-3

I have a list of strings like this

...

'43.990\none of the things we notice\nis that the headers all have\n\n296\n',
'47.020\nthe word edit and\nbraces behind them,\n\n297\n',

...

I want only the text from the above list and not the starting numbers and \n. Is there anyway to strip with regex patterns like this

i.strip(r"[0-9.\\n]+")

This does not seem to work.

1
  • Could you give a sample of the expected output? – Ridwan Jan 31 at 5:57
1

I would use:

inp = ['43.990\none of the things we notice\nis that the headers all have\n\n296\n', '47.020\nthe word edit and\nbraces behind them,\n\n297\n']
output = [re.sub(r'\s*\d+(?:\.\d+)?\s*', ' ', x).strip() for x in inp]
print(output)

This prints:

['one of the things we notice\nis that the headers all have',
 'the word edit and\nbraces behind them,']
1

You could use re.sub to replace characters that match your regex, with anchors to the beginning and ending of the line:

i = re.sub('^[0-9.\n]+|[0-9.\n]+$', '', i, re.I)

Output (for your two sample pieces of data):

one of the things we notice
is that the headers all have
the word edit and
braces behind them,

Note I've assumed the \n in your data is an actual newline, if not (it is the literal string \n), you should use this instead:

i = re.sub(r'^(?:[0-9.]|\\n)+|(?:[0-9.]|\\n)+$', '', i, re.I)

Output:

one of the things we notice\nis that the headers all have
the word edit and\nbraces behind them,

Not the answer you're looking for? Browse other questions tagged or ask your own question.