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  2. Data Structures
  3. Arrays
  4. 2D Array - DS
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2D Array - DS

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3693 Discussions

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  • charancuz008
     + 0 comments
    int hourglassSum(vector<vector<int>> arr) {
vector<int>sums(16);

    int t=0;
for(int i=0;i<16;i++){
   int j=i,c=i%4; 
   if(i%4==0&&i!=0)t++;
        for(int k=c;k<c+3;k++){
            sums[j]+=arr[t][k]+arr[t+2][k];
        }
        sums[i]+=arr[t+1][c+1];
}
int maxi=INT_MIN;
for(int i=0;i<16;i++)if(maxi<sums[i])maxi=sums[i];
return maxi;
}

  • wesleywchang
     + 0 comments

    Python Sliding Window-esque approach

    def hourglassSum(arr):
    # determine a value outside of the smallest possible
    # hourglass sum and use as the starting max_sum
    min_arr_val = -9
    max_sum = (min_arr_val - 1) * 7
    
    max_hourglass_starting_index = 4
    
    for i in range(max_hourglass_starting_index):
        # get sum of initial hourglass for row i
        # top row sum, bottom row sum, center value
        curr_sum = sum(arr[i][:3]) + sum(arr[i + 2][:3]) + arr[i + 1][1]
        max_sum = max(max_sum, curr_sum)
        
        for j in range(1, max_hourglass_starting_index):
            # sliding window through columns 0-3
            # top row sum
            curr_sum -= arr[i][j - 1]
            curr_sum += arr[i][j + 2]
            
            # bottom row sum
            curr_sum -= arr[i + 2][j - 1]
            curr_sum += arr[i + 2][j + 2]
            
            # center value
            curr_sum -= arr[i + 1][j]
            curr_sum += arr[i + 1][j + 1]
            
            max_sum = max(max_sum, curr_sum) 
            
    return max_sum

  • alu0101209777
     + 0 comments
    const sum = (arr) => {
    return arr.reduce((acc, n) => acc + n, 0);
}

function hourglassSum(arr) {
    const results = [];
    
    for (let i = 0; i < 4; i++) {
        for (let j = 0; j < 4; j++) {
            const roi = [
                [ arr[  i  ][  j  ],     arr[ i ][j+1],        arr[ i ][j+2]],
                [                         arr[i+1][j+1],                      ],
                [ arr[i+2][ j ],       arr[i+2][j+1],   arr[i+2][j+2]],
            ]                                    
            results.push(sum(roi.flat()));
        }
    }    
    return Math.max(...results);
}

  • dastagirwajahat1
     + 0 comments
    def hourglassSum(arr):
    # Write your code here
    sol=float("-inf")
    for i in range(len(arr)-2):
        for j in range(len(arr)-2):
            top=arr[i][j]+arr[i][j+1]+arr[i][j+2]
            middle=arr[i+1][j+1]
            bottom=arr[i+2][j]+arr[i+2][j+1]+arr[i+2][j+2]
            current_sol=top+middle+bottom
            if current_sol>sol:
                sol=current_sol
    return sol

  • aliabbas55506
     + 0 comments

    This is my CPP Solution what i did was traverse the 2D array in an hourglass form using 2 loops. As the last 2 indices of both i and j can't make an hourglass shape, so we run the loop till the first 4. int hourglassSum(vector> arr) { int maxSum=INT_MIN; int sum; for(int i=0;i<4;i++){ for(int j=0 ; j<4; j++){ sum = arr[i][j]+(arr[i][j+1])+(arr[i][j+2]) +(arr[i+1][j+1])+(arr[i+2][j])+(arr[i+2][j+1]) +(arr[i+2][j+2]); if(sum>maxSum) maxSum=sum; } } return maxSum; }