I am so close to getting this, but it just isn't right.
All I would like to do is remove the character r from a string.
The problem is, there is more than one instance of r in the string.
However, it is always the character at index 4 (so the 5th character).
Example string: crt/r2002_2
What I want: crt/2002_2
This replace function removes both r
mystring.replace(/r/g, '')
Produces: ct/2002_2
I tried this function:
String.prototype.replaceAt = function (index, char) {
return this.substr(0, index) + char + this.substr(index + char.length);
}
mystring.replaceAt(4, '')
It only works if I replace it with another character. It will not simply remove it.
Any thoughts?
var mystring = "crt/r2002_2";
mystring = mystring.replace('/r','/');
will replace /r with / using String.prototype.replace.
Alternatively you could use regex with a global flag (as suggested by Erik Reppen & Sagar Gala, below) to replace all occurrences with
mystring = mystring.replace(/\/r/g, '/');
EDIT:
Since everyone's having so much fun here and user1293504 doesn't seem to be coming back any time soon to answer clarifying questions, here's a method to remove the Nth character from a string:
String.prototype.removeCharAt = function (i) {
var tmp = this.split(''); // convert to an array
tmp.splice(i - 1 , 1); // remove 1 element from the array (adjusting for non-zero-indexed counts)
return tmp.join(''); // reconstruct the string
}
console.log("crt/r2002_2".removeCharAt(4));
Since user1293504 used the normal count instead of a zero-indexed count, we've got to remove 1 from the index, if you wish to use this to replicate how charAt works do not subtract 1 from the index on the 3rd line and use tmp.splice(i, 1) instead.
A simple functional javascript way would be
mystring = mystring.split('/r').join('/')
simple, fast, it replace globally and no need for functions or prototypes
There's always the string functions, if you know you're always going to remove the fourth character:
str.slice(0, 4) + str.slice(5, str.length)
Your first func is almost right. Just remove the 'g' flag which stands for 'global' (edit) and give it some context to spot the second 'r'.
Edit: didn't see it was the second 'r' before so added the '/'. Needs \/ to escape the '/' when using a regEx arg. Thanks for the upvotes but I was wrong so I'll fix and add more detail for people interested in understanding the basics of regEx better but this would work:
mystring.replace(/\/r/, '/')
Now for the excessive explanation:
When reading/writing a regEx pattern think in terms of: <a character or set of charcters> followed by <a character or set of charcters> followed by <...
In regEx <a character or set of charcters> could be one at a time:
/each char in this pattern/
So read as e, followed by a, followed by c, etc...
Or a single <a character or set of charcters> could be characters described by a character class:
/[123!y]/
//any one of these
/[^123!y]/
//anything but one of the chars following '^' (very useful/performance enhancing btw)
Or expanded on to match a quantity of characters (but still best to think of as a single element in terms of the sequential pattern):
/a{2}/
//precisely two 'a' chars - matches identically as /aa/ would
/[aA]{1,3}/
//1-3 matches of 'a' or 'A'
/[a-zA-Z]+/
//one or more matches of any letter in the alphabet upper and lower
//'-' denotes a sequence in a character class
/[0-9]*/
//0 to any number of matches of any decimal character (/\d*/ would also work)
So smoosh a bunch together:
var rePattern = /[aA]{4,8}(Eat at Joes|Joes all you can eat)[0-5]+/g
var joesStr = 'aaaAAAaaEat at Joes123454321 or maybe aAaAJoes all you can eat098765';
joesStr.match(rePattern);
//returns ["aaaAAAaaEat at Joes123454321", "aAaAJoes all you can eat0"]
//without the 'g' after the closing '/' it would just stop at the first match and return:
//["aaaAAAaaEat at Joes123454321"]
And of course I've over-elaborated but my point was simply that this:
/cat/
is a series of 3 pattern elements (a thing followed by a thing followed by a thing).
And so is this:
/[aA]{4,8}(Eat at Joes|Joes all you can eat)[0-5]+/
As wacky as regEx starts to look, it all breaks down to series of things (potentially multi-character things) following each other sequentially. Kind of a basic point but one that took me a while to get past so I've gone overboard explaining it here as I think it's one that would help the OP and others new to regEx understand what's going on. The key to reading/writing regEx is breaking it down into those pieces.
Just fix your replaceAt:
String.prototype.replaceAt = function(index, charcount) {
return this.substr(0, index) + this.substr(index + charcount);
}
mystring.replaceAt(4, 1);
I'd call it removeAt instead. :)
For global replacement of '/r', this code worked for me.
mystring = mystring.replace(/\/r/g,'');
This is improvement of simpleigh answer (omit length)
s.slice(0, 4) + s.slice(5)
let s = "crt/r2002_2";
let o = s.slice(0, 4) + s.slice(5);
let delAtIdx = (s, i) => s.slice(0, i) + s.slice(i + 1); // this function remove letter at index i
console.log(o);
console.log(delAtIdx(s, 4));
let str = '1234567';
let index = 3;
str = str.substring(0, index) + str.substring(index + 1);
console.log(str) // 123567 - number "4" under index "3" is removed
return this.substr(0, index) + char + this.substr(index + char.length);
char.length is zero. You need to add 1 in this case in order to skip character.
Maybe I'm a noob, but I came across these today and they all seem unnecessarily complicated.
Here's a simpler (to me) approach to removing whatever you want from a string.
function removeForbiddenCharacters(input) {
let forbiddenChars = ['/', '?', '&','=','.','"']
for (let char of forbiddenChars){
input = input.split(char).join('');
}
return input
}
Create function like below
String.prototype.replaceAt = function (index, char) {
if(char=='') {
return this.slice(0,index)+this.substr(index+1 + char.length);
} else {
return this.substr(0, index) + char + this.substr(index + char.length);
}
}
To replace give character like below
var a="12346";
a.replaceAt(4,'5');
and to remove character at definite index, give second parameter as empty string
a.replaceAt(4,'');
If it is always the 4th char in yourString you can try:
yourString.replace(/^(.{4})(r)/, function($1, $2) { return $2; });
It only works if I replace it with another character. It will not simply remove it.
This is because when char is equal to "", char.length is 0, so your substrings combine to form the original string. Going with your code attempt, the following will work:
String.prototype.replaceAt = function (index, char) {
return this.substr(0, index) + char + this.substr(index + 1);
// this will 'replace' the character at index with char ^
}
DEMO
You can use this: if ( str[4] === 'r' ) str = str.slice(0, 4) + str.slice(5)
Explanation:
if ( str[4] === 'r' )
Check if the 5th character is a 'r'
str.slice(0, 4)
Slice the string to get everything before the 'r'
+ str.slice(5)
Add the rest of the string.
Minified: s=s[4]=='r'?s.slice(0,4)+s.slice(5):s [37 bytes!]
DEMO:
function remove5thR (s) {
s=s[4]=='r'?s.slice(0,4)+s.slice(5):s;
console.log(s); // log output
}
remove5thR('crt/r2002_2') // > 'crt/2002_2'
remove5thR('crt|r2002_2') // > 'crt|2002_2'
remove5thR('rrrrr') // > 'rrrr'
remove5thR('RRRRR') // > 'RRRRR' (no change)
If you just want to remove single character and
If you know index of a character you want to remove, you can use following function:
/**
* Remove single character at particular index from string
* #param {*} index index of character you want to remove
* #param {*} str string from which character should be removed
*/
function removeCharAtIndex(index, str) {
var maxIndex=index==0?0:index;
return str.substring(0, maxIndex) + str.substring(index, str.length)
}
I dislike using replace function to remove characters from string. This is not logical to do it like that. Usually I program in C# (Sharp), and whenever I want to remove characters from string, I use the Remove method of the String class, but no Replace method, even though it exists, because when I am about to remove, I remove, no replace. This is logical!
In Javascript, there is no remove function for string, but there is substr function. You can use the substr function once or twice to remove characters from string. You can make the following function to remove characters at start index to the end of string, just like the c# method first overload String.Remove(int startIndex):
function Remove(str, startIndex) {
return str.substr(0, startIndex);
}
and/or you also can make the following function to remove characters at start index and count, just like the c# method second overload String.Remove(int startIndex, int count):
function Remove(str, startIndex, count) {
return str.substr(0, startIndex) + str.substr(startIndex + count);
}
and then you can use these two functions or one of them for your needs!
Example:
alert(Remove("crt/r2002_2", 4, 1));
Output: crt/2002_2
Achieving goals by doing techniques with no logic might cause confusions in understanding of the code, and future mistakes, if you do this a lot in a large project!
The following function worked best for my case:
public static cut(value: string, cutStart: number, cutEnd: number): string {
return value.substring(0, cutStart) + value.substring(cutEnd + 1, value.length);
}
The shortest way would be to use splice
var inputString = "abc";
// convert to array and remove 1 element at position 4 and save directly to the array itself
let result = inputString.split("").splice(3, 1).join();
console.log(result);
This problem has many applications. Tweaking #simpleigh solution to make it more copy/paste friendly:
function removeAt( str1, idx) {
return str1.substr(0, idx) + str1.substr(idx+1)
}
console.log(removeAt('abbcdef', 1)) // prints: abcdef
Using [index] position for removing a specific char (s)
String.prototype.remplaceAt = function (index, distance) {
return this.slice(0, index) + this.slice(index + distance, this.length);
};
credit to https://stackoverflow.com/users/62576/ken-white
So basically, another way would be to:
Convert the string to an array using Array.from() method.
Loop through the array and delete all r letters except for the one with index 1.
Convert array back to a string.
let arr = Array.from("crt/r2002_2");
arr.forEach((letter, i) => { if(letter === 'r' && i !== 1) arr[i] = "" });
document.write(arr.join(""));
In C# (Sharp), you can make an empty character as '\0'.
Maybe you can do this:
String.prototype.replaceAt = function (index, char) {
return this.substr(0, index) + char + this.substr(index + char.length);
}
mystring.replaceAt(4, '\0')
Search on google or surf on the interent and check if javascript allows you to make empty characters, like C# does. If yes, then learn how to do it, and maybe the replaceAt function will work at last, and you'll achieve what you want!
Finally that 'r' character will be removed!
Related
I've just started coding..I'm a super beginner and have no idea about regex yet so for now I'd rather not use it. This is an exercise I'm trying to solve. The problem is that when a word contains matching characters, the first character gets the lower case, but what I actually want is the last character of the word to become small.
I don't really require a solution for the problem. Instead I'd rather have some insight on what I'm doing wrong and maybe direct me to the right path :)
function alienLanguage(str) {
let bigWords = str.toUpperCase().split(" ");
let lastLetterSmall = [];
bigWords.forEach(words => {
lastLetterSmall
.push(words
.replace(words
.charAt(words.length -1), words.charAt(words.length -1).toLowerCase()));
});
console.log(lastLetterSmall.join(' '));
}
alienLanguage("My name is John");
alienLanguage("this is an example");
alienLanguage("Hello World");
alienLanguage("HELLO WORLD");
Since you only really want to work with indicies of the string - you don't need to replace anything dynamically other than the last index - replace won't work well, since if you pass it a string, it will only replace the first matching letter. For example:
'foo'.replace('o', 'x')
results in 'fxo', because the first o (and only the first o) gets replaced.
For your code, instead of replace, just concatenate the two parts of the string together: the part from index 0 to next-to-last index, and the character at the last index with toLowerCase() called on it:
function alienLanguage(str) {
const result = str
.toUpperCase()
.split(" ")
.map(line => line.slice(0, line.length - 1) + line[line.length - 1].toLowerCase())
.join(' ');
console.log(result);
}
alienLanguage("My name is John");
alienLanguage("this is an example");
alienLanguage("Hello World");
alienLanguage("HELLO WORLD");
Could you please explain how this piece of code works?
String.prototype.replaceAt = function(index, character) {
return this.substr(0, index) + character + this.substr(index+character.length);
};
function titleCase(str) {
var newTitle = str.split(' ');
var updatedTitle = [];
for (var st in newTitle) {
updatedTitle[st] = newTitle[st].toLowerCase().replaceAt(0, newTitle[st].charAt(0).toUpperCase());
}
return updatedTitle.join(' ');
}
titleCase("I'm a little tea pot");
Specifically, what exactly is passed onto to replaceAt (I get that it's passed an index, and a character that's converted to lowercase), but what does replaceAt DO with it?
So, in the first iteration of the loop, it's passed replaceAt(0, i) right? Then what does replaceAt do with this? I just don't get this line:
this.substr(0, index) + character + this.substr(index+character.length)
I've already read this: https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/String/substr. I'm here because I don't understand that return statement and what exactly it's doing.
Suppose you execute "thisisatest".replaceAt(3, "h").
Then...
this.substr(0, index) returns "thi" : ie the first 3 characters of "thisisatest"
character returns "h"
this.substr(index+character.length) returns "isatest" : ie all characters of "thisisatest", starting at position 4
So, when you combine this, you get "thihisatest"
Lets imagine this easy case:
"0123456789". replaceAt(2/*index*/,"000"/*character*/)
Then this happens:
this.substr(0, index/*2*/)//"01"
+ character //"000"
+ this.substr(index/*2*/+character.length/*3*/)//"56789"
Output:
0100056789
The replaceAt function simply takes the index of a character (0 in this case) and replaces it with another character (in this case the uppercase version of the original character. This specific function is just Title Casing a word by replacing the first character with the same character in uppercase.
The line that your questioning, takes a substring of the word before the character at the specificied index this.substr(0,index) since substr is non-inclusive of the last index, appends the specified character + character, and appends a substr of the rest of the word + this.substr(index+character.length)
Example 'testing'.replaceAt(0,testing.charAt(0).toUpperCase());
= '' + 'T' + 'esting' = Testing;
this.substr is a function that operates on a string and returns a 'sub string' of the string. See a tutorial here: https://www.w3schools.com/jsref/jsref_substr.asp
So what replaceAt is doing is operating on a string and replacing the character at the target index, index, with the new substring, character. Indeed the passed character does not have to be only one character but could be multiple, like abcd. It is rather poorly named.
For more detail, using substr(), it is taking the first part of the string from index 0 to index, adding the 'character/string' passed to the function, and then taking the rest of the string from index index+character.length onwards. Note that substr has an optional parameter which is used in the first call (this.substr(0,index)).
I have code like this:
string.replace(/(.|\r\n)\x08/g, '');
that replaces backspace and one character before it, but it will not work for cases where there are more then one backspace in a row, like 'foo\b\b'. How can I remove characters that are before backspaces so I get string 'f'.
You can try this:
str="abc\b\bdefg";
while(str.match(/\w\x08/)){
str=str.replace(/\w\x08/g,"");
}
It will keep removing a "character + back space" sequence, while they are still in the string.
'+' means '1 or more', so try
string.replace(/(.|\r\n)+\x08/g, '')
If you just want to delete one or two 0x08 characters in the string and the character before them just change the regex to
/(.|\r\n)\x08{1,2}/g
But I think what you want to do is delete 1 character per 0x08 you can do this like this
/((.|\r\n)\x08|(.|\r\n){2}\x08{2})/g
for two. If you want to do it for more I think it will just be faster to write a function that goes over the string char by char and parses it one iteration
function removeBackslashes(str){
var result = "";
for(var i in str){
if(str.charCodeAt(i) == 8)
{
result = result.slice(0, -1);
}else{
result += str.charAt(i);
}
}
return result;
}
var b = removeBackslashes('foo\b\basd');
console.log(b, b.length);
I came up with this:
'foo\b\b'.replace(/((?:[^\x08]|\r\n)+)(\x08+)/g, function(_, chars, backspaces) {
return chars.replace(new RegExp('(.|\r\n){' + backspaces.length + '}$'), '');
});
I have a string and want to add a colon after every 2nd character (but not after the last set), eg:
12345678
becomes
12:34:56:78
I've been using .replace(), eg:
mystring = mystring.replace(/(.{2})/g, NOT SURE WHAT GOES HERE)
but none of the regex for : I've used work and I havent been able to find anything useful on Google.
Can anyone point me in the right direction?
Without the need to remove any trailing colons:
mystring = mystring.replace(/..\B/g, '$&:')
\B matches a zero-width non-word boundary; in other words, when it hits the end of the string, it won't match (as that is considered to be a word boundary) and therefore won't perform the replacement (hence no trailing colon, either).
$& contains the matched substring (so you don't need to use a capture group).
mystring = mystring.replace(/(..)/g, '$1:').slice(0,-1)
This is what comes to mind immediately. I just strip off the final character to get rid of the colon at the end.
If you want to use this for odd length strings as well, you just need to make the second character optional. Like so:
mystring = mystring.replace(/(..?)/g, '$1:').slice(0,-1)
If you're looking for approach other than RegEx, try this:
var str = '12345678';
var output = '';
for(var i = 0; i < str.length; i++) {
output += str.charAt(i);
if(i % 2 == 1 && i > 0) {
output += ':';
}
}
alert(output.substring(0, output.length - 1));
Working JSFiddle
A somewhat different approach without regex could be using Array.prototype.reduce:
Array.prototype.reduce.call('12345678', function(acc, item, index){
return acc += index && index % 2 === 0 ? ':' + item : item;
}, ''); //12:34:56:78
mystring = mytring.replace(/(.{2})/g, '\:$1').slice(1)
try this
Easy, just match every group of up-to 2 characters and join the array with ':'
mystring.match(/.{1,2}/g).join(':')
var mystring = '12345678';
document.write(mystring.match(/.{1,2}/g).join(':'))
no string slicing / trimming required.
It's easier if you tweak what you're searching for to avoid an end-of-line colon(using negative lookahead regex)
mystring = mystring.replace(/(.{2})(?!$)/g, '\$1:');
mystring = mystring.replace(/(.{2})/g, '$1\:')
Give that a try
I like my approach the best :)
function colonizer(strIn){
var rebuiltString = '';
strIn.split('').forEach(function(ltr, i){
(i % 2) ? rebuiltString += ltr + ':' : rebuiltString += ltr;
});
return rebuiltString;
}
alert(colonizer('Nicholas Abrams'));
Here is a demo
http://codepen.io/anon/pen/BjjNJj
As a follow up to this question (not by me), I need to replace leading numbers of an id with \\3n (where n is the number we're replacing).
Some examples:
"1foo" -> "\\31foo"
"1foo1" -> "\\31foo1"
"12foo" -> "\\31\\32foo"
"12fo3o4" -> "\\31\\32fo3o4"
"foo123" -> "foo123"
Below is a solution that replaces every instance of the number, but I don't know enough regex to make it stop once it hits a non-number.
function magic (str) {
return str.replace(/([0-9])/g, "\\3$1");
}
... Or is regex a bad way to go? I guess it would be easy enough to do it, just looping over each character of the string manually.
Here is a way to achieve what you need using a reverse string + look-ahead approach:
function revStr(str) {
return str.split('').reverse().join('');
}
var s = "12fo3o4";
document.write(revStr(revStr(s).replace(/\d(?=\d*$)/g, function (m) {
return m + "3\\\\";
}))
);
The regex is matching a number that can be followed by 0 or more numbers only until the end (which is actually start) of a reversed string (with \d(?=\d*$)). The callback allows to manipulate the match (we just add reversed \\ and 3. Then, we just reverse the result.
Just use two steps: first find the prefix, then operate on its characters:
s.replace(/^\d+/, function (m) {
return [].map.call(m, function (c) {
return '\\3' + c;
}).join('');
});
No need to emulate any features.
Here is how I would have done it:
function replace(str) {
var re = /^([\d]*)/;
var match = str.match(re)[0];
var replaced = match.replace(/([\d])/g, "\\3$1");
str = str.replace(match, replaced);
return str;
}
document.write(replace("12fo3o4"));
Don't get me wrong: the other answers are fine! My focus was more on readability.