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If i have a string

ex = 'aaatttgggatgaATG'

and I want to find the index where the lowercase ends

so in this case it would be

indx_lower = 13

how would i get that value ?

would I have to do a for loop where i checked the boolean for each element in the string ?

like this ?

total_indx = range(0,len(ex))

for p,k in zip(ex,total_indx):
    if upper print k ? 

ya i don't know how i would do this . . .

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The last lowercase letter is at index 12. Remember they start at 0 –  gnibbler Feb 13 '13 at 22:20
    
Maybe the answer of this question will help you stackoverflow.com/questions/8204712/… –  UnLiMiTeD Feb 13 '13 at 22:23

5 Answers 5

up vote 2 down vote accepted

The best way is not to use a for loop:

>>> print re.search("[A-Z]", "aaatttgggatgaATG").start()
13

re.search() returns a MatchObject object, and you can ask where it begins by calling its start() method. (But if there is no match, re.search() will return None).

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next(i for i,j in enumerate(ex) if j.isupper()) - 1
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You can use re

import re

ex = 'aaatttgggatgaATG'

print ex.index(re.search('[A-Z]', ex).group())
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what is the 's' towards the end ? –  O.rka Feb 13 '13 at 22:21
    
sorry that was the string, but i changed it to 'ex' –  yentup Feb 13 '13 at 22:22
for x in range(0, len(ex)):
    if ex[x].isupper():
        print x
        break
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enumerate would be more idiomatic than range here. –  Joel Cornett Feb 13 '13 at 22:22
>>> import re
>>> ex = 'aaatttgggatgaATG'
>>> re.search("[A-Z]", ex).start()
13
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