我想稍微改变一下Wes给出的答案,因为版本0.16.2要求as_index=False。如果你不设置它,你会得到一个空的数据框架。
来源:
Aggregation functions will not return the groups that you are aggregating over if they are named columns, when as_index=True, the default. The grouped columns will be the indices of the returned object.
Passing as_index=False will return the groups that you are aggregating over, if they are named columns.
Aggregating functions are ones that reduce the dimension of the returned objects, for example: mean, sum, size, count, std, var, sem, describe, first, last, nth, min, max. This is what happens when you do for example DataFrame.sum() and get back a Series.
nth can act as a reducer or a filter, see here.
import pandas as pd
df1 = pd.DataFrame({"Name":["Alice", "Bob", "Mallory", "Mallory", "Bob" , "Mallory"],
"City":["Seattle","Seattle","Portland","Seattle","Seattle","Portland"]})
print df1
#
# City Name
#0 Seattle Alice
#1 Seattle Bob
#2 Portland Mallory
#3 Seattle Mallory
#4 Seattle Bob
#5 Portland Mallory
#
g1 = df1.groupby(["Name", "City"], as_index=False).count()
print g1
#
# City Name
#Name City
#Alice Seattle 1 1
#Bob Seattle 2 2
#Mallory Portland 2 2
# Seattle 1 1
#
编辑:
在0.17.1及以后版本中,你可以在count中使用子集,在reset_index中使用参数名的size:
print df1.groupby(["Name", "City"], as_index=False ).count()
#IndexError: list index out of range
print df1.groupby(["Name", "City"]).count()
#Empty DataFrame
#Columns: []
#Index: [(Alice, Seattle), (Bob, Seattle), (Mallory, Portland), (Mallory, Seattle)]
print df1.groupby(["Name", "City"])[['Name','City']].count()
# Name City
#Name City
#Alice Seattle 1 1
#Bob Seattle 2 2
#Mallory Portland 2 2
# Seattle 1 1
print df1.groupby(["Name", "City"]).size().reset_index(name='count')
# Name City count
#0 Alice Seattle 1
#1 Bob Seattle 2
#2 Mallory Portland 2
#3 Mallory Seattle 1
count和size的区别在于,size计算NaN值,而count不计算NaN值。
