dispatch = copy.copy(Unpickler.dispatch)
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Unpickler.dispatch[pkl.REDUCE[0]] = load_reduce
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def load_newobj(self) -> None:
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args = self.stack.pop()
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cls = self.stack[-1]
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# compat
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if issubclass(cls, Index):
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obj = object.__new__(cls)
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elif issubclass(cls, DatetimeArray) and not args:
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arr = np.array([], dtype="M8[ns]")
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obj = cls.__new__(cls, arr, arr.dtype)
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elif issubclass(cls, TimedeltaArray) and not args:
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arr = np.array([], dtype="m8[ns]")
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obj = cls.__new__(cls, arr, arr.dtype)
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elif cls is BlockManager and not args:
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obj = cls.__new__(cls, (), [], False)
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else:
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obj = cls.__new__(cls, *args)
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self.stack[-1] = obj
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Unpickler.dispatch[pkl.NEWOBJ[0]] = load_newobj
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def load_newobj_ex(self) -> None:
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kwargs = self.stack.pop()
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args = self.stack.pop()
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cls = self.stack.pop()
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# compat
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if issubclass(cls, Index):
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obj = object.__new__(cls)
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else:
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obj = cls.__new__(cls, *args, **kwargs)
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self.append(obj)
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try:
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Unpickler.dispatch[pkl.NEWOBJ_EX[0]] = load_newobj_ex
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except (AttributeError, KeyError):
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pass
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def load(fh, encoding: str | None = None, is_verbose: bool = False):
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"""
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Load a pickle, with a provided encoding,
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Parameters
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----------
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fh : a filelike object
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encoding : an optional encoding
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is_verbose : show exception output
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"""
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try:
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fh.seek(0)
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if encoding is not None:
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up = Unpickler(fh, encoding=encoding)
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else:
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up = Unpickler(fh)
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# "Unpickler" has no attribute "is_verbose" [attr-defined]
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up.is_verbose = is_verbose # type: ignore[attr-defined]
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return up.load()
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except (ValueError, TypeError):
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raise
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def loads(
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bytes_object: bytes,
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*,
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fix_imports: bool = True,
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encoding: str = "ASCII",
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errors: str = "strict",
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):
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"""
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Analogous to pickle._loads.
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"""
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fd = io.BytesIO(bytes_object)
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return Unpickler(
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fd, fix_imports=fix_imports, encoding=encoding, errors=errors
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).load()
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@contextlib.contextmanager
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def patch_pickle() -> Generator[None, None, None]:
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"""
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Temporarily patch pickle to use our unpickler.
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"""
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orig_loads = pkl.loads
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try:
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setattr(pkl, "loads", loads)
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yield
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finally:
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setattr(pkl, "loads", orig_loads)
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