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Is there a simpler way to do the following:

def replace(txt,pos,new_char):
    return txt[:pos] + new_char + txt[pos+1:]

to do the following?

>>> replace('12345',2,'b')
'12b45'
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Why cant you use replace? –  Harpal Apr 3 '13 at 17:14
1  
I can't think of anything better in the general case. What are you trying to achieve exactly? –  Pavel Anossov Apr 3 '13 at 17:21
1  
Note that if you are writing to file your best bet may be to not create the new string and just pass the pieces individually to your_file.write(piece). –  Steven Rumbalski Apr 3 '13 at 18:19

3 Answers 3

up vote 3 down vote accepted

Just tested some solutions to find the best performance,

The tester source code was:

import __main__
from itertools import permutations
from time import time

def replace1(txt, pos, new_char):
    return txt[:pos] + new_char + txt[pos+1:]

def replace2(txt, pos, new_char):
    return '{0}{1}{2}'.format(txt[:pos], new_char, txt[pos+1:])

def replace3(txt, pos, new_char):
    return ''.join({pos: new_char}.get(idx, c) for idx, c in enumerate(txt))

def replace4(txt, pos, new_char):    
    txt = list('12345')
    txt[pos] = new_char
    ''.join(txt)

def replace5(txt, pos, new_char):
    return '%s%s%s' % (txt[:pos], new_char, txt[pos+1:])


words = [''.join(x) for x in permutations('abcdefgij')]

for i in range(1, 6):
    func = getattr(__main__, 'replace{}'.format(i))

    start = time()
    for word in words:
        result = func(word, 2, 'X')
    print time() - start

And it's the result:

0.233116149902
0.409259080887
2.64006495476
0.612321138382
0.302225828171
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Care to back it up with some measurements? –  Pavel Anossov Apr 3 '13 at 17:13
    
@PavelAnossov I thaught it creates one new string instead of two, No? –  MostafaR Apr 3 '13 at 17:13
    
No, it creates the format string, two slices, and the result. OP's replace creates two slices, a temporary result of concatenation, and the result, So four for four. –  Pavel Anossov Apr 3 '13 at 17:16
    
@PavelAnossov Thanks. –  MostafaR Apr 3 '13 at 17:34
1  
@MostafaR: Technically, one could use re.sub: re.sub('(?<=.{%s}).' % pos, new_char, txt, count=1 –  Steven Rumbalski Apr 3 '13 at 20:40

Not sure if this is simpler:

>>> txt = list('12345')
>>> txt[2] = 'b'
>>> ''.join(txt)
'12b45'
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Not sure about "better", but an alternative is to adapt something like the following:

>>> ''.join({2: 'b', 4: 'x'}.get(idx, c) for idx, c in enumerate(s))
'12b4x'
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