-5

Once removed duplicates, find the length of an array. I'm using the below code but it's returning 0 as the length of the array:

var mydata = ["1", "2", "3", "3", "4", "5", "5", "6", "7", "7", "8", "9", "9"];

var uniqueNames = [];
$(function() {
  $.each(mydata, function(i, el) {
    if ($.inArray(el, uniqueNames) === -1) uniqueNames.push(el);
  });
})
console.log(uniqueNames.length);
<script src="https://ajax.googleapis.com/ajax/libs/jquery/3.3.1/jquery.min.js"></script>

Total length

13

Expected output

9
7
  • 1
    You mean like uniqueNames.length? – Chris G Jun 13 '18 at 8:42
  • Have you try accessing its length property yet? Also, absolutely no need to require a large library like jQuery just for something like this, just use new Set(myData).size – CertainPerformance Jun 13 '18 at 8:43
  • @ChrisG I tried, I'm getting 0 – Ashok P Jun 13 '18 at 8:44
  • @AshokP Show your actual code. – Chris G Jun 13 '18 at 8:45
  • 1
    @AshokP length = myData.filter((v, i, self) => { return self.indexOf(v) === i; }).length; Codepen – fen1x Jun 13 '18 at 8:46
0

You can check lastIndexOf() of the element so that this last index match the current index. If so, push that element in uniqueNames array. Then you can also get the length of it using uniqueNames.length

var myData = ["1","2","3","3","4","5","5","6","7","7","8","9","9"];
var uniqueNames = [];
myData.forEach((num, index)=>{
  if(myData.lastIndexOf(num) === index){
    uniqueNames.push(num);
  }
});
console.log(uniqueNames);
console.log('length is '+ uniqueNames.length);

USING filter()

var myData = ["1","2","3","3","4","5","5","6","7","7","8","9","9"];
var uniqueNames =  myData.filter((num, index)=> myData.lastIndexOf(num) === index);
console.log(uniqueNames);
console.log('length is '+ uniqueNames.length);

5
  • Because it ignores the actual problem. – Chris G Jun 13 '18 at 8:49
  • @ChrisG what do you mean? – Ankit Agarwal Jun 13 '18 at 8:50
  • This question's not about coming up with create ways to solve the assignment, it's about realizing that the code that removes the duplicates is wrapped in $(function() { ... }) but OP was logging the .length outside the wrapper, where it was still 0. – Chris G Jun 13 '18 at 8:51
  • @AnkitAgarwal Using filter, It's Working great. – Ashok P Jun 13 '18 at 8:56
  • @AnkitAgarwal Yeah I do that. – Ashok P Jun 13 '18 at 10:00
4

The issue is because you're calling console.log() outside the jQuery document.ready event handler, hence you're logging the length before you've de-duped the array. Put the length check inside the handler:

var mydata = ["1", "2", "3", "3", "4", "5", "5", "6", "7", "7", "8", "9", "9"];

var uniqueNames = [];
$(function() {
  $.each(mydata, function(i, el) {
    if ($.inArray(el, uniqueNames) === -1) uniqueNames.push(el);
  });

  console.log(uniqueNames.length);
})
<script src="https://ajax.googleapis.com/ajax/libs/jquery/3.3.1/jquery.min.js"></script>

That being said, you don't need jQuery at all here. jQuery is intended to be used as a DOM manipulation framework. Native JS methods are more effective for working with arrays:

var mydata = ["1", "2", "3", "3", "4", "5", "5", "6", "7", "7", "8", "9", "9"];

var uniqueNames = mydata.filter((value, index, arr) => {
  return arr.indexOf(value) === index; 
});

console.log(uniqueNames.length);
<script src="https://ajax.googleapis.com/ajax/libs/jquery/3.3.1/jquery.min.js"></script>

2

Using modern JS, getting the Dups can be done just using a set..

eg..

const myData = ["1","2","3","3","4","5","5","6","7","7","8","9","9"];

const uniqueData = Array.from(new Set(myData));

console.log(myData.join(", "));
console.log(uniqueData.join(", "));
console.log(`length = ${uniqueData.length}`);

10
  • Again, this answer completely misses what the actual issue was. See my other comments. – Chris G Jun 13 '18 at 8:53
  • @ChrisG The answer doesn't always have to answer the OP's specific problem, if the post could be deemed useful, it's useful. And because the question even has a title with duplicates, it has a good chance of been found from search. It's great your modding everyone's post's, but please learn to moderate with some common sense. – Keith Jun 13 '18 at 9:03
  • If you're all about the big picture, why didn't you flag this as duplicate then? stackoverflow.com/questions/1960473/… stackoverflow.com/questions/9229645/… – Chris G Jun 13 '18 at 10:26
  • @ChrisG stackoverflow.blog/2010/11/16/… – Keith Jun 13 '18 at 13:41
  • @ChrisG Not sure of the but, but at least you now know this answer was not an issue, that's the main. Just a note, you answered a question today, that had a much better answer on SO, is this the point your making?. Anyway, in the spirit of SO, lets just keep on helping people shall we, really don't want to get into a tit for tat with you. – Keith Jun 13 '18 at 14:24

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