Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have a string and an arbitrary index into the string. I want find the first occurrence of a substring before the index.

An 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 totally 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?

share|improve this question
If jsz really is 12 then he/she is one bright kid ;-) –  sidewinderguy May 25 '11 at 2:14

2 Answers 2

up vote 15 down vote accepted

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
share|improve this answer
If the result is on several lines above the line, how can I search to it? –  Ooker Aug 30 at 13:34
Sorry@Ooker, I don't understand. Lines don't really matter. If the string has multiple lines in it, the result will be found just as well. If you have multiple lines, each in their own string, you'll have to manage them yourself. If you have a list of lines, for example, you'd probably be best to search each in turn, backward starting from your "current" line. –  Blair Conrad Aug 30 at 21:14
Well, I have asked this as another question: How to search backward several lines in Python 3? –  Ooker Aug 30 at 21:33

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)
    tail = end + tail
share|improve this answer
wow, that really hurts :( –  unbeli Aug 21 '10 at 20:39
Anything specific? The motivation is that unlike the finds the partition has not the start index as it is indexless. –  Tony Veijalainen Aug 21 '10 at 21:07

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.