192

This simple code that simply tries to replace semicolons (at i-specified postions) by colons does not work:

for i in range(0,len(line)):
     if (line[i]==";" and i in rightindexarray):
         line[i]=":"

It gives the error

line[i]=":"
TypeError: 'str' object does not support item assignment

How can I work around this to replace the semicolons by colons? Using replace does not work as that function takes no index- there might be some semicolons I do not want to replace.

Example

In the string I might have any number of semicolons, eg "Hei der! ; Hello there ;!;"

I know which ones I want to replace (I have their index in the string). Using replace does not work as I'm not able to use an index with it.

8
  • 1
    Do you know the str.replace()BIF?
    – LarsVegas
    Oct 4, 2012 at 9:00
  • 2
    Yes, as I explained in the question. I also explained why that does not work for me. Oct 4, 2012 at 9:02
  • Use str.find() instead to find the position of the semicolon, then use slicing to extract the substring.
    – LarsVegas
    Oct 4, 2012 at 9:05
  • 1
    You need to be more specific in what constitutes a valid replacement then; your non-working code would replace all semicolons in the string if it were mutable.
    – Martijn Pieters
    Oct 4, 2012 at 9:07
  • 2
    @TheUnfunCat: How are you getting the indices in the first place? There might be a better solution to the whole thing (e.g. regexes)
    – nneonneo
    Oct 4, 2012 at 9:14

17 Answers 17

322

Strings in python are immutable, so you cannot treat them as a list and assign to indices.

Use .replace() instead:

line = line.replace(';', ':')

If you need to replace only certain semicolons, you'll need to be more specific. You could use slicing to isolate the section of the string to replace in:

line = line[:10].replace(';', ':') + line[10:]

That'll replace all semi-colons in the first 10 characters of the string.

2
  • Does this work with unicode characters? It doesn't seem to work for me. Jan 17, 2019 at 10:23
  • 2
    @Steven2163712: All text is Unicode, so yes, this works fine with all characters. Without a concrete example I can't help you fix your specific problem.
    – Martijn Pieters
    Jan 17, 2019 at 11:10
71

You can do the below, to replace any char with a respective char at a given index, if you wish not to use .replace()

word = 'python'
index = 4
char = 'i'

word = word[:index] + char + word[index + 1:]
print word

o/p: pythin
3
  • 9
    This should be the accepted answer, directly answers the question. This is the easiest method I've found so far.
    – Flare Cat
    Dec 23, 2015 at 11:40
  • What if index+1 is out of range?
    – stochastic
    Dec 11, 2020 at 15:00
  • If index >= len(word), you can just ignore the substitution.
    – Dineshs91
    Feb 1, 2021 at 7:42
24

Turn the string into a list; then you can change the characters individually. Then you can put it back together with .join:

s = 'a;b;c;d'
slist = list(s)
for i, c in enumerate(slist):
    if slist[i] == ';' and 0 <= i <= 3: # only replaces semicolons in the first part of the text
        slist[i] = ':'
s = ''.join(slist)
print s # prints a:b:c;d
6

If you want to replace a single semicolon:

for i in range(0,len(line)):
 if (line[i]==";"):
     line = line[:i] + ":" + line[i+1:]

Havent tested it though.

4
  • 3
    This will work (+1), but is quite inefficient, as you are creating a new string every time you encounter a ';' Oct 4, 2012 at 9:08
  • @inspectorG4dget, you're right, its a quick and dirty - one time only - solution.
    – Vic
    Oct 4, 2012 at 9:13
  • Actually, @inspectorG4dget, doesn't the accepted answer suffer from the same problem?
    – Vic
    Oct 4, 2012 at 9:38
  • 2
    line.replace(src,dst) does not. line[:10].replace(src,dst) + line[10:] does, but in much less severity. Suppose line = ';'*12. Your solution will build a new string 12 times. The accepted solution will do so once. Oct 4, 2012 at 17:43
3

You cannot simply assign value to a character in the string. Use this method to replace value of a particular character:

name = "India"
result=name .replace("d",'*')

Output: In*ia

Also, if you want to replace say * for all the occurrences of the first character except the first character, eg. string = babble output = ba**le

Code:

name = "babble"
front= name [0:1]
fromSecondCharacter = name [1:]
back=fromSecondCharacter.replace(front,'*')
return front+back
3

This should cover a slightly more general case, but you should be able to customize it for your purpose

def selectiveReplace(myStr):
    answer = []
    for index,char in enumerate(myStr):
        if char == ';':
            if index%2 == 1: # replace ';' in even indices with ":"
                answer.append(":")
            else:
                answer.append("!") # replace ';' in odd indices with "!"
        else:
            answer.append(char)
    return ''.join(answer)
2

to use the .replace() method effectively on string without creating a separate list for example take a look at the list username containing string with some white space, we want to replace the white space with an underscore in each of the username string.

names = ["Joey Tribbiani", "Monica Geller", "Chandler Bing", "Phoebe Buffay"]
usernames = []

to replace the white spaces in each username consider using the range function in python.

for name in names:
    usernames.append(name.lower().replace(' ', '_'))

print(usernames)

Or if you want to use one list:

for user in range(len(names)):
   names[user] = names[user].lower().replace(' ', '_')

print(names)
0

If you are replacing by an index value specified in variable 'n', then try the below:

def missing_char(str, n):
 str=str.replace(str[n],":")
 return str
3
  • 2
    The problem with this solution is it would replace all occurrences of the character at position n and asker only wants to replace that specific occurrence
    – shivram.ss
    Aug 2, 2016 at 15:42
  • Exactly, poor solution! Dec 5, 2017 at 10:55
  • for replace just 1 character by an index check my answer Jun 17, 2022 at 1:50
0

How about this:

sentence = 'After 1500 years of that thinking surpressed'

sentence = sentence.lower()

def removeLetter(text,char):

    result = ''
    for c in text:
        if c != char:
            result += c
    return text.replace(char,'*')
text = removeLetter(sentence,'a')
0

To replace a character at a specific index, the function is as follows:

def replace_char(s , n , c):
    n-=1
    s = s[0:n] + s[n:n+1].replace(s[n] , c) + s[n+1:]
    return s

where s is a string, n is index and c is a character.

0

I wrote this method to replace characters or replace strings at a specific instance. instances start at 0 (this can easily be changed to 1 if you change the optional inst argument to 1, and test_instance variable to 1.

def replace_instance(some_word, str_to_replace, new_str='', inst=0):
    return_word = ''
    char_index, test_instance = 0, 0
    while char_index < len(some_word):
        test_str = some_word[char_index: char_index + len(str_to_replace)]
        if test_str == str_to_replace:
            if test_instance == inst:
                return_word = some_word[:char_index] + new_str + some_word[char_index + len(str_to_replace):]
                break
            else:
                test_instance += 1
        char_index += 1
    return return_word
0

You can do this:

string = "this; is a; sample; ; python code;!;" #your desire string
result = ""
for i in range(len(string)):
    s = string[i]
    if (s == ";" and i in [4, 18, 20]): #insert your desire list
        s = ":"
    result = result + s
print(result)
0
names = ["Joey Tribbiani", "Monica Geller", "Chandler Bing", "Phoebe Buffay"]

usernames = []

for i in names:
    if " " in i:
        i = i.replace(" ", "_")
    print(i)

Output: Joey_Tribbiani Monica_Geller Chandler_Bing Phoebe_Buffay

1
  • 1
    Thanks, Muhammad I am a beginner I will do my best.
    – Kasem777
    Apr 10, 2020 at 10:52
0

My problem was that I had a list of numbers, and I only want to replace a part of that number, soy I do this:

original_list = ['08113', '09106', '19066', '17056', '17063', '17053']

# With this part I achieve my goal
cves_mod = []
for i in range(0,len(res_list)):
    cves_mod.append(res_list[i].replace(res_list[i][2:], '999'))
cves_mod

# Result
cves_mod
['08999', '09999', '19999', '17999', '17999', '17999']
0

Even more simpler:

input = "a:b:c:d"
output =''
for c in input:
    if c==':':
        output +='/'
    else:
        output+=c
print(output)

output: a/b/c/d

0

i tried using this instead as a 2 in 1

usernames = ["Joey Tribbiani", "Monica Geller", "Chandler Bing", "Phoebe Buffay"]

# write your for loop here
for user in range(0,len(usernames)):
    usernames[user] = usernames[user].lower().replace(' ', '_')

print(usernames)
0

Cleaner way to replace character at a specific index

def replace_char(str , index , c):
    return str[:index]+c+str[index+1:]

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.