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How do we replace last character of a string?

SetCookie('pre_checkbox', "111111111111 11   ")
    checkbox_data1 = GetCookie('pre_checkbox');

    if(checkbox_data1[checkbox_data1.length-1]==" "){
         checkbox_data1[checkbox_data1.length-1]= '1';
         console.log(checkbox_data1+"after");

    }

out put on console : 111111111111 11   after

Last character was not replaced by '1' dont know why

also tried : checkbox_data1=checkbox_data1.replace(checkbox_data1.charAt(checkbox_data1.length-1), "1");

could some one pls help me out

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5  
Strings are immutable. –  Rob W Jul 31 '13 at 14:43
    
immutable only means a new memory location is allocated for a changed string. Doesnt mean you cannot change a string. –  Sujesh Arukil Jul 31 '13 at 14:44
1  
@SujeshArukil: "Doesnt mean you cannot change a string"...? That is precisely what immutable means. You can assign a different string, but you can't change the original. And JS won't do the reassignment for you except in certain cases (like str += something), as pass-by-value languages like JS won't let the callee just up and change the caller's variables. –  cHao Jul 31 '13 at 14:47
1  
that is correct. All I meant was, the op wants to replace a character. What you get back would be a new string, not the modified original string. The original string cannot be updated, but a new string with the value replaced can be created. –  Sujesh Arukil Jul 31 '13 at 14:54
1  
@SujeshArukil: If you call a function that does the replacement and returns you a new string, or use + to create a string with additional chars, then yes. You can assign it to the variable/property that held the original, and it looks changed. But for example, str[0] = 'x' will not work; it just silently fails, as a string's indexes are not writable. It has to be done another way. –  cHao Jul 31 '13 at 15:07

6 Answers 6

up vote 1 down vote accepted

Simple regex replace should do what you want:

checkbox_data1 = checkbox_data1.replace(/.$/,1);

Generic version:

mystr = mystr.replace(/.$/,"replacement");

Remember that just calling str.replace() doesn't apply the change to str unless you do str = str.replace() - that is, apply the replace() function's return value back to the variable str

share|improve this answer
1  
Just to be clear: It's not the regexp that solves the problem, but the assignment of the replace's return value to the original variable name. –  Rob W Jul 31 '13 at 14:47
    
@RobW Yes, I have clarified that fact with a final sentence –  SmokeyPHP Jul 31 '13 at 14:48
    
@SmokeyPHP ..just an extension to this question ..... say if i want to replace a space which is in the middle say at 3rd position for example : "ab c d" ...how do we do that ? –  user2569524 Jul 31 '13 at 15:15
    
@user2569524 str = str.replace(/^(..)./,'$1'+'replacement') if the third is to be replaced -- ^ is the start of the string, . means any character, and the $1 is putting back into the string the 2 characters matched in (..) –  SmokeyPHP Jul 31 '13 at 16:06
1  
@user2569524 Sorry just noticed you specified a space, previous code should be str = str.replace(/^(..) /,'$1'+'replacement') –  SmokeyPHP Jul 31 '13 at 16:12

use regex...

var checkbox_data1 = '111111111111 11   ';
checkbox_data1.replace(/ $/,'$1');
console.log(checkbox_data1);

This will replace the last space in the string.

share|improve this answer

You have some space in our string please try it

checkbox_data1=checkbox_data1.replace(checkbox_data1.charAt(checkbox_data1.length-4), "1   ");

then add the space in

console.log(checkbox_data1+"   after");
share|improve this answer

This is also a way, without regexp :)

var string = '111111111111 11   ';
var tempstr = '';
if (string[string.length - 1] === ' ') {
    for (i = 0; i < string.length - 1; i += 1) {
        tempstr += string[i];
    }
    tempstr += '1';
}
share|improve this answer
    
What is your intention? abcdefghdesiredValues is not the desired result. –  Halcyon Jul 31 '13 at 14:57
    
I guess he can get the desired result out from the current code. –  sla55er Jul 31 '13 at 15:03
    
Edited. For the desired result thanks to @Frits van Campen –  sla55er Jul 31 '13 at 15:06
    
On console.log it appears (string - 1) + '1'. I don't know what you mean by string+'1'. You can log this code and see the result. –  sla55er Jul 31 '13 at 15:13
1  
Why would you bother tacking on each character like this, when you could just say str = str.substring(0, str.length - 1) + '1'? Read about Schlemiel the Painter's Algorithm. –  cHao Jul 31 '13 at 15:17

You can try this,

var checkbox_data1=checkbox_data1.replace(checkbox_data1.slice(-1),"+");

This will replace the last character of Your string with "+".

share|improve this answer
    
Not quite. It'll replace the first instance of the string's last character. If the string is '11111111 111 ', the first space (that is, the 9th character in the string) is what will get replaced. –  cHao Jul 31 '13 at 18:40

As Rob said, strings are immutable. Ex:

var str = "abc";
str[0] = "d";
console.log(str); // "abc" not "dbc"

You could do:

var str = "111 ";
str = str.substr(0, str.length-1) + "1"; // this makes a _new_ string
share|improve this answer
    
Note, IE doesn't support negative numbers with substr. str.substr(0, -1) gives me "". (Plus, substr isn't defined by ECMAScript anyway; it's just a common addition. If you're going to start at 0, then substring does the same thing and is standardized.) –  cHao Jul 31 '13 at 15:26

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