Recursively remove all adjacent duplicates

Given a string, recursively remove adjacent duplicate characters from the string. The output string should not have any adjacent duplicates. See the following examples.

Examples: 

Input: azxxzy 
Output: ay 

• First “azxxzy” is reduced to “azzy”. 
• The string “azzy” contains duplicates, 
• so it is further reduced to “ay”.

Input: neveropenforgeeg 
Output: gksfor 

• First “neveropenforgeeg” is reduced to “gksforgg”. 
• The string “gksforgg” contains duplicates, 
• so it is further reduced to “gksfor”.

Input: caaabbbaacdddd 
Output: Empty String

Input: acaaabbbacdddd 
Output: acac 

The following approach can be followed to remove duplicates in O(N) time: 

• Start from the leftmost character and remove duplicates at left corner if there are any.
• The first character must be different from its adjacent now. Recur for string of length n-1 (string without first character).
• Let the string obtained after reducing right substring of length n-1 be rem_str. There are three possible cases 
  1. If first character of rem_str matches with the first character of original string, remove the first character from rem_str.
  2. If remaining string becomes empty and last removed character is same as first character of original string. Return empty string.
  3. Else, append the first character of the original string at the beginning of rem_str.
• Return rem_str.

Below image is a dry run of the above approach:

Below is the implementation of the above approach:

gksfor
ay

g
a

qrq
acac
a

Time Complexity: The time complexity of the solution can be written as T(n) = T(n-k) + O(k) where n is length of the input string and k is the number of first characters which are same. Solution of the recurrence is O(n)
Auxiliary Space: O(n)

Thanks to Prachi Bodke for suggesting this problem and initial solution. 

Another Approach:
The idea here is to check whether the String remStr has the repeated character that matches the last char of the parent String. If that is happening then we have to keep removing that character before concatenating string s and string remStr.

Below is the implementation of the above approach:

mpie
lop

Time Complexity: O(n²), as substr method takes o(n) time, so the complexity will be O(n²).
Auxiliary Space: O(n²), as a substring copy of the original string is passed in the recursive function.

Another Approach:

The idea here is to find the duplicate characters using regular expression and run a loop to find the characters having length more than 1. If the resultant string still needs improvement then we will call the function again with the resultant string as a parameter. Here our ps would be having previous string and s would be having new string. If both are equal we will break the loop and return the answer.

gksforgk

Time Complexity: O(n), as remove() is taking only O(n) time, so the complexity would be O(n).
Auxiliary Space: O(n²), as groups and ps is taking O(n) space and O(n) is used for function recursion stack (Auxiliary Space).

Another Approach:

To solve this problem, we can utilize a stack data structure and recursion. The idea is to traverse the string from left to right and maintain a stack to store the characters. Whenever we encounter a character that is the same as the top of the stack, we remove both the character from the stack and the character from the string. This process continues until there are no more adjacent duplicates.

Time Complexity Analysis:
The time complexity of this code is O(n), where n is the length of the input string S. This is because we traverse the string once using the while loop, and each character is processed only once.

Space Complexity Analysis:
The space complexity of this code is O(n), where n is the length of the input string S. The space is mainly used to store the characters in the stack and the resulting string.