It's not the dryest one but it works for all cases. Python. I'm not sure if it's an easy level. If you code it dynamically - no, it's not. If hardcoded - maybe.
def top_bottom(arr, i=None): #retrieving tops and bottoms if i is None: i = 0 j = 0 summ = [] for j in range(0, len(arr[0]) - 2): summ.append(arr[i][j] + arr[i][j + 1] + arr[i][j + 2]) j += 1 return summ def middle(arr, i=None): #retrieving middles if i is None: i = 0 summ = [] for n in range(1, len(arr[0]) - 1): summ.append(arr[i][n]) n += 1 return summ def hourglassSum(arr): #merging, counting x = lambda arr: [top_bottom(arr, y) for y in range(len(arr))] y = lambda arr: [middle(arr, y) for y in range(1, len(arr) - 1)] arr1, arr2, total = x(arr), y(arr), [] for i in range(0, len(arr2)): for j in range(0, len(arr2)): total.append(arr1[i][j] + arr2[i][j] + arr1[i+2][j]) j += 1 return max(total)
maxx=-99 for i in range(len(arr)-2):
for j in range(len(arr)-2): a=arr[i][j] b=arr[i][j+1] c=arr[i][j+2] d=arr[i+1][j+1] e=arr[i+2][j] f=arr[i+2][j+1] g=arr[i+2][j+2] sum=a+b+c+d+e+f+g maxx=max(sum,maxx) return maxx
Java
public static int hourglassSum(List<List<Integer>> arr) { int maxSumHourGlass = Integer.MIN_VALUE; for (int p = 0; p <= 3; p++) { for (int q = 0; q <= 3; q++) { int sumOfOneHourglass = 0; sumOfOneHourglass = arr.get(p).get(q) + arr.get(p).get(q + 1) + arr.get(p).get(q + 2) + arr.get(p + 1).get(q + 1) + arr.get(p + 2).get(q) + arr.get(p + 2).get(q + 1) + arr.get(p + 2).get(q + 2); if (maxSumHourGlass < sumOfOneHourglass) { maxSumHourGlass = sumOfOneHourglass; } } } return maxSumHourGlass; }
function hourglassSum(arr: number[][]): number { // flatten array const result: number[] = arr.reduce((accumulator, value) => accumulator.concat(value), []); const extractHourGlass = (arr: number[], startIndex: number) => { return arr.slice(startIndex, startIndex+3) .concat(arr.slice(startIndex+7, startIndex+8)) .concat(arr.slice(startIndex+12, startIndex+15)); } const startIndces: number[] = [0,1,2,3, 6,7,8,9, 12,13,14,15, 18,19,20,21]; const hourglassSums: number[] = startIndces.map<number>((x) => { return extractHourGlass(result, x).reduce<number>((j, v) => { return j + v; }, 0) }, 0) console.log(hourglassSums); return Math.max(...hourglassSums); }
my JavaScript solution (h= horizontal and v=vertical direction).
function hourglassSum(arr) { let h= 0; let v= 0; let sum =0; let max=Number.MIN_SAFE_INTEGER; while ((h+2) < arr.length) { v=0; while ((v+2) < arr.length) { sum=0; for (let i=0+h ; i < (3+h); i++) { sum = sum + arr[v][i]; sum = sum + arr[v+2][i]; } sum = sum + arr[v+1][h+1]; if (sum > max) { max= sum; } v++; } h++; } return max; }
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