Check if reversing a sub array make the array sorted
Last Updated :
13 Sep, 2023
Given an array of n distinct integers. The task is to check whether reversing any one sub-array can make the array sorted or not. If the array is already sorted or can be made sorted by reversing any one subarray, print “Yes“, else print “No“.
Examples:
Input : arr [] = {1, 2, 5, 4, 3}
Output : Yes
By reversing the subarray {5, 4, 3}, the array will be sorted.
Input : arr [] = { 1, 2, 4, 5, 3 }
Output : No
Method 1: Brute force (O(n3))
Consider every subarray and check if reversing the subarray makes the whole array sorted. If yes, return True. If reversing any of the subarrays doesn’t make the array sorted, then return False. Considering every subarray will take O(n2), and for each subarray, checking whether the whole array will get sorted after reversing the subarray in consideration will take O(n). Thus overall complexity would be O(n3).
Method 2: Sorting ( O(n*log(n) ))
The idea is to compare the given array with its sorted version. Make a copy of the given array and sort it. Now, find the first index and last index in the given array which does not match with the sorted array. If no such indices are found (given array was already sorted), return True. Else check if the elements between the found indices are in decreasing order, if Yes then return True else return False
Below is the implementation of the above approach:
C++
#include<bits/stdc++.h>
using namespace std;
bool checkReverse( int arr[], int n)
{
int temp[n];
for ( int i = 0; i < n; i++)
temp[i] = arr[i];
sort(temp, temp + n);
int front;
for (front = 0; front < n; front++)
if (temp[front] != arr[front])
break ;
int back;
for (back = n - 1; back >= 0; back--)
if (temp[back] != arr[back])
break ;
if (front >= back)
return true ;
do
{
front++;
if (arr[front - 1] < arr[front])
return false ;
} while (front != back);
return true ;
}
int main()
{
int arr[] = { 1, 2, 5, 4, 3 };
int n = sizeof (arr)/ sizeof (arr[0]);
checkReverse(arr, n)? (cout << "Yes" << endl):
(cout << "No" << endl);
return 0;
}
|
Java
import java.util.Arrays;
class GFG {
static boolean checkReverse( int arr[], int n) {
int temp[] = new int [n];
for ( int i = 0 ; i < n; i++) {
temp[i] = arr[i];
}
Arrays.sort(temp);
int front;
for (front = 0 ; front < n; front++) {
if (temp[front] != arr[front]) {
break ;
}
}
int back;
for (back = n - 1 ; back >= 0 ; back--) {
if (temp[back] != arr[back]) {
break ;
}
}
if (front >= back) {
return true ;
}
do {
front++;
if (arr[front - 1 ] < arr[front]) {
return false ;
}
} while (front != back);
return true ;
}
public static void main(String[] args) {
int arr[] = { 1 , 2 , 5 , 4 , 3 };
int n = arr.length;
if (checkReverse(arr, n)) {
System.out.print( "Yes" );
} else {
System.out.print( "No" );
}
}
}
|
Python3
def checkReverse(arr, n):
temp = [ 0 ] * n
for i in range (n):
temp[i] = arr[i]
temp.sort()
for front in range (n):
if temp[front] ! = arr[front]:
break
for back in range (n - 1 , - 1 , - 1 ):
if temp[back] ! = arr[back]:
break
if front > = back:
return True
while front ! = back:
front + = 1
if arr[front - 1 ] < arr[front]:
return False
return True
arr = [ 1 , 2 , 5 , 4 , 3 ]
n = len (arr)
if checkReverse(arr, n) = = True :
print ( "Yes" )
else :
print ( "No" )
|
C#
using System;
class GFG
{
static bool checkReverse( int []arr, int n)
{
int []temp = new int [n];
for ( int i = 0; i < n; i++)
{
temp[i] = arr[i];
}
Array.Sort(temp);
int front;
for (front = 0; front < n; front++)
{
if (temp[front] != arr[front])
{
break ;
}
}
int back;
for (back = n - 1; back >= 0; back--)
{
if (temp[back] != arr[back])
{
break ;
}
}
if (front >= back)
{
return true ;
}
do
{
front++;
if (arr[front - 1] < arr[front])
{
return false ;
}
} while (front != back);
return true ;
}
public static void Main()
{
int []arr = {1, 2, 5, 4, 3};
int n = arr.Length;
if (checkReverse(arr, n))
{
Console.Write( "Yes" );
}
else
{
Console.Write( "No" );
}
}
}
|
PHP
<?php
function checkReverse( $arr , $n )
{
$temp [ $n ] = array ();
for ( $i = 0; $i < $n ; $i ++)
$temp [ $i ] = $arr [ $i ];
sort( $temp , 0);
$front ;
for ( $front = 0; $front < $n ; $front ++)
if ( $temp [ $front ] != $arr [ $front ])
break ;
$back ;
for ( $back = $n - 1; $back >= 0; $back --)
if ( $temp [ $back ] != $arr [ $back ])
break ;
if ( $front >= $back )
return true;
do
{
$front ++;
if ( $arr [ $front - 1] < $arr [ $front ])
return false;
} while ( $front != $back );
return true;
}
$arr = array ( 1, 2, 5, 4, 3 );
$n = sizeof( $arr );
if (checkReverse( $arr , $n ))
echo "Yes" . "\n" ;
else
echo "No" . "\n" ;
?>
|
Javascript
<script>
function checkReverse(arr, n) {
let temp = [];
for (let i = 0; i < n; i++) {
temp[i] = arr[i];
}
temp.sort();
let front;
for (front = 0; front < n; front++) {
if (temp[front] != arr[front]) {
break ;
}
}
let back;
for (back = n - 1; back >= 0; back--) {
if (temp[back] != arr[back]) {
break ;
}
}
if (front >= back) {
return true ;
}
do {
front++;
if (arr[front - 1] < arr[front]) {
return false ;
}
} while (front != back);
return true ;
}
let arr = [1, 2, 5, 4, 3];
let n = arr.length;
if (checkReverse(arr, n)) {
document.write( "Yes" );
} else {
document.write( "No" );
}
</script>
|
Time Complexity: O(n*log(n) ).
Auxiliary Space: O(n).
Method 3: Linear time solution (O(n)):
The idea to solve this problem is based on the observation that if we perform one rotation of any subarray in the sorted array (increasing order), then we there will be exactly one subarray which will be in decreasing order. So, we have to find that rotated subarray and perform one rotation on it. Finally check if the array becomes sorted or not.
- Initialize two variables x and y with -1.
- Iterate over the array.
- Find the first number for which a[i] > a[i+1] and store it into x.
- Similarly, Store index i+1 as well into y, As this will keep track of the ending of the subarray which is needed to reverse.
- Check if x == -1 then array is already sorted so return true.
- Otherwise, reverse the array from index x to index y.
- Traverse the array to check for every element is sorted or not.
- If not sorted, return false.
- Finally, return true.
Below is the implementation of the above approach:
C++
#include <bits/stdc++.h>
using namespace std;
bool sortArr( int a[], int n)
{
int x = -1;
int y = -1;
for ( int i = 0; i < n - 1; i++) {
if (a[i] > a[i + 1]) {
if (x == -1) {
x = i;
}
y = i + 1;
}
}
if (x != -1) {
reverse(a + x, a + y + 1);
for ( int i = 0; i < n - 1; i++) {
if (a[i] > a[i + 1]) {
return false ;
return 0;
}
}
}
return true ;
}
int main()
{
int arr[] = { 1, 2, 5, 4, 3 };
int n = sizeof (arr) / sizeof (arr[0]);
sortArr(arr, n) ? (cout << "Yes" << endl)
: (cout << "No" << endl);
return 0;
}
|
Java
public class GFG {
static void reverse( int [] a, int x, int y)
{
while (x<y)
{
int temp = a[x];
a[x] = a[y];
a[y] = temp;
x++;
y--;
}
}
static boolean sortArr( int [] a, int n)
{
int x = - 1 ;
int y = - 1 ;
for ( int i = 0 ; i < n - 1 ; i++) {
if (a[i] > a[i + 1 ]) {
if (x == - 1 ) {
x = i;
}
y = i + 1 ;
}
}
if (x != - 1 ) {
reverse(a,x,y);
for ( int i = 0 ; i < n - 1 ; i++) {
if (a[i] > a[i + 1 ]) {
return false ;
}
}
}
return true ;
}
public static void main (String[] args)
{
int arr[] = { 1 , 2 , 5 , 4 , 3 };
int n = arr.length;
if (sortArr(arr, n))
{
System.out.println( "Yes" );
}
else
{
System.out.println( "No" );
}
}
}
|
Python3
def reverse(a, x, y):
while (x < y):
temp = a[x]
a[x] = a[y]
a[y] = temp
x + = 1
y - = 1
def sortArr(a, n):
x, y = - 1 , - 1
for i in range (n - 1 ):
if (a[i] > a[i + 1 ]):
if (x = = - 1 ):
x = i
y = i + 1
if (x ! = - 1 ):
reverse(a, x, y)
for i in range ( 0 , n - 1 ):
if (a[i] > a[i + 1 ]):
return False
return True
arr = [ 1 , 2 , 5 , 4 , 3 ]
n = len (arr)
if (sortArr(arr, n)):
print ( "Yes" )
else :
print ( "No" )
|
C#
using System;
public class GFG {
static void reverse( int [] a, int x, int y)
{
while (x < y) {
int temp = a[x];
a[x] = a[y];
a[y] = temp;
x++;
y--;
}
}
static bool sortArr( int [] a, int n)
{
int x = -1;
int y = -1;
for ( int i = 0; i < n - 1; i++) {
if (a[i] > a[i + 1]) {
if (x == -1) {
x = i;
}
y = i + 1;
}
}
if (x != -1) {
reverse(a, x, y);
for ( int i = 0; i < n - 1; i++) {
if (a[i] > a[i + 1]) {
return false ;
}
}
}
return true ;
}
static public void Main()
{
int [] arr = { 1, 2, 5, 4, 3 };
int n = arr.Length;
if (sortArr(arr, n)) {
Console.WriteLine( "Yes" );
}
else {
Console.WriteLine( "No" );
}
}
}
|
Javascript
function sortArr(arr, n) {
let x=-1;
let y=-1;
for (let i = 0; i < n-1; i++) {
if (arr[i] > arr[i + 1]) {
if (x == -1) {
x = i;
}
y = i + 1;
}
}
if (x != -1) {
while (x<y)
{
let temp=arr[x];
arr[x]=arr[y];
arr[y]=temp;
x++;
y--;
}
for (let i = 0; i < n - 1; i++) {
if (arr[i] > arr[i + 1]) {
return false ;
return 0;
}
}
}
return true ;
}
let arr = [1, 2, 5, 4, 3];
let n = arr.length;
if (sortArr(arr, n)) {
console.log( "Yes" );
} else {
console.log( "No" );
}
|
Time Complexity: O(n)
Auxiliary Space: O(1)
Method 4: Another linear time solution (O(n)):
Observe, that the answer will be True when the array is already sorted or when the array consists of three parts. The first part is increasing subarray, then decreasing subarray, and then again increasing subarray. So, we need to check that array contains increasing elements then some decreasing elements, and then increasing elements if this is the case the answer will be True. In all other cases, the answer will be False.
Note: Simply finding the three parts does not guarantee the answer to be True eg consider
arr [] = {10,20,30,40,4,3,2,50,60,70}
The answer would be False in this case although we are able to find three parts. We will be handling the validity of the three parts in the code below.
Below is the implementation of this approach:
C++
#include<bits/stdc++.h>
using namespace std;
bool checkReverse( int arr[], int n)
{
if (n == 1)
return true ;
int i;
for (i=1; i < n && arr[i-1] < arr[i]; i++);
if (i == n)
return true ;
int j = i;
while (j < n && arr[j] < arr[j-1])
{
if (i > 1 && arr[j] < arr[i-2])
return false ;
j++;
}
if (j == n)
return true ;
int k = j;
if (arr[k] < arr[i-1])
return false ;
while (k > 1 && k < n)
{
if (arr[k] < arr[k-1])
return false ;
k++;
}
return true ;
}
int main()
{
int arr[] = {1, 3, 4, 10, 9, 8};
int n = sizeof (arr)/ sizeof (arr[0]);
checkReverse(arr, n)? cout << "Yes" : cout << "No" ;
return 0;
}
|
Java
class GFG {
static boolean checkReverse( int arr[], int n) {
if (n == 1 ) {
return true ;
}
int i;
for (i = 1 ; arr[i - 1 ] < arr[i] && i < n; i++);
if (i == n) {
return true ;
}
int j = i;
while (j < n && arr[j] < arr[j - 1 ]) {
if (i > 1 && arr[j] < arr[i - 2 ]) {
return false ;
}
j++;
}
if (j == n) {
return true ;
}
int k = j;
if (arr[k] < arr[i - 1 ]) {
return false ;
}
while (k > 1 && k < n) {
if (arr[k] < arr[k - 1 ]) {
return false ;
}
k++;
}
return true ;
}
public static void main(String[] args) {
int arr[] = { 1 , 3 , 4 , 10 , 9 , 8 };
int n = arr.length;
if (checkReverse(arr, n)) {
System.out.print( "Yes" );
} else {
System.out.print( "No" );
}
}
}
|
Python3
import math as mt
def checkReverse(arr, n):
if (n = = 1 ):
return True
i = 1
for i in range ( 1 , n):
if arr[i - 1 ] < arr[i] :
if (i = = n):
return True
else :
break
j = i
while (j < n and arr[j] < arr[j - 1 ]):
if (i > 1 and arr[j] < arr[i - 2 ]):
return False
j + = 1
if (j = = n):
return True
k = j
if (arr[k] < arr[i - 1 ]):
return False
while (k > 1 and k < n):
if (arr[k] < arr[k - 1 ]):
return False
k + = 1
return True
arr = [ 1 , 3 , 4 , 10 , 9 , 8 ]
n = len (arr)
if checkReverse(arr, n):
print ( "Yes" )
else :
print ( "No" )
|
C#
using System;
public class GFG{
static bool checkReverse( int []arr, int n) {
if (n == 1) {
return true ;
}
int i;
for (i = 1; arr[i - 1] < arr[i] && i < n; i++);
if (i == n) {
return true ;
}
int j = i;
while (j < n && arr[j] < arr[j - 1]) {
if (i > 1 && arr[j] < arr[i - 2]) {
return false ;
}
j++;
}
if (j == n) {
return true ;
}
int k = j;
if (arr[k] < arr[i - 1]) {
return false ;
}
while (k > 1 && k < n) {
if (arr[k] < arr[k - 1]) {
return false ;
}
k++;
}
return true ;
}
public static void Main() {
int []arr = {1, 3, 4, 10, 9, 8};
int n = arr.Length;
if (checkReverse(arr, n)) {
Console.Write( "Yes" );
} else {
Console.Write( "No" );
}
}
}
|
Javascript
<script>
function checkReverse( arr, n)
{
if (n == 1)
return true ;
let i;
for (i=1; i < n && arr[i-1] < arr[i]; i++);
if (i == n)
return true ;
let j = i;
while (j < n && arr[j] < arr[j-1])
{
if (i > 1 && arr[j] < arr[i-2])
return false ;
j++;
}
if (j == n)
return true ;
let k = j;
if (arr[k] < arr[i-1])
return false ;
while (k > 1 && k < n)
{
if (arr[k] < arr[k-1])
return false ;
k++;
}
return true ;
}
let arr = [1, 3, 4, 10, 9, 8];
let n = arr.length;
if (checkReverse(arr, n)) {
document.write( "Yes" );
} else {
document.write( "No" );
}
</script>
|
Time Complexity: O(n).
Auxiliary Space: O(1).
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