132 lines
4.3 KiB
Python
132 lines
4.3 KiB
Python
from collections import namedtuple
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from typing import TYPE_CHECKING, Iterator, List, Tuple
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import numpy as np
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from pandas._typing import ArrayLike
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if TYPE_CHECKING:
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from pandas.core.internals.blocks import Block
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from pandas.core.internals.managers import BlockManager
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BlockPairInfo = namedtuple(
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"BlockPairInfo", ["lvals", "rvals", "locs", "left_ea", "right_ea", "rblk"]
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)
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def _iter_block_pairs(
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left: "BlockManager", right: "BlockManager"
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) -> Iterator[BlockPairInfo]:
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# At this point we have already checked the parent DataFrames for
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# assert rframe._indexed_same(lframe)
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for n, blk in enumerate(left.blocks):
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locs = blk.mgr_locs
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blk_vals = blk.values
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left_ea = not isinstance(blk_vals, np.ndarray)
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rblks = right._slice_take_blocks_ax0(locs.indexer, only_slice=True)
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# Assertions are disabled for performance, but should hold:
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# if left_ea:
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# assert len(locs) == 1, locs
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# assert len(rblks) == 1, rblks
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# assert rblks[0].shape[0] == 1, rblks[0].shape
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for k, rblk in enumerate(rblks):
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right_ea = not isinstance(rblk.values, np.ndarray)
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lvals, rvals = _get_same_shape_values(blk, rblk, left_ea, right_ea)
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info = BlockPairInfo(lvals, rvals, locs, left_ea, right_ea, rblk)
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yield info
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def operate_blockwise(
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left: "BlockManager", right: "BlockManager", array_op
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) -> "BlockManager":
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# At this point we have already checked the parent DataFrames for
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# assert rframe._indexed_same(lframe)
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res_blks: List["Block"] = []
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for lvals, rvals, locs, left_ea, right_ea, rblk in _iter_block_pairs(left, right):
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res_values = array_op(lvals, rvals)
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if left_ea and not right_ea and hasattr(res_values, "reshape"):
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res_values = res_values.reshape(1, -1)
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nbs = rblk._split_op_result(res_values)
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# Assertions are disabled for performance, but should hold:
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# if right_ea or left_ea:
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# assert len(nbs) == 1
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# else:
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# assert res_values.shape == lvals.shape, (res_values.shape, lvals.shape)
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_reset_block_mgr_locs(nbs, locs)
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res_blks.extend(nbs)
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# Assertions are disabled for performance, but should hold:
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# slocs = {y for nb in res_blks for y in nb.mgr_locs.as_array}
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# nlocs = sum(len(nb.mgr_locs.as_array) for nb in res_blks)
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# assert nlocs == len(left.items), (nlocs, len(left.items))
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# assert len(slocs) == nlocs, (len(slocs), nlocs)
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# assert slocs == set(range(nlocs)), slocs
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new_mgr = type(right)(res_blks, axes=right.axes, do_integrity_check=False)
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return new_mgr
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def _reset_block_mgr_locs(nbs: List["Block"], locs):
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"""
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Reset mgr_locs to correspond to our original DataFrame.
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"""
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for nb in nbs:
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nblocs = locs.as_array[nb.mgr_locs.indexer]
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nb.mgr_locs = nblocs
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# Assertions are disabled for performance, but should hold:
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# assert len(nblocs) == nb.shape[0], (len(nblocs), nb.shape)
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# assert all(x in locs.as_array for x in nb.mgr_locs.as_array)
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def _get_same_shape_values(
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lblk: "Block", rblk: "Block", left_ea: bool, right_ea: bool
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) -> Tuple[ArrayLike, ArrayLike]:
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"""
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Slice lblk.values to align with rblk. Squeeze if we have EAs.
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"""
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lvals = lblk.values
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rvals = rblk.values
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# Require that the indexing into lvals be slice-like
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assert rblk.mgr_locs.is_slice_like, rblk.mgr_locs
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# TODO(EA2D): with 2D EAs only this first clause would be needed
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if not (left_ea or right_ea):
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lvals = lvals[rblk.mgr_locs.indexer, :]
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assert lvals.shape == rvals.shape, (lvals.shape, rvals.shape)
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elif left_ea and right_ea:
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assert lvals.shape == rvals.shape, (lvals.shape, rvals.shape)
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elif right_ea:
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# lvals are 2D, rvals are 1D
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lvals = lvals[rblk.mgr_locs.indexer, :]
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assert lvals.shape[0] == 1, lvals.shape
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lvals = lvals[0, :]
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else:
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# lvals are 1D, rvals are 2D
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assert rvals.shape[0] == 1, rvals.shape
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rvals = rvals[0, :]
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return lvals, rvals
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def blockwise_all(left: "BlockManager", right: "BlockManager", op) -> bool:
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"""
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Blockwise `all` reduction.
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"""
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for info in _iter_block_pairs(left, right):
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res = op(info.lvals, info.rvals)
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if not res:
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return False
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return True
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