2

You are given a sorted array containing both negative and positive values. Resort the array taking absolute value of negative numbers. Your complexity should be O(n)

Sample Input

[-8, -5, -3, -1, 3, 6, 9]

Expected Output

[ -1, -3, 3, -5, 6, -8, 9 ]

I have done this till now, but output is not correct.

function sortMe(input) {
   var newArr = [];
   for (var i = 0; i < input.length; i++) {
     var value = Math.abs(input[i]);
     newArr.push(value);
   }
   var c = newArr.sort()
}

and it is giving output

[ 1, 3, 3, 5, 6, 8, 9 ]
7
  1. Split the array in to two halves, one with negative numbers and the other with positive numbers.

  2. Reverse the negative numbers array.

  3. Then, run merging algorithm with the absolute value of both the arrays.

Overall runtime complexity is still O(n).


function sortMe(sortedArray) {

  var idx = -1, negs, pos, result = [], nIdx = 0, pIdx = 0;

  if (sortedArray.length === 0)
    return result;

  // Find the index where positive elements begin
  while (idx < sortedArray.length && sortedArray[++idx] < 0);

  // Get elements till the index and reverse the array
  negs = sortedArray.slice(0, idx).reverse();

  // Get elements from the index till the end
  pos = sortedArray.slice(idx);

  // Merging algorithm implementation which merges `negs` and `pos`
  while (nIdx < negs.length || pIdx < pos.length)
  {
    if (nIdx < negs.length && pIdx < pos.length)
    {
      if (Math.abs(negs[nIdx]) <= pos[pIdx])
        result.push(negs[nIdx++]);
      else
        result.push(pos[pIdx++]);
    }
    else if (nIdx < negs.length)
      result.push(negs[nIdx++]);
    else
      result.push(pos[pIdx++]);
  }

  return result;
}

console.log(sortMe([-8, -5, -3, -1, 3, 6, 9]));
// [ -1, -3, 3, -5, 6, -8, 9 ]

function sortMe(sortedArray) {

  var idx = -1, negs, pos, result = [], nIdx = 0, pIdx = 0;

  if (sortedArray.length === 0)
    return result;

  // Find the index where positive elements begin
  while (idx < sortedArray.length && sortedArray[++idx] < 0);

  // Get elements till the index and reverse the array
  negs = sortedArray.slice(0, idx).reverse();

  // Get elements from the index till the end
  pos = sortedArray.slice(idx);

  // Merging algorithm implementation which merges `negs` and `pos`
  while (nIdx < negs.length || pIdx < pos.length)
  {
    if (nIdx < negs.length && pIdx < pos.length)
    {
      if (Math.abs(negs[nIdx]) <= pos[pIdx])
        result.push(negs[nIdx++]);
      else
        result.push(pos[pIdx++]);
    }
    else if (nIdx < negs.length)
      result.push(negs[nIdx++]);
    else
      result.push(pos[pIdx++]);
  }

  return result;
}

function getElement(id) {
  return document.getElementById(id);
}

function sorter() {
  var data = getElement("numbers").value.split(" ").map(Number);
  getElement("result").innerHTML = "[" + sortMe(data).join(", ") + "]";
}
<input id="numbers" value="-8 -5 -3 -1 3 6 9" />
<input type="button" onclick="sorter()" value="Click here to Sort" />
<pre id="result" />

1
        int[] arr = new int[] { -8, -5, -3, -1, 3, 6, 9 };
        for(int i =0; i < arr.Length; i++)
        {
            int pos = 0;                
            for (int j = 0; j < arr.Length; j++)
            {
                if (Math.Abs(arr[pos]) > Math.Abs(arr[j]))
                {
                    int temp;
                    temp = arr[pos];
                    arr[pos] = arr[j];
                    arr[j] = temp;
                    pos++;
                }
            }

        }
0

Can be done by taking in mind 3 cases:

a. All positive numbers : leave the array as is

b. All negative numbers : reverse the array

c. Positive as well as negative numbers : find last negative number in input array and then use left and right to compare.

import java.util.Arrays;

public class SortAbsoluteValue {
    // all positive; all negative; postive & negative
    public static void main(String[] args) {
        int[] num = new int[] { -8, -5, -3, -1, 3, 6, 9 };
        int[] result = sortAbsolute(num);

        for (int i = 0; i < num.length; i++) {
            System.out.println(result[i]);
        }
    }

    private static int[] sortAbsolute(int[] num) {
        int size = num.length;
        // all positive : leave as is
        if (num[0] >= 0)
            return num;
        // all negative : reverse array
        if (num[size-1] < 0) {
            int[] temp = Arrays.copyOf(num, num.length);
            Arrays.sort(temp);
            return temp;
        }
        int[] result = new int[size];

        int i = 0;
        for (i = 0; i < size - 1; i++) {
            if (num[i] < 0 && num[i + 1] >= 0) {
                break;
            }
        }

        int left = i - 1;
        int right = i + 1;
        result[0] = num[i];
        int k = 0;
        while (left >= 0 && right < size) {
            if (Math.abs(num[left]) < num[right]) {
                result[++k] = num[left];
                left--;
            } else {
                result[++k] = num[right];
                right++;
            }
        }
        // remaining left elements, if any
        while(left>=0) {
            result[++k] = num[left--];
        }
        // remaining right elements, if any
        while(right<size) {
            result[++k] = num[right++];
        }
        return result;
    }
}
0

@thefourtheye, your solution is very good, but it does not correct process number sequences where numbers(positive and negative ones) are mixed. You can check your solution with the next sequence, for example: [-2 -5 3 8 -10] and it will give you wrong result : [3, -5, -2, 8, -10].

This is because:

1) You rely that negative and positive numbers should go in the sorted order.

2) Find indexes of positive and negative numbers despite the fact that they can go inconsistently.

I've corrected your code and now it can process any mixed positive/negative number sequences and correctly sort them by absolute values. Code is below:

function sortArrayByAbsValues(sortedArray) {

                var negs = [], pos = [], result = [], nIdx = 0, pIdx = 0;

                if (sortedArray.length === 0)
                    return result;

                //prepare negative/positive number sequences.
                for (var i = 0; i < sortedArray.length; i++) {
                    var value = sortedArray[i];
                    if (value < 0) {
                        negs.push(value);
                    } else {
                        pos.push(value);
                    }
                }
                // sort positive/negative numbers
                pos = pos.sort();
                negs = negs.sort();

                // Merging algorithm implementation which merges `negs` and `pos`
                while (nIdx < negs.length || pIdx < pos.length) {
                    if (nIdx < negs.length && pIdx < pos.length) {
                        if (Math.abs(negs[nIdx]) <= pos[pIdx])
                            result.push(negs[nIdx++]);
                        else
                            result.push(pos[pIdx++]);
                    }
                    else if (nIdx < negs.length)
                        result.push(negs[nIdx++]);
                    else
                        result.push(pos[pIdx++]);
                }

                return result;
            }
0
inputArray.sort(function(a,b) {
    return Math.abs(a) - Math.abs(b);
});

Might not be O(n) but worked well for me

0

You can simply achieve this using Bubble sort

 var array= new Array(2,-2,3,5,-3,1);

 function absoluteSortin(array){

    var inputArray= array.slice(0);
    var temp;

    for(var i=0;i< inputArray.length;i++){
        for(j=i+1; j<inputArray.length;j++){
            if(Math.abs(inputArray[i]) > Math.abs(inputArray[j])){
                temp= inputArray[j];
                inputArray[j] = inputArray[i];
                inputArray[i] = temp;
            }
        }
    }
   return inputArray;

 }
 absoluteSortin(array);
0
<?php
$a = array(-2,-3,0,5,4,1,6,9,7,-9,-1,3);
for($i=0;$i<count($a)-1;$i++) {
    for($j=0;$j<count($a)-1;$j++){
        $data1=abs($a[$j]);
        $data2=abs($a[$j+1]);
        if($data1>$data2) {
            $temp = $a[$j];
            $a[$j] = $a[$j+1];
            $a[$j+1] = $temp;
        }
    }
}
echo "<pre>";
print_R($a);
?>

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