13

I have a string with repeated letters. I want letters that are repeated more than once to show only once.

Example input: aaabbbccc
Expected output: abc

I've tried to create the code myself, but so far my function has the following problems:

  • if the letter doesn't repeat, it's not shown (it should be)
  • if it's repeated once, it's show only once (i.e. aa shows a - correct)
  • if it's repeated twice, shows all (i.e. aaa shows aaa - should be a)
  • if it's repeated 3 times, it shows 6 (if aaaa it shows aaaaaa - should be a)
function unique_char(string) {
    var unique = '';
    var count = 0;
    for (var i = 0; i < string.length; i++) {
        for (var j = i+1; j < string.length; j++) {
            if (string[i] == string[j]) {
                count++;
                unique += string[i];
            }
        }
    }
    return unique;
}

document.write(unique_char('aaabbbccc'));

The function must be with loop inside a loop; that's why the second for is inside the first.

5

12 Answers 12

37

Fill a Set with the characters and concatenate its unique entries:

function unique(str) {
  return String.prototype.concat.call(...new Set(str));
}

console.log(unique('abc'));    // "abc"
console.log(unique('abcabc')); // "abc"

2
  • 1
    Had to put prototype in String function path to get it to work. Very cool! String.prototype.concat(...new Set(str)) Nov 21, 2016 at 22:52
  • 1
    @AustinHaws Ah, String.concat is one of the legacy static methods (or “generic methods”). It used to work in browsers supporting this non-standard extension. String.prototype.concat.call(...new Set(str)) would be cleaner, though. String.prototype.concat(...new Set(str)) just happens to work because String.prototype (which serves as the this value in String.prototype.concat) happens to represent an empty string as well. But this fact is less obvious than knowing how .call works. Jan 18, 2023 at 11:48
23

Convert it to an array first, then use Josh Mc’s answer at How to get unique values in an array, and rejoin, like so:

var nonUnique = "ababdefegg";
var unique = Array.from(nonUnique).filter(function(item, i, ar){ return ar.indexOf(item) === i; }).join('');

All in one line. :-)

0
3

Too late may be but still my version of answer to this post:

function extractUniqCharacters(str){
    var temp = {};
    for(var oindex=0;oindex<str.length;oindex++){
        temp[str.charAt(oindex)] = 0; //Assign any value
    }
    return Object.keys(temp).join("");
}
2

You can use a regular expression with a custom replacement function:

function unique_char(string) {
    return string.replace(/(.)\1*/g, function(sequence, char) {
         if (sequence.length == 1) // if the letter doesn't repeat
             return ""; // its not shown
         if (sequence.length == 2) // if its repeated once
             return char; // its show only once (if aa shows a)
         if (sequence.length == 3) // if its repeated twice
             return sequence; // shows all(if aaa shows aaa)
         if (sequence.length == 4) // if its repeated 3 times
             return Array(7).join(char); // it shows 6( if aaaa shows aaaaaa)
         // else ???
         return sequence;
    });
}
2

Using lodash:

_.uniq('aaabbbccc').join(''); // gives 'abc'
0
1

Per the actual question: "if the letter doesn't repeat its not shown"

function unique_char(str)
{
    var obj = new Object();

    for (var i = 0; i < str.length; i++)
    {
        var chr = str[i];
        if (chr in obj)
        {
            obj[chr] += 1;
        }
        else
        {
            obj[chr] = 1;
        }
    }

    var multiples = [];
    for (key in obj)
    {
        // Remove this test if you just want unique chars
        // But still keep the multiples.push(key)
        if (obj[key] > 1)
        {
            multiples.push(key);
        }
    }

    return multiples.join("");
}

var str = "aaabbbccc";
document.write(unique_char(str));
1

<script>
    uniqueString = "";

    alert("Displays the number of a specific character in user entered string and then finds the number of unique characters:");

    function countChar(testString, lookFor) {
        var charCounter = 0;
        document.write("Looking at this string:<br>");

        for (pos = 0; pos < testString.length; pos++) {
            if (testString.charAt(pos) == lookFor) {
                charCounter += 1;
                document.write("<B>" + lookFor + "</B>");
            } else
                document.write(testString.charAt(pos));
        }
        document.write("<br><br>");
        return charCounter;
    }

    function findNumberOfUniqueChar(testString) {
        var numChar = 0,
            uniqueChar = 0;
        for (pos = 0; pos < testString.length; pos++) {
            var newLookFor = "";
            for (pos2 = 0; pos2 <= pos; pos2++) {
                if (testString.charAt(pos) == testString.charAt(pos2)) {
                    numChar += 1;
                }
            }
            if (numChar == 1) {
                uniqueChar += 1;
                uniqueString = uniqueString + " " + testString.charAt(pos)
            }
            numChar = 0;
        }
        return uniqueChar;
    }

    var testString = prompt("Give me a string of characters to check", "");
    var lookFor = "startvalue";
    while (lookFor.length > 1) {
        if (lookFor != "startvalue")
            alert("Please select only one character");
        lookFor = prompt(testString + "\n\nWhat should character should I look for?", "");
    }
    document.write("I found " + countChar(testString, lookFor) + " of the<b> " + lookFor + "</B> character");
    document.write("<br><br>I counted the following " + findNumberOfUniqueChar(testString) + " unique character(s):");
    document.write("<br>" + uniqueString)
</script>

1
  • Could you please provide a brief explanation of the code and why this is the solution?
    – crizzis
    Jun 23, 2017 at 17:57
0

Your problem is that you are adding to unique every time you find the character in string. Really you should probably do something like this (since you specified the answer must be a nested for loop):

function unique_char(string){

    var str_length=string.length;
    var unique='';

    for(var i=0; i<str_length; i++){

        var foundIt = false;
        for(var j=0; j<unique.length; j++){

            if(string[i]==unique[j]){

                foundIt = true;
                break;
            }

        }

        if(!foundIt){
            unique+=string[i];
        }

    }

   return unique;
}

document.write( unique_char('aaabbbccc'))

In this we only add the character found in string to unique if it isn't already there. This is really not an efficient way to do this at all ... but based on your requirements it should work.

I can't run this since I don't have anything handy to run JavaScript in ... but the theory in this method should work.

5
  • He isn't using C#. Its JavaScript.
    – brian buck
    Dec 13, 2012 at 21:04
  • My comment is still somewhat valid ... I don't have anything handy to run JavaScript in. And I don't think I used anything that is really language dependent.
    – cottonke
    Dec 13, 2012 at 21:12
  • Mostly -- This line will fail: bool foundIt = false; Should be var foundIt = false;
    – brian buck
    Dec 13, 2012 at 21:14
  • it works with var but i have one question what is (!foundIT) and can it be written in a different way Dec 13, 2012 at 21:18
  • It is just saying that if we didn't find the character in the unique string then we need to add it since it is the first time we have come across this particular character.
    – cottonke
    Dec 13, 2012 at 21:23
0

Try this if duplicate characters have to be displayed once, i.e., for i/p: aaabbbccc o/p: abc

var str="aaabbbccc";
Array.prototype.map.call(str, 
  (obj,i)=>{
    if(str.indexOf(obj,i+1)==-1 ){
     return obj;
    }
  }
).join("");
//output: "abc"

And try this if only unique characters(String Bombarding Algo) have to be displayed, add another "and" condition to remove the characters which came more than once and display only unique characters, i.e., for i/p: aabbbkaha o/p: kh

var str="aabbbkaha";
Array.prototype.map.call(str, 
 (obj,i)=>{
   if(str.indexOf(obj,i+1)==-1 && str.lastIndexOf(obj,i-1)==-1){ // another and condition
     return obj;
   }
 }
).join("");
//output: "kh"
0

Here is the simplest function to do that

  function remove(text) 
    {
      var unique= "";
      for(var i = 0; i < text.length; i++)
      {
        if(unique.indexOf(text.charAt(i)) < 0) 
        {
          unique += text.charAt(i);
        }
      }
      return unique;
    }
-1

If you want to return values in an array, you can use this function below.

const getUniqueChar = (str) => Array.from(str)
    .filter((item, index, arr) => arr.slice(index + 1).indexOf(item) === -1);

console.log(getUniqueChar("aaabbbccc"));

Alternatively, you can use the Set constructor.

const getUniqueChar = (str) => new Set(str);

console.log(getUniqueChar("aaabbbccc"));
1
  • Note that the approach using filter and indexOf has quadratic time complexity, whereas the approach using Set has linear time complexity. For larger input sizes (i.e. longer strings), Set performs better by far. Jan 18, 2023 at 12:01
-2

Here is the simplest function to do that pt. 2

const showUniqChars = (text) => {
  let uniqChars = "";

  for (const char of text) {
    if (!uniqChars.includes(char))
      uniqChars += char;
  }
  return uniqChars;
};

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