views:

77

answers:

2

ok, I've got a string and an arbitrary index into the string. Now I want find the first occurrence of a substring before the index.

A example: I want to find the index of the 2nd I by using the index and str.rfind()

s = "Hello, I am 12! I like plankton but I don't like Baseball."
index = 34 #points to the 't' in 'but'
index_of_2nd_I = s.rfind('I', index)
#returns = 36 and not 16 

now I would expect rfind() to return the index of the 2nd I (16) but it returns 36. after looking it up in the docs I found out rfind does not stand for reverse find :/

I'm totaly new to python so is there a built in solution to reverse find? Like reversing the string with some python [::-1] magic and using find, etc? Or will I have to reverse iterate char by char through the string?

+3  A: 

Your call told rfind to start looking at index 34. You want to use the rfind overload that takes a string, a start, and an end. Tell it to start at the beginning of the string (0) and stop looking at index:

>>> s = "Hello, I am 12! I like plankton but I don't like Baseball."
>>> index = 34 #points to the 't' in 'but'
>>> index_of_2nd_I = s.rfind('I', 0, index)
>>>
>>> index_of_2nd_I
16
Blair Conrad
wow, that's simple :)
Jaroslaw Szpilewski
A: 

I became curious how to implement looking n times for string from end by rpartition and did this nth rpartition loop:

orig = s = "Hello, I am 12! I like plankton but I don't like Baseball."
found = tail = ''
nthlast = 2
lookfor = 'I'
for i in range(nthlast):
    tail = found+tail
    s,found,end = s.rpartition(lookfor)
    if not found:
        print "Only %i (less than %i) %r in \n%r" % (i, nthlast, lookfor, orig)
        break
    tail = end + tail
else:
    print(s,found,tail)
Tony Veijalainen
wow, that really hurts :(
unbeli
Anything specific? The motivation is that unlike the finds the partition has not the start index as it is indexless.
Tony Veijalainen