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I wish to create a 'find' procedure myself, which is capable of finding a sub-string in a string and it also should be able to read a string backward and give position of match- just like the original find function in python.

I am unable to figure out what logic should I use- also I don't know how the original find functions?

I just started to use python and am fairly new to programming as well.

Any guidance shall be highly appreciated!

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3  
Read a string backward? I'm not sure I understand –  Lev Levitsky Apr 18 '13 at 20:12
2  
The built-in function is: docs.python.org/2/library/string.html#string.find –  Nathan Villaescusa Apr 18 '13 at 20:12
    
@LevLevitsky, for example if we wish to search a sub-string 'you are awesome.' in the string 'If you can code, you are awesome.' It should give the value 17 since the substring starts at the seventeenth position. But if I wish to find THE LAST OCCURRENCE of our substring 'you are awesome' then it would be specially helpful! :-D –  Abrar Khan Apr 18 '13 at 20:20
    
@NathanVillaescusa, Thanks for the website! Woohoo its awesome for future references. But I wish to create such a function myself - for better understanding :-) –  Abrar Khan Apr 18 '13 at 20:22
1  
@AbrarKhan Ah, I see. But find doesn't do it. There is another method called rfind that does what you need. –  Lev Levitsky Apr 18 '13 at 20:44

5 Answers 5

up vote 1 down vote accepted

Here is a solution that returns all the hints in a list, and rfind is defined using the original find keyword backwards. You can use for integers or floats also. You can easily modify it in order to return only the first hint.

def find( x, string, backward = False, ignore_case = False ):
    x      = str(x)
    string = str(string)
    if ignore_case:
        x = x.lower()
        string = string.lower()
    str_list = [ i for i in string ]
    x_list   = [ i for i in x      ]
    if backward:
        x_list.reverse()
        str_list.reverse()
    x = ''.join(x_list)
    string = ''.join(str_list)
    lenx = len(x)
    ans = []
    for i in range( len(str_list) - lenx ):
        if x == string[i:i+lenx]:
            ans.append( i )
    return ans

def rfind( x, string, ignore_case = False):
    return find( x, string, backward = True, ignore_case = ignore_case )

print  find('f','abcdefgacdfh')
# [5, 10]
print rfind('f','abcdefgacdfh')
# [1, 6]
print  find(12,'aaa3331222aa12a')
# [6, 12]
print rfind(12,'aaa3331222aa12a')
# [1, 7]
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also I don't know how the original find functions

A good way to learn about functions without googling is to use Ipythonand especially the notebook variant. These allow you to write python code interactively, and have some special features. Typing the name of a function in Ipython (either notebook or the interpreter) with a question mark returns some information about the function e.g

find?

Type:       function
String Form:<function find at 0x2893cf8>
File:       /usr/lib/pymodules/python2.7/matplotlib/mlab.py
Definition: find(condition)
Docstring:  Return the indices where ravel(condition) is true

Typing two question marks reveals the source code

find??

Type:       function
String Form:<function find at 0x2893cf8>
File:       /usr/lib/pymodules/python2.7/matplotlib/mlab.py
Definition: find(condition)
Source:
def find(condition):
    "Return the indices where ravel(condition) is true"
    res, = np.nonzero(np.ravel(condition))
    return res

You would then need to go down the rabbit hole further to find exactly how find worked.

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There is a simple solution to this problem, however there are also much faster solutions which you may want to look at after you've implemented the simple version. What you want to be doing is checking each position in the string you're search over and seeing if the string you're searching for starts there. This is inefficient but works well enough for most purposes, if you're feeling comfortable with that then you may want to look at Boyer-Moore string searching, which is a much more complex solution but more efficient. It exploits the fact that you can determine that if a string doesn't start at a certain point you may not need to check some of the other positions.

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Thanks! I will look into it :) I am still not convinced how it will enable me to find the sub-string though... Apparently I can't vote up this answer since 'Vote Up requires 15 reputation' –  Abrar Khan Apr 18 '13 at 20:35

I think Steve means something like this:

def find(s, sub):
    for i, _ in enumerate(s):
        if s.startswith(sub, i):
            return i
    return -1

def rfind(s, sub):
    for i in range(len(s)-1, -1, -1):
        if s.startswith(sub, i):
            return i
    return -1

This, however, is simpler than the regular str.find and str.rfind because you can't provide start and end arguments.

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Yeah! It makes sense, I think I need to practice more, using python :) –  Abrar Khan Apr 18 '13 at 22:00
'mystring'.rindex('my_substring')

this returns the first position of the substring, beginning from the right side

'mystring'.index('my_substring')

does the same thing, but beginns searching the string from the left hand side.

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Thanks So much! I really appreciate for your valuable feedback! Thanks!! –  Abrar Khan Apr 18 '13 at 22:03
    
I seriously do want to... as I mentioned earlier, but I can't since my reputation is 13 :P and you need 15 reputation to vote.... I did select your answer though... –  Abrar Khan Apr 18 '13 at 22:09
    
If you can upvote my question- I can then upvote your post! :-) –  Abrar Khan Apr 18 '13 at 22:11

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