Discussion on Minimum Loss Challenge

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3 weeks ago+ 0 comments

def minimumLoss(price):
    # Thinking process:
    # 1 Brutal force (n^2)
    # 2 Greedy apporach.(nlogn)
    # Think about insertion sort. But don't use insertion sort
    # in one step, after we insert from the current position
    # to a previously sorted subarray, 
    # for our question,we only need to
    # compare the current number to the previous number of its inserted pos.
    # example: input=[5,10,3,4]
    # insertion sort step 2 
    # subarray is [10,5] (sort from big to small)
    # we inserted 3, subarray becomes [10,5,3]. For our question we only need to compare 3 with 5
    # if there is incoming number such as 4 we only need to compare with
    # inserted pos([10,5,4,3], insert 4) which is also 5, we don't need to care 
    # about 3, otherwise we will get a positive loss.
    # after the sort complete, we get our min reslut, and the result must be come from a
    # sorted array, between a number and its left neighbour.
    # In conclusion, we only need to compare the neighbour 
    # in an sorted array and we don't 
    # need to use the insertion sort.
    #
    # question to ask:
    # Does 0 count as a valid loss?
    idx2Price=collections.defaultdict(list)
    for idx,p in enumerate(price):
        idx2Price[p].append(idx)
        if len(idx2Price[p])>1:
            return 0
    
    n=len(price)
    res=math.inf
    price.sort(reverse=True)
    for i in range(1,n):
        if idx2Price[price[i]]>idx2Price[price[i-1]]:
            res=min(res,price[i-1]-price[i])
    
    return res

4 weeks ago+ 0 comments

java 8 solution

    ArrayList<Long> newarr=new ArrayList<>(price);
    Collections.sort(price);
        long min=Long.MAX_VALUE;
        for(int i=0;i<newarr.size()-1;i++)
        {
            int k=Collections.binarySearch(price, newarr.get(i));
            if(k==0)
            {
                price.remove(k);
                continue;
            }
            long min_l=(price.get(k)-price.get(k-1));
            if(min_l<min)
            {
                min=min_l;
            }
            price.remove(k);
        }          
        return min;

1 month ago+ 0 comments

public static long minimumLoss(long[] price, int size) { long min = Long.MAX_VALUE; long temp; for (int i = 0; i < size-1; i++) { for (int k = i + 1; k < size; k++) { if(price[i]

}
        }
    }
    return min;

}

1 month ago+ 0 comments

In C++, just used multiset to sort the prices for fast lookup of next lower price. That speeds up enough to solve the timing issues. Use multiset not set, because the same price may exist several times:

int minimumLoss(vector<long> price) {
  long min = -1;
  multiset<long> p(price.begin(), price.end()); // sort by price
  for (string::size_type i(0); i<price.size()-1; ++i) {
    auto it = p.find(price[i]); // find current price in set
    while (it!=p.begin() && *it==price[i]) --it; // find next lower price (mutimap -> while)
    if (*it<price[i] && (price[i]-*it<min||min==-1)) min=price[i]-*it;
    p.erase(price[i]); // remove current price
  }
  return min;
}

2 months ago+ 0 comments

use BS in sorted copied vector by deleting the searched value;

int minimumLoss(vector<long> price) {
    long n=price.size();
    int mini=INT_MAX;
    vector <long> prs;
    for(int i=0;i<n;i++){
        prs.push_back(price[i]);
    }
    sort(prs.begin(),prs.end());
    for(int i=0;i<n;i++){
        int l=1;
        int mid;
        int h=prs.size()-1;
        while(l<=h){
            mid=(l+h)/2;
            if(price[i]==prs[mid]){
                long x=prs[mid]-prs[mid-1];
                if(mini>x){
                    mini=x;
                }
                prs.erase(prs.begin()+mid);
                break;
            }
            else if(price[i]<prs[mid]){
                   h=mid-1; 
               }
            else{
                  l=mid+1;
               }
            }
        }
        return mini;
}

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