Discussion on Two Characters Challenge

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7 days ago+ 0 comments

This is my Python solution ✅ Explanation: 1. I first generate all unique character pairs from the input string. 2. For each pair, I build a filtered string that only includes those two characters. 3. I then check if the filtered string alternates properly (i.e., no repeated consecutive characters). 4. If it passes, I update the maximum length found so far. 5. In the end, return the longest valid alternating string length or 0 if none found.

📌 Note: Although this problem is tagged "Easy", it requires thoughtful implementation. I’d say it feels more like a Medium problem due to the character pairing and validation logic.

Hope this helps others! 😊

def alternate(s):
    # Write your code here
    def isConsecutive(st):
        if len(st) < 2:
            return True
        
        for i in range(1, len(st)):
            if st[i] == st[i-1]:
                return True
        
        return False
    
    chars = list(set(s))
    candidates = []
    maxalter = float('-inf')
    
    for i in range(len(chars) - 1):
        for j in range(i + 1, len(chars)):
            candidates.append([chars[i], chars[j]])
    
    for cand in candidates:
        temp = ''
        for c in s:
            if c in cand:
                temp += c
        if not isConsecutive(temp):
            maxalter = max(maxalter, len(temp))
    
    return maxalter if maxalter != float('-inf') else 0

4 weeks ago+ 0 comments

Here is my c++ easy solution, explantion here : https://youtu.be/WAPtXpj-PSU

int validSize(string s, char first, char second){
    string ans = "";
    for(int i = 0; i < s.size(); i++){
        if(s[i] == first || s[i] == second){
            if(ans.size() > 0 && ans[ans.size() - 1] == s[i]) return 0;
            else ans+=s[i];
        }
    }
    if(ans.size() < 2) return 0;
    return ans.size();
}

int alternate(string s) {
    int ans = 0;
    for(char i = 'a'; i < 'z'; i++){
        for(char j = i + 1; j <= 'z'; j++){
           int r = validSize(s, i, j);
           if(r > ans) ans = r;
        }
    }
    return ans;
}

1 month ago+ 0 comments

Here is my approach

def is_alternated(t):
    for i in range(2, len(t)-1, 2):
        if t[i] != t[0] or t[i+1] != t[1]:
            return False

    if len(t) % 2 != 0:
        return t[0] == t[-1:]

    return True

def alternate(s):
    _map = {}
    _set = set(s)
    _set_length = len(_set)
    if _set_length < 2:
        return 0

    c = list(combinations(_set, _set_length-2))
    for item in c:
        t = s
        for l in item:
            t = t.replace(l, "")

        if is_alternated(t):
            _map[t] = len(t)

    return max(_map.values()) if _map else 0

2 months ago+ 0 comments

sub alternate {
    my $s = shift;
    my %s;
    my @s = grep { $s{$_}++ == 0 } split '', $s;
    my $max_length = 0;
    for(my $i = 0; $i < @s - 1; ++$i) {
        for(my $j = $i + 1; $j < @s; ++$j) {
            my $ns = $s =~ s/[^$s[$i]$s[$j]]//gr;
            if($ns =~ /^(.)(.)(\1\2)*\1?$/) {
                if(length $ns > $max_length) {
                    $max_length = length $ns;
                }
            }
        }
    }
    return $max_length;
}

2 months ago+ 0 comments

def alternate(s):
    max_length, chars = 0, set(s)
    pairs = combinations(chars, 2)
    for pair in pairs:
        candidate = s.translate({ord(char): '' for char in chars - set(pair)})
        remainder = len(candidate) % 2
        pair_equals_initial_pair = (
            candidate[i] == candidate[0] and candidate[i + 1] == candidate[1]
            for i in range(0, len(candidate) - remainder, 2)
        )
        last_char_equals_first_if_odd_length = candidate[-remainder] == candidate[0]
        if all(pair_equals_initial_pair) and last_char_equals_first_if_odd_length:
            max_length = max(max_length, len(candidate))
    return max_length

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