8th Blue Bridge cup pressure calculation (code + details), 8th Blue Bridge
Pressure Calculation
Title: a batch of precious metal raw materials are neatly piled up in the high-tech Laboratory of the computation Planet X. Each metal material has the same shape and size, but different weights. Metal Materials are strictly stacked in a pyramid shape. 7 5 8 7 8 8 9 2 2 8 1 4 9 1 8 8 8 8 4 1 7 9 6 1 4 5 5 6 5 6 9 5 5 5 5 4 7 9 3 5 5 1 7 5 7 9 7 4 3 3 1 4 6 5 5 8 8 3 2 4 3 1 3 3 1 6 6 5 5 4 4 2 9 9 9 2 1 9 1 9 2 9 5 7 9 4 3 3 7 7 9 3 6 1 3 8 8 3 7 3 6 8 1 5 3 9 5 8 3 8 1 3 3 8 3 2 3 3 5 5 5 4 2 8 6 7 6 9 8 1 8 1 8 4 4 6 2 2 1 9 4 2 3 3 4 2 8 4 2 2 9 9 2 8 3 4 9 6 3 9 4 6 9 7 9 7 4 9 7 6 6 2 8 9 4 1 8 1 1 7 2 6 9 2 8 6 4 2 7 9 5 4 1 2 5 1 7 3 9 8 3 3 5 2 1 6 7 9 3 2 8 9 5 5 6 6 6 2 1 8 7 9 6 7 1 8 8 7 5 3 6 5 4 7 3 4 6 7 8 1 3 2 7 4 2 6 3 5 3 4 9 2 4 5 7 6 3 2 2 2 2 4 8 5 5 4 7 4 4 5 8 3 3 8 1 8 6 3 2 1 6 2 6 4 6 3 8 2 9 6 1 2 4 3 5 3 4 9 6 3 8 6 5 9 1 5 3 3 2 6 8 8 5 3 2 2 7 9 3 3 2 8 6 9 8 4 4 9 5 8 2 6 3 4 4 4 9 3 8 8 8 7 7 9 7 5 2 2 7 9 2 5 1 9 2 6 5 3 5 7 3 5 4 2 8 9 7 6 6 6 8 7 5 5 8 2 4 7 4 7 7 2 6 9 2 1 8 2 9 8 5 7 3 6 5 4 5 5 5 5 5 6 3 5 3 9 5 8 9 5 4 1 2 6 1 4 3 5 3 2 4 1 X X the number represents the weight of the metal block (unit of measurement is large ). The bottom layer X represents 30 extremely high precision electronic scales. Assume that the weight of each raw material falls on the two metal blocks at the bottom very accurately. Finally, the weight of all the metal blocks falls evenly among the bottom-layer electronic scales. The unit of measurement of an electronic scale is small, so the number displayed is large. The staff found that the number of electronic scales with the smallest reading is 2086458231. How many electronic scales with the largest reading is calculated? Note: You must submit an integer and do not enter any additional content.
This question changes the data format:
75 87 8 89 2 7 28 1 4 9 18 1 8 8 4 17 9 6 1 4 5 45 6 5 5 6 9 5 65 5 4 7 9 3 5 5 17 5 7 9 7 4 7 3 3 14 6 4 5 5 8 8 3 2 4 31 1 3 3 1 6 6 5 5 4 4 29 9 9 2 1 9 1 9 2 9 5 7 94 3 3 7 7 9 3 6 1 3 8 8 3 73 6 8 1 5 3 9 5 8 3 8 1 8 3 38 3 2 3 3 5 5 8 5 4 2 8 6 7 6 98 1 8 1 8 4 6 2 2 1 7 9 4 2 3 3 42 8 4 2 2 9 9 2 8 3 4 9 6 3 9 4 6 97 9 7 4 9 7 6 6 2 8 9 4 1 8 1 7 2 1 69 2 8 6 4 2 7 9 5 4 1 2 5 1 7 3 9 8 3 35 2 1 6 7 9 3 2 8 9 5 5 6 6 6 2 1 8 7 9 96 7 1 8 8 7 5 3 6 5 4 7 3 4 6 7 8 1 3 2 7 42 2 6 3 5 3 4 9 2 4 5 7 6 6 3 2 7 2 4 8 5 5 47 4 4 5 8 3 3 8 1 8 6 3 2 1 6 2 6 4 6 3 8 2 9 61 2 4 1 3 3 5 3 4 9 6 3 8 6 5 9 1 5 3 2 6 8 8 5 32 2 7 9 3 3 2 8 6 9 8 4 4 9 5 8 2 6 3 4 8 4 9 3 8 87 7 7 9 7 5 2 7 9 2 5 1 9 2 6 5 3 9 3 5 7 3 5 4 2 8 97 7 6 6 8 7 5 5 8 2 4 7 7 4 7 2 6 9 2 1 8 2 9 8 5 7 3 65 9 4 5 5 7 5 5 6 3 5 3 9 5 8 9 5 4 1 2 6 1 4 3 5 3 2 4 1X X X X X X X X X X X X X X X X X X X X X X X X X X X X X X
After this processing, you can use a [I + 1] [j] + = a [I] [j]/2; a [I + 1] [j + 1] + = a [I] [j]; for calculation:
The Code is as follows:
1 #include<stdio.h> 2 #include<string.h> 3 #include<ctype.h> 4 #include<math.h> 5 6 int main () 7 { 8 double line[60][60]; 9 double n,m;10 int i,j;11 memset(line,0,sizeof(line));12 for(i=1;i<=29;i++){13 for(j=1;j<=i;j++){14 scanf("%lf",&line[i][j]);15 }16 }17 for(i=1;i<=29;i++){18 for(j=1;j<=i;j++){19 line[i+1][j]+=line[i][j]/2;20 line[i+1][j+1]+=line[i][j]/2;21 }22 }23 /*for(i=1;i<=30;i++){24 for(j=1;j<=i;j++){25 printf("%.2lf ",line[i][j]);26 }27 printf("\n");28 }*/29 n=m=line[30][1];30 for(i=1;i<=30;i++){31 if(n<line[30][i])32 n=line[30][i];33 if(m>line[30][i])34 m=line[30][i];35 }36 printf("n=m== %lf %lf\n",n,m);37 printf("%lf\n",n*2086458231/m);38 return 0;39 }
Final Result: 72665192664