1

i have an array of mixed numbers, from that i need to shift the zero numbered to end without changing the nonzero numbers order in plain JAVASCRIPT.

Note: this need to be handled without creating a new array.

Ex:

inp_arr = [12,5,0,78,94,0,34,0,67];

expected output:

[12,5,78,94,34,67,0,0,0];

the way i implemented :

function sortArray(inputArray){
    let non_zeroArray = []
    let zero_Array = [];
    inputArray.map(item => {
        item != 0 ? non_zeroArray.push(item) : zero_Array.push(item)
    });
    return non_zeroArray.concat(zero_Array)
}

console.log(
  sortArray([32, 0, 12, 78, 0, 56, 0, 87, 0])
)

2
  • You need to implement intelligent swapping.
    – PM 77-1
    Sep 23 '19 at 18:06
  • What have you tried so far?
    – slasky
    Sep 23 '19 at 18:18
1

Your solution is quite well anyway as it has linear O(n) complexity. So you're not sorting the elements but filtering out the source array then pushing the zeroes at the end.

To improve readability you might use the native filter method.

If for some reason you need to move the other values you can use a second argument to the method.

In addition you might defer pushing the zeroes to the array during the iteration. Just to count them up and compose the array at the end.

const moveValueAtEnd = (arr, value) => {
  let counter = 0;
  return arr.filter((val) => {
    const match = val === value;
    enter code here
     // in js, boolean is casted to 0 or 1 when using arithmetic operation
     counter += match; 

     return !match;
  }).concat(Array(counter).fill(value))

}
0

Pass a comparison function to array::sort. Only swap pairs if they aren't equal, and one is 0, else keep the existing order.

const data = [12,5,0,78,94,0,34,0,67];

const sortedData = data.sort((a, b) => {
  if (a !== b) {
    if (a === 0) return 1; // shift a back a place
    if (b === 0) return -1; // shift a forward a place
  }
  return 0; // keep in place
});

console.log(JSON.stringify(sortedData));

0
0

Well you can simply use Array#sort() method with a condition to check for 0 in the callback, it will directly update the current array:

inp_arr.sort((a, b) => {
  if (a == 0) {
    return 1;
  } else if (b == 0) {
    return -1;
  }
});

Demo:

inp_arr = [12, 5, 0, 78, 94, 0, 34, 0, 67];

inp_arr.sort((a, b) => {
  if (a == 0) {
    return 1;
  } else if (b == 0) {
    return -1;
  }
});

console.log(inp_arr);

0
0

You need just two for loops. The outer loop goes though the array from the first element to the one before last and looks for zeros. If it finds one a second loop shifts the remaining elements one to the left, puts a zero at the end and reduces the remaining elements by one.

function collapse_zeros (a)
{
  let l = a.length;
  for (i = 0; i < l - 1; i++)
    if (a[i] == 0)
    {
      for (j = i; j < l - 1; j++)
        a[j] = a[j+1];
      a[l-1] = 0;
      l--;
    }
  return a;
}

console.log (collapse_zeros ([32, 0, 12, 78, 0, 56, 0, 87, 0]));

0

You can use array#sort to move 0 in the array to the last.

let arr = [12,5,0,78,94,0,34,0,67];
arr.sort((a,b) => (a === 0) - (b === 0));
console.log(arr);
.as-console-wrapper { max-height: 100% !important; top: 0; }

1
  • As per ES2018 spec, the array.sort is guaranteed to be stable. Sep 25 '19 at 6:03

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