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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.

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1  
Do you know the str.replace()BIF? –  LarsVegas Oct 4 '12 at 9:00
    
Yes, as I explained in the question. I also explained why that does not work for me. –  The Unfun Cat Oct 4 '12 at 9:02
    
Use str.find() instead to find the position of the semicolon, then use slicing to extract the substring. –  LarsVegas Oct 4 '12 at 9:05
    
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 '12 at 9:07
1  
@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 '12 at 9:14

4 Answers 4

up vote 13 down vote accepted

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.

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Dang! Beat me to it. –  Simon Peverett Oct 4 '12 at 9:03
    
Downvote, this would replace all semicolons, not just the ones at the positions I want to replace. But I appreciate the effort –  The Unfun Cat Oct 4 '12 at 9:03
    
@TheUnfunCat: And what do you think the OP is trying to do then? He loops over all characters in the string, and replaces any semicolon with a colon.. –  Martijn Pieters Oct 4 '12 at 9:03
    
Sorry, did not mean to be rude. I have strings that might look like this ";;Hei;" And I only want to replace the second semicolon- therefore I want to use indexes –  The Unfun Cat Oct 4 '12 at 9:05
1  
Ah, of course, you are the OP, and edited the question a little more since I read it. Updated the answer a little. –  Martijn Pieters Oct 4 '12 at 9:06

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
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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.

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2  
This will work (+1), but is quite inefficient, as you are creating a new string every time you encounter a ';' –  inspectorG4dget Oct 4 '12 at 9:08
    
@inspectorG4dget, you're right, its a quick and dirty - one time only - solution. –  Vic Oct 4 '12 at 9:13
    
Actually, @inspectorG4dget, doesn't the accepted answer suffer from the same problem? –  Vic Oct 4 '12 at 9:38
    
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. –  inspectorG4dget Oct 4 '12 at 17:43

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)

Hope this helps

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