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How do I apply this code to multiple csv?



The Next CEO of Stack OverflowHow to merge two dictionaries in a single expression?How do I check if a list is empty?How do I check whether a file exists without exceptions?How can I safely create a nested directory in Python?How can I make a time delay in Python?How do I sort a dictionary by value?How to make a chain of function decorators?How to make a flat list out of list of lists?How do I list all files of a directory?Catch multiple exceptions in one line (except block)










0















could anyone advise me how to apply this code to several csv in one folder? Then, save the modified csv to another folder and each separately? In short, I need to automate it.



I need to automatically load the csv file, execute the code, save the newly modified csv file, and then repeat it to the next csv file in the folder.



import pandas as pd
import datetime as dt
import numpy as np
from numpy import nan as Nan

path = "C://Users//Zemi4//Desktop//csv//A-001.csv"

df = pd.read_csv(path,delimiter=";")

df['ta'] = pd.to_numeric(df['ta'])
df['tw'] = pd.to_numeric(df['tw'])

df["time_str"] = [dt.datetime.strptime(d, "%d.%m.%Y %H:%M:%S") for d in df["time"]]
df["time_str"] = [d.date() for d in df["time_str"]]
df["time_str"] = pd.to_datetime(df["time_str"])
df["time_zaokrouhleny"]=df["time_str"]

def analyza(pozadovane_data):

new_list = []

new_df = pd.DataFrame(new_list)

new_df=df.loc[df["time_str"] == pozadovane_data,["ta","tw", "zone", "time_zaokrouhleny"]]

counter = new_df.ta.count()

if counter < 24:
for i in range(counter,24):
new_df.loc[i] = [Nan for n in range(4)]
new_df["ta"]= new_df.ta.fillna(0)
new_df["tw"] = new_df.tw.fillna(0)
new_df["zone"] = new_df.zone.fillna(0)
new_df["time_zaokrouhleny"]=new_df.time_zaokrouhleny.fillna(new_df.time_zaokrouhleny.min())

elif counter > 24:
counter_list = list(range(24,counter))
new_df = new_df.drop(new_df.index[counter_list])

new_df["time_oprava"] = [dt.datetime.combine(d.date(),dt.time(1,0)) for d in new_df["time_zaokrouhleny"]]

s = 0
cas_list = []

for d in new_df["time_oprava"]:
d =d + dt.timedelta(hours=s)
#print(d)
#print(s)
cas_list.append(d)
s = s + 1

se = pd.Series(cas_list)

new_df['time_oprava'] = se.values

new_df['Validace'] = (new_df['ta'] != 0) & (new_df['tw'] != 0)

new_df['Rozdil'] = new_df['ta'] - new_df['tw']

new_df.rename(columns="ta": "Skutecna teplota", "tw": "Pozadovana teplota", "time_oprava": "Cas", "zone": "Mistnost", inplace = True)

new_df.index = new_df['Cas']

return new_df

start = dt.datetime(2010,10,6)
end = dt.datetime(2010,12,27)

date_range = []
date_range = [start + dt.timedelta(days=x) for x in range(0,(end-start).days)]

new_list = []

vysledek_df =pd.DataFrame(new_list)

for d in date_range:
pom = analyza(d)
vysledek_df = vysledek_df.append(pom,ignore_index=True)
vysledek_df.pop('time_zaokrouhleny')
vysledek_df.to_csv('C://Users//Zemi4//Desktop//zpr//A-001.csv', encoding='utf-8', index=False)


The code itself works correctly. Thank you for your advice.










share|improve this question


























    0















    could anyone advise me how to apply this code to several csv in one folder? Then, save the modified csv to another folder and each separately? In short, I need to automate it.



    I need to automatically load the csv file, execute the code, save the newly modified csv file, and then repeat it to the next csv file in the folder.



    import pandas as pd
    import datetime as dt
    import numpy as np
    from numpy import nan as Nan

    path = "C://Users//Zemi4//Desktop//csv//A-001.csv"

    df = pd.read_csv(path,delimiter=";")

    df['ta'] = pd.to_numeric(df['ta'])
    df['tw'] = pd.to_numeric(df['tw'])

    df["time_str"] = [dt.datetime.strptime(d, "%d.%m.%Y %H:%M:%S") for d in df["time"]]
    df["time_str"] = [d.date() for d in df["time_str"]]
    df["time_str"] = pd.to_datetime(df["time_str"])
    df["time_zaokrouhleny"]=df["time_str"]

    def analyza(pozadovane_data):

    new_list = []

    new_df = pd.DataFrame(new_list)

    new_df=df.loc[df["time_str"] == pozadovane_data,["ta","tw", "zone", "time_zaokrouhleny"]]

    counter = new_df.ta.count()

    if counter < 24:
    for i in range(counter,24):
    new_df.loc[i] = [Nan for n in range(4)]
    new_df["ta"]= new_df.ta.fillna(0)
    new_df["tw"] = new_df.tw.fillna(0)
    new_df["zone"] = new_df.zone.fillna(0)
    new_df["time_zaokrouhleny"]=new_df.time_zaokrouhleny.fillna(new_df.time_zaokrouhleny.min())

    elif counter > 24:
    counter_list = list(range(24,counter))
    new_df = new_df.drop(new_df.index[counter_list])

    new_df["time_oprava"] = [dt.datetime.combine(d.date(),dt.time(1,0)) for d in new_df["time_zaokrouhleny"]]

    s = 0
    cas_list = []

    for d in new_df["time_oprava"]:
    d =d + dt.timedelta(hours=s)
    #print(d)
    #print(s)
    cas_list.append(d)
    s = s + 1

    se = pd.Series(cas_list)

    new_df['time_oprava'] = se.values

    new_df['Validace'] = (new_df['ta'] != 0) & (new_df['tw'] != 0)

    new_df['Rozdil'] = new_df['ta'] - new_df['tw']

    new_df.rename(columns="ta": "Skutecna teplota", "tw": "Pozadovana teplota", "time_oprava": "Cas", "zone": "Mistnost", inplace = True)

    new_df.index = new_df['Cas']

    return new_df

    start = dt.datetime(2010,10,6)
    end = dt.datetime(2010,12,27)

    date_range = []
    date_range = [start + dt.timedelta(days=x) for x in range(0,(end-start).days)]

    new_list = []

    vysledek_df =pd.DataFrame(new_list)

    for d in date_range:
    pom = analyza(d)
    vysledek_df = vysledek_df.append(pom,ignore_index=True)
    vysledek_df.pop('time_zaokrouhleny')
    vysledek_df.to_csv('C://Users//Zemi4//Desktop//zpr//A-001.csv', encoding='utf-8', index=False)


    The code itself works correctly. Thank you for your advice.










    share|improve this question
























      0












      0








      0








      could anyone advise me how to apply this code to several csv in one folder? Then, save the modified csv to another folder and each separately? In short, I need to automate it.



      I need to automatically load the csv file, execute the code, save the newly modified csv file, and then repeat it to the next csv file in the folder.



      import pandas as pd
      import datetime as dt
      import numpy as np
      from numpy import nan as Nan

      path = "C://Users//Zemi4//Desktop//csv//A-001.csv"

      df = pd.read_csv(path,delimiter=";")

      df['ta'] = pd.to_numeric(df['ta'])
      df['tw'] = pd.to_numeric(df['tw'])

      df["time_str"] = [dt.datetime.strptime(d, "%d.%m.%Y %H:%M:%S") for d in df["time"]]
      df["time_str"] = [d.date() for d in df["time_str"]]
      df["time_str"] = pd.to_datetime(df["time_str"])
      df["time_zaokrouhleny"]=df["time_str"]

      def analyza(pozadovane_data):

      new_list = []

      new_df = pd.DataFrame(new_list)

      new_df=df.loc[df["time_str"] == pozadovane_data,["ta","tw", "zone", "time_zaokrouhleny"]]

      counter = new_df.ta.count()

      if counter < 24:
      for i in range(counter,24):
      new_df.loc[i] = [Nan for n in range(4)]
      new_df["ta"]= new_df.ta.fillna(0)
      new_df["tw"] = new_df.tw.fillna(0)
      new_df["zone"] = new_df.zone.fillna(0)
      new_df["time_zaokrouhleny"]=new_df.time_zaokrouhleny.fillna(new_df.time_zaokrouhleny.min())

      elif counter > 24:
      counter_list = list(range(24,counter))
      new_df = new_df.drop(new_df.index[counter_list])

      new_df["time_oprava"] = [dt.datetime.combine(d.date(),dt.time(1,0)) for d in new_df["time_zaokrouhleny"]]

      s = 0
      cas_list = []

      for d in new_df["time_oprava"]:
      d =d + dt.timedelta(hours=s)
      #print(d)
      #print(s)
      cas_list.append(d)
      s = s + 1

      se = pd.Series(cas_list)

      new_df['time_oprava'] = se.values

      new_df['Validace'] = (new_df['ta'] != 0) & (new_df['tw'] != 0)

      new_df['Rozdil'] = new_df['ta'] - new_df['tw']

      new_df.rename(columns="ta": "Skutecna teplota", "tw": "Pozadovana teplota", "time_oprava": "Cas", "zone": "Mistnost", inplace = True)

      new_df.index = new_df['Cas']

      return new_df

      start = dt.datetime(2010,10,6)
      end = dt.datetime(2010,12,27)

      date_range = []
      date_range = [start + dt.timedelta(days=x) for x in range(0,(end-start).days)]

      new_list = []

      vysledek_df =pd.DataFrame(new_list)

      for d in date_range:
      pom = analyza(d)
      vysledek_df = vysledek_df.append(pom,ignore_index=True)
      vysledek_df.pop('time_zaokrouhleny')
      vysledek_df.to_csv('C://Users//Zemi4//Desktop//zpr//A-001.csv', encoding='utf-8', index=False)


      The code itself works correctly. Thank you for your advice.










      share|improve this question














      could anyone advise me how to apply this code to several csv in one folder? Then, save the modified csv to another folder and each separately? In short, I need to automate it.



      I need to automatically load the csv file, execute the code, save the newly modified csv file, and then repeat it to the next csv file in the folder.



      import pandas as pd
      import datetime as dt
      import numpy as np
      from numpy import nan as Nan

      path = "C://Users//Zemi4//Desktop//csv//A-001.csv"

      df = pd.read_csv(path,delimiter=";")

      df['ta'] = pd.to_numeric(df['ta'])
      df['tw'] = pd.to_numeric(df['tw'])

      df["time_str"] = [dt.datetime.strptime(d, "%d.%m.%Y %H:%M:%S") for d in df["time"]]
      df["time_str"] = [d.date() for d in df["time_str"]]
      df["time_str"] = pd.to_datetime(df["time_str"])
      df["time_zaokrouhleny"]=df["time_str"]

      def analyza(pozadovane_data):

      new_list = []

      new_df = pd.DataFrame(new_list)

      new_df=df.loc[df["time_str"] == pozadovane_data,["ta","tw", "zone", "time_zaokrouhleny"]]

      counter = new_df.ta.count()

      if counter < 24:
      for i in range(counter,24):
      new_df.loc[i] = [Nan for n in range(4)]
      new_df["ta"]= new_df.ta.fillna(0)
      new_df["tw"] = new_df.tw.fillna(0)
      new_df["zone"] = new_df.zone.fillna(0)
      new_df["time_zaokrouhleny"]=new_df.time_zaokrouhleny.fillna(new_df.time_zaokrouhleny.min())

      elif counter > 24:
      counter_list = list(range(24,counter))
      new_df = new_df.drop(new_df.index[counter_list])

      new_df["time_oprava"] = [dt.datetime.combine(d.date(),dt.time(1,0)) for d in new_df["time_zaokrouhleny"]]

      s = 0
      cas_list = []

      for d in new_df["time_oprava"]:
      d =d + dt.timedelta(hours=s)
      #print(d)
      #print(s)
      cas_list.append(d)
      s = s + 1

      se = pd.Series(cas_list)

      new_df['time_oprava'] = se.values

      new_df['Validace'] = (new_df['ta'] != 0) & (new_df['tw'] != 0)

      new_df['Rozdil'] = new_df['ta'] - new_df['tw']

      new_df.rename(columns="ta": "Skutecna teplota", "tw": "Pozadovana teplota", "time_oprava": "Cas", "zone": "Mistnost", inplace = True)

      new_df.index = new_df['Cas']

      return new_df

      start = dt.datetime(2010,10,6)
      end = dt.datetime(2010,12,27)

      date_range = []
      date_range = [start + dt.timedelta(days=x) for x in range(0,(end-start).days)]

      new_list = []

      vysledek_df =pd.DataFrame(new_list)

      for d in date_range:
      pom = analyza(d)
      vysledek_df = vysledek_df.append(pom,ignore_index=True)
      vysledek_df.pop('time_zaokrouhleny')
      vysledek_df.to_csv('C://Users//Zemi4//Desktop//zpr//A-001.csv', encoding='utf-8', index=False)


      The code itself works correctly. Thank you for your advice.







      python pandas






      share|improve this question













      share|improve this question











      share|improve this question




      share|improve this question










      asked Mar 7 at 14:02









      MartinMartin

      13




      13






















          3 Answers
          3






          active

          oldest

          votes


















          0














          Simplest way is to use glob. Just give the folder_path and output_path as per your requirements and use the sample code below. I commented the code to help you understand the code.



          import os
          import glob

          folder_path = 'path/to/folder/' # path to folder containing .csv files
          output_path = 'path/to/output/folder/' # path to output folder

          for file in glob.glob(folder_path + '*.csv'): # only loads .csv files from the folder
          df = pd.read_csv(file, delimiter=";") # read .csv file

          # Do something

          df.to_csv(output_path + 'modified_' + str(os.path.basename(file)), encoding='utf-8', index=False) # saves modified .csv file to output_path





          share|improve this answer
































            0














            You want to use os.listdir() to find the contents of the directory, then parameterize the file path in a new function. You can then loop over a list of directories retrieved via os.walk() and run the function for each one.



            import os

            def run(file_directory):

            filelist = os.listdir(file_directory)

            for path in filelist:

            df = pd.read_csv(path,delimiter=";")

            # etc.

            df.to_csv(os.path.join(file_directory, 'output.csv'))


            If you need to create a new directory, you can use os.mkdir(newpath)






            share|improve this answer

























            • And to save it in a new directory, modify the path of the output file.

              – mauve
              Mar 7 at 14:09











            • Added to the end - just use os.path.join to build the new path dynamically.

              – rgk
              Mar 7 at 14:10


















            0














            Can you still advise on how to parameterize the function?






            share|improve this answer























            • What do you mean?

              – Chris Henry
              Mar 9 at 9:30











            Your Answer






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            3 Answers
            3






            active

            oldest

            votes








            3 Answers
            3






            active

            oldest

            votes









            active

            oldest

            votes






            active

            oldest

            votes









            0














            Simplest way is to use glob. Just give the folder_path and output_path as per your requirements and use the sample code below. I commented the code to help you understand the code.



            import os
            import glob

            folder_path = 'path/to/folder/' # path to folder containing .csv files
            output_path = 'path/to/output/folder/' # path to output folder

            for file in glob.glob(folder_path + '*.csv'): # only loads .csv files from the folder
            df = pd.read_csv(file, delimiter=";") # read .csv file

            # Do something

            df.to_csv(output_path + 'modified_' + str(os.path.basename(file)), encoding='utf-8', index=False) # saves modified .csv file to output_path





            share|improve this answer





























              0














              Simplest way is to use glob. Just give the folder_path and output_path as per your requirements and use the sample code below. I commented the code to help you understand the code.



              import os
              import glob

              folder_path = 'path/to/folder/' # path to folder containing .csv files
              output_path = 'path/to/output/folder/' # path to output folder

              for file in glob.glob(folder_path + '*.csv'): # only loads .csv files from the folder
              df = pd.read_csv(file, delimiter=";") # read .csv file

              # Do something

              df.to_csv(output_path + 'modified_' + str(os.path.basename(file)), encoding='utf-8', index=False) # saves modified .csv file to output_path





              share|improve this answer



























                0












                0








                0







                Simplest way is to use glob. Just give the folder_path and output_path as per your requirements and use the sample code below. I commented the code to help you understand the code.



                import os
                import glob

                folder_path = 'path/to/folder/' # path to folder containing .csv files
                output_path = 'path/to/output/folder/' # path to output folder

                for file in glob.glob(folder_path + '*.csv'): # only loads .csv files from the folder
                df = pd.read_csv(file, delimiter=";") # read .csv file

                # Do something

                df.to_csv(output_path + 'modified_' + str(os.path.basename(file)), encoding='utf-8', index=False) # saves modified .csv file to output_path





                share|improve this answer















                Simplest way is to use glob. Just give the folder_path and output_path as per your requirements and use the sample code below. I commented the code to help you understand the code.



                import os
                import glob

                folder_path = 'path/to/folder/' # path to folder containing .csv files
                output_path = 'path/to/output/folder/' # path to output folder

                for file in glob.glob(folder_path + '*.csv'): # only loads .csv files from the folder
                df = pd.read_csv(file, delimiter=";") # read .csv file

                # Do something

                df.to_csv(output_path + 'modified_' + str(os.path.basename(file)), encoding='utf-8', index=False) # saves modified .csv file to output_path






                share|improve this answer














                share|improve this answer



                share|improve this answer








                edited Mar 7 at 14:53

























                answered Mar 7 at 14:32









                Chris HenryChris Henry

                1016




                1016























                    0














                    You want to use os.listdir() to find the contents of the directory, then parameterize the file path in a new function. You can then loop over a list of directories retrieved via os.walk() and run the function for each one.



                    import os

                    def run(file_directory):

                    filelist = os.listdir(file_directory)

                    for path in filelist:

                    df = pd.read_csv(path,delimiter=";")

                    # etc.

                    df.to_csv(os.path.join(file_directory, 'output.csv'))


                    If you need to create a new directory, you can use os.mkdir(newpath)






                    share|improve this answer

























                    • And to save it in a new directory, modify the path of the output file.

                      – mauve
                      Mar 7 at 14:09











                    • Added to the end - just use os.path.join to build the new path dynamically.

                      – rgk
                      Mar 7 at 14:10















                    0














                    You want to use os.listdir() to find the contents of the directory, then parameterize the file path in a new function. You can then loop over a list of directories retrieved via os.walk() and run the function for each one.



                    import os

                    def run(file_directory):

                    filelist = os.listdir(file_directory)

                    for path in filelist:

                    df = pd.read_csv(path,delimiter=";")

                    # etc.

                    df.to_csv(os.path.join(file_directory, 'output.csv'))


                    If you need to create a new directory, you can use os.mkdir(newpath)






                    share|improve this answer

























                    • And to save it in a new directory, modify the path of the output file.

                      – mauve
                      Mar 7 at 14:09











                    • Added to the end - just use os.path.join to build the new path dynamically.

                      – rgk
                      Mar 7 at 14:10













                    0












                    0








                    0







                    You want to use os.listdir() to find the contents of the directory, then parameterize the file path in a new function. You can then loop over a list of directories retrieved via os.walk() and run the function for each one.



                    import os

                    def run(file_directory):

                    filelist = os.listdir(file_directory)

                    for path in filelist:

                    df = pd.read_csv(path,delimiter=";")

                    # etc.

                    df.to_csv(os.path.join(file_directory, 'output.csv'))


                    If you need to create a new directory, you can use os.mkdir(newpath)






                    share|improve this answer















                    You want to use os.listdir() to find the contents of the directory, then parameterize the file path in a new function. You can then loop over a list of directories retrieved via os.walk() and run the function for each one.



                    import os

                    def run(file_directory):

                    filelist = os.listdir(file_directory)

                    for path in filelist:

                    df = pd.read_csv(path,delimiter=";")

                    # etc.

                    df.to_csv(os.path.join(file_directory, 'output.csv'))


                    If you need to create a new directory, you can use os.mkdir(newpath)







                    share|improve this answer














                    share|improve this answer



                    share|improve this answer








                    edited Mar 7 at 14:10

























                    answered Mar 7 at 14:04









                    rgkrgk

                    420510




                    420510












                    • And to save it in a new directory, modify the path of the output file.

                      – mauve
                      Mar 7 at 14:09











                    • Added to the end - just use os.path.join to build the new path dynamically.

                      – rgk
                      Mar 7 at 14:10

















                    • And to save it in a new directory, modify the path of the output file.

                      – mauve
                      Mar 7 at 14:09











                    • Added to the end - just use os.path.join to build the new path dynamically.

                      – rgk
                      Mar 7 at 14:10
















                    And to save it in a new directory, modify the path of the output file.

                    – mauve
                    Mar 7 at 14:09





                    And to save it in a new directory, modify the path of the output file.

                    – mauve
                    Mar 7 at 14:09













                    Added to the end - just use os.path.join to build the new path dynamically.

                    – rgk
                    Mar 7 at 14:10





                    Added to the end - just use os.path.join to build the new path dynamically.

                    – rgk
                    Mar 7 at 14:10











                    0














                    Can you still advise on how to parameterize the function?






                    share|improve this answer























                    • What do you mean?

                      – Chris Henry
                      Mar 9 at 9:30















                    0














                    Can you still advise on how to parameterize the function?






                    share|improve this answer























                    • What do you mean?

                      – Chris Henry
                      Mar 9 at 9:30













                    0












                    0








                    0







                    Can you still advise on how to parameterize the function?






                    share|improve this answer













                    Can you still advise on how to parameterize the function?







                    share|improve this answer












                    share|improve this answer



                    share|improve this answer










                    answered Mar 7 at 15:05









                    MartinMartin

                    13




                    13












                    • What do you mean?

                      – Chris Henry
                      Mar 9 at 9:30

















                    • What do you mean?

                      – Chris Henry
                      Mar 9 at 9:30
















                    What do you mean?

                    – Chris Henry
                    Mar 9 at 9:30





                    What do you mean?

                    – Chris Henry
                    Mar 9 at 9:30

















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