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1 week ago+ 0 comments

hopefully a readable one:

long substrCount(int n, string s) {

// minimum count is n 
int count = n;

for (int i=0;i<n;i++) {
    char current = s[i];

    // just continuous - equal substrings like "aaa"
    int j = i+1;
    while (j<n && s[j] == current) {
        count++;
        j++;
    }

    // continuous on left and right side from current char
    j = 1;
    while (i-j>=0 && i+j<n && // array bounds
        current != s[i+j] && // next is different than current
        s[i-j] == s[i+j] && // char's on left and right sides are the same
        s[i+j] == s[i+1] // next char must be the same as previous 
    ) {
        count++;
        j++;
    }
}

return count;

}

3 weeks ago+ 0 comments

def substrCount(n, s):
    current_char = s[0]
    occurences = [[current_char,0]]

		# first we create a list of all occurences of letters, but we count repetitions, like for "aabaa" we would have [["a",2],["b",1],["a",2]]
    for char in s:
        if char == current_char:
            occurences[-1][1] +=1
        else:
            occurences.append([char,1])
            current_char = char
		# now we calculate specials that are from <one char> substrings - the amount is equal to (x^2+x)/2 if the length is x
    specials = sum([(occurence[1]**2 + occurence[1]) / 2 for occurence in occurences])
		# now we add the cases where there is a different char in the middle
    for i in range(1,len(occurences)-1):
        if (occurences[i][1] == 1) and (occurences[i-1][0] == occurences[i+1][0]):
            specials += min(occurences[i-1][1],occurences[i+1][1])
    return int(specials)

1 month ago+ 0 comments

Python 3 solution with single pass of string. Time: O(n). Space: O(1). Managed to avoid all but outer loop.

def substrCount(n, s):
    char = s[0]  # Previous character to compare against
    count = n  # Count of special substrings in s, min(count) is n
    diff_mid = False  # Flag indicating when in condition 2
    ic2 = None  # Index where condition 2 starts
    seq = 1  # Length of current repeating sequence
    seq_p = 0  # Length of previous repeating sequence before condition 2
    n1 = n - 1

    for i in range(1, n):
        # Condition 1: check if s[i] is continuing a repeating sequence
        if s[i] == char:
            count += seq
            # Need to account for all substrings of length k | k in [2, seq]

            seq += 1

            # Check if condition 2 exists, and still applies
            if diff_mid:
                if seq < seq_p:
                    count += 1
                else:  # Otherwise exit condition 2
                    diff_mid = False

        else:
            # Check if in condition 2
            if i == ic2:
                count += 1
            else:
                diff_mid = False

            # Check if about to enter condition 2
            if i < n1 and char == s[i + 1]:
                seq_p = seq + 1  # Add 1 to avoid having to do <= comparison
                diff_mid = True
                ic2 = i + 1

            seq = 1

        char = s[i]

    return count

1 month ago+ 1 comment

String input = "abcbaba";

My answer is 11 but the expected answer is 10.

a,b,c,b,a,b,a,abcba,bcb,bab,aba - total of 11.

Can someone explain to me if my expectation is wrong?

1 month ago+ 0 comments

The naive solution never seems to be good enough here. Identifying each substring and testing if its valid ends up having a loop within a loop, and timing out.

Nope, HackerRank wants a single traversal over the string and some clever hacks.

def substrCount(n, s):
    nsubs, nchars, ch = 1, 1, s[0]
    for i in range(1,n):
        if ch == s[i]:
            nchars += 1
            nsubs += nchars
        else:
            for j in range(i+1, min(n, i+1+nchars)):
                if s[j] != ch:
                    break;
                nsubs += 1
            ch, nchars = s[i], 1
            nsubs += 1
    return nsubs

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