为按另一个列值分组的列值计算 pandas 数据框中的共现
Compute co-occurences in pandas dataframe for column values grouped by another column values
问题
我在 Python 3.7.7 上使用 Pandas。我想计算按另一个变量的值 y 分组的变量 x 的分类值之间的互信息。我的数据如下所示 table:
+-----+-----+
| x | y |
+-----+-----+
| x_1 | y_1 |
| x_2 | y_1 |
| x_3 | y_1 |
| x_1 | y_2 |
| x_2 | y_2 |
| x_4 | y_3 |
| x_6 | y_3 |
| x_9 | y_3 |
| x_1 | y_4 |
| ... | ... |
+-----+-----+
我想要一个存储co-给定特定 y_k 值 的 (x_i, x_j) 对出现。事实上,这会很棒,例如,轻松计算 PMI:
+-----+-----+--------+-------+
| x_i | x_j | cooc | pmi |
+-----+-----+--------+-------+
| x_1 | x_2 | | |
| x_1 | x_3 | | |
| x_1 | x_4 | | |
| x_1 | x_5 | | |
| ... | ... | ... | ... |
+-----+-----+--------+-------+
有什么suitable内存高效的方法吗?
旁注:我正在使用相当大的数据(40k 不同的 x 值和 8k 不同的 y 值,总共 300k(x,y) 条目,因此内存友好和优化的方法会很棒(可能依赖第三方库,如 Dask)
更新
非优化方案
我想出了一个使用 pd.crosstab 的解决方案。我在这里提供一个小例子:
import numpy as np
import pandas as pd
df = pd.DataFrame(np.random.randint(0,100,size=(100, 2)), columns=list('xy'))
"""
df:
+-----+-----+
| x | y |
+-----+-----+
| 4 | 99 |
| 1 | 39 |
| 39 | 56 |
| .. | .. |
| 59 | 20 |
| 82 | 57 |
+-----+-----+
100 rows × 2 columns
"""
# Compute cross tabulation:
crosstab = pd.crosstab(df["x"], df["y"])
"""
crosstab:
+------+-----+-----+-----+-----+
| y | 0 | 2 | 3 | ... |
| x +-----+-----+-----+-----+
| 1 | 0 | 0 | 0 | ... |
| 2 | 0 | 0 | 0 | ... |
| ... | ... | ... | ... | ... |
+------+-----+-----+-----+-----+
62 rows × 69 columns
"""
# Initialize a pandas MultiIndex Series storing PMI values
import itertools
x_pairs = list(itertools.combinations(crosstab.index, 2))
pmi = pd.Series(0, index = pd.MultiIndex.from_tuples(x_pairs))
"""
pmi:
+-------------+-----+
| index | val |
+------+------| |
| x_i | x_j | |
+------+------+-----+
| 1 | 2 | 0 |
| | 4 | 0 |
| ... | ... | ... |
| 95 | 98 | 0 |
| | 99 | 0 |
| 96 | 98 | 0 |
+------+------+-----+
Length: 1891, dtype: int64
"""
然后,我用来填充系列的循环结构如下:
for x1, x2 in x_pairs:
pmi.loc[x1, x2] = crosstab.loc[[x1, x2]].min().sum() / (crosstab.loc[x1].sum() * crosstab.loc[x2].sum())
这不是一个可选的解决方案,即使在小用例中也表现不佳。
优化方案
最后,我设法使用 scipy 稀疏矩阵进行中间计算,以内存友好的方式计算交叉事件:
import pandas as pd
import numpy as np
from scipy.sparse import csr_matrix
def df_compute_cooccurrences(df: pd.DataFrame, column1: str, column2: str) -> pd.DataFrame:
# pd.factorize encode the object as an enumerated type or categorical variable, returning:
# - `codes` (ndarray): an integer ndarray that’s an indexer into `uniques`.
# - `uniques` (ndarray, Index, or Categorical): the unique valid values
# see more at https://pandas.pydata.org/pandas-docs/stable/reference/api/pandas.factorize.html
i, rows = pd.factorize(df[column1])
# i -> array([ 0, 0, 0, ..., 449054, 0, 1])
# rows -> Index(['column1_label1', 'column1_label2', ...])
j, cols = pd.factorize(df[column2])
# j -> array([ 0, 1, 2, ..., 28544, -1, -1])
# cols -> Float64Index([column2_label1, column2_label2, ...])
ij, tups = pd.factorize(list(zip(i, j)))
# ij -> array([ 0, 1, 2, ..., 2878026, 2878027, 2878028])
# tups -> array([(0, 0), (0, 1), (0, 2), ..., (449054, 28544), (0, -1), (1, -1)]
# Then we can finally compute the crosstabulation matrix
crosstab = csr_matrix((np.bincount(ij), tuple(zip(*tups))))
# If we convert directly this into a Dataframe with
# pd.DataFrame.sparse.from_spmatrix(crosstab, rows, cols)
# we have the same result as using
# https://pandas.pydata.org/pandas-docs/stable/reference/api/pandas.crosstab.html
# but we obtained it in a memory-friendly way (allowing big data processing)
# In order to obtain the co-occurrences matrix for column 1,
# we have to multiply the crosstab matrix for its transposed
coocc = crosstab.dot(crosstab.transpose())
# Then we can finally return the co-occurence matrix in in a DataFrame form
return pd.DataFrame.sparse.from_spmatrix(coocc, rows, rows)
这里提供一个小例子:
import pandas as pd
import numpy as np
from scipy.sparse import csr_matrix
def df_compute_cooccurrences(df: pd.DataFrame, column1: str, column2: str) -> pd.DataFrame:
i, rows = pd.factorize(df[column1])
j, cols = pd.factorize(df[column2])
ij, tups = pd.factorize(list(zip(i, j)))
crosstab = csr_matrix((np.bincount(ij), tuple(zip(*tups))))
coocc = crosstab.dot(crosstab.transpose())
return pd.DataFrame.sparse.from_spmatrix(coocc, rows, rows)
df = pd.DataFrame(zip([1,1,1,2,2,3,4],["a","a","a","a","a","b","b"]), columns=list('xy'))
"""
df:
+-----+-----+
¦ x ¦ y ¦
+-----+-----+
| 1 | a |
| 1 | a |
| 1 | a |
| 2 | a |
| 2 | a |
| 3 | b |
| 4 | b |
+-----+-----+
"""
cooc_df = df_compute_cooccurrences(df, "x", "y")
"""
cooc_df:
+---+---+---+---+
¦ 1 | 2 | 3 | 4 |
+---+---+---+---+---+
¦ 1 ¦ 9 | 6 | 0 | 0 |
¦ 2 ¦ 6 | 4 | 0 | 0 |
¦ 3 ¦ 0 | 0 | 1 | 1 |
¦ 4 ¦ 0 | 0 | 1 | 1 |
+---+---+---+---+---+
"""
cooc_df2 = df_compute_cooccurrences(df, "y", "x")
"""
cooc_df2:
+----+----+
¦ a ¦ b ¦
+---+----+----+
¦ a ¦ 13 | 0 |
¦ b ¦ 0 | 2 |
+---+----+----+
"""
问题
我在 Python 3.7.7 上使用 Pandas。我想计算按另一个变量的值 y 分组的变量 x 的分类值之间的互信息。我的数据如下所示 table:
+-----+-----+
| x | y |
+-----+-----+
| x_1 | y_1 |
| x_2 | y_1 |
| x_3 | y_1 |
| x_1 | y_2 |
| x_2 | y_2 |
| x_4 | y_3 |
| x_6 | y_3 |
| x_9 | y_3 |
| x_1 | y_4 |
| ... | ... |
+-----+-----+
我想要一个存储co-给定特定 y_k 值 的 (x_i, x_j) 对出现。事实上,这会很棒,例如,轻松计算 PMI:
+-----+-----+--------+-------+
| x_i | x_j | cooc | pmi |
+-----+-----+--------+-------+
| x_1 | x_2 | | |
| x_1 | x_3 | | |
| x_1 | x_4 | | |
| x_1 | x_5 | | |
| ... | ... | ... | ... |
+-----+-----+--------+-------+
有什么suitable内存高效的方法吗?
旁注:我正在使用相当大的数据(40k 不同的 x 值和 8k 不同的 y 值,总共 300k(x,y) 条目,因此内存友好和优化的方法会很棒(可能依赖第三方库,如 Dask)
更新
非优化方案
我想出了一个使用 pd.crosstab 的解决方案。我在这里提供一个小例子:
import numpy as np
import pandas as pd
df = pd.DataFrame(np.random.randint(0,100,size=(100, 2)), columns=list('xy'))
"""
df:
+-----+-----+
| x | y |
+-----+-----+
| 4 | 99 |
| 1 | 39 |
| 39 | 56 |
| .. | .. |
| 59 | 20 |
| 82 | 57 |
+-----+-----+
100 rows × 2 columns
"""
# Compute cross tabulation:
crosstab = pd.crosstab(df["x"], df["y"])
"""
crosstab:
+------+-----+-----+-----+-----+
| y | 0 | 2 | 3 | ... |
| x +-----+-----+-----+-----+
| 1 | 0 | 0 | 0 | ... |
| 2 | 0 | 0 | 0 | ... |
| ... | ... | ... | ... | ... |
+------+-----+-----+-----+-----+
62 rows × 69 columns
"""
# Initialize a pandas MultiIndex Series storing PMI values
import itertools
x_pairs = list(itertools.combinations(crosstab.index, 2))
pmi = pd.Series(0, index = pd.MultiIndex.from_tuples(x_pairs))
"""
pmi:
+-------------+-----+
| index | val |
+------+------| |
| x_i | x_j | |
+------+------+-----+
| 1 | 2 | 0 |
| | 4 | 0 |
| ... | ... | ... |
| 95 | 98 | 0 |
| | 99 | 0 |
| 96 | 98 | 0 |
+------+------+-----+
Length: 1891, dtype: int64
"""
然后,我用来填充系列的循环结构如下:
for x1, x2 in x_pairs:
pmi.loc[x1, x2] = crosstab.loc[[x1, x2]].min().sum() / (crosstab.loc[x1].sum() * crosstab.loc[x2].sum())
这不是一个可选的解决方案,即使在小用例中也表现不佳。
优化方案
最后,我设法使用 scipy 稀疏矩阵进行中间计算,以内存友好的方式计算交叉事件:
import pandas as pd
import numpy as np
from scipy.sparse import csr_matrix
def df_compute_cooccurrences(df: pd.DataFrame, column1: str, column2: str) -> pd.DataFrame:
# pd.factorize encode the object as an enumerated type or categorical variable, returning:
# - `codes` (ndarray): an integer ndarray that’s an indexer into `uniques`.
# - `uniques` (ndarray, Index, or Categorical): the unique valid values
# see more at https://pandas.pydata.org/pandas-docs/stable/reference/api/pandas.factorize.html
i, rows = pd.factorize(df[column1])
# i -> array([ 0, 0, 0, ..., 449054, 0, 1])
# rows -> Index(['column1_label1', 'column1_label2', ...])
j, cols = pd.factorize(df[column2])
# j -> array([ 0, 1, 2, ..., 28544, -1, -1])
# cols -> Float64Index([column2_label1, column2_label2, ...])
ij, tups = pd.factorize(list(zip(i, j)))
# ij -> array([ 0, 1, 2, ..., 2878026, 2878027, 2878028])
# tups -> array([(0, 0), (0, 1), (0, 2), ..., (449054, 28544), (0, -1), (1, -1)]
# Then we can finally compute the crosstabulation matrix
crosstab = csr_matrix((np.bincount(ij), tuple(zip(*tups))))
# If we convert directly this into a Dataframe with
# pd.DataFrame.sparse.from_spmatrix(crosstab, rows, cols)
# we have the same result as using
# https://pandas.pydata.org/pandas-docs/stable/reference/api/pandas.crosstab.html
# but we obtained it in a memory-friendly way (allowing big data processing)
# In order to obtain the co-occurrences matrix for column 1,
# we have to multiply the crosstab matrix for its transposed
coocc = crosstab.dot(crosstab.transpose())
# Then we can finally return the co-occurence matrix in in a DataFrame form
return pd.DataFrame.sparse.from_spmatrix(coocc, rows, rows)
这里提供一个小例子:
import pandas as pd
import numpy as np
from scipy.sparse import csr_matrix
def df_compute_cooccurrences(df: pd.DataFrame, column1: str, column2: str) -> pd.DataFrame:
i, rows = pd.factorize(df[column1])
j, cols = pd.factorize(df[column2])
ij, tups = pd.factorize(list(zip(i, j)))
crosstab = csr_matrix((np.bincount(ij), tuple(zip(*tups))))
coocc = crosstab.dot(crosstab.transpose())
return pd.DataFrame.sparse.from_spmatrix(coocc, rows, rows)
df = pd.DataFrame(zip([1,1,1,2,2,3,4],["a","a","a","a","a","b","b"]), columns=list('xy'))
"""
df:
+-----+-----+
¦ x ¦ y ¦
+-----+-----+
| 1 | a |
| 1 | a |
| 1 | a |
| 2 | a |
| 2 | a |
| 3 | b |
| 4 | b |
+-----+-----+
"""
cooc_df = df_compute_cooccurrences(df, "x", "y")
"""
cooc_df:
+---+---+---+---+
¦ 1 | 2 | 3 | 4 |
+---+---+---+---+---+
¦ 1 ¦ 9 | 6 | 0 | 0 |
¦ 2 ¦ 6 | 4 | 0 | 0 |
¦ 3 ¦ 0 | 0 | 1 | 1 |
¦ 4 ¦ 0 | 0 | 1 | 1 |
+---+---+---+---+---+
"""
cooc_df2 = df_compute_cooccurrences(df, "y", "x")
"""
cooc_df2:
+----+----+
¦ a ¦ b ¦
+---+----+----+
¦ a ¦ 13 | 0 |
¦ b ¦ 0 | 2 |
+---+----+----+
"""