We use cookies to ensure you have the best browsing experience on our website. Please read our cookie policy for more information about how we use cookies.
  1. Prepare
  2. Algorithms
  3. Implementation
  4. Append and Delete
  5. Discussions

Append and Delete

Sort by

recency

|

1419 Discussions

|

  • psimenos99
     + 0 comments

    Found a peculiar solution I though I would share:

    def appendAndDelete(s, t, k):
    i = 0
    
    # Comment 1
    
    for j in range(len(min(s,t))):
        if s[j] == t[j]:
            i += 1
        else:
            break
            
    # Comment 2
    
    if k >= len(t) + len(s):
        return 'Yes'
     
    # Comment 3
    
    else:
        min_ops = len(t) + len(s) - 2*i
        if min_ops <= k and (k - min_ops)%2 == 0:
            return 'Yes'
        return 'No'

    Comment 1

    Calculate the length of the substing of s (starting at the beggining of s) which we do not need to change because it is the same as the corresponding substring of t.

    Comment 2

    If k >= len(t) + len(s) the answer is always yes because we can delete all the letters of s, continue deleting the empty string if k > len(t) + len(s) and then add the elements of t

    Comment 3

    min_ops = len(t) + len(s) - 2*i calculates the minimum number of operations needed to transform s to t. If min_ops > k the answer is no. If min_ops = k the answer is yes. If min_ops < k, the answer is yes if the remaining operations are an even number. In this case, after transforming s we would use the remaining number of operations to add and delete an item (or vice versa) until we use all of k.

  • kathrynzavadil
     + 0 comments

    My Java 8 solution:

    public static String appendAndDelete(String s, String t, int k) {
    int numMoves = s.length() + t.length();

    for (int i = 0; i < s.length() && i < t.length() && s.charAt(i) == t.charAt(i); i++) {
        numMoves -= 2;
    } //see which letters they have in common

    if (numMoves > k || (t.length() > s.length() && (numMoves % 2 != 0))) {
        return "No"; //if more than k moves are required to achieve the string
    }
    return "Yes";

}

  • seanlynch880
     + 0 comments

    This is my solution. It's in python. It's probably a bit over complicated but I'll post it anyway

    def appendAndDelete(s, t, k):

    s_list = list(s)
t_list = list(t)
changes_needed = 0
last_the_same = True

if s == t:
    print("Yes")
    return "Yes"

for i in range(len(s)):
    if i < len(t):
        if s[i] == t[i]:
            if last_the_same is False:
                changes_needed += 1
            else:
                print(s[i] , " = ", t[i])
        else:
            changes_needed += 1
            last_the_same = False
    else:
        changes_needed += 1

if(changes_needed > 0):
    del s_list[-changes_needed:]

print(" removing from s = ", s_list, ", now adding t... we will add: ", t_list[-changes_needed: ])

for i in range(len(t)):

    if i < len(s_list):
        if s_list[i] != t_list[i]:
            s_list.append(t_list[i])
            changes_needed += 1
    else:
        s_list.append(t_list[i])
        changes_needed += 1


print(" s with t added = ", s_list, " the number of changes needed was :", changes_needed)

print("k - changes_needed = ", k - changes_needed, ", s_list = ",s_list, ", t_list = ", t_list )


if s_list == t_list:
    if len(s) >= len(t):
        if (k - changes_needed) == 0 or (k - changes_needed) > 1:
            print('Yes')
            return "Yes"
        else:
            print('No')
            return "No"
    else:
        if (k - changes_needed) == 0 or (k - changes_needed) % 2 == 0:
            print('Yes')
            return "Yes"
        else:
            print('No')
            return "No"
else:
    print('No')
    return "No"

  • Wiro_
     + 0 comments

    Simple C++ solution with the concepts involucred.

    string appendAndDelete(string s, string t, int k) {
    if(k >= (s.length() + t.length())) return "Yes";
    int i = 0;
    int sz = min(s.length(), t.length());
    // longest same prefix
    for(;i<sz;i++){
        if(s[i] != t[i]){
            break;
        }
    }
    int n = s.length();
    int m = t.length();
    int deleteOpe = n - i;
    int addOpe = max(0, m - i);
    int totOpe = deleteOpe + addOpe;
    // why the k-totOpe % 2 == 0? because must be EXACTLY k operations.
    if(k >= totOpe && (k-totOpe)%2 == 0){
        return "Yes";
    }
    return "No";
}

  • Kirtan_Manek
     + 0 comments

    My JAVA Solution: 

    public static String appendAndDelete(String s, String t, int k) {
    // Write your code here
        int length_s = s.length();
        int length_t = t.length();
        if(k >= length_s + length_t) return "Yes";
        else{
            int differenciator = 0;
            int min_operations = 0;
            
            for (int i = 0; i < (length_s>=length_t?length_t:length_s); i++) {
                if(s.charAt(i) == t.charAt(i)) differenciator++;
                else break;
            }
            
            min_operations = (length_s - differenciator) + (length_t - differenciator);
            
            if(k < min_operations) return "No";
            else if(k == min_operations) return "Yes";
            else{
                if(min_operations%2 == 0){
                    if(k%2 == 0) return "Yes";
                    else return "No";
                }
                else{
                    if(k%2 != 0) return "Yes";
                    else return "No";
                }
            }
        }
    }