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Write a function that takes two strings as arguments and returns the one which is longer. If the strings have equal length, return the one that comes first alphabetically.

This is what i have so far:

    def strings(x,y):
        if len(x) > len(y):
            return x
        if len(x)==len(y):
            return 
        else:
            return y

I am wondering how i would write the code so it would choose the string that comes first alphabetically for the second if statement.

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2  
The incredible thing is that I can't find a duplicate for this. –  The Unfun Cat Nov 12 '12 at 21:44

3 Answers 3

up vote 5 down vote accepted

this should work:

if len(x)==len(y):
   return min(x,y)
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1  
sorted(x, y)[0] would have more clarity as to it's intent, perhaps. –  Martijn Pieters Nov 12 '12 at 21:46
    
BTW, be careful when doing this for strings of mixed case. min("B","a") will return "B" as coming before "a". –  kreativitea Nov 12 '12 at 23:34
def f(x,y):
    return len(x) != len(y) and max([x,y],key=len) or min(x,y)
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You can compare strings directly. x<y means "does x come before y alphabetically?" So you can replace your second block with:

if len(x) == len(y) and x < y:
    return x
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