I have a question regarding strip() in Python. I am trying to strip a semi-colon from a string, I know how to do this when the semi-colon is at the end of the string, but how would I do it if it is not the last element, but say the second to last element.

eg:

1;2;3;4;\n

I would like to strip that last semi-colon.

Thanks

  • What if there are multiple consecutive semicolons at the end? Strip all or just one? – Janne Karila Sep 24 '12 at 7:17
up vote 7 down vote accepted

Strip the other characters as well.

>>> '1;2;3;4;\n'.strip('\n;')
'1;2;3;4'
  • How would I strip it without stripping the newline? – crappy smith Sep 24 '12 at 1:34
  • 2
    You can't; stripping only removes from the ends. If you need the newline then add it back after. – Ignacio Vazquez-Abrams Sep 24 '12 at 1:35
  • 1
    No biggy, but you might want to use rstrip instead – wim Sep 24 '12 at 3:26
  • My +1 to wim. You should use rstrip in the case. The reason is that the strip argument is interpreted as a set of characters that should be stripped (i.e. all of them -- the order is not important). If the semicolon were used at the beginning (i.e. empty first element) the strip would remove also the first semicolon. – pepr Sep 24 '12 at 10:16
  • see my answer if you could have unspecified number of white spaces after last ";" like '1;2;3;4; \t\n' – swang Sep 25 '12 at 2:08
>>> "".join("1;2;3;4;\n".rpartition(";")[::2])
'1;2;3;4\n'
  • :))) but very cryptic. – pepr Sep 24 '12 at 10:13

how about replace?

string1='1;2;3;4;\n'
string2=string1.replace(";\n","\n")
>>> string = "1;2;3;4;\n"
>>> string.strip().strip(";")
"1;2;3;4"

This will first strip any leading or trailing white space, and then remove any leading or trailing semicolon.

Try this:

def remove_last(string):
    index = string.rfind(';')
    if index == -1:
        # Semi-colon doesn't exist
        return string
    return string[:index] + string[index+1:]

This should be able to remove the last semicolon of the line, regardless of what characters come after it.

>>> remove_last('Test')
'Test'
>>> remove_last('Test;abc')
'Testabc'
>>> remove_last(';test;abc;foobar;\n')
';test;abc;foobar\n'
>>> remove_last(';asdf;asdf;asdf;asdf')
';asdf;asdf;asdfasdf'

The other answers provided are probably faster since they're tailored to your specific example, but this one is a bit more flexible.

You could split the string with semi colon and then join the non-empty parts back again using ; as separator

parts = '1;2;3;4;\n'.split(';')
non_empty_parts = []
for s in parts:
    if s.strip() != "": non_empty_parts.append(s.strip())
print "".join(non_empty_parts, ';')

If you only want to use the strip function this is one method: Using slice notation, you can limit the strip() function's scope to one part of the string and append the "\n" on at the end:

# create a var for later
str = "1;2;3;4;\n"
# format and assign to newstr
newstr = str[:8].strip(';') + str[8:]

Using the rfind() method(similar to Micheal0x2a's solution) you can make the statement applicable to many strings:

# create a var for later
str = "1;2;3;4;\n"
# format and assign to newstr
newstr = str[:str.rfind(';') + 1 ].strip(';') + str[str.rfind(';') + 1:]
re.sub(r';(\W*$)', r'\1', '1;2;3;4;\n') -> '1;2;3;4\n'

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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