Javascript Program to Modify a string by performing given shift operations

Last Updated : 20 Jul, 2022

Given a string S containing lowercase English alphabets, and a matrix shift[][] consisting of pairs of the form{direction, amount}, where the direction can be 0 (for left shift) or 1 (for right shift) and the amount is the number of indices by which the string S is required to be shifted. The task is to return the modified string that can be obtained after performing the given operations.
Note: A left shift by 1 refers to removing the first character of S and append it to the end. Similarly, a right shift by 1 refers to removing the last character of S and insert at the beginning.

Examples

Input: S = “abc”, shift[][] = {{0, 1}, {1, 2}}
Output: cab
Explanation:
[0, 1] refers to shifting S[0] to the left by 1. Therefore, the string S modifies from “abc” to “bca”.
[1, 2] refers to shifting S[0] to the right by 1. Therefore, the string S modifies from “bca”to “cab”.

Input: S = “abcdefg”, shift[][] = { {1, 1}, {1, 1}, {0, 2}, {1, 3} }
Output: efgabcd
Explanation:
[1, 1] refers to shifting S[0] to the right by 1. Therefore, the string S modifies from “abcdefg” to “gabcdef”.
[1, 1] refers to shifting S[0] to the right by 1. Therefore, the string S modifies from “gabcdef” to “fgabcde”.
[0, 2] refers to shifting S[0] to the left by 2. Therefore, the string S modifies from “fgabcde” to “abcdefg”.
[1, 3] refers to shifting S[0] to the right by 3. Therefore, the string S modifies from “abcdefg” to “efgabcd”.

Naive Approach: The simplest approach to solve the problem is to traverse the matrix shift[][] and shift S[0] by amount number of indices in the specified direction. After completing all shift operations, print the final string obtained.
Time Complexity: O(N²)
Auxiliary space: O(N)

Efficient Approach: To optimize the above approach, follow the steps below:

Initialize a variable, say val, to store the effective shifts.
Traverse the matrix shift[][] and perform the following operations on every i^th row:
If shift[i][0] = 0 (left shift), then decrease val by -shift[i][1].
Otherwise (left shift), increase val by shift[i][1].
Update val = val % len (for further optimizing the effective shifts).
Initialize a string, result = “”, to store the modified string.
Now, check if val > 0. If found to be true, then perform the right rotation on the string by val.
Otherwise, perform left rotation of the string by |val| amount.
Print the result.

Below is the implementation of the above approach:

Javascript

<script>
 
// Javascript implementation
// of above approach
 
// Function to find the string obtained
// after performing given shift operations
function stringShift(s, shift)
{
 
    var val = 0;
 
    for (var i = 0; i < shift.length; ++i)
 
        // If shift[i][0] = 0, then left shift
        // Otherwise, right shift
        val += shift[i][0] == 0
                   ? -shift[i][1]
                   : shift[i][1];
 
    // Stores length of the string
    var len = s.length;
 
    // Effective shift calculation
    val = val % len;
 
    // Stores modified string
    var result = "";
 
    // Right rotation
    if (val > 0)
        result = s.substring(len - val,len)
                 + s.substring(0, len - val);
 
    // Left rotation
    else
        result
            = s.substring(-val, len )
              + s.substring(0, -val);
 
    document.write( result);
}
 
// Driver Code
var s = "abc";
var shift = [
    [ 0, 1 ],
    [ 1, 2 ]
];
stringShift(s, shift);
 
// This code is contributed by importantly.
</script>