Dynamic Programming | Set 28 (Minimum insertions to form a palindrome) - GeeksforGeeks


Dynamic Programming | Set 28 (Minimum insertions to form a palindrome) - GeeksforGeeks
Given a string, find the minimum number of characters to be inserted to convert it to palindrome.

Let the input string be str[l……h]. The problem can be broken down into three parts:
1. Find the minimum number of insertions in the substring str[l+1,…….h].
2. Find the minimum number of insertions in the substring str[l…….h-1].
3. Find the minimum number of insertions in the substring str[l+1……h-1].
Time complexity: O(N^2)
Auxiliary Space: O(N^2)
// A DP function to find minimum number of insersions
int findMinInsertionsDP(char str[], int n)
{
    // Create a table of size n*n. table[i][j] will store
    // minumum number of insertions needed to convert str[i..j]
    // to a palindrome.
    int table[n][n], l, h, gap;
 
    // Initialize all table entries as 0
    memset(table, 0, sizeof(table));
 
    // Fill the table
    for (gap = 1; gap < n; ++gap)
        for (l = 0, h = gap; h < n; ++l, ++h)
            table[l][h] = (str[l] == str[h])? table[l+1][h-1] :
                          (min(table[l][h-1], table[l+1][h]) + 1);
 
    // Return minimum number of insertions for str[0..n-1]
    return table[0][n-1];
}

Another Dynamic Programming Solution (Variation of Longest Common Subsequence Problem)
The problem of finding minimum insertions can also be solved using Longest Common Subsequence (LCS) Problem. If we find out LCS of string and its reverse, we know how many maximum characters can form a palindrome. We need insert remaining characters. Following are the steps.
1) Find the length of LCS of input string and its reverse. Let the length be ‘l’.
2) The minimum number insertions needed is length of input string minus ‘l’.
int lcs( char *X, char *Y, int m, int n )
{
   int L[n+1][n+1];
   int i, j;
 
   /* Following steps build L[m+1][n+1] in bottom up fashion. Note
      that L[i][j] contains length of LCS of X[0..i-1] and Y[0..j-1] */
   for (i=0; i<=m; i++)
   {
     for (j=0; j<=n; j++)
     {
       if (i == 0 || j == 0)
         L[i][j] = 0;
 
       else if (X[i-1] == Y[j-1])
         L[i][j] = L[i-1][j-1] + 1;
 
       else
         L[i][j] = max(L[i-1][j], L[i][j-1]);
     }
   }
 
   /* L[m][n] contains length of LCS for X[0..n-1] and Y[0..m-1] */
   return L[m][n];
}
// LCS based function to find minimum number of insersions
int findMinInsertionsLCS(char str[], int n)
{
   // Creata another string to store reverse of 'str'
   char rev[n+1];
   strcpy(rev, str);
   strrev(rev);
 
   // The output is length of string minus length of lcs of
   // str and it reverse
   return (n - lcs(str, rev, n, n));
}

int findMinInsertions(char str[], int l, int h)
{
    // Base Cases
    if (l > h) return INT_MAX;
    if (l == h) return 0;
    if (l == h - 1) return (str[l] == str[h])? 0 : 1;
 
    // Check if the first and last characters are same. On the basis of the
    // comparison result, decide which subrpoblem(s) to call
    return (str[l] == str[h])? findMinInsertions(str, l + 1, h - 1):
                               (min(findMinInsertions(str, l, h - 1),
                                   findMinInsertions(str, l + 1, h)) + 1);
}
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