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I am in the process of writing a search engine for the experience and the knowledge. Right now, I am in the process of building a crawler and its accompanying utilities. One of these is the URL normalizer. This is what I am trying to build right now, and more specifically I am stuck at the point where I have to make a method to take a url, and capitalize letters that follow a '%' sign. My code so far:

def escape_sequence_capitalization(url):
        ''' The method that capitalizes letters in escape sequences.
        All letters within a percent - encoding triplet (e.g. '%2C') are case
        insensitive and should be capitalized.

        '''
    next_encounter = None
    url_list = []
    while True:
        next_encounter = url.find('%')
        if next_encounter == -1:
            break

        for letter in url[:next_encounter]:
            url_list.append(letter)

        new_character = url[next_encounter + 1].upper()
        url_list.append(new_character)
        url = url[next_encounter:]

    for letter in url:
        url_list.append(letter)

    return ''.join(url_list)

Can someone please guide me to where my error is? I would be grateful. Thank you.

EDIT: this is what I am trying to achieve:

http://www.example.com/a%c2%b1b → http://www.example.com/a%C2%B1b
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4 Answers 4

up vote 10 down vote accepted

By static analysis, it loops forever because your while True never breaks. So where can it break? Only at the break statement only if the next_encounter becomes equal to -1; so you can deduce that it never does.

Why doesn't it? Try a print next_encounter after url.find. You'll quickly see that

url = url[next_encounter:]

does almost what you hope it will, only it gives you one character more than you hoped.

Why did I present it this way? Mostly because the value of print is often underrated by people learning the language.

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Thank you, your answer was most insightful. I do not underestimate the value of print(), really, print methods and functions is the main debugging tool I use in other programming languages, it's just that it didn't strike me due to my lack of experience. Thank you. –  NlightNFotis Jul 14 '12 at 18:24
    
@msw. Great explanation! –  doniyor Jul 14 '12 at 18:25

@msw nailed it and gave sound advice.

My $.02 is you never should have tried this loop

How about:

>>> re.sub('%..',lambda m: m.group(0).upper(),'http://www.example.com/a%c2%b1b')
'http://www.example.com/a%C2%B1b'
share|improve this answer
    
Sounds like a plan, however I am a Python newbie, and lambdas are kinda confusing for me at the moment, so if I could avoid them, I would prefer to do so. –  NlightNFotis Jul 14 '12 at 18:37
3  
lambda is nothing but a one line function. could have created a function like in the docs for re.sub. Embrace the functional paradigm. Resistance is futile. –  Phil Cooper Jul 14 '12 at 18:47
2  
Lol'd at the 'Embrace the functional paradigm. Resistance is futile.' part. Nice one mate. –  NlightNFotis Jul 14 '12 at 18:54
    
@NlightNfotis: If lambdas confuse you, you should use them more, not avoid them. Avoiding concepts that you don't understand isn't going to help you in the long run. –  Joel Cornett Jul 14 '12 at 19:51
1  
@JoelCornett You speak the truth brother, however, I would like to be a little bit more comfortable with the python language before I get to use them. –  NlightNFotis Jul 14 '12 at 19:54

This is why:

>>> 'asd'.find('s')
1
>>> 'asd'[1:]
'sd'

Also, consider using the second argument to str.find() instead of slicing.

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I'm coming a bit late to the party, but you might want to consider using a regular expression instead of such a complicated function:

>>> import re
>>> url = "http://www.example.com/a%c2%b1b"
>>> result = re.sub("(?i)%[0-9A-F]{2}", lambda x: x.group(0).upper(), url)
>>> result
'http://www.example.com/a%C2%B1b'

Explanation:

(?i)          # Make regex case-insensitive
%             # Match a %
[0-9A-F]{2}   # Match two hex digits

re.sub() finds all these occurrences in the string and passes the result (the match object's group(0)) to the .upper() method, then replaces the original with the uppercased version of the match.

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Great answer. Will consider your approach. –  NlightNFotis Jul 15 '12 at 9:44

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