Given a string S. You are allowed two types of operations:
- Remove a character from the front of the string.
- Remove a character from the end of the string.
The task is to find the minimum operations required to make the first and last character of the S same. In case, it is not possible, print “-1”.
Examples:
Input : S = "bacdefghipalop" Output : 4 Remove 'b' from the front and remove 'p', 'o', 'l' from the end of the string S. Input : S = "pqr" Output : -1
Approaches:
Recursive: Call a recursive function passing four arguments string, starting index, ending index and count of the number of eliminations still now.
Below is the implementation of the above approach:
// CPP program to minimum operation require // to make first and last character same #include <bits/stdc++.h> using namespace std;
const int MAX = INT_MAX;
// Recursive function call int minOperation(string &s, int i, int j, int count)
{ if ((i>=s.size() && j<0) || (i == j))
return MAX;
if (s[i] == s[j])
return count;
// Decrement ending index only
if (i >=s.size())
return minOperation(s,i,j-1,count+1);
// Increment starting index only
else if (j<0)
return minOperation(s,i+1,j,count+1);
// Increment starting index and decrement index
else
return min(minOperation(s,i,j-1,count+1),minOperation(s,i+1,j,count+1));
} // Driver code int main() {
string s = "bacdefghipalop" ;
// Function call
int ans = minOperation(s,0,s.size()-1,0);
if (ans == MAX)
cout<<-1;
else
cout<<ans;
return 0;
} |
// Java program to minimum operation require // to make first and last character same import java.util.*;
class GFG
{ static final int MAX = Integer.MAX_VALUE;
// Recursive function call
static int minOperation(String s, int i, int j, int count)
{
if ((i >= s.length() && j < 0 ) || (i == j))
return MAX;
if (s.charAt(i) == s.charAt(j))
return count;
// Decrement ending index only
if (i >= s.length())
return minOperation(s, i, j - 1 , count + 1 );
// Increment starting index only
else if (j < 0 )
return minOperation(s, i + 1 , j, count + 1 );
// Increment starting index and decrement index
else
return Math.min(minOperation(s, i, j - 1 , count + 1 ),
minOperation(s, i + 1 , j, count + 1 ));
}
// Driver Code
public static void main(String[] args)
{
String s = "bacdefghipalop" ;
// Function call
int ans = minOperation(s, 0 , s.length() - 1 , 0 );
if (ans == MAX)
System.out.println(- 1 );
else
System.out.println(ans);
}
} // This code is contributed by // sanjeev2552 |
# Python3 program to minimum operation require # to make first and last character same import sys
MAX = sys.maxsize
# Recursive function call def minOperation(s, i, j, count):
if ((i > = len (s) and j < 0 ) or (i = = j)):
return MAX
if (s[i] = = s[j]):
return count
# Decrement ending index only
if (i > = len (s)):
return minOperation(s, i, j - 1 ,
count + 1 )
# Increment starting index only
elif (j < 0 ):
return minOperation(s, i + 1 , j,
count + 1 )
# Increment starting index
# and decrement index
else :
return min (minOperation(s, i, j - 1 ,
count + 1 ),
minOperation(s, i + 1 , j,
count + 1 ))
# Driver code if __name__ = = '__main__' :
s = "bacdefghipalop"
# Function call
ans = minOperation(s, 0 , len (s) - 1 , 0 )
if (ans = = MAX ):
print ( - 1 )
else :
print (ans)
# This code is contributed by mohit kumar 29 |
// C# program to minimum operation require // to make first and last character same using System;
class GFG
{ static int MAX = Int32.MaxValue;
// Recursive function call
static int minOperation( string s, int i, int j, int count)
{
if ((i >= s.Length && j < 0) || (i == j))
return MAX;
if (s[i] == s[j])
return count;
// Decrement ending index only
if (i >= s.Length)
return minOperation(s, i, j - 1, count + 1);
// Increment starting index only
else if (j < 0)
return minOperation(s, i + 1, j, count + 1);
// Increment starting index and decrement index
else
return Math.Min(minOperation(s, i, j - 1, count + 1),
minOperation(s, i + 1, j, count + 1));
}
// Driver Code
public static void Main()
{
string s = "bacdefghipalop" ;
// Function call
int ans = minOperation(s, 0, s.Length - 1, 0);
if (ans == MAX)
Console.Write(-1);
else
Console.Write(ans);
}
} // This code is contributed by susmitakundugoaldanga |
<script> // Javascript program to minimum operation require // to make first and last character same var MAX = 1000000000;
// Recursive function call function minOperation( s,i,j,count)
{ if ((i>=s.length && j<0) || (i == j))
return MAX;
if (s[i] == s[j])
return count;
// Decrement ending index only
if (i >=s.length)
return minOperation(s,i,j-1,count+1);
// Increment starting index only
else if (j<0)
return minOperation(s,i+1,j,count+1);
// Increment starting index and decrement index
else
return Math.min(minOperation(s,i,j-1,count+1),
minOperation(s,i+1,j,count+1));
} // Driver code var s = "bacdefghipalop" ;
// Function call var ans = minOperation(s,0,s.length-1,0);
if (ans == MAX)
document.write( -1);
else document.write( ans);
</script> |
4
Dynamic Programming: The idea is to prevent making further recursive calls for count>= Min once we found the Min during every recursive call. It saves a lot of time and is almost comparable to the tabulation method in terms of time complexity.
Implementation:
// CPP program to find minimum operation require // to make first and last character same #include <bits/stdc++.h> using namespace std;
const int MAX = INT_MAX;
// To store the visited strings map <string, int > m;
int Min = INT_MAX;
// Function to find minimum operation require // to make first and last character same int minOperation(string &s, int i, int j, int count)
{ // Base conditions
if ((i>=s.size() && j<0) || (i == j))
return MAX;
// If answer found
if (s[i] == s[j] || (count >= Min))
return count;
string str = to_string(i) + "|" +to_string(j);
// If string is already visited
if (m.find(str) == m.end())
{
// Decrement ending index only
if (i >=s.size())
m[str]= minOperation(s,i,j-1,count+1);
// Increment starting index only
else if (j<0)
m[str]= minOperation(s,i+1,j,count+1);
// Increment starting index and decrement index
else
m[str]= min(minOperation(s,i,j-1,count+1),minOperation(s,i+1,j,count+1));
}
// Store the minimum value
if (m[str] < Min)
Min = m[str];
return m[str];
} // Driver code int main()
{ string s = "bacdefghipalop" ;
// Function call
int ans = minOperation(s,0,s.size()-1,0);
if (ans == MAX)
cout<<-1;
else
cout<<ans;
} |
// Java program to find minimum operation require // to make first and last character same import java.io.*;
import java.util.*;
class GFG
{ static int MAX = Integer.MAX_VALUE;
static HashMap<String, Integer> m = new HashMap<>();
static int Min = Integer.MAX_VALUE;
// Function to find minimum operation require
// to make first and last character same
static int minOperation(String s, int i, int j, int count)
{
// Base conditions
if ((i >= s.length() && j < 0 )|| (i == j))
{
return MAX;
}
// If answer found
if (s.charAt(i) == s.charAt(j) || (count >= Min))
{
return count;
}
String str = String.valueOf(i) + "|" + String.valueOf(j);
// If string is already visited
if (!m.containsKey(str))
{
// Decrement ending index only
if (i >= s.length())
{
m.put(str,minOperation(s, i, j - 1 , count + 1 ));
}
// Increment starting index only
else if (j < 0 )
{
m.put(str,minOperation(s, i + 1 , j, count + 1 ));
}
// Increment starting index and decrement index
else
{
m.put(str,Math.min(minOperation(s, i, j - 1 , count + 1 ), minOperation(s, i + 1 , j, count + 1 )));
}
}
// Store the minimum value
if (m.get(str) < Min)
{
Min = m.get(str);
}
return m.get(str);
}
// Driver code
public static void main (String[] args)
{
String s = "bacdefghipalop" ;
// Function call
int ans=minOperation(s, 0 , s.length() - 1 , 0 );
if (ans == MAX)
{
System.out.println(- 1 );
}
else
{
System.out.println(ans);
}
}
} // This code is contributed by rag2127 |
# Python program to find minimum operation require # to make first and last character same import sys
MAX = sys.maxsize
# To store the visited strings m = {}
Min = sys.maxsize
# Function to find minimum operation require # to make first and last character same def minOperation(s, i, j, count):
global Min , MAX
# Base conditions
if ((i > = len (s) and j < 0 ) or (i = = j)):
return MAX
# If answer found
if (s[i] = = s[j] or count > = Min ):
return count
Str = str (i) + "|" + str (j)
# If string is already visited
if Str not in m:
# Decrement ending index only
if (i > = len (s)):
m[ Str ] = minOperation(s, i, j - 1 , count + 1 )
# Increment starting index only
elif (j < 0 ):
m[ Str ] = minOperation(s, i + 1 , j, count + 1 )
# Increment starting index and decrement index
else :
m[ Str ] = min (minOperation(s, i, j - 1 , count + 1 ), minOperation(s, i + 1 , j, count + 1 ))
# Store the minimum value
if (m[ Str ] < Min ):
Min = m[ Str ]
return m[ Str ]
# Driver code s = "bacdefghipalop"
# Function call ans = minOperation(s, 0 , len (s) - 1 , 0 )
if (ans = = MAX ):
print ( - 1 )
else :
print (ans)
# This code is contributed by avanitrachhadiya2155 |
// C# program to find minimum operation require // to make first and last character same using System;
using System.Collections.Generic;
class GFG
{ static int MAX = Int32.MaxValue;
static Dictionary< string , int > m = new Dictionary< string , int >();
static int Min = Int32.MaxValue;
// Function to find minimum operation require
// to make first and last character same
static int minOperation( string s, int i, int j, int count)
{
// Base conditions
if ((i >= s.Length && j < 0)|| (i == j))
{
return MAX;
}
// If answer found
if (s[i] == s[j] || (count >= Min))
{
return count;
}
string str = i.ToString() + "|" + j.ToString();
// If string is already visited
if (!m.ContainsKey(str))
{
// Decrement ending index only
if (i >= s.Length)
{
m[str] = minOperation(s, i, j - 1, count + 1);
}
// Increment starting index only
else if (j < 0)
{
m[str] = minOperation(s, i + 1, j, count + 1);
}
// Increment starting index and decrement index
else
{
m[str] = Math.Min(minOperation(s, i, j - 1, count + 1), minOperation(s, i + 1, j, count + 1));
}
}
// Store the minimum value
if (m[str] < Min)
{
Min = m[str];
}
return m[str];
}
// Driver code
static void Main()
{
string s = "bacdefghipalop" ;
// Function call
int ans=minOperation(s, 0, s.Length - 1, 0);
if (ans == MAX)
{
Console.WriteLine(-1);
}
else
{
Console.WriteLine(ans);
}
}
} // This code is contributed by divyesh072019 |
<script> // Javascript program to find minimum operation require // to make first and last character same let MAX = Number.MAX_VALUE;
let m = new Map();
let Min = Number.MAX_VALUE;
// Function to find minimum operation require
// to make first and last character same
function minOperation(s, i, j, count)
{
// Base conditions
if ((i >= s.length && j < 0)|| (i == j))
{
return MAX;
}
// If answer found
if (s[i] == s[j] || (count >= Min))
{
return count;
}
let str = (i).toString() + "|" + (j).toString();
// If string is already visited
if (!m.has(str))
{
// Decrement ending index only
if (i >= s.length)
{
m.set(str,minOperation(s, i, j - 1, count + 1));
}
// Increment starting index only
else if (j < 0)
{
m.set(str,minOperation(s, i + 1, j, count + 1));
}
// Increment starting index and decrement index
else
{
m.set(str,Math.min(minOperation(s, i, j - 1, count + 1), minOperation(s, i + 1, j, count + 1)));
}
}
// Store the minimum value
if (m.get(str) < Min)
{
Min = m.get(str);
}
return m.get(str);
}
// Driver code
let s = "bacdefghipalop" ;
// Function call
let ans=minOperation(s, 0, s.length - 1, 0);
if (ans == MAX)
{
document.write(-1);
}
else
{
document.write(ans);
}
// This code is contributed by unknown2108 </script> |
4
Dynamic programming with Tabulation:
The idea is to find the first and last occurrences of each character in the string. The total amount of operations needed will be simply “number of operations needed to remove the first occurrence” plus “number of operations needed to remove the last occurrence”. So, do this for each character in the string and the answer will be a minimum of such operations performed on each character.
For example, S = “zabcdefghaabbbb”, calculate the operations required to have character ‘a’ at both the front and the end, meaning to say the string “a….a”. For the minimum number of operations, we will form the string “abcdefghaa” i.e we will remove one character ‘z’ from front and 4 characters ‘bbbb’ from back. Hence total 5 operations will be required.
So, apply the above algorithm for each character and hence we can then find the minimum of those operations.
Implementation:
// C++ program to find minimum operation // require to make first and last character same #include <bits/stdc++.h> using namespace std;
#define MAX 256 // Return the minimum operation require // to make string first and last character same. int minimumOperation(string s)
{ int n = s.length();
// Store indexes of first occurrences of characters.
vector< int > first_occ(MAX, -1);
// Initialize result
int res = INT_MAX;
// Traverse through all characters
for ( int i=0; i<n; i++)
{
// Find first occurrence
char x = s[i];
if (first_occ[x] == -1)
first_occ[x] = i;
// Update result for subsequent occurrences
else
{
int last_occ = (n-i-1);
res = min(res, first_occ[x] + last_occ);
}
}
return res;
} // Driven Program int main()
{ string s = "bacdefghipalop" ;
cout << minimumOperation(s) << endl;
return 0;
} |
// Java program to find minimum // operation require to make // first and last character same import java.util.*;
import java.lang.*;
import java.io.*;
class GFG{
static final int MAX= 256 ;
// Return the minimum operation requires to // make string first and last character same. static int minimumOperation(String s)
{ int n = s.length();
// Store indexes of first occurrences of characters.
Vector<Integer> first_occ= new Vector<Integer>();
//Initialize all the elements to -1
for ( int i= 0 ;i<MAX;i++)
first_occ.add(i,- 1 );
// Initialize result
int res = Integer.MAX_VALUE;
// Traverse through all characters
for ( int i= 0 ; i<n; i++)
{
// Find first occurrence
int x = ( int )s.charAt(i);
if (first_occ.elementAt(x) == - 1 )
first_occ.set(x,i);
// Update result for subsequent occurrences
else
{
int last_occ = (n-i- 1 );
res = Math.min(res, first_occ.get(x) + last_occ);
}
}
return res;
} // Driven Program public static void main(String args[])
{ String s = "bacdefghipalop" ;
System.out.println(minimumOperation(s));
} } |
# Python3 program to find minimum operation # require to make first and last character same MAX = 256
# Return the minimum operation require to # make string first and last character same. def minimumOperation(s):
n = len (s)
# Store indexes of first
# occurrences of characters.
first_occ = [ - 1 ] * MAX
# Initialize result
res = float ( 'inf' )
# Traverse through all characters
for i in range ( 0 , n):
# Find first occurrence
x = s[i]
if first_occ[ ord (x)] = = - 1 :
first_occ[ ord (x)] = i
# Update result for subsequent occurrences
else :
last_occ = n - i - 1
res = min (res, first_occ[ ord (x)] + last_occ)
return res
# Driver Code if __name__ = = "__main__" :
s = "bacdefghipalop"
print (minimumOperation(s))
# This code is contributed by Rituraj Jain |
// C# program to find minimum // operation require to make // first and last character same using System;
using System.Collections.Generic;
class GFG
{ static int MAX = 256;
// Return the minimum operation requires to // make string first and last character same. static int minimumOperation(String s)
{ int n = s.Length;
// Store indexes of first occurrences of characters.
List< int > first_occ = new List< int >();
//Initialize all the elements to -1
for ( int i = 0; i < MAX; i++)
first_occ.Insert(i,-1);
// Initialize result
int res = int .MaxValue;
// Traverse through all characters
for ( int i = 0; i < n; i++)
{
// Find first occurrence
int x = ( int )s[i];
if (first_occ[x] == -1)
first_occ.Insert(x,i);
// Update result for subsequent occurrences
else
{
int last_occ = (n - i - 1);
res = Math.Min(res, first_occ[x] + last_occ);
}
}
return res;
} // Driver code public static void Main(String []args)
{ String s = "bacdefghipalop" ;
Console.WriteLine(minimumOperation(s));
} } // This code contributed by Rajput-Ji |
<script> // JavaScript program to find minimum operation // require to make first and last character same const MAX = 256 // Return the minimum operation require // to make string first and last character same. function minimumOperation(s)
{ let n = s.length;
// Store indexes of first occurrences of characters.
let first_occ = new Array(MAX).fill(-1);
// Initialize result
let res = Number.MAX_VALUE;
// Traverse through all characters
for (let i=0; i<n; i++)
{
// Find first occurrence
let x = s.charCodeAt(i);
if (first_occ[x] == -1)
first_occ[x] = i;
// Update result for subsequent occurrences
else
{
let last_occ = (n-i-1);
res = Math.min(res, first_occ[x] + last_occ);
}
}
return res;
} // Driven Program let s = "bacdefghipalop" ;
document.write(minimumOperation(s)); // This code is contributed by shinjanpatra </script> |
4
Time Complexity: O(n)