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Suppose we have a string a = "01000111000011" with n=5 "1"s. The ith "1", I would like to replace with the ith character in "ORANGE". My result should look like:

b = "0O000RAN0000GE"

What could be the finest way to solve this problem in Python? Is it possible to bind an index to each substitution?

Many thanks! Helga

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5 Answers

up vote 6 down vote accepted

Tons of answers/ways to do it. Mine uses a fundamental assumption that your #of 1s is equal to the length of the word you are subsituting.

a = "01000111000011"
a = a.replace("1", "%s")
b = "ORANGE"
print a % tuple(b)

Or the pythonic 1 liner ;)

print "01000111000011".replace("1", "%s") % tuple("ORANGE")
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I love that one-liner –  utdemir May 17 '11 at 16:27
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a = '01000111000011'
for char in 'ORANGE':
  a = a.replace('1', char, 1)

Or:

b = iter('ORANGE')
a = ''.join(next(b) if i == '1' else i for i in '01000111000011')

Or:

import re
a = re.sub('1', lambda x, b=iter('ORANGE'): b.next(), '01000111000011')
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The first part of this answer, while clear, has horrible performance. It should not be used if this task needs to be done for more than one string. –  Steven Rumbalski May 17 '11 at 17:16
    
The second part of this answer will have problems if there are more 1's in the original string than in the replacement characters (try the solution with '010001110000110101010101'). –  Steven Rumbalski May 17 '11 at 17:26
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s_iter = iter("ORANGE")
"".join(next(s_iter) if c == "1" else c for c in "01000111000011")
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This answer will have problems if there are more 1's in the original string than in the replacement characters (try the solution with '010001110000110101010101'). –  Steven Rumbalski May 17 '11 at 17:27
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If the number of 1's in your source string doesn't match the length of your replacement string you can use this solution:

def helper(source, replacement):
    i = 0
    for c in source:
        if c == '1' and i < len(replacement):
            yield replacement[i]
            i += 1
        else:
            yield c

a = '010001110001101010101'
b = 'ORANGE'
a = ''.join(helper(a, b)) # => '0O000RAN000GE01010101'
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Improving on bluepnume's solution:

>>> from itertools import chain, repeat
>>> b = chain('ORANGE', repeat(None))
>>> a = ''.join((next(b) or c) if c == '1' else c for c in '010001110000110101')
>>> a
'0O000RAN0000GE0101'

[EDIT]

Or even simpler:

>>> from itertools import chain, repeat
>>> b = chain('ORANGE', repeat('1'))
>>> a = ''.join(next(b) if c == '1' else c for c in '010001110000110101')
>>> a
'0O000RAN0000GE0101'

[EDIT] #2

Also this works:

import re
>>> r = 'ORANGE'
>>> s = '010001110000110101'
>>> re.sub('1', lambda _,c=iter(r):next(c), s, len(r))
'0O000RAN0000GE0101'
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