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Say I have a list object occupied with both numbers and strings. If I want to retrieve the first string item with the highest alphabetical precedence, how would I do so?

Here is an example attempt which is clearly incorrect, but corrections as to what needs to be changed in order for it to achieve the desired result would be greatly appreciated:

lst = [12, 4, 2, 15, 3, 'ALLIGATOR', 'BEAR', 'ANTEATER', 'DOG', 'CAT']

lst.sort()
for i in lst:
   if i[0] == "A":
      answer = i
print(answer)
share|improve this question
3  
What about sorted([i for i in lst if isinstance(i, str)])[0]? – Anton Protopopov Feb 29 at 4:33
3  
You can't sort this list in Python3 without filtering, as you can no longer compare int and str types – John La Rooy Feb 29 at 4:43

First use a generator expression to filter out non-strings, and then use min() to select the string with the highest alphabetical presence:

>>> min(x for x in lst if isinstance(x, str))
'ALLIGATOR
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@AntonProtopopov, I don't know what you mean by "firstly converted to list" – Paul Draper Feb 29 at 13:04

IIUC you could use isinstance to get sublist of your original list with only strings, then with sorted get first element by alphabetical sorting:

sub_lst = [i for i in lst if isinstance(i, str)]
result = sorted(sub_lst)[0]


print(sub_lst)
['ALLIGATOR', 'BEAR', 'ANTEATER', 'DOG', 'CAT']

print(result)
'ALLIGATOR'

Or you could use min as @TigerhawkT3 suggested in the comment:

print(min(sub_lst))
'ALLIGATOR'
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8  
Or min() instead of sorted()[0]. – TigerhawkT3 Feb 29 at 4:36
3  
Note: materializing the list (necessary for sorting) requires O(N) space and then sorting requires O((N log N) comparisons. On the other hand, using min on a generator expression only requires O(1) space and O(N) comparisons. – Matthieu M. Feb 29 at 8:54

Another way is to filter the main list lst from intergers using filter built-in method:

>>> min(filter(lambda s:isinstance(s, str), lst))
'ALLIGATOR'
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