14
variable=";CREATEDBY~string~1~~72~0~0~0~~~0;CREATEDBYNAME~string~1~~800~0~0~0~~~1;CREATEDBYYOMINAME~string~1~~800~0~0~0~~~2;CREATEDON~date~1~yyyy-MM-dd HH:mm:ss.SSS~26~0~0~0~~~3;CREATEDONUTC~date~1~yyyy-MM-dd HH:mm:ss.SSS~26~0~0~0~~~4"

How can I split each value which is between (; and ~)?

The result will be like CREATEDBY,CREATEDBYNAME,CREATEDBYYOMINAME,...

I have tried the below, but it's giving the first occurrence.

variable[variable.find(";")+1:myString.find("~")]

How do I get the list of strings by using the split?

2
  • use split function . mystring.split(';') then mystirng.split('~')
    – Hassan ALi
    Commented Dec 18, 2018 at 8:37
  • 3
    Possible duplicate of How to split a string into a list? Note that the second answer indicates how to specify the delimiter.
    – jpmc26
    Commented Dec 18, 2018 at 18:14

5 Answers 5

21

Using str.split

Ex:

variable=";CREATEDBY~string~1~~72~0~0~0~~~0;CREATEDBYNAME~string~1~~800~0~0~0~~~1;CREATEDBYYOMINAME~string~1~~800~0~0~0~~~2;CREATEDON~date~1~yyyy-MM-dd HH:mm:ss.SSS~26~0~0~0~~~3;CREATEDONUTC~date~1~yyyy-MM-dd HH:mm:ss.SSS~26~0~0~0~~~4"

for i in variable.strip(";").split(";"):
    print(i.split("~", 1)[0])
#or
print([i.split("~", 1)[0] for i in variable.strip(";").split(";")])

Output:

CREATEDBY
CREATEDBYNAME
CREATEDBYYOMINAME
CREATEDON
CREATEDONUTC

['CREATEDBY', 'CREATEDBYNAME', 'CREATEDBYYOMINAME', 'CREATEDON', 'CREATEDONUTC']
14

We can try using re.findall with the pattern ;(\w+)(?=~):

variable = ";CREATEDBY~string~1~~72~0~0~0~~~0;CREATEDBYNAME~string~1~~800~0~0~0~~~1;CREATEDBYYOMINAME~string~1~~800~0~0~0~~~2;CREATEDON~date~1~yyyy-MM-dd HH:mm:ss.SSS~26~0~0~0~~~3;CREATEDONUTC~date~1~yyyy-MM-dd HH:mm:ss.SSS~26~0~0~0~~~4"
result = re.findall(r';(\w+)~', variable)
print(result)

['CREATEDBY', 'CREATEDBYNAME', 'CREATEDBYYOMINAME', 'CREATEDON', 'CREATEDONUTC']
6
  • It's rejecting if the COLUMN name has '_' (i.e CREATED_BY)
    – Vicky
    Commented Dec 18, 2018 at 9:11
  • 2
    @Vicky Then use \w+, which includes underscores, to match your words. Commented Dec 18, 2018 at 9:21
  • @Vicky: good observation. That's why I hate Regex. You never know what they are really doing and what their intension was. It's very easy to get them wrong accidentally. Commented Dec 18, 2018 at 10:26
  • 1
    @Thomas I'm not sure that's a reason to hate Regex. [A-Z] should be self-explanatory that it isn't going to match underscores, and the question could have been clearer that underscores should be matched.
    – grg
    Commented Dec 18, 2018 at 17:10
  • 1
    @JaredSmith: trivial or not, I can't judge. The spec is not so bad regarding the underscore: between ; and ~, it did not say that there should be a word (\w). So a [^~] would be closer to the spec. Next, I wonder why he says the pattern should be ;(\w+)(?=~) but then uses ;(\w+)~ in the code. Commented Dec 18, 2018 at 18:51
5

You can split() the string and then find() the first ~ for each one:

variable=";CREATEDBY~string~1~~72~0~0~0~~~0;CREATEDBYNAME~string~1~~800~0~0~0~~~1;CREATEDBYYOMINAME~string~1~~800~0~0~0~~~2;CREATEDON~date~1~yyyy-MM-dd HH:mm:ss.SSS~26~0~0~0~~~3;CREATEDONUTC~date~1~yyyy-MM-dd HH:mm:ss.SSS~26~0~0~0~~~4"
result = [item[:item.find('~')]  for item in  variable.split(';')]

print(result)
5

Use regular expression with lookahead and lookbehind:

>>> import re
>>> re.findall(r'(?<=;).*?(?=~)', variable)
['CREATEDBY', 'CREATEDBYNAME', 'CREATEDBYYOMINAME', 'CREATEDON', 'CREATEDONUTC']
2
  • Posted the same answer 5 minutes ago. You don't even need lookarounds if you place the name in a capture group. Commented Dec 18, 2018 at 8:46
  • 3
    The two answers are fairly similar, yes, but I wouldn't call them the same. Commented Dec 18, 2018 at 8:54
1
import re

variable = ";CREATEDBY~string~1~~72~0~0~0~~~0;CREATEDBYNAME~string~1~~800~0~0~0~~~1;CREATEDBYYOMINAME~string~1~~800~0~0~0~~~2;CREATEDON~date~1~yyyy-MM-dd HH:mm:ss.SSS~26~0~0~0~~~3;CREATEDONUTC~date~1~yyyy-MM-dd HH:mm:ss.SSS~26~0~0~0~~~4"
pattern = re.compile (";(.+?)~")
matches = re.findall ( pattern, variable )
print matches
0

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