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Just curious, what's the most pythonic/efficient way to determine if sequence of 3 characters are in consecutive alpha order?

Below a quick&dirty way that seems to work, other, nicer implementations?

I suppose one alternative approach might be to sort a copy the sequence and compare it with the original. Nope, that wouldn't account for gaps in the sequence.

(This is not homework - listeners to NPR Sunday Morning progam will know)

def checkSequence(n1, n2, n3):
    """ check for consecutive sequence of 3 """
    s = ord('a')
    e = ord('z')

#   print n1, n2, n3
    for i in range(s, e+1):
        if ((n1+1) == n2) and ((n2+1) == n3):
           return True

    return False


def compareSlice(letters):
    """ grab 3 letters and sent for comparison """

    letters = letters.lower()
    if checkSequence(ord(letters[0]), ord(letters[1]), ord(letters[2])):
        print '==> seq: %s' % letters
        return True

    return False
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2  
Is this the reason? –  eabraham Apr 8 '12 at 15:34
    
It seems like the next step is a dictionary to check against. Try this. –  eabraham Apr 8 '12 at 15:40
    
@eabraham Close .. :-) –  Levon Apr 8 '12 at 15:57

5 Answers 5

up vote 10 down vote accepted

Easy:

>>> letters = "Cde"
>>> from string import ascii_lowercase
>>> letters.lower() in ascii_lowercase
True
>>> letters = "Abg"
>>> letters.lower() in ascii_lowercase
False  

Alternatively, one could use string.find().

>>> letters = "lmn"
>>> ascii_lowercase.find(letters) != -1
True

I guess a function using this would look like:

def checkSequence(*letters):
    return ''.join(letters).lower() in ascii_lowercase
share|improve this answer
    
This seems to me the most forward and simple solution, very nice. –  Levon Apr 8 '12 at 17:41
    
table-lookup is always convenient for normal data size, cool –  okm Apr 9 '12 at 0:08

Here's a nice pythonic way to check that for arbitrarily long sequences of chars:

def consecutive_chars(l):
    return all(ord(l[i+1])-ord(l[i]) == 1 for i in range(len(l)-1))
share|improve this answer
    
Edited to remove the square brackets to make all iterate over a generator, instead of creating the entire list of Trues and Falses first. –  Acorn Apr 8 '12 at 16:00
    
neat .. for some reason I had not come across the built-in all() function before –  Levon Apr 8 '12 at 17:40
    
@Acom - thanks for the fix. –  Yuval Adam Apr 8 '12 at 21:25
ord('a') < ord(a)+1 == ord(b) == ord(c)-1 < ord('z')
share|improve this answer
    
+1 Very interesting! And the only answer here that is correct. All others miss the alphabetic check. –  Mark Byers Apr 8 '12 at 15:41
    
cool - thanks for the solution –  Levon Apr 8 '12 at 17:53
    
@MarkByers Yes it is =) , although here solution space is limited and direct search is easier –  okm Apr 9 '12 at 1:43

This could be simply done as

>>> x=['a','b','c']
>>> y=['a','c','b']
>>> z=['c','b','a']
>>> x==sorted(x) or x == sorted(x,reverse=True)
True
>>> y==sorted(x) or y == sorted(y,reverse=True)
False
>>> z==sorted(x) or z == sorted(z,reverse=True)
True
>>> 

Think it this way. Letters are consecutive iff they are sorted either ascending or descending.

As pointed out in the comment as this will not work if the sequence contains holes, another approach would be

>>> ''.join(x).lower() in string.lowercase
True
>>> 
share|improve this answer
1  
This approach was already mentioned in the question and, as the OP points out, it doesn't work. –  Mark Byers Apr 8 '12 at 15:41
    
@MarkByers: I have updated my answer with another possible solution –  Abhijit Apr 8 '12 at 15:47
    
Still is wrong though. ace gives True. And you should use // not /. Without that change your code will give an error in Python 3. –  Mark Byers Apr 8 '12 at 15:52
    
@MarkByers: Yeak, I have corrected it again :-) –  Abhijit Apr 8 '12 at 15:55
    
Still wrong. Fails for 'zAB' (returns true), but getting closer... –  Mark Byers Apr 8 '12 at 15:58

How about something like this:

l = letters.lower()
if len(l)>=3 and ord(l[0])+2==ord(l[1])+1==ord(l[2]): print "yes"
else: print "no"
share|improve this answer
    
thanks - seems very similar to my approach too. –  Levon Apr 8 '12 at 17:42

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