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But I need the index of the second time appearance. It is like I have a string "asd#1-2#qwe" I can simply use index method to find the index value of first #, which is 3. But now I wanna get the index of second #, which should be 7.

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4 Answers 4

up vote 6 down vote accepted

Use enumerate and a list comprehension:

>>> s = "asd#1-2#qwe"
>>> [i for i, c in enumerate(s) if c=='#']
[3, 7]

Or if string contains just two '#' then use str.rfind:

>>> s.rfind('#')
7

Using regex: This will work for overlapping sub-strings as well:

>>> s = "asd##1-2####qwe"
>>> import re
#Find index of all '##' in s
>>> [m.start() for m in re.finditer(r'(?=##)', s)]
[3, 8, 9, 10]
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Thank you. Both ways are useful. –  SonicFancy Nov 7 '13 at 19:12

use this:

s = "asd#1-2#qwe"
try:
    s.index('#',s.index('#')+1)
except:
    print "not found"
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Use the index method to get the first occurrence of #. If the index method allows a starting position, use the position of the first # + 1 for the start. If it doesn't, make a copy of the string starting at position of first # + 1 (possibly a copy and then a substring).

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a =  "asd#1-2#qwe"

f = '#'

idx = []
for i, v in enumerate(a):
    if v == f:
        idx.append(i)
print idx
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