【问题标题】:Pandas extract informations [duplicate]熊猫提取信息[重复]
【发布时间】:2019-01-26 15:30:08
【问题描述】:

这是我的熊猫框架:

       istat    cap               Comune
0       1001  10011               AGLIE'
1       1002  10060              AIRASCA
2       1003  10070         ALA DI STURA

我想重现等效的 SQL 查询:

Select cap
from DataFrame
where Comune = 'AIRASCA'

获取:

cap
10060

我尝试使用dataframe.loc() 来实现这一点,但我无法检索到我需要的东西。

这是我的 Python 代码:

import pandas as pd
from lxml import etree
from pykml import parser

def to_upper(l):
    return l.upper()


kml_file_path = '../Source/Kml_Regions/Lombardia.kml'
excel_file_path = '../Source/Milk_Coverage/Milk_Milan_Coverage.xlsx'
zip_file_path = '../Source/ZipCodes/italy_cap.csv'

# Read zipcode csv
zips = pd.read_csv(zip_file_path)
zip_df = pd.DataFrame(zips, columns=['cap',  'Comune']).set_index('Comune')
zips_dict = zips.apply(lambda x: x.astype(str).str.upper())

# Read excel file for coverage
df = pd.ExcelFile(excel_file_path).parse('Comuni')
x = df['City'].tolist()
cities = list(map(to_upper, x))

#-----------------------------------------------------------------------------------------------#
# Check uncovered
# parse the input file into an object tree
with open(kml_file_path) as f:
  tree = parser.parse(f)

# get a reference to the "Document.Folder" node
uncovered = tree.getroot().Document.Folder

# iterate through all "Document.Folder.Placemark" nodes and find and remove all nodes
# which contain child node "name" with content "ZONE"

for pm in uncovered.Placemark:
        if pm.name in cities:
            parent = pm.getparent()
            parent.remove(pm)
        else:
            pass

# convert the object tree into a string and write it into an output file
with open('../Output/Uncovered_Milkman_LO.kml', 'w') as output:
    output.write(etree.tostring(uncovered, pretty_print=True))

#---------------------------------------------------------------------------------------------#

# Check covered
with open(kml_file_path) as f:
    tree = parser.parse(f)

covered = tree.getroot().Document.Folder

for pmC in covered.Placemark:
        if pmC.name in cities:
            pass
        else:
            parentCovered = pmC.getparent()
            parentCovered.remove(pmC)

# convert the object tree into a string and write it into an output file
with open('../Output/Covered_Milkman_LO.kml', 'w') as outputs:
    outputs.write(etree.tostring(covered, pretty_print=True))

# Writing CAP
with open('../Output/Covered_Milkman_LO.kml', 'r') as f:
    in_file = f.readlines()  # in_file is now a list of lines

# Now we start building our output
out_file = []
cap = ''

#for line in in_file:
#    out_file.append(line)  # copy each line, one by one

# Iterate through dictionary which is a list transforming it in a itemable object
for city in covered.Placemark:
    print zips_dict.loc[city.name, ['Comune']]

我无法理解 python 给我的错误,我做错了什么?从技术上讲,我可以通过在 pandas 中查找值来查找密钥,对吗?


我认为这与可能的重复问题不相似,因为我要求检索单个值而不是列。

【问题讨论】:

    标签: python python-2.7 pandas dataframe data-science


    【解决方案1】:

    ksooklall 的答案应该可以正常工作,但是(除非我记错了)在 pandas 中使用背靠背括号有点失礼 - 它比使用 loc 慢一点,并且在使用具有许多调用的较大数据帧时实际上很重要.

    像这样使用 loc 应该可以正常工作:

     df.loc[df['Comune'] == 'AIRASCA', 'cap']
    

    【讨论】:

    • 太棒了!这似乎工作得很好!
    【解决方案2】:

    您可以使用eq

    例如:

    import pandas as pd
    
    df = pd.DataFrame({"istat": [1001, 1002, 1003], "cap": [10011, 10060, 10070 ], "Comune": ['AGLIE', 'AIRASCA', 'ALA DI STURA']})
    print( df.loc[df["Comune"].eq('AIRASCA'), "cap"] )
    

    输出:

    1    10060
    Name: cap, dtype: int64
    

    【讨论】:

      【解决方案3】:

      试试这个:

      cap = df[df['Comune'] == 'AIRASCA']['cap']
      

      【讨论】:

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