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python - 基于多索引列数据框中的一系列列进行切片

转载 作者:太空宇宙 更新时间:2023-11-04 04:39:18 25 4
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我正在通过执行以下操作创建我的数据框:

months        = [ 'Jan', 'Feb', 'Mar', 'Apr', 'May', 'Jun', 'Jul', 'Aug', 'Sep', 'Oct', 'Nov', 'Dec' ]
monthyAmounts = [ "actual", "budgeted", "difference" ]

income = []
names = []

for x in range( incomeIndex + 1, expensesIndex ):
amounts = [ randint( -1000, 15000 ) for x in range( 0, len( months ) * len( monthyAmounts ) ) ]
income.append( amounts )
names.append( f"name_{x}" )

index = pd.Index( names, name = 'category' )
columns = pd.MultiIndex.from_product( [ months, monthyAmounts ], names = [ 'month', 'type' ] )
incomeDF = pd.DataFrame( income, index = index, columns = columns )

数据框如下所示:(删除了 3 月 - 12 月)

          Jan                            Feb                        ...             
actual budgeted difference actual budgeted difference
name_13 14593 -260 10165 9767 629 10054
name_14 6178 1398 13620 1821 10986 -663
name_15 2432 3279 7545 8196 1052 7386
name_16 9964 13098 10342 5564 4631 7422

我想要的是为每一行切分 1 月至 5 月的差异列。我能做的是通过以下方式对所有月份的差异列进行切片:

incomeDifferenceDF = incomeDF.loc[ :, idx[ :, 'difference' ] ]

这给了我一个看起来像这样的数据框:(删除了 3 月至 12 月)

         Jan        Feb          ....
difference difference
name_13 10165 10054
name_14 13620 -663
name_15 7545 7386
name_16 10342 7422

我试过的是:

incomeDifferenceDF = incomeDF.loc[ :, idx[ 'Jan' : 'May', 'difference' ] ]

但这给了我错误:

UnsortedIndexError: 'MultiIndex slicing requires the index to be lexsorted: slicing on levels [0], lexsort depth 0'

所以,这看起来很接近,但我不确定如何解决这个问题。

我也试过:

incomeDifferenceDF = incomeDF.loc[ :, idx[ ['Jan':'May'], 'difference' ] ]

但这只会产生错误:

SyntaxError: invalid syntax
( Points at ['Jan':'May'] )

执行此操作的最佳方法是什么?

最佳答案

如果需要通过MultiIndex进行选择,需要 bool 掩码:

index    = pd.Index( [1,2,3,4], name = 'category' )
budgetMonths = pd.date_range( "January, 2018", periods = 12, freq = 'BM' )
months = [ 'Jan', 'Feb', 'Mar', 'Apr', 'May', 'Jun',
'Jul', 'Aug', 'Sep', 'Oct', 'Nov', 'Dec' ]
monthyAmounts = [ "actual", "budgeted", "difference" ]
columns = pd.MultiIndex.from_product( [ months, monthyAmounts ], names = [ 'month', 'type' ])
incomeDF = pd.DataFrame( 10, index = index, columns = columns )

#trick for get values between
idx = pd.Series(0,index=months).loc['Jan' : 'May'].index
print (idx)
Index(['Jan', 'Feb', 'Mar', 'Apr', 'May'], dtype='object')

mask1 = incomeDF.columns.get_level_values(0).isin(idx)
mask2 = incomeDF.columns.get_level_values(1) == 'difference'

incomeDifferenceDF = incomeDF.loc[:, mask1 & mask2]
print (incomeDifferenceDF)
month Jan Feb Mar Apr May
type difference difference difference difference difference
category
1 10 10 10 10 10
2 10 10 10 10 10
3 10 10 10 10 10
4 10 10 10 10 10

关于python - 基于多索引列数据框中的一系列列进行切片,我们在Stack Overflow上找到一个类似的问题: https://stackoverflow.com/questions/51012775/

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