I want to convert a number to its corresponding alphabet letter. For example:
1 = A
2 = B
3 = C
Can this be done in javascript without manually creating the array?
In php there is a range() function that creates the array automatically. Anything similar in javascript?
Yes, with Number#toString(36) and an adjustment.
var value = 10;
document.write((value + 9).toString(36).toUpperCase());
You can simply do this without arrays using String.fromCharCode(code) function as letters have consecutive codes. For example: String.fromCharCode(1+64) gives you 'A', String.fromCharCode(2+64) gives you 'B', and so on.
Snippet below turns the characters in the alphabet to work like numerical system
1 = A
2 = B
...
26 = Z
27 = AA
28 = AB
...
78 = BZ
79 = CA
80 = CB
var alphabet = "ABCDEFGHIJKLMNOPQRSTUVWXYZ"
var result = ""
function printToLetter(number){
var charIndex = number % alphabet.length
var quotient = number/alphabet.length
if(charIndex-1 == -1){
charIndex = alphabet.length
quotient--;
}
result = alphabet.charAt(charIndex-1) + result;
if(quotient>=1){
printToLetter(parseInt(quotient));
}else{
console.log(result)
result = ""
}
}
I created this function to save characters when printing but had to scrap it since I don't want to handle improper words that may eventually form
Just increment letterIndex from 0 (A) to 25 (Z)
const letterIndex = 0
const letter = String.fromCharCode(letterIndex + 'A'.charCodeAt(0))
console.log(letter)
UPDATE (5/2/22): After I needed this code in a second project, I decided to enhance the below answer and turn it into a ready to use NPM library called alphanumeric-encoder. If you don't want to build your own solution to this problem, go check out the library!
I built the following solution as an enhancement to #esantos's answer.
The first function defines a valid lookup encoding dictionary. Here, I used all 26 letters of the English alphabet, but the following will work just as well: "ABCDEFG", "ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789", "GFEDCBA". Using one of these dictionaries will result in converting your base 10 number into a base dictionary.length number with appropriately encoded digits. The only restriction is that each of the characters in the dictionary must be unique.
function getDictionary() {
return validateDictionary("ABCDEFGHIJKLMNOPQRSTUVWXYZ")
function validateDictionary(dictionary) {
for (let i = 0; i < dictionary.length; i++) {
if(dictionary.indexOf(dictionary[i]) !== dictionary.lastIndexOf(dictionary[i])) {
console.log('Error: The dictionary in use has at least one repeating symbol:', dictionary[i])
return undefined
}
}
return dictionary
}
}
We can now use this dictionary to encode our base 10 number.
function numberToEncodedLetter(number) {
//Takes any number and converts it into a base (dictionary length) letter combo. 0 corresponds to an empty string.
//It converts any numerical entry into a positive integer.
if (isNaN(number)) {return undefined}
number = Math.abs(Math.floor(number))
const dictionary = getDictionary()
let index = number % dictionary.length
let quotient = number / dictionary.length
let result
if (number <= dictionary.length) {return numToLetter(number)} //Number is within single digit bounds of our encoding letter alphabet
if (quotient >= 1) {
//This number was bigger than our dictionary, recursively perform this function until we're done
if (index === 0) {quotient--} //Accounts for the edge case of the last letter in the dictionary string
result = numberToEncodedLetter(quotient)
}
if (index === 0) {index = dictionary.length} //Accounts for the edge case of the final letter; avoids getting an empty string
return result + numToLetter(index)
function numToLetter(number) {
//Takes a letter between 0 and max letter length and returns the corresponding letter
if (number > dictionary.length || number < 0) {return undefined}
if (number === 0) {
return ''
} else {
return dictionary.slice(number - 1, number)
}
}
}
An encoded set of letters is great, but it's kind of useless to computers if I can't convert it back to a base 10 number.
function encodedLetterToNumber(encoded) {
//Takes any number encoded with the provided encode dictionary
const dictionary = getDictionary()
let result = 0
let index = 0
for (let i = 1; i <= encoded.length; i++) {
index = dictionary.search(encoded.slice(i - 1, i)) + 1
if (index === 0) {return undefined} //Attempted to find a letter that wasn't encoded in the dictionary
result = result + index * Math.pow(dictionary.length, (encoded.length - i))
}
return result
}
Now to test it out:
console.log(numberToEncodedLetter(4)) //D
console.log(numberToEncodedLetter(52)) //AZ
console.log(encodedLetterToNumber("BZ")) //78
console.log(encodedLetterToNumber("AAC")) //705
UPDATE
You can also use this function to take that short name format you have and return it to an index-based format.
function shortNameToIndex(shortName) {
//Takes the short name (e.g. F6, AA47) and converts to base indecies ({6, 6}, {27, 47})
if (shortName.length < 2) {return undefined} //Must be at least one letter and one number
if (!isNaN(shortName.slice(0, 1))) {return undefined} //If first character isn't a letter, it's incorrectly formatted
let letterPart = ''
let numberPart= ''
let splitComplete = false
let index = 1
do {
const character = shortName.slice(index - 1, index)
if (!isNaN(character)) {splitComplete = true}
if (splitComplete && isNaN(character)) {
//More letters existed after the numbers. Invalid formatting.
return undefined
} else if (splitComplete && !isNaN(character)) {
//Number part
numberPart = numberPart.concat(character)
} else {
//Letter part
letterPart = letterPart.concat(character)
}
index++
} while (index <= shortName.length)
numberPart = parseInt(numberPart)
letterPart = encodedLetterToNumber(letterPart)
return {xIndex: numberPart, yIndex: letterPart}
}
this can help you
static readonly string[] Columns_Lettre = new[] { "A", "B", "C"};
public static string IndexToColumn(int index)
{
if (index <= 0)
throw new IndexOutOfRangeException("index must be a positive number");
if (index < 4)
return Columns_Lettre[index - 1];
else
return index.ToString();
}
How can I count the number of times a particular string occurs in another string. For example, this is what I am trying to do in Javascript:
var temp = "This is a string.";
alert(temp.count("is")); //should output '2'
The g in the regular expression (short for global) says to search the whole string rather than just find the first occurrence. This matches is twice:
var temp = "This is a string.";
var count = (temp.match(/is/g) || []).length;
console.log(count);
And, if there are no matches, it returns 0:
var temp = "Hello World!";
var count = (temp.match(/is/g) || []).length;
console.log(count);
/** Function that count occurrences of a substring in a string;
* #param {String} string The string
* #param {String} subString The sub string to search for
* #param {Boolean} [allowOverlapping] Optional. (Default:false)
*
* #author Vitim.us https://gist.github.com/victornpb/7736865
* #see Unit Test https://jsfiddle.net/Victornpb/5axuh96u/
* #see https://stackoverflow.com/a/7924240/938822
*/
function occurrences(string, subString, allowOverlapping) {
string += "";
subString += "";
if (subString.length <= 0) return (string.length + 1);
var n = 0,
pos = 0,
step = allowOverlapping ? 1 : subString.length;
while (true) {
pos = string.indexOf(subString, pos);
if (pos >= 0) {
++n;
pos += step;
} else break;
}
return n;
}
Usage
occurrences("foofoofoo", "bar"); //0
occurrences("foofoofoo", "foo"); //3
occurrences("foofoofoo", "foofoo"); //1
allowOverlapping
occurrences("foofoofoo", "foofoo", true); //2
Matches:
foofoofoo
1 `----´
2 `----´
Unit Test
https://jsfiddle.net/Victornpb/5axuh96u/
Benchmark
I've made a benchmark test and my function is more then 10 times
faster then the regexp match function posted by gumbo. In my test
string is 25 chars length. with 2 occurences of the character 'o'. I
executed 1 000 000 times in Safari.
Safari 5.1
Benchmark> Total time execution: 5617 ms (regexp)
Benchmark> Total time execution: 881 ms (my function 6.4x faster)
Firefox 4
Benchmark> Total time execution: 8547 ms (Rexexp)
Benchmark> Total time execution: 634 ms (my function 13.5x faster)
Edit: changes I've made
cached substring length
added type-casting to string.
added optional 'allowOverlapping' parameter
fixed correct output for "" empty substring case.
Gist
https://gist.github.com/victornpb/7736865
function countInstances(string, word) {
return string.split(word).length - 1;
}
console.log(countInstances("This is a string", "is"))
You can try this:
var theString = "This is a string.";
console.log(theString.split("is").length - 1);
My solution:
var temp = "This is a string.";
function countOccurrences(str, value) {
var regExp = new RegExp(value, "gi");
return (str.match(regExp) || []).length;
}
console.log(countOccurrences(temp, 'is'));
You can use match to define such function:
String.prototype.count = function(search) {
var m = this.match(new RegExp(search.toString().replace(/(?=[.\\+*?[^\]$(){}\|])/g, "\\"), "g"));
return m ? m.length:0;
}
Just code-golfing Rebecca Chernoff's solution :-)
alert(("This is a string.".match(/is/g) || []).length);
The non-regex version:
var string = 'This is a string',
searchFor = 'is',
count = 0,
pos = string.indexOf(searchFor);
while (pos > -1) {
++count;
pos = string.indexOf(searchFor, ++pos);
}
console.log(count); // 2
String.prototype.Count = function (find) {
return this.split(find).length - 1;
}
console.log("This is a string.".Count("is"));
This will return 2.
Here is the fastest function!
Why is it faster?
Doesn't check char by char (with 1 exception)
Uses a while and increments 1 var (the char count var) vs. a for loop checking the length and incrementing 2 vars (usually var i and a var with the char count)
Uses WAY less vars
Doesn't use regex!
Uses an (hopefully) highly optimized function
All operations are as combined as they can be, avoiding slowdowns due to multiple operations
String.prototype.timesCharExist=function(c){var t=0,l=0,c=(c+'')[0];while(l=this.indexOf(c,l)+1)++t;return t};
Here is a slower and more readable version:
String.prototype.timesCharExist = function ( chr ) {
var total = 0, last_location = 0, single_char = ( chr + '' )[0];
while( last_location = this.indexOf( single_char, last_location ) + 1 )
{
total = total + 1;
}
return total;
};
This one is slower because of the counter, long var names and misuse of 1 var.
To use it, you simply do this:
'The char "a" only shows up twice'.timesCharExist('a');
Edit: (2013/12/16)
DON'T use with Opera 12.16 or older! it will take almost 2.5x more than the regex solution!
On chrome, this solution will take between 14ms and 20ms for 1,000,000 characters.
The regex solution takes 11-14ms for the same amount.
Using a function (outside String.prototype) will take about 10-13ms.
Here is the code used:
String.prototype.timesCharExist=function(c){var t=0,l=0,c=(c+'')[0];while(l=this.indexOf(c,l)+1)++t;return t};
var x=Array(100001).join('1234567890');
console.time('proto');x.timesCharExist('1');console.timeEnd('proto');
console.time('regex');x.match(/1/g).length;console.timeEnd('regex');
var timesCharExist=function(x,c){var t=0,l=0,c=(c+'')[0];while(l=x.indexOf(c,l)+1)++t;return t;};
console.time('func');timesCharExist(x,'1');console.timeEnd('func');
The result of all the solutions should be 100,000!
Note: if you want this function to count more than 1 char, change where is c=(c+'')[0] into c=c+''
var temp = "This is a string.";
console.log((temp.match(new RegExp("is", "g")) || []).length);
A simple way would be to split the string on the required word, the word for which we want to calculate the number of occurences, and subtract 1 from the number of parts:
function checkOccurences(string, word) {
return string.split(word).length - 1;
}
const text="Let us see. see above, see below, see forward, see backward, see left, see right until we will be right";
const count=countOccurences(text,"see "); // 2
I think the purpose for regex is much different from indexOf.
indexOf simply find the occurance of a certain string while in regex you can use wildcards like [A-Z] which means it will find any capital character in the word without stating the actual character.
Example:
var index = "This is a string".indexOf("is");
console.log(index);
var length = "This is a string".match(/[a-z]/g).length;
// where [a-z] is a regex wildcard expression thats why its slower
console.log(length);
Super duper old, but I needed to do something like this today and only thought to check SO afterwards. Works pretty fast for me.
String.prototype.count = function(substr,start,overlap) {
overlap = overlap || false;
start = start || 0;
var count = 0,
offset = overlap ? 1 : substr.length;
while((start = this.indexOf(substr, start) + offset) !== (offset - 1))
++count;
return count;
};
var myString = "This is a string.";
var foundAtPosition = 0;
var Count = 0;
while (foundAtPosition != -1)
{
foundAtPosition = myString.indexOf("is",foundAtPosition);
if (foundAtPosition != -1)
{
Count++;
foundAtPosition++;
}
}
document.write("There are " + Count + " occurrences of the word IS");
Refer :- count a substring appears in the string for step by step explanation.
Building upon #Vittim.us answer above. I like the control his method gives me, making it easy to extend, but I needed to add case insensitivity and limit matches to whole words with support for punctuation. (e.g. "bath" is in "take a bath." but not "bathing")
The punctuation regex came from: https://stackoverflow.com/a/25575009/497745 (How can I strip all punctuation from a string in JavaScript using regex?)
function keywordOccurrences(string, subString, allowOverlapping, caseInsensitive, wholeWord)
{
string += "";
subString += "";
if (subString.length <= 0) return (string.length + 1); //deal with empty strings
if(caseInsensitive)
{
string = string.toLowerCase();
subString = subString.toLowerCase();
}
var n = 0,
pos = 0,
step = allowOverlapping ? 1 : subString.length,
stringLength = string.length,
subStringLength = subString.length;
while (true)
{
pos = string.indexOf(subString, pos);
if (pos >= 0)
{
var matchPos = pos;
pos += step; //slide forward the position pointer no matter what
if(wholeWord) //only whole word matches are desired
{
if(matchPos > 0) //if the string is not at the very beginning we need to check if the previous character is whitespace
{
if(!/[\s\u2000-\u206F\u2E00-\u2E7F\\'!"#$%&\(\)*+,\-.\/:;<=>?#\[\]^_`{|}~]/.test(string[matchPos - 1])) //ignore punctuation
{
continue; //then this is not a match
}
}
var matchEnd = matchPos + subStringLength;
if(matchEnd < stringLength - 1)
{
if (!/[\s\u2000-\u206F\u2E00-\u2E7F\\'!"#$%&\(\)*+,\-.\/:;<=>?#\[\]^_`{|}~]/.test(string[matchEnd])) //ignore punctuation
{
continue; //then this is not a match
}
}
}
++n;
} else break;
}
return n;
}
Please feel free to modify and refactor this answer if you spot bugs or improvements.
For anyone that finds this thread in the future, note that the accepted answer will not always return the correct value if you generalize it, since it will choke on regex operators like $ and .. Here's a better version, that can handle any needle:
function occurrences (haystack, needle) {
var _needle = needle
.replace(/\[/g, '\\[')
.replace(/\]/g, '\\]')
return (
haystack.match(new RegExp('[' + _needle + ']', 'g')) || []
).length
}
Try it
<?php
$str = "33,33,56,89,56,56";
echo substr_count($str, '56');
?>
<script type="text/javascript">
var temp = "33,33,56,89,56,56";
var count = temp.match(/56/g);
alert(count.length);
</script>
Simple version without regex:
var temp = "This is a string.";
var count = (temp.split('is').length - 1);
alert(count);
No one will ever see this, but it's good to bring back recursion and arrow functions once in a while (pun gloriously intended)
String.prototype.occurrencesOf = function(s, i) {
return (n => (n === -1) ? 0 : 1 + this.occurrencesOf(s, n + 1))(this.indexOf(s, (i || 0)));
};
function substrCount( str, x ) {
let count = -1, pos = 0;
do {
pos = str.indexOf( x, pos ) + 1;
count++;
} while( pos > 0 );
return count;
}
ES2020 offers a new MatchAll which might be of use in this particular context.
Here we create a new RegExp, please ensure you pass 'g' into the function.
Convert the result using Array.from and count the length, which returns 2 as per the original requestor's desired output.
let strToCheck = RegExp('is', 'g')
let matchesReg = "This is a string.".matchAll(strToCheck)
console.log(Array.from(matchesReg).length) // 2
Now this is a very old thread i've come across but as many have pushed their answer's, here is mine in a hope to help someone with this simple code.
var search_value = "This is a dummy sentence!";
var letter = 'a'; /*Can take any letter, have put in a var if anyone wants to use this variable dynamically*/
letter = letter && "string" === typeof letter ? letter : "";
var count;
for (var i = count = 0; i < search_value.length; count += (search_value[i++] == letter));
console.log(count);
I'm not sure if it is the fastest solution but i preferred it for simplicity and for not using regex (i just don't like using them!)
You could try this
let count = s.length - s.replace(/is/g, "").length;
We can use the js split function, and it's length minus 1 will be the number of occurrences.
var temp = "This is a string.";
alert(temp.split('is').length-1);
Here is my solution. I hope it would help someone
const countOccurence = (string, char) => {
const chars = string.match(new RegExp(char, 'g')).length
return chars;
}
var countInstances = function(body, target) {
var globalcounter = 0;
var concatstring = '';
for(var i=0,j=target.length;i<body.length;i++){
concatstring = body.substring(i-1,j);
if(concatstring === target){
globalcounter += 1;
concatstring = '';
}
}
return globalcounter;
};
console.log( countInstances('abcabc', 'abc') ); // ==> 2
console.log( countInstances('ababa', 'aba') ); // ==> 2
console.log( countInstances('aaabbb', 'ab') ); // ==> 1
substr_count translated to Javascript from php
Locutus (Package that translates Php to JS)
substr_count (official page, code copied below)
function substr_count (haystack, needle, offset, length) {
// eslint-disable-line camelcase
// discuss at: https://locutus.io/php/substr_count/
// original by: Kevin van Zonneveld (https://kvz.io)
// bugfixed by: Onno Marsman (https://twitter.com/onnomarsman)
// improved by: Brett Zamir (https://brett-zamir.me)
// improved by: Thomas
// example 1: substr_count('Kevin van Zonneveld', 'e')
// returns 1: 3
// example 2: substr_count('Kevin van Zonneveld', 'K', 1)
// returns 2: 0
// example 3: substr_count('Kevin van Zonneveld', 'Z', 0, 10)
// returns 3: false
var cnt = 0
haystack += ''
needle += ''
if (isNaN(offset)) {
offset = 0
}
if (isNaN(length)) {
length = 0
}
if (needle.length === 0) {
return false
}
offset--
while ((offset = haystack.indexOf(needle, offset + 1)) !== -1) {
if (length > 0 && (offset + needle.length) > length) {
return false
}
cnt++
}
return cnt
}
Check out Locutus's Translation Of Php's substr_count function
The parameters:
ustring: the superset string
countChar: the substring
A function to count substring occurrence in JavaScript:
function subStringCount(ustring, countChar){
var correspCount = 0;
var corresp = false;
var amount = 0;
var prevChar = null;
for(var i=0; i!=ustring.length; i++){
if(ustring.charAt(i) == countChar.charAt(0) && corresp == false){
corresp = true;
correspCount += 1;
if(correspCount == countChar.length){
amount+=1;
corresp = false;
correspCount = 0;
}
prevChar = 1;
}
else if(ustring.charAt(i) == countChar.charAt(prevChar) && corresp == true){
correspCount += 1;
if(correspCount == countChar.length){
amount+=1;
corresp = false;
correspCount = 0;
prevChar = null;
}else{
prevChar += 1 ;
}
}else{
corresp = false;
correspCount = 0;
}
}
return amount;
}
console.log(subStringCount('Hello World, Hello World', 'll'));
var str = 'stackoverflow';
var arr = Array.from(str);
console.log(arr);
for (let a = 0; a <= arr.length; a++) {
var temp = arr[a];
var c = 0;
for (let b = 0; b <= arr.length; b++) {
if (temp === arr[b]) {
c++;
}
}
console.log(`the ${arr[a]} is counted for ${c}`)
}
See my code snippet below:
var list = ['one', 'two', 'three', 'four'];
var str = 'one two, one three, one four, one';
for ( var i = 0; i < list.length; i++)
{
if (str.endsWith(list[i])
{
str = str.replace(list[i], 'finish')
}
}
I want to replace the last occurrence of the word one with the word finish in the string, what I have will not work because the replace method will only replace the first occurrence of it. Does anyone know how I can amend that snippet so that it only replaces the last instance of 'one'
Well, if the string really ends with the pattern, you could do this:
str = str.replace(new RegExp(list[i] + '$'), 'finish');
You can use String#lastIndexOf to find the last occurrence of the word, and then String#substring and concatenation to build the replacement string.
n = str.lastIndexOf(list[i]);
if (n >= 0 && n + list[i].length >= str.length) {
str = str.substring(0, n) + "finish";
}
...or along those lines.
Not as elegant as the regex answers above, but easier to follow for the not-as-savvy among us:
function removeLastInstance(badtext, str) {
var charpos = str.lastIndexOf(badtext);
if (charpos<0) return str;
ptone = str.substring(0,charpos);
pttwo = str.substring(charpos+(badtext.length));
return (ptone+pttwo);
}
I realize this is likely slower and more wasteful than the regex examples, but I think it might be helpful as an illustration of how string manipulations can be done. (It can also be condensed a bit, but again, I wanted each step to be clear.)
Here's a method that only uses splitting and joining. It's a little more readable so thought it was worth sharing:
String.prototype.replaceLast = function (what, replacement) {
var pcs = this.split(what);
var lastPc = pcs.pop();
return pcs.join(what) + replacement + lastPc;
};
Thought I'd answer here since this came up first in my Google search and there's no answer (outside of Matt's creative answer :)) that generically replaces the last occurrence of a string of characters when the text to replace might not be at the end of the string.
if (!String.prototype.replaceLast) {
String.prototype.replaceLast = function(find, replace) {
var index = this.lastIndexOf(find);
if (index >= 0) {
return this.substring(0, index) + replace + this.substring(index + find.length);
}
return this.toString();
};
}
var str = 'one two, one three, one four, one';
// outputs: one two, one three, one four, finish
console.log(str.replaceLast('one', 'finish'));
// outputs: one two, one three, one four; one
console.log(str.replaceLast(',', ';'));
A simple answer without any regex would be:
str = str.substr(0, str.lastIndexOf(list[i])) + 'finish'
I did not like any of the answers above and came up with the below
function isString(variable) {
return typeof (variable) === 'string';
}
function replaceLastOccurrenceInString(input, find, replaceWith) {
if (!isString(input) || !isString(find) || !isString(replaceWith)) {
// returns input on invalid arguments
return input;
}
const lastIndex = input.lastIndexOf(find);
if (lastIndex < 0) {
return input;
}
return input.substr(0, lastIndex) + replaceWith + input.substr(lastIndex + find.length);
}
Usage:
const input = 'ten eleven twelve thirteen fourteen fifteen sixteen seventeen eighteen nineteen twenty';
const find = 'teen';
const replaceWith = 'teenhundred';
const output = replaceLastOccurrenceInString(input, find, replaceWith);
console.log(output);
// output: ten eleven twelve thirteen fourteen fifteen sixteen seventeen eighteen nineteenhundred twenty
Hope that helps!
Couldn't you just reverse the string and replace only the first occurrence of the reversed search pattern? I'm thinking . . .
var list = ['one', 'two', 'three', 'four'];
var str = 'one two, one three, one four, one';
for ( var i = 0; i < list.length; i++)
{
if (str.endsWith(list[i])
{
var reversedHaystack = str.split('').reverse().join('');
var reversedNeedle = list[i].split('').reverse().join('');
reversedHaystack = reversedHaystack.replace(reversedNeedle, 'hsinif');
str = reversedHaystack.split('').reverse().join('');
}
}
If speed is important, use this:
/**
* Replace last occurrence of a string with another string
* x - the initial string
* y - string to replace
* z - string that will replace
*/
function replaceLast(x, y, z){
var a = x.split("");
var length = y.length;
if(x.lastIndexOf(y) != -1) {
for(var i = x.lastIndexOf(y); i < x.lastIndexOf(y) + length; i++) {
if(i == x.lastIndexOf(y)) {
a[i] = z;
}
else {
delete a[i];
}
}
}
return a.join("");
}
It's faster than using RegExp.
Simple solution would be to use substring method.
Since string is ending with list element, we can use string.length and calculate end index for substring without using lastIndexOf method
str = str.substring(0, str.length - list[i].length) + "finish"
function replaceLast(text, searchValue, replaceValue) {
const lastOccurrenceIndex = text.lastIndexOf(searchValue)
return `${
text.slice(0, lastOccurrenceIndex)
}${
replaceValue
}${
text.slice(lastOccurrenceIndex + searchValue.length)
}`
}
A negative lookahead solution:
str.replace(/(one)(?!.*\1)/, 'finish')
An explanation provided by the site regex101.com,
/(one)(?!.*\1)/
1st Capturing Group (one)
one - matches the characters one literally (case sensitive)
Negative Lookahead (?!.*\1)
Assert that the Regex below does not match
. matches any character (except for line terminators)
* matches the previous token between zero and unlimited times, as many times as possible, giving back as needed (greedy)
\1 matches the same text as most recently matched by the 1st capturing group
Old fashioned and big code but efficient as possible:
function replaceLast(origin,text){
textLenght = text.length;
originLen = origin.length
if(textLenght == 0)
return origin;
start = originLen-textLenght;
if(start < 0){
return origin;
}
if(start == 0){
return "";
}
for(i = start; i >= 0; i--){
k = 0;
while(origin[i+k] == text[k]){
k++
if(k == textLenght)
break;
}
if(k == textLenght)
break;
}
//not founded
if(k != textLenght)
return origin;
//founded and i starts on correct and i+k is the first char after
end = origin.substring(i+k,originLen);
if(i == 0)
return end;
else{
start = origin.substring(0,i)
return (start + end);
}
}
I would suggest using the replace-last npm package.
var str = 'one two, one three, one four, one';
var result = replaceLast(str, 'one', 'finish');
console.log(result);
<script src="https://unpkg.com/replace-last#latest/replaceLast.js"></script>
This works for string and regex replacements.
if (string.search(searchstring)>-1) {
stringnew=((text.split("").reverse().join("")).replace(searchstring,
subststring).split("").reverse().join(""))
}
//with var string= "sdgu()ert(dhfj ) he ) gfrt"
//var searchstring="f"
//var subststring="X"
//var stringnew=""
//results in
//string : sdgu()ert(dhfj ) he ) gfrt
//stringnew : sdgu()ert(dhfj ) he ) gXrt
str = (str + '?').replace(list[i] + '?', 'finish');