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'I need to create a new column selecting concrete information from an existing column. In this case, I want to create a new column called 'name' selecting only the names from the 'id_name' column.

import pandas as pd
df = {'id': [234235, 543, 34234],
      'id_name': ['234235nombre: Paco_ID','543nombre: Lucia_ID','34234nombre:Marta_ID'],
      'age': [35, 29, 40]}
df= pd.DataFrame(df)
df

     id          id_name           age
0   234235  234235nombre: Paco_ID   35
1   543     543nombre: Lucia_ID     29
2   34234   34234nombre:Marta_ID    40


df['name'] = df['id_name'].find("nombre: ")+8:df[id_name].find("_ID")

  File "<ipython-input-34-4e5aa874634b>", line 1
     df['name'] = (df[id_name].find("nombre: ")+8):(df[id_name].find("_ID"))
                                             ^
SyntaxError: invalid syntax

I expect as output the following table:

     id          id_name           age   name
0   234235  234235nombre: Paco_ID   35   Paco
1   543     543nombre: Lucia_ID     29   Lucia
2   34234   34234nombre:Marta_ID    40   Marta

SOLVED!!!!!! (thanks rommy):

df['name']=df.id_name.str.split(':').str[1].str.split('_').str[0]

I ALSO NEED AN ALTERNATIVE FOR INTEGERS. Does anyone know how can I create a new column called 'new_hour' extracting the hours from the column 'time' with the following new input?

Input:

import pandas as pd
df = {'time': ['[{"hour":"00:00","postCount":"12"...','[{"nexthour":"05:00","postCount":"3"...'],
   'age': [35, 29]}
df= pd.DataFrame(df)

Actual output:

                   time                     age
0   [{"hour":"00:00","postCount":"12"...     35
1   [{"nexthour":"05:00","postCount":"3"...  29

The code should be something like this but it doesn't work:

df['new_hour'] = df.time.str.split('"hour":').str[1].str.split('"').str[0]
df.head()

Desired output:

                   time                     age  new_hour
0   [{"hour":"00:00","postCount":"12"...     35   00:00
1   [{"nexthour":"05:00","postCount":"3"...  29   05:00
4
  • df[id_name]... did you mean df['id_name']? – wwii Jul 10 '19 at 19:10
  • The SyntaxError is due to the colon between the two find statements. To use the find method use series.str.find() - String handling (in the documentation) – wwii Jul 10 '19 at 19:18
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    Please don't continually morph the question as problems get solved. If someone solved the problem, accept their answer. If there are other problems, ask another question. this isn't a Tutorial or discussion forum. Welcome to SO, please take the time to read How to Ask and the other links found on that page. What should I do when someone answers my question?. – wwii Jul 10 '19 at 21:04
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    I ALSO NEED AN ALTERNATIVE FOR INTEGERS - the rule on stack overflow is one question per post. If your original question is answered correctly, please accept the correct answer, and ask a new question. – dbc Jul 10 '19 at 21:07
1

Try this:

df['name']=df.id_name.str.split(':').str[1].str.split('_').str[0]
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  • 3
    Please help fighting the misconception that StackOverflow is a free code writing service, by augmenting your code-only answer with some explanation. Also, have a look here for help to get your posts more readable: stackoverflow.com/editing-help – Yunnosch Jul 10 '19 at 19:22
  • Thanks! Can you look at the new edit to help me solve another related issue, please? – crisu Jul 10 '19 at 20:47
  • This should work , df['new_hour']=df.time.str.split('":').str[1].str.split(',').str[0].str.replace('"','') – rommy Jul 10 '19 at 21:07
  • The solution you propose is not completely working since you keep the space before the name – Nakor Jul 10 '19 at 22:39
1

I think a regex approach would work better. Something like this:

df['name'] = df['id_name'].str.extract(".*nombre:\s?([A-Z][a-z]+)_ID")
  • .*nombre:\s? matches anything followed by nombre and an optional whitespace
  • [A-Z][a-z]+ matches a word with a capital letter (lowercase after)
  • _ID: ends with _ID

The parentheses specify the part you want to extract.

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