5

I am new to javascript and I am having a bit of challenge learning it myself from web tutorials. Please help me to solve the problem below.

Problem:

Write a function that takes two or more arrays and returns a new array of unique values in the order of the original provided arrays.

In other words, all values present from all arrays should be included in their original order, but with no duplicates in the final array.

The unique numbers should be sorted by their original order, but the final array should not be sorted in numerical order.

Use only Array.reduce to solve this ! This is what your solution should look like:

function unite(arr1, arr2, arr3) {
  return arr1;
}

unite([1, 2, 3], [5, 2, 1, 4], [2, 1]);

I am not able to understand how I can use reduce here. All the internet examples are so easy compared to this. https://www.airpair.com/javascript/javascript-array-reduce http://adripofjavascript.com/blog/drips/boiling-down-arrays-with-array-reduce.html

My wrong solution:

function arrayDiff(resultArray, element){
    var idx = anotherArray.indexOf(element);
    if(idx != -1){
        resultArray.push(element);
        return resultArray;
    }
}

function unite(arr1, arr2, arr3) {
    var arr = [];
    var r1 = arr1.reduce(arrayDiff);
    var r2 = arr2.reduce(arrayDiff);
    var r3 = arr3.reduce(arrayDiff);
    arr.concat(r1).concat(r2).concat(r3);
    return arr;
}


r = unite([1, 2, 3], [5, 2, 1, 4], [2, 1]);
console.log(r);

Error: ReferenceError: anotherArray is not defined

  • well, that's because anotherArray is not defined. What that variable is supposed to refer at? – zerkms Aug 10 '15 at 21:02
  • Yes, anotherArray is not defined. What did you expect it to be? – Bergi Aug 10 '15 at 21:03
  • @Bergi - I just saw the example here - var sum = [1, 2, 3].reduce( function(total, num){ return total + num }, 0);. Looks like total is the result variable. So, I followed that example and made anotherArray as my result variable. This is confusing. – stack1 Aug 10 '15 at 21:05
  • If you look again on the example you provided you will notice that total is the first argument. – zerkms Aug 10 '15 at 21:06
  • @Bergi yep, already realized that and decided to remove it at all – zerkms Aug 10 '15 at 21:20
7

To handle multiple array parameters, you can use arguments. Thanks to that, your function can take N parameters, it is more generic.

Then, you can flat all your array parameters, and start to reduce your data. When you will reduce our array, you will create a new array by excluding redundant data. So you will start with an empty array, and you will populate it through the reduce process.

  function unite(){
    //Flat array arguments, then process to reduce data
    return [].concat.apply([], arguments).reduce(function(result, current){
      //If my result array doesn't get current element
      return result.indexOf(current) === -1
      //concat current element to result and return it
      ? result.concat(current)
      //Otherwise, just return actual result array
      : result;
    }, []);
  }

  var array = unite([1,2], [1,6,2,3], [4,5]);

  console.log(array);
  //[1,2,6,3,4,5]

EDIT 06/02/2017:

Now, you can use the spread operator in order to handle multiple parameters, by destructuring the assignment for example. Moreover, we can improve performance by using the indexOf() operation with the bitwise operator ~.

function unite(...data) {
  return [].concat.apply([], data).reduce((result, current) => {
    return ~result.indexOf(current)
    ? result
    : result.concat(current)
  }, []);
}

console.log(unite([1,2,3], [1, 4, 4, 5, 6]));
  • I pretty much wrote the exact same solution, but I'll just up-vote yours :) – Peter Aug 10 '15 at 23:22
1

I think you wanted to check whether the element is already in the resultArray, not in some anotherArray. With that, it could kinda work:

function arrayDiff(resultArray, element){
    var idx = resultArray.indexOf(element);
    if (idx == -1) { // add only when not already found in the result array
        resultArray.push(element);
    }
    return resultArray; // always return the resultArray even if we didn't add to it
}

function unite(arr1, arr2, arr3) {
    var r0 = [];
    var r1 = arr1.reduce(arrayDiff, r0); // supply some start accumulator argument
    var r2 = arr2.reduce(arrayDiff, r1); // and pass the results through so that
    var r3 = arr3.reduce(arrayDiff, r2); // duplicates are filtered amongst all arrays
    return r3;
}
  • Did not understand this - supply some start accumulator argument – stack1 Aug 10 '15 at 21:14
  • @stack1: You know what the second parameter of reduce does, don't you? – Bergi Aug 10 '15 at 21:21
  • @stack1 btw, this solution does not solve your original task (but that's good, now you have chance to improve it) – zerkms Aug 10 '15 at 21:21
  • @stack1: Yes, that one. We start with the empty array, then reduce over the first arr1 to get all non-duplicate values from there, then we reduce with that result as the starting values over arr2 to add the values that are not already in there, etc – Bergi Aug 10 '15 at 21:37
  • @zerkms: Did you mean the !=? Not intentional :-) – Bergi Aug 10 '15 at 21:37
0

This is my solution, a lot cleaner/shorter:

function uniteUnique(arr) {
  var args = Array.from(arguments);
  var test = [];

  for ( var i = 0; i < args.length; i++ ) {
    for (var j = 0; j < args[i].length; j++ ) {
      if ( test.indexOf(args[i][j]) == -1 ) {      
          test.push(args[i][j]);
      }
    }
  }

  return test;
}

uniteUnique([1, 3, 2], [5, 2, 1, 4], [2, 1]);

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