We use cookies to ensure you have the best browsing experience on our website. Please read our cookie policy for more information about how we use cookies.
  1. Prepare
  2. Algorithms
  3. Implementation
  4. Migratory Birds
  5. Discussions

Migratory Birds

Sort by

recency

|

3604 Discussions

|

  • every9ght
     + 0 comments

    TypeScript solution O(n) by using map

    function migratoryBirds(arr: number[]): number {
    let map = new Map();
    let maxCount = 0;
    let mostFriquentBird = Number.MAX_SAFE_INTEGER;
    
    for (let bird of arr) {
        let count = (map.get(bird) || 0) + 1;
        map.set(bird, count);
        
        if (maxCount < count || (maxCount === count && bird < mostFriquentBird)) {
            maxCount = count;
            mostFriquentBird = bird;
        }
    }
    
    return mostFriquentBird;
}

  • alban_tyrex
     + 0 comments

    Here is my c++ solution you can find the explanation here : https://youtu.be/poQPrHTMe08

    int migratoryBirds(vector<int> arr) {
    map<int, int> mp;
    int cnt = 0, id;
    for(int i = 0; i < arr.size(); i++)mp[arr[i]]++;
    for(auto it = mp.begin(); it != mp.end(); it++){
        if(it->second > cnt || (it->second == cnt && it->first < id)){
            cnt = it->second;
            id = it->first;
        }
    }
    return id;
}

  • cbuckley021
     + 0 comments

    Here is my O(n) solution using Java 8 HashMaps

    public static int migratoryBirds(List<Integer> arr) {
        Map<Integer, Integer> map = new HashMap<>();
        int count;      // counter for number of sightings
        int max = 0;    // to track the highest number of sightings
        int minID = Integer.MAX_VALUE; // to track the smallest ID
        
        for(int i = 0; i < arr.size(); i++) {
            count = map.getOrDefault(arr.get(i), 0) + 1; // get the current num of sightings for the ID and increment, defaults as 1 if the ID is not present in the map.
            map.put(arr.get(i), count); //update the number of sightings using ID as key
            if(max < count) {   // if the highest num of sightings is less than the current num of sightings  
                max = count;    // update max num of sightings. 
                minID = arr.get(i); // update the smallest ID
            } else if(count == max && arr.get(i) < minID) { // of the current num of sightings == max numbers of sightings AND the current ID is less than the minimum ID
                minID = arr.get(i); // update the smallest ID only. 
            }
        }
        return minID;
    }

  • abhijeetmaharan2
     + 0 comments
    def migratoryBirds(arr):
    # Write your code here
    
    mydict = {}
    
    for i in arr:
        if i in mydict:
            mydict[i] += 1
        else:
            mydict[i] = 1
            
    max_count = max(mydict.values())
    
    req_list = [key for key, value in mydict.items() if value == max_count]
    req_list.sort()
    
    return req_list[0]

  • petrenkosv
     + 0 comments

    C# solution

    public static int migratoryBirds(List<int> arr)
    {
        int[] newArr = new int[arr.Count];
        arr.ForEach(bird => newArr[bird]++);
        
        return Array.IndexOf(newArr, newArr.Max());
    }