19

I am trying to figure out how I can count the uppercase letters in a string.

I have only been able to count lowercase letters:

def n_lower_chars(string):
    return sum(map(str.islower, string))

Example of what I am trying to accomplish:

Type word: HeLLo                                        
Capital Letters: 3

When I try to flip the function above, It produces errors:

def n_upper_chars(string):
    return sum(map(str.isupper, string))
  • 1
    Have you tried anything? – Rohit Jain Aug 8 '13 at 15:19
  • First, welcome to stackoverflow. Even though your question is clear, you not provided any code. Google it first and try to write some code. If are stuck, then post the code here. – Anand Murali Aug 8 '13 at 15:40
  • Its very easy, asking such type of question is just showing that you hadn't put your effort. Not even on google. – Sankumarsingh Aug 8 '13 at 15:46
  • I understand, I am still learning the basics. I couldn't find resources on google. I didn't even know where to begin all I had was input() and print() – Stevenson Aug 8 '13 at 15:56
  • 1
    @Stevenson: Begin by reading the documentation. The tutorial might be the right way to go. – Matthias Aug 8 '13 at 16:33
40

You can do this with sum, a generator expression, and str.isupper:

message = input("Type word: ")

print("Capital Letters: ", sum(1 for c in message if c.isupper()))

See a demonstration below:

>>> message = input("Type word: ")
Type word: aBcDeFg
>>> print("Capital Letters: ", sum(1 for c in message if c.isupper()))
Capital Letters:  3
>>>
  • Not that it matters that much, but why not %d instead of %s ? – Jon Clements Aug 8 '13 at 15:22
  • 1
    %s calls str() (so overhead) on it's argument... %d is the same as %i and 1) makes more sense for an integer argument, and 2) it's easier to adjust to throw in %03d etc... – Jon Clements Aug 8 '13 at 15:25
  • nice! but what about: sum(1 for x in message if x.isupper() ) ? I know that True is '1', but seems more elegant to sum integers but booleans, or not? – dani herrera Aug 8 '13 at 15:27
  • Yup - I would also go for the (sum 1 for x... approach to make it explicit rather than counting on the nature that booleans happen to have (due to historic reasons) 0/1 integer values ;) – Jon Clements Aug 8 '13 at 15:41
  • 2
    Since the OP is clearly new to python, shouldn't we be showing them the newer string formatting method ('{}'.format()) instead of the old method that is set to be depreciated in some future version? – SethMMorton Aug 8 '13 at 16:08
6

Using len and filter :

import string
value = "HeLLo Capital Letters"
len(filter(lambda x: x in string.uppercase, value))
>>> 5
  • @Keyser : correct, I read too fast and though Capital Letters was in the example. (which it appears to be a few minutes ago) – njzk2 Aug 8 '13 at 15:27
4

You can use re:

import re
string = "Not mAnY Capital Letters"
len(re.findall(r'[A-Z]',string))

5

2
from string import ascii_uppercase
count = len([letter for letter in instring if letter in ascii_uppercase])

This is not the fastest way, but I like how readable it is. Another way, without importing from string and with similar syntax, would be:

count = len([letter for letter in instring if letter.isupper()])
  • I agree. With this I can see whats going on. – Stevenson Aug 8 '13 at 21:10
  • @Stevenson You can also use uppercase instead of ascii_uppercase if you find that more readable too. You can read about the differences between the two here. – mr2ert Aug 8 '13 at 21:44
  • Awesome..That give me a better understanding! great link – Stevenson Aug 8 '13 at 21:56
1

This works

s = raw_input().strip()
count = 1
for i in s:
    if i.isupper():
        count = count + 1
print count
0

The (slightly) fastest method for this actually seems to be membership testing in a frozenset

import string
message='FoObarFOOBARfoobarfooBArfoobAR'
s_upper=frozenset(string.uppercase)

%timeit sum(1 for c in message if c.isupper())
>>> 100000 loops, best of 3: 5.75 us per loop

%timeit sum(1 for c in message if c in s_upper)
>>> 100000 loops, best of 3: 4.42 us per loop

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