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how determine the longest word? First word, ok

'a aa aaa aa'[:'a aa aaa aa'.find(' ',1,10)]

'a'

rfind is another subset

'a aa aaa aa'[:'a aa aaa aa'.rfind(' ',1,10)]

'a aa aaa'

One row should be able. It's a direct word 'a aa aaa...' and can be a variable, no problem it occurs twice still naturally easier if also occured just once. I shan't need a function, class, just one row.

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This is probably the most difficult to understand question I've ever read. You are looking for the longest word in a given string, so in your example this would be 'aaa', right?! And you want to get it from a single expression using built-ins, and without creating an own function or class. Is that the essence of your question? –  ThomasH Jul 28 '09 at 9:21
    
Yes. Most normal is most difficult. All think computer science is difficult. Try it: sorted("a AAA aa aaaaa sdfsdfsdfsdf vv".split(' '),lambda a,b: len(a)-len(b))[-1] –  909 Niklas Jul 28 '09 at 9:32
    
@LarsOn: Please do not comment on your own question. Please delete the comment and UPDATE the question with the new information. –  S.Lott Jul 28 '09 at 10:12
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2 Answers

up vote 26 down vote accepted

If I understand your question correctly:

>>> s = "a aa aaa aa"
>>> max(s.split(), key=len)
'aaa'

split() splits the string into words (seperated by whitespace); max() finds the largest element using the builtin len() function, i.e. the string length, as the key to find out what "largest" means.

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+1 really elegant code (at least for a Java developer) –  dfa Jul 28 '09 at 9:23
1  
+1 excellent solution –  ThomasH Jul 28 '09 at 9:34
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Here is one from the category "How difficult can you make it", also violating the requirement that there should be no own class involved:

class C(object): pass
o = C()
o.i = 0
ss = 'a aa aaa aa'.split()
([setattr(o,'i',x) for x in range(len(ss)) if len(ss[x]) > len(ss[o.i])], ss[o.i])[1]

The interesting bit is that you use an object member to maintain state while the list is being computed in the comprehension, eventually discarding the list and only using the side-effect.

But please do use one of the max() solutions above :-) .

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Ah, even better: o.i = ''; ([setattr(o,'i',x) for x in s.split() if len(x) > len(o.i)], o.i)[1] –  ThomasH Jul 28 '09 at 10:18
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