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I have a list, e.g.

l = ['abc34','def987','ghij','klmno','pqrstuvwxyz1234567','98765','43','210abc']

How can I get all the elements in the list before the occurrance of the longest element and not the ones that come after?

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3  
BTW you should not name your list list since it will shadow a builtin. –  Ocaso Protal Jan 5 '12 at 9:23
3  
and you should not name it l because it looks like 1 –  wim Jan 5 '12 at 9:31

2 Answers 2

up vote 3 down vote accepted

This works:

lst = ['abc34','def987','ghij','klmno','pqrstuvwxyz1234567','98765','43','210abc']
idx, maxLenStr = max(enumerate(lst), key=lambda x:len(x[1]))
sublist = lst[:idx]

It only iterates through the list once for determining the maximum length, whereas using max() and then index() iterates twice over all the elements. It also stores the string with the maximum length in maxLenStr and the index where it was found in idx, just in case.

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Thanks guys...appreciate it... –  irfanbukhari Jan 5 '12 at 11:06
    
@irfanbukhari please accept the answer you considered more useful (mark the check to its left). Also, an up-vote wouldn't hurt :) –  Óscar López Jan 5 '12 at 11:15
    
I'm not sure, but I actually think my solution is faster stackoverflow.com/questions/8742112/timing-functions/8742370 ;) –  Niclas Nilsson Jan 5 '12 at 12:21

This is one way:

l = ['abc34','def987','ghij','klmno','pqrstuvwxyz1234567','98765','43','210abc']
new_list = l[:l.index(max(l, key=len))]
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Though it is'nt beautiful ;) –  Niclas Nilsson Jan 5 '12 at 9:21
    
beauty is in the eye of the beholder, i find it quite nice :) –  wim Jan 5 '12 at 9:31
    
Ok, thanks then :) –  Niclas Nilsson Jan 5 '12 at 9:33

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