Simple solution using hashMap data structure in java.
public static int sockMerchant(int n, List<Integer> ar) { // Write your code here int count = 0; HashMap<Integer, Integer> hMap = new HashMap<>(); for(Integer ele : ar){ if(hMap.containsKey(ele)){ int freq = hMap.get(ele); freq++; hMap.put(ele, freq); if(freq % 2 ==0) count++; }else{ hMap.put(ele, 1); } } return count; }
**C++ Solution **
int sockMerchant(int n, vector<int> ar) { int count = 0; map<int,int>mp; for(int i=0;i<n;i++){ mp[ar[i]]++; } for(auto it:mp){ if(it.second > 1){ count+= it.second/2; } } return count; }
java solution
public static int sockMerchant(int n, List<Integer> ar) { // Write your code here int count = 0; HashMap<Integer, Integer> map = new HashMap<>(); for (Integer i : ar) { if (!map.containsKey(i)) map.put(i, 1); else { map.put(i, map.get(i) + 1); if (map.get(i) % 2 == 0) count++; } } return count; }
My memory efficient C solution
int sockMerchant(int n, int* ar) { int * socks = calloc(2,sizeof(int)); int ssize = 2; *socks = *ar; for(int i = 0; i < n; i++){ bool found = false; for(int j = 0; j < ssize; j+=2){ if(ar[i] == socks[j]){ socks[j+1]++; found = true; break; } } if(!found){ ssize+=2; socks = realloc(socks,ssize*sizeof(int)); socks[ssize-2] = ar[i]; socks[ssize-1] = 1; } } int pairs = 0; for(int i = 1; i < ssize;i+=2){ pairs+=socks[i]/2; } return pairs; }
C#
public static int sockMerchant(int n, List<int> ar) { if(ar.Count() == 1) return 0; ar.Sort(); var pairs = 0; var i = 0; while(ar.Count() != 0){ if(ar.Count() == 1) break; else if(ar[i] == ar[i + 1]) { ++pairs; ar.RemoveRange(0, 2); i = 0; } else ar.RemoveAt(i); } return pairs; }
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