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  1. Prepare
  2. Algorithms
  3. Implementation
  4. Strange Counter
  5. Discussions

Strange Counter

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988 Discussions

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  • alban_tyrex
     + 0 comments

    Here is my c++ solution, you can watch the explanation here : https://youtu.be/Plsx1i8dqiI

    long strangeCounter(long t) {
    long last = 3, step = 3;
    while(t > last){
        step *= 2;
        last += step;
    }
    return last - t + 1;
}

  • illogicalsleepi1
     + 1 comment
    def strangeCounter(t):
    tme, val = 1, 3
    while t > tme + val - 1:
        tme += val
        val *= 2
    return val - (t - tme)

  • vuhuutuan0
     + 0 comments

    Answer in typescript

    function strangeCounter(t: number): number {
    /*
        idea 1: counting 1 by 1 util get result. 
        correct but too many loop, tooooooo slow with large input
    */

    /*
        idea 2: we knew value reset when it value reach 1, i need to find the time at that moment
        larger than and nearest the time we need to find out. then just minus max_time by the diff
        of max_time with time, we will get value.
        
        explain: 
            calling time is t1 and t2, value is v1 and v2. Each reset have many couple of t1:v1->t2:v2
            we can see t2-t1 always equal v1-v2. 
            
            t2 - t1 = v1 - v2
            
            we knew v2 = 1, t1 = t, we need find v1 as result. the missing piece is t2.
            t2 can be easy calc by fomula:
            
            t2 = <old t2> + 3 * Math.pow(2,<reset>)
        eg: with sample t=4, we have
            
            t1 = 4
            v1 = ?
            t2 = ?
            v2 = 1
            
            by calc t2
            
            reset = 0
            t2 = <old t2> + 3 * Math.pow(2,<reset>)
               = 3
            
            reset = 1
            t2 = <old t2> + 3 * Math.pow(2,<reset>)
               = 3 + 6
               = 9 (enough, it larger than t1)
            
            now we have 3/4 parameter, just doing fomula
            
                t2 - t1 = v1 - v2
            =>  v1 = t2 - t1 + v2
            =>  v1 = 9 - 4 + 1
            =>  v1 = 6
            
    */

    var reset = 0;
    var time_max = 0;

    while (true) {
        // calc time_max at reset.
        time_max = time_max + (3 * Math.pow(2, reset));

        // inc reset, check time_max is enough?
        reset++;
        if (time_max >= t) break;
    }
    
    // we got the time_max, now do the minus to get value
    return time_max + 1 - t;
}

  • voronin_ilia
     + 0 comments

    C++ Solution with recurse:

    long defRange(long t, long p, long it) {
  long b = (long)3*pow(2, it++) + p;

  if (t >= p && t < b)
    return b;
  else
    return defRange(t, b, it);
}

// res = -t * b[n] : b[n] = 3*pow(2,n) + b[n-1]
long strangeCounter(long t) {
  long b = defRange(t, 1, 0);
  
  return -t+b;
}

  • khandanish5
     + 0 comments
        public static long strangeCounter(long t) {
        long counter = 3;
        long seconds = 1;
        long start = 3;
        while (t > 1) {
            long interval = Math.min(counter, t-1);
            t -= interval;
            seconds += interval;
            counter -= interval;
            if (counter == 0) {
                start = start * 2;
                counter = start;   
            }
        }
        return counter;
    }