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s = ['my', 'name']

I want to change the 1st letter of each element in to Upper Case.

s = ['My', 'Name']
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5 Answers

You can use the capitalize() method:

s = ['my', 'name']
s = [item.capitalize() for item in s]
print s  # print(s) in Python 3

That will print:

['My', 'Name']
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7  
capitalize does not do what OP asks. capitalize will also make lower cases non-first letters –  lurscher Apr 17 '12 at 3:32
1  
yeah, this answer is misleading: 'naMe'.capitalize() == 'Name' –  Milimetric Jun 5 '13 at 18:03
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Both .capitalize() and .title(), changes the other letters in the string to lower case.

Here is a simple function that only changes the first letter to upper case, and leaves the rest unchanged.

def upcase_first_letter(s):
    return s[0].upper() + s[1:]
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+1 thanks for suggesting inbuilt functions! –  Sagar Hatekar Mar 25 '13 at 18:34
    
This doesn't change the 1st letter of each element in the list shown in the OP's question. –  martineau Jun 5 '13 at 18:41
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You can use 'my'.title() which will return 'My'.

To get over the complete list, simply map over it like this:

>>> map(lambda x: x.title(), s)
['My', 'Name']

Actually, .title() makes all words start with uppercase. If you want to strictly limit it the first letter, use capitalize() instead. (This makes a difference for example in 'this word' being changed to either This Word or This word)

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and also the difference between Frank's and Frank'S -- as is noted here op.to/How.To.Capitalize.First.Letter+ –  Cris Stringfellow Feb 22 '12 at 18:41
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It probably doesn't matter, but you might want to use this instead of the capitalize() or title() string methods because, in addition to uppercasing the first letter, they also lowercase the rest of the string (and this doesn't):

s = map(lambda e: e[:1].upper() + e[1:] if e else '', s)
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+1: nice catch; however, why the if s else '' expression? To avoid a concatenation of empty strings? I believe it's premature optimization. –  tzot Nov 20 '10 at 21:31
    
@ΤΖΩΤΖΙΟΥ: Thanks. That part is there mainly because I just tweaked my answer to a similar question. I prefer to think of it as defensive programming since it can handle a list element being None (so, no, it's not there because of a concerned about the empty string case being less than optimal). –  martineau Nov 21 '10 at 0:12
1  
I think handling None like this is bad practice. I would rather have an exception raised in this case than have the (possibly wrong) blank string silently passed. –  beardtree Aug 13 '12 at 20:52
    
@MindVirus: If you want an exception for None values you could use lambda e: e[:1].upper() + e[1:] if e or e is None else ''. –  martineau Aug 13 '12 at 22:02
    
@martineau, my whole gripe is that you're attempting to circumvent duck typing. The correct solution, in my opinion, is lambda e: e[:1].upper() + e[1:]. –  beardtree Aug 15 '12 at 15:05
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You can use

for i in range(len(s)):
   s[i]=s[i].capitalize()
print s
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1  
You don't need temp, it doesn't doing anything and so is the same as list[i]=list[i].capitalize() -- which would only work if the OP's list named s was renamed list -- but that would be a bad practice because doing so would hide the built-in function/type of the same name. Not sure why the trailing comma on the print statement was put there... –  martineau Nov 19 '10 at 11:41
    
it was typo mistake to put comma there. –  kracekumar Nov 19 '10 at 11:50
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