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  1. Prepare
  2. Algorithms
  3. Implementation
  4. Append and Delete
  5. Discussions

Append and Delete

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1443 Discussions

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  • afzal_saiyed931
     + 0 comments
    def appendAndDelete(s, t, k):
    prefix_count = 0
    len_s = len(s)
    len_t = len(t)
    while prefix_count < len(t):
        if prefix_count > (len_s - 1) or s[prefix_count] != t[prefix_count]:
            break
        else:
            prefix_count += 1
    
    delete_required = len_s - prefix_count
    addition_required = len_t - prefix_count
    total_ops_required = delete_required + addition_required
    if k >= (len_s + len_t):
        return "Yes"
        
    if k >= total_ops_required and (k - total_ops_required) % 2 == 0:
        return "Yes"
        
    return "No"

  • asadkamal1994
     + 0 comments

    There is a testcase 5 in which we have: y yu 2 Should'nt the expected output be 'Yes'? because the operation can be performed according to me.

  • yashdeora98294
     + 0 comments

    Here is problem solution in Python, Java, C++, C and Javascript - https://programmingoneonone.com/hackerrank-append-and-delete-problem-solution.html

  • csiegel
     + 0 comments

    python

    def appendAndDelete(s, t, k):
    # Write your code here
    
    #all cases where the length of the two strings combined is less than or equal to k work
    if len(t) + len(s) <= k:
        return 'Yes'
    
    index=0
		
    while True:
        
        #remove the out of index range scenario
        if index > len(s) - 1 or index > len(t) - 1:
            break
        #determine up to which index is the same
        if s[index] == t[index]:
            index+=1
        else:
            break
            
    #determine remaining steps needed and if the difference between remaining and k is either 0 or even
     
    remaining_steps = len(s) + len(t) - index * 2
    if remaining_steps <= k and (k - remaining_steps) % 2 == 0:
        return 'Yes'
    else:
        return 'No'

  • robertbielicki
     + 0 comments
    fn appendAndDelete(s: &str, t: &str, k: i32) -> String {
    let s_len = s.len() as i32;
    let t_len = t.len() as i32;
    let common_len = s.chars().zip(t.chars()).take_while(|a| a.0 == a.1).count() as i32;
    let min_operations = (s_len - common_len) + (t_len - common_len);

    if min_operations > k {
        return "No".into();
    } else if (k - min_operations) % 2 == 0 {
        return "Yes".into();
    } else if k >= s_len + t_len {
        return "Yes".into();
    } else {
        return "No".into();
    }
}