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  1. Count Triplets
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Count Triplets

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813 Discussions

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  • khalid_hamdaan
     + 0 comments

    Why is this failing hidden test case 6 :(

    I came up with idea of moving forward and keeping a track of singles and doubles that have happened. This is passing all test cases except test case 6 :(

    static long countTriplets(List<long> arr, long r)
{
    Dictionary<long, long> singles = new();
    Dictionary<long, long> doubles = new();
    long count = 0;

    foreach (var num in arr)
    {
        long keyByr = num / r;

        // If num completes a triplet
        if (doubles.ContainsKey(keyByr))
        {
            count += doubles[keyByr];
        }

        // If num can be a middle of triplet
        if (singles.ContainsKey(keyByr))
        {
            if (doubles.ContainsKey(num))
                doubles[num] += singles[keyByr];
            else
                doubles[num] = singles[keyByr];
        }

        // Count num as potential start
        if (singles.ContainsKey(num))
            singles[num]++;
        else
            singles[num] = 1;
    }

    return count;
}

  • aggarwalaakash01
     + 0 comments

    can someone please help me understand the problem with my code??

    def countTriplets(arr, r):
    d = defaultdict(int)
    count = 0
    for i in arr:
        d[i] += 1
    for i in d:
        if i == i*r and i == i*r*r:
            count = count + (d[i] * (d[i]-1) * (d[i] - 2)) // 6
        else:
            if i*r in d and i*r*r in d:
                count = count + d[i] * d[i*r] * d[i*r*r]
        
    return count

  • Migueel0
     + 0 comments

    Recursive solution:

    def countTriplets(arr, r):
    sys.setrecursionlimit(10**6) #Avoid recursion error
    def rec_function(index, seconds, thirds, count):
        if index >= len(arr):
            return count
        i = arr[index]
        if i in thirds:
            count += thirds[i]
        if i in seconds:
            thirds[i * r] = thirds.get(i * r, 0) + seconds[i]
        seconds[i * r] = seconds.get(i * r, 0) + 1
        return rec_function(index + 1, seconds, thirds, count)
    
    return rec_function(0, {}, {}, 0)

  • Migueel0
     + 1 comment
    def countTriplets(arr, r):
    seconds = {}
    thirds = {}
    count = 0

    for i in arr:
        
        if i in thirds:
            count += thirds[i]

        if i in seconds:
            if i * r in thirds:
                thirds[i * r] += seconds[i]
            else:
                thirds[i * r] = seconds[i]

        if i * r in seconds:
            seconds[i * r] += 1
        else:
            seconds[i * r] = 1

    return count

  • pierbus_dev
     + 0 comments

    Simple Typescript solution with partitioning

    function countTriplets(arr, r) {
    const valuesAfterCurrent = new Map()
    arr.forEach((v) => {
        const count = valuesAfterCurrent.get(v) ? valuesAfterCurrent.get(v) + 1 : 1
        valuesAfterCurrent.set(v, count)
    }) //all here initially
    
    const valuesBeforeCurrent = new Map() //empty initially
    
    const res = arr.reduce((tripletsFound, currentValue) => {
        valuesAfterCurrent.set(currentValue, valuesAfterCurrent.get(currentValue) - 1)
        
        const frequencyOfFirstsOfTriple = valuesBeforeCurrent.get(currentValue / r) ?? 0
        const frequencyOfThirdsOfTriple = valuesAfterCurrent.get(currentValue * r) ?? 0
         
        const count = valuesBeforeCurrent.get(currentValue) ? valuesBeforeCurrent.get(currentValue) + 1 : 1
        valuesBeforeCurrent.set(currentValue, count)
        
        return tripletsFound + (frequencyOfFirstsOfTriple * frequencyOfThirdsOfTriple) //if any of the freq is zero it will not increase the current triplets found value
    }, 0) 
    
    return res
}