75

I have a string that has two "0" (str) in it and I want to remove only the "0" (str) at index 4

I have tried calling .replace but obviously that removes all "0", and I cannot find a function that will remove the char at position 4 for me.

Anyone have a hint for me?

1

8 Answers 8

110

Use slicing, rebuilding the string minus the index you want to remove:

newstr = oldstr[:4] + oldstr[5:]
0
25

as a sidenote, replace doesn't have to move all zeros. If you just want to remove the first specify count to 1:

'asd0asd0'.replace('0','',1)

Out:

'asdasd0'

1
  • 10
    What if you wanted to replace the 0 at index 7 only? Commented Jun 28, 2016 at 4:19
20

This is my generic solution for any string s and any index i:

def remove_at(i: int, s: str) -> str:
    return s[:i] + s[i+1:]
1
7

Another option, using list comprehension and join:

''.join([_str[i] for i in xrange(len(_str)) if i  != 4])
1
  • 1
    I like this one the best because it can be generalized... my problem was solved with ''.join([x for x in _str if x not in forbidden_chars]) Commented Jan 17, 2019 at 7:46
6

Slicing works (and is the preferred approach), but just an alternative if more operations are needed (but then converting to a list wouldn't hurt anyway):

>>> a = '123456789'
>>> b = bytearray(a)
>>> del b[3]
>>> b
bytearray(b'12356789')
>>> str(b)
'12356789'
3
rem = lambda x, unwanted : ''.join([ c for i, c in enumerate(x) if i != unwanted])
rem('1230004', 4)
'123004'
1
def remove_char(input_string, index):
    first_part = input_string[:index]
    second_part = input_string[index+1:]
    return first_part + second_part

s = 'aababc'
index = 1
remove_char(s,index)

zero-based indexing

0

Try this code:

s = input() 
a = int(input()) 
b = s.replace(s[a],'')
print(b)
2
  • 7
    This question is 5 years old :/ Also while this might answer the authors question, it lacks some explaining words and links to documentation. Raw code snippets are not very helpful without some phrases around it. Please edit your answer.
    – hellow
    Commented Aug 29, 2018 at 6:49
  • This will replace all occurrences of s[a]. Commented Mar 13, 2022 at 17:50

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