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I tried this: Capitalize a string. Can anybody provide a simple script/snippet for guideline?

Python documentation has capitalize() function which makes first letter capital. I want something like make_nth_letter_cap(str, n).

9 Answers 9

22

Capitalize n-th character and lowercase the rest as capitalize() does:

def capitalize_nth(s, n):
    return s[:n].lower() + s[n:].capitalize()
14
my_string[:n] + my_string[n].upper() + my_string[n + 1:]

Or a more efficient version that isn't a Schlemiel the Painter's algorithm:

''.join([my_string[:n], my_string[n].upper(), my_string[n + 1:]])
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  • Here is some more information regarding string concatenation in python stackoverflow.com/questions/12169839/…
    – casol
    Jan 3, 2019 at 20:46
  • in your case N=3 and therefore we can't be sure what implementation O(N) or O(N*N) would be more "efficient" (for such a small N). I don't know what is more efficient ''.join([a, b, c]) or a+b+c (or is it even worth it to worry about the time it takes to concatenate a couple of string relative to other parts in a codebase).
    – jfs
    May 2, 2019 at 19:29
2
x = "string"
y = x[:3] + x[3].swapcase() + x[4:]  

Output

strIng  

Code

Keep in mind that swapcase will invert the case whether it is lower or upper.
I used this just to show an alternate way.

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  • I added a note below my answer
    – cppcoder
    Apr 8, 2013 at 4:46
1

This is the comprehensive solution: either you input a single word, a single line sentence or a multi line sentence, the nth letter will be converted to Capital letter and you will get back the converted string as output:

You can use this code:

def nth_letter_uppercase(string,n):
  
  listofwords = string.split()
  sentence_upper = ''

  for word in listofwords:
  
    length = len(word)
      
    if length > (n - 1):
      new_word = word[:n-1] + word[n-1].upper() + word[n:]
      
    else:
      new_word = word
          
    sentence_upper += ' ' + new_word

  return sentence_upper

calling the function defined above (I want to convert 2nd letter of each word to a capital letter):

string = '''nature is beautiful
and i love python'''
nth_letter_uppercase(string,2)

output will be:

'nAture iS bEautiful aNd i lOve pYthon'
0

I know it's an old topic but this might be useful to someone in the future:

def myfunc(str, nth):
new_str = '' #empty string to hold new modified string
for i,l in enumerate(str): # enumerate returns both, index numbers and objects
    if i % nth == 0: # if index number % nth == 0 (even number)
        new_str += l.upper() # add an upper cased letter to the new_str
    else: # if index number nth
        new_str += l # add the other letters to new_str as they are
return new_str # returns the string new_str
0

A simplified answer would be:

    def make_nth_letter_capital(word, n):
        return word[:n].capitalize() + word[n:].capitalize()
1
  • Could you add short explanation what this code does
    – Cray
    Jun 28, 2019 at 7:21
0

You can use:

def capitalize_nth(text, pos):
    before_nth = text[:pos]
    n = text[pos].upper()
    new_pos = pos+1
    after_nth = text[new_pos:]
    word = before_nth + n + after_nth
    print(word)

capitalize_nth('McDonalds', 6)

The outcome is:

'McDonaLds'

I think this is the simplest among every answer up there...

0
def capitalize_n(string, n):
    return string[:n] + string[n].capitalize() + string[n+1:]

This works perfect

0

To capitalise the nth letter in the given string

def nth_letter_uppercase(string,n):

  listofwords = string.split()
  sentence_upper = ''

  for word in listofwords:

    length = len(word)
    

    if length > (n - 1):
      new_word = word[:n-1] + word[n-1].upper() + word[n:]
     

    else:
      new_word = word

    sentence_upper += ' ' + new_word
    H=sentence_upper[n-1:]

  return H

String=str(input("Enter String :"))

nth_letter_uppercase(String,2)  #n is named as 2 here you can use any value you want to change

Then in console screen

Enter String :hi here is your solution
hI hEre iS yUor sOlution

I had just polished the code by deleting the space infront of the string

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