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My exam question asks me to take two letters as inputs, and display all letters in the alphabet between the two inputs (inclusively). It also needs to do this in the order the user input them (so GA produces GFEDCBA not ABCDEFG). How would I approach this task?

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closed as not a real question by Silas Ray, bensiu, ekhumoro, Lafada, Kirk Broadhurst Dec 4 '12 at 3:54

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

5  
What have you tried? –  applicative_functor Dec 3 '12 at 21:33
2  
comments like "learn to do it yourself" are not helpful. Yeah, I guess you're right. If you're in the middle of an exam there isn't much time left to learn anything. –  Mark Byers Dec 3 '12 at 21:35
    
How do I iterate through the alphabet in Python? might help you - but try to clarify such questions before the exam... –  jojo Dec 3 '12 at 21:36
    
One liner... print "%s" % list((chr(i) for i in range(ord(begin), ord(end) + 1 * (ord(end)-ord(begin))/abs(ord(end)-ord(begin)), (ord(end)-ord(begin))/abs(ord(end)-ord(begin))))) –  BorrajaX Dec 3 '12 at 21:48
    
Oh, sorry, I seem to have caused some confusion... I'm not in an exam, it's just a practice exam paper as some homework :) –  keirbtre Dec 3 '12 at 21:50

2 Answers 2

>>> import string
>>> def letterList (start, end):
        # add a character at the beginning so str.index won't return 0 for `A`
        a = ' ' + string.ascii_uppercase

        # if start > end, then start from the back
        direction = 1 if start < end else -1

        # Get the substring of the alphabet:
        # The `+ direction` makes sure that the end character is inclusive; we
        # always need to go one *further*, so when starting from the back, we
        # need to substract one. Here comes also the effect from the modified
        # alphabet. For `A` the normal alphabet would return `0` so we would
        # have `-1` making the range fail. So we add a blank character to make
        # sure that `A` yields `1-1=0` instead. As we use the indexes dynamically
        # it does not matter that we have changed the alphabet before.
        return a[a.index(start):a.index(end) + direction:direction]

>>> letterList('A', 'G')
'ABCDEFG'
>>> letterList('G', 'A')
'GFEDCBA'
>>> letterList('A', 'A')
'A'

Note that this solution allows any kind of alphabet. We could set a = ' ' + string.ascii_uppercase + string.ascii_lowercase and get such results:

>>> letterList('m', 'N')
'mlkjihgfedcbaZYXWVUTSRQPON'

And who needs ASCII when you have full unicode support?

>>> a = ' あいうえおかきくけこさしすせそたちつてとなにぬねのはひふへほまみむめもやゆよらりるれろわを'
>>> letterList('し', 'ろ')
'しすせそたちつてとなにぬねのはひふへほまみむめもやゆよらりるれろ'
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Very helpful, thanks. –  keirbtre Dec 3 '12 at 22:38
    
Seems like true "full unicode support" would mean not having to predefine the alphabet to be used beforehand... –  martineau Dec 4 '12 at 0:57
    
@martineau If you want to use Unicode’s ordering and accept that there are many code points are empty, sure. –  poke Dec 4 '12 at 10:21
    
Yes, I know. I wrote one but the question was closed when I was ready to submit it. Probably way more than the OP was interested in anyway. –  martineau Dec 4 '12 at 10:26

I didn't really think this would be worth an answer, but as @martineau said in his comment, it's not a good idea to put so much code in a comment... so here it goes:

>>> begin="A"
>>> end="G"
>>> print "%s" % list((chr(i) for i in range(ord(begin), ord(end) + 1 * (ord(end)-ord(begin))/abs(ord(end)-ord(begin)), (ord(end)-ord(begin))/abs(ord(end)-ord(begin))))) 
['A', 'B', 'C', 'D', 'E', 'F', 'G']
>>> begin="G"
>>> end="A"
>>> print "%s" % list((chr(i) for i in range(ord(begin), ord(end) + 1 * (ord(end)-ord(begin))/abs(ord(end)-ord(begin)), (ord(end)-ord(begin))/abs(ord(end)-ord(begin))))) 
['G', 'F', 'E', 'D', 'C', 'B', 'A']

The only slightly relevant parts are chr and ord, and the "trick" of (ord(end)-ord(begin))/abs(ord(end)-ord(begin)) to get -1 if begin > end, though...

Edit: As @martineau pointed out in another comment... you can make an even bigger(!) one liner and get an string (instead of a list) by using join.

>>> begin="G"
>>> end="A"
>>> print "".join((chr(i) for i in range(ord(begin), ord(end) + 1 * (ord(end)-ord(begin))/abs(ord(end)-ord(begin)), (ord(end)-ord(begin))/abs(ord(end)-ord(begin)))))
GFEDCBA

... which is a trivial chunk of code ... :D

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If you change the list(...) to ''.join(...) the result will be a string like ABCDEFG. –  martineau Dec 3 '12 at 23:51
    
You don't need the list( in the "".join(list((chr(.... –  martineau Dec 4 '12 at 2:22
    
@martineau: That's right... Edited :) –  BorrajaX Dec 4 '12 at 15:44

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