问题:从条目长度不同的字典创建数据框
假设我有一本包含10个键值对的字典。每个条目包含一个numpy数组。但是,所有数组的长度都不相同。
如何创建每个列包含不同条目的数据框?
当我尝试:
pd.DataFrame(my_dict)
我得到:
ValueError: arrays must all be the same length
有什么办法可以克服吗?我很高兴Pandas使用NaN这些列来填充较短的条目。
Say I have a dictionary with 10 key-value pairs. Each entry holds a numpy array. However, the length of the array is not the same for all of them.
How can I create a dataframe where each column holds a different entry?
When I try:
pd.DataFrame(my_dict)
I get:
ValueError: arrays must all be the same length
Any way to overcome this? I am happy to have Pandas use NaN to pad those columns for the shorter entries.
回答 0
在Python 3.x中:
In [6]: d = dict( A = np.array([1,2]), B = np.array([1,2,3,4]) )
In [7]: pd.DataFrame(dict([ (k,pd.Series(v)) for k,v in d.items() ]))
Out[7]:
A B
0 1 1
1 2 2
2 NaN 3
3 NaN 4
在Python 2.x中:
替换d.items()为d.iteritems()。
In Python 3.x:
import pandas as pd
import numpy as np
d = dict( A = np.array([1,2]), B = np.array([1,2,3,4]) )
pd.DataFrame(dict([ (k,pd.Series(v)) for k,v in d.items() ]))
Out[7]:
A B
0 1 1
1 2 2
2 NaN 3
3 NaN 4
In Python 2.x:
replace d.items() with d.iteritems().
回答 1
这是一种简单的方法:
In[20]: my_dict = dict( A = np.array([1,2]), B = np.array([1,2,3,4]) )
In[21]: df = pd.DataFrame.from_dict(my_dict, orient='index')
In[22]: df
Out[22]:
0 1 2 3
A 1 2 NaN NaN
B 1 2 3 4
In[23]: df.transpose()
Out[23]:
A B
0 1 1
1 2 2
2 NaN 3
3 NaN 4
Here’s a simple way to do that:
In[20]: my_dict = dict( A = np.array([1,2]), B = np.array([1,2,3,4]) )
In[21]: df = pd.DataFrame.from_dict(my_dict, orient='index')
In[22]: df
Out[22]:
0 1 2 3
A 1 2 NaN NaN
B 1 2 3 4
In[23]: df.transpose()
Out[23]:
A B
0 1 1
1 2 2
2 NaN 3
3 NaN 4
回答 2
下面是一种整理语法但仍能与其他答案进行相同操作的方法:
>>> mydict = {'one': [1,2,3], 2: [4,5,6,7], 3: 8}
>>> dict_df = pd.DataFrame({ key:pd.Series(value) for key, value in mydict.items() })
>>> dict_df
one 2 3
0 1.0 4 8.0
1 2.0 5 NaN
2 3.0 6 NaN
3 NaN 7 NaN
列表也有类似的语法:
>>> mylist = [ [1,2,3], [4,5], 6 ]
>>> list_df = pd.DataFrame([ pd.Series(value) for value in mylist ])
>>> list_df
0 1 2
0 1.0 2.0 3.0
1 4.0 5.0 NaN
2 6.0 NaN NaN
列表的另一种语法是:
>>> mylist = [ [1,2,3], [4,5], 6 ]
>>> list_df = pd.DataFrame({ i:pd.Series(value) for i, value in enumerate(mylist) })
>>> list_df
0 1 2
0 1 4.0 6.0
1 2 5.0 NaN
2 3 NaN NaN
您可能还必须转置结果和/或更改列数据类型(浮点数,整数等)。
A way of tidying up your syntax, but still do essentially the same thing as these other answers, is below:
>>> mydict = {'one': [1,2,3], 2: [4,5,6,7], 3: 8}
>>> dict_df = pd.DataFrame({ key:pd.Series(value) for key, value in mydict.items() })
>>> dict_df
one 2 3
0 1.0 4 8.0
1 2.0 5 NaN
2 3.0 6 NaN
3 NaN 7 NaN
A similar syntax exists for lists, too:
>>> mylist = [ [1,2,3], [4,5], 6 ]
>>> list_df = pd.DataFrame([ pd.Series(value) for value in mylist ])
>>> list_df
0 1 2
0 1.0 2.0 3.0
1 4.0 5.0 NaN
2 6.0 NaN NaN
Another syntax for lists is:
>>> mylist = [ [1,2,3], [4,5], 6 ]
>>> list_df = pd.DataFrame({ i:pd.Series(value) for i, value in enumerate(mylist) })
>>> list_df
0 1 2
0 1 4.0 6.0
1 2 5.0 NaN
2 3 NaN NaN
You may additionally have to transpose the result and/or change the column data types (float, integer, etc).
回答 3
虽然这不能直接回答OP的问题。当我有不相等的数组并且我想分享的时候,我发现这是一个很好的解决方案:
从熊猫文档
In [31]: d = {'one' : Series([1., 2., 3.], index=['a', 'b', 'c']),
....: 'two' : Series([1., 2., 3., 4.], index=['a', 'b', 'c', 'd'])}
....:
In [32]: df = DataFrame(d)
In [33]: df
Out[33]:
one two
a 1 1
b 2 2
c 3 3
d NaN 4
While this does not directly answer the OP’s question. I found this to be an excellent solution for my case when I had unequal arrays and I’d like to share:
from pandas documentation
In [31]: d = {'one' : Series([1., 2., 3.], index=['a', 'b', 'c']),
....: 'two' : Series([1., 2., 3., 4.], index=['a', 'b', 'c', 'd'])}
....:
In [32]: df = DataFrame(d)
In [33]: df
Out[33]:
one two
a 1 1
b 2 2
c 3 3
d NaN 4
回答 4
您还可以将其与对象列表pd.concat一起axis=1使用pd.Series:
import pandas as pd, numpy as np
d = {'A': np.array([1,2]), 'B': np.array([1,2,3,4])}
res = pd.concat([pd.Series(v, name=k) for k, v in d.items()], axis=1)
print(res)
A B
0 1.0 1
1 2.0 2
2 NaN 3
3 NaN 4
You can also use pd.concat along axis=1 with a list of pd.Series objects:
import pandas as pd, numpy as np
d = {'A': np.array([1,2]), 'B': np.array([1,2,3,4])}
res = pd.concat([pd.Series(v, name=k) for k, v in d.items()], axis=1)
print(res)
A B
0 1.0 1
1 2.0 2
2 NaN 3
3 NaN 4
回答 5
以下两行均能完美运行:
pd.DataFrame.from_dict(df, orient='index').transpose() #A
pd.DataFrame(dict([ (k,pd.Series(v)) for k,v in df.items() ])) #B (Better)
但是在Jupyter上使用%timeit时,B与A的速度之比为4倍,这在使用庞大的数据集(主要是具有大量列/功能)时尤其令人印象深刻。
Both the following lines work perfectly :
pd.DataFrame.from_dict(df, orient='index').transpose() #A
pd.DataFrame(dict([ (k,pd.Series(v)) for k,v in df.items() ])) #B (Better)
But with %timeit on Jupyter, I’ve got a ratio of 4x speed for B vs A, which is quite impressive especially when working with a huge data set (mainly with a big number of columns/features).
回答 6
如果您不想显示它,NaN并且有两个特定的长度,则在每个剩余的单元格中添加一个“空格”也可以。
import pandas
long = [6, 4, 7, 3]
short = [5, 6]
for n in range(len(long) - len(short)):
short.append(' ')
df = pd.DataFrame({'A':long, 'B':short}]
# Make sure Excel file exists in the working directory
datatoexcel = pd.ExcelWriter('example1.xlsx',engine = 'xlsxwriter')
df.to_excel(datatoexcel,sheet_name = 'Sheet1')
datatoexcel.save()
A B
0 6 5
1 4 6
2 7
3 3
如果条目长度超过2个,建议您制作一个使用类似方法的函数。
If you don’t want it to show NaN and you have two particular lengths, adding a ‘space’ in each remaining cell would also work.
import pandas
long = [6, 4, 7, 3]
short = [5, 6]
for n in range(len(long) - len(short)):
short.append(' ')
df = pd.DataFrame({'A':long, 'B':short}]
# Make sure Excel file exists in the working directory
datatoexcel = pd.ExcelWriter('example1.xlsx',engine = 'xlsxwriter')
df.to_excel(datatoexcel,sheet_name = 'Sheet1')
datatoexcel.save()
A B
0 6 5
1 4 6
2 7
3 3
If you have more than 2 lengths of entries, it is advisable to make a function which uses a similar method.
回答 7
pd.DataFrame([my_dict])会做!
pd.DataFrame([my_dict]) will do!
