Duplicates in an array in O(n) time and by using O(1) extra space | Set-3
Last Updated :
22 Aug, 2022
Given an array of n elements which contains elements from 0 to n-1, with any of these numbers appearing any number of times. Find these repeating numbers in O(n) and using only constant memory space. It is required that the order in which elements repeat should be maintained. If there is no repeating element present then print -1.
Examples:
Input : arr[] = {1, 2, 3, 1, 3, 6, 6}
Output : 1, 3, 6
Elements 1, 3 and 6 are repeating.
Second occurrence of 1 is found
first followed by repeated occurrence
of 3 and 6.
Input : arr[] = {0, 3, 1, 3, 0}
Output : 3, 0
Second occurrence of 3 is found
first followed by second occurrence
of 0.
We have discussed two approaches for this question in below posts:
Find duplicates in O(n) time and O(1) extra space | Set 1
Duplicates in an array in O(n) time and by using O(1) extra space | Set-2
There is a problem in first approach. It prints the repeated number more than once. For example: {1, 6, 3, 1, 3, 6, 6} it will give output as : 3 6 6. In second approach although each repeated item is printed only once, the order in which their repetition occurs is not maintained.
To print elements in order in which they are repeating, the second approach is modified. To mark the presence of an element size of the array, n is added to the index position arr[i] corresponding to array element arr[i]. Before adding n, check if value at index arr[i] is greater than or equal to n or not. If it is greater than or equal to, then this means that element arr[i] is repeating. To avoid printing repeating element multiple times, check if it is the first repetition of arr[i] or not. It is first repetition if value at index position arr[i] is less than 2*n.
This is because, if element arr[i] has occurred only once before then n is added to index arr[i] only once and thus value at index arr[i] is less than 2*n. Add n to index arr[i] so that value becomes greater than or equal to 2*n and it will prevent further printing of current repeating element. Also if value at index arr[i] is less than n then it is first occurrence (not repetition) of element arr[i]. So to mark this add n to element at index arr[i].
Below is the implementation of above approach:
C++
#include <bits/stdc++.h>
using namespace std;
void printDuplicates( int arr[], int n)
{
int i;
int fl = 0;
for (i = 0; i < n; i++) {
if (arr[arr[i] % n] >= n) {
if (arr[arr[i] % n] < 2 * n) {
cout << arr[i] % n << " " ;
fl = 1;
}
}
arr[arr[i] % n] += n;
}
if (!fl)
cout << "-1" ;
}
int main()
{
int arr[] = { 1, 6, 3, 1, 3, 6, 6 };
int arr_size = sizeof (arr) / sizeof (arr[0]);
printDuplicates(arr, arr_size);
return 0;
}
|
Java
import java.io.*;
class GFG
{
static void printDuplicates( int arr[], int n)
{
int i;
int fl = 0 ;
for (i = 0 ; i < n; i++)
{
if (arr[arr[i] % n] >= n)
{
if (arr[arr[i] % n] < 2 * n)
{
System.out.print( arr[i] % n + " " );
fl = 1 ;
}
}
arr[arr[i] % n] += n;
}
if (!(fl > 0 ))
System.out.println( "-1" );
}
public static void main (String[] args)
{
int arr[] = { 1 , 6 , 3 , 1 , 3 , 6 , 6 };
int arr_size = arr.length;
printDuplicates(arr, arr_size);
}
}
|
Python 3
def printDuplicates(arr, n):
fl = 0 ;
for i in range ( 0 , n):
if (arr[arr[i] % n] > = n):
if (arr[arr[i] % n] < 2 * n):
print (arr[i] % n, end = " " )
fl = 1 ;
arr[arr[i] % n] + = n;
if (fl = = 0 ):
print ( "-1" )
arr = [ 1 , 6 , 3 , 1 , 3 , 6 , 6 ];
arr_size = len (arr);
printDuplicates(arr, arr_size);
|
C#
using System;
class GFG
{
static void printDuplicates( int []arr, int n)
{
int i;
int fl = 0;
for (i = 0; i < n; i++)
{
if (arr[arr[i] % n] >= n)
{
if (arr[arr[i] % n] < 2 * n)
{
Console.Write( arr[i] % n + " " );
fl = 1;
}
}
arr[arr[i] % n] += n;
}
if (!(fl > 0))
Console.Write( "-1" );
}
public static void Main ()
{
int []arr = { 1, 6, 3, 1, 3, 6, 6 };
int arr_size = arr.Length;
printDuplicates(arr, arr_size);
}
}
|
PHP
<?php
function printDuplicates( $arr , $n )
{
$i ;
$fl = 0;
for ( $i = 0; $i < $n ; $i ++)
{
if ( $arr [ $arr [ $i ] % $n ] >= $n )
{
if ( $arr [ $arr [ $i ] % $n ] < 2 * $n )
{
echo $arr [ $i ] % $n . " " ;
$fl = 1;
}
}
$arr [ $arr [ $i ] % $n ] += $n ;
}
if (! $fl )
echo "-1" ;
}
$arr = array (1, 6, 3, 1, 3, 6, 6);
$arr_size = sizeof( $arr );
printDuplicates( $arr , $arr_size );
|
Javascript
<script>
function printDuplicates(arr, n)
{
let i;
let fl = 0;
for (i = 0; i < n; i++) {
if (arr[arr[i] % n] >= n) {
if (arr[arr[i] % n] < 2 * n) {
document.write(arr[i] % n + " " );
fl = 1;
}
}
arr[arr[i] % n] += n;
}
if (!fl)
document.write( "-1" );
}
let arr = [ 1, 6, 3, 1, 3, 6, 6 ];
let arr_size = arr.length;
printDuplicates(arr, arr_size);
</script>
|
Complexity Analysis:
- Time Complexity: O(N), as we are using a loop to traverse N times.
- Auxiliary Space: O(1), as we are not using any extra space.
Like Article
Suggest improvement
Share your thoughts in the comments
Please Login to comment...