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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

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

8 Answers 8

up vote 7 down vote accepted

Strip the other characters as well.

>>> '1;2;3;4;\n'.strip('\n;')
'1;2;3;4'
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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'
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:))) but very cryptic. –  pepr Sep 24 '12 at 10:13

how about replace?

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

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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.

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re.sub(r';(\W*$)', r'\1', '1;2;3;4;\n') -> '1;2;3;4\n'

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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, ';')
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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:]
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