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  1. Count Triplets
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Count Triplets

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  • babakhonza
     + 0 comments

    Eritorial transformed into Java. Don't forget to check if number is divisible by r.

        // Complete the countTriplets function below.
    static long countTriplets(List<Long> arr, long r) {
        HashMap<Long, Long> right = new HashMap<>();
        HashMap<Long, Long> left = new HashMap<>();
        
        for (Long num : arr) {
            right.put(num, right.getOrDefault(num, 0L) + 1);
        }
        
        long tripletsCounter = 0;
        
        for (Long num : arr) {
            if (right.getOrDefault(num, 0L) > 0) {
                right.put(num, right.get(num) - 1);
            }
            if (num % r == 0) {
                tripletsCounter += right.getOrDefault(num * r, 0L) * left.getOrDefault(num / r, 0L);
            }
            left.put(num, left.getOrDefault(num, 0L) + 1);
        }
        
        return tripletsCounter;
    }

  • dorianDL
     + 2 comments

    Hello, using the Editorial suggestion :

    function countTriplets(arr, r) {
    let result = 0
    const left = new Map(), right = new Map()
    
    arr.forEach((elem) => {
        const tmp = right.get(elem) || 0
        right.set(elem, tmp+1)
    })
    arr.forEach((elem) => {
        if (right.has(elem)) right.set(elem, right.get(elem) - 1)
        const c1 = right.get(elem * r) || 0
        const c2 = left.get(elem / r) || 0
        result += c1 * c2
        left.set(elem, (left.get(elem) || 0) + 1)
    })
    return result
}

  • joisse
     + 0 comments

    Hello!

    I'm learning Java, this solution was converted from @Jugad's Javascript solution, but I'm failing test cases 6 and 10. Can anyone help?

    // Complete the countTriplets function below.
    static long countTriplets(List<Long> arr, long r) {
        //0. Initializations
        Map<Long, Long> singleCounts = new HashMap<>();
        Map<Long, Long> pairCounts = new HashMap<>();
        long triplets = 0;
        
        //1. Sort array ascending order
        Collections.sort(arr, Collections.reverseOrder());
        
        //2. Iterate through sorted array
        for (Long num: arr) {
            // A. Count completed pairs
            if (pairCounts.get(num*r) != null) {
                triplets += pairCounts.get(num*r);
            }
            // B. Increment pair counts if needed
            if (singleCounts.get(num*r) != null) {
                pairCounts.merge(num, singleCounts.get(num*r), Long::sum);
            }
            // C. Increment single counts
            singleCounts.merge(num, Long.valueOf(1), Long::sum);
            
        }
        return triplets;
    }

  • w32mydoomaumm
     + 0 comments

    have to be the worst examples to put out there with no insight whatsoever on how inputs can be. also this question is more mathematics over "dictionaries and hashmaps"

  • prsephton
     + 0 comments

    Wow, that took a while. "The ratio of any two consecutive terms in a geometric progression is the same".

    def countTriplets(arr, r):
    ntuples = 0
    div_r = defaultdict(lambda: 0)
    r_val = defaultdict(lambda: 0)
    for v in arr:
        ntuples += div_r[v/r]
        div_r[v] += r_val[v/r]
        r_val[v] += 1

    return ntuples
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