我正在解决Project Euler中的问题11.我已经找到了算法以及我需要做什么.网格保存在文件grid.txt中,其内容为 -
08 02 22 97 38 15 00 40 00 75 04 05 07 78 52 12 50 77 91 08
49 49 99 40 17 81 18 57 60 87 17 40 98 43 69 48 04 56 62 00
81 49 31 73 55 79 14 29 93 71 40 67 53 88 30 03 49 13 36 65
52 70 95 23 04 60 11 42 69 24 68 56 01 32 56 71 37 02 36 91
22 31 16 71 51 67 63 89 41 92 36 54 22 40 40 28 66 33 13 80
24 47 32 60 99 03 45 02 44 75 33 53 78 36 84 20 35 17 12 50
32 98 81 28 64 23 67 10 26 38 40 67 59 54 70 66 18 38 64 70
67 26 20 68 02 62 12 20 95 63 94 39 63 08 40 91 66 49 94 21
24 55 58 05 66 73 99 26 97 17 78 78 96 83 14 88 34 89 63 72
21 36 23 09 75 00 76 44 20 45 35 14 00 61 33 97 34 31 33 95
78 17 53 28 22 75 31 67 15 94 03 80 04 62 16 14 09 53 56 92
16 39 05 42 96 35 31 47 55 58 88 24 00 17 54 24 36 29 85 57
86 56 00 48 35 71 89 07 05 44 44 37 44 60 21 58 51 54 17 58
19 80 81 68 05 94 47 69 28 73 92 13 86 52 17 77 04 89 55 40
04 52 08 83 97 35 99 16 07 97 57 32 16 26 26 79 33 27 98 66
88 36 68 87 57 62 20 72 03 46 33 67 46 55 12 32 63 93 53 69
04 42 16 73 38 25 39 11 24 94 72 18 08 46 29 32 40 62 76 36
20 69 36 41 72 30 23 88 34 62 99 69 82 67 59 85 74 04 36 16
20 73 35 29 78 31 90 01 74 31 49 71 48 86 81 16 23 57 05 54
01 70 54 71 83 51 54 69 16 92 33 48 61 43 52 01 89 19 67 48
问题是 - 在20x20网格中,任何方向(上,下,左,右或对角)的四个相邻数字的最大乘积是多少?
我知道算法工作正常,因为我尝试使用cout输出nums,它们以正确的顺序显示.它给了我一个不正确的答案,可能是什么错?
void problem11()
{
vector<vector<int>> grid;
ifstream stream("grid.txt");
string line;
char *tok;
if (stream.is_open())
{
while(stream.good())
{
getline(stream, line);
tok = strtok((char *)line.c_str(), " ");
vector<int> row;
while (tok != NULL)
{
int field;
stringstream ss;
ss << tok;
ss >> field;
row.push_back(field);
tok = strtok(NULL, " ");
}
grid.push_back(row);
}
stream.close();
}
unsigned long highest = 0;
/// LEFT TO RIGHT
for (int i=0; i < 20; i++) // i'th row
{
vector<int> row = grid.at(i);
for (int c=0; c < 20-3; c++) // -3 to accomodate for last
{
unsigned long prod = row.at(c) * row.at(c+1) * row.at(c+2) * row.at(c+3); // four consecutive
//cout << row.at(c) << " " << row.at(c+1) << " " << row.at(c+2) << " " << row.at(c+3) << endl;
if (prod > highest)
highest = prod;
}
}
/// TOP TO DOWN
/// This moves from left to right, then top to botom
///
for (int i=0; i < 20-3; i++) // subtract last 3
{
vector<int> row1, row2, row3, row4;
row1 = grid.at(i);
row2 = grid.at(i+1);
row3 = grid.at(i+2);
row4 = grid.at(i+3);
for (int c=0; c < 20; c++)
{
unsigned long prod = row1.at(c) * row2.at(c) * row3.at(c) * row4.at(c);
//cout << row1.at(c) << " " << row2.at(c) << " " << row3.at(c) << " " << row4.at(c) << endl;
if (prod > highest)
highest = prod;
}
}
/// DOWN DIAGONAL
/// This moves diagonally from left to right, top to bottom
for (int i=0; i < 20-3; i++) // subtract last 3
{
vector<int> row1, row2, row3, row4;
row1 = grid.at(i);
row2 = grid.at(i+1);
row3 = grid.at(i+2);
row4 = grid.at(i+3);
for (int c=0; c < 20-3; c++) // omit last 3
{
unsigned long prod = row1.at(c) * row2.at(c+1) * row3.at(c+2) * row4.at(c+3);
//cout << row1.at(c) << " " << row2.at(c+1) << " " << row3.at(c+2) << " " << row4.at(c+3) << endl;
if (prod > highest)
highest = prod;
}
}
/// UP DIAGONAL
/// This moves diagonally from left to right, bottom to top
for (int i=3; i < 20; i++) // start from 3, skipping first four
{
vector<int> row1, row2, row3, row4;
row4 = grid.at(i);
row3 = grid.at(i-1);
row2 = grid.at(i-2);
row1 = grid.at(i-3);
for (int c=0; c < 20-3; c++) // omit last 3
{
unsigned long prod = row4.at(c) * row3.at(c+1) * row3.at(c+2) * row4.at(c+3);
//cout << row4.at(c) << " " << row3.at(c+1) << " " << row2.at(c+2) << " " << row1.at(c+3) << endl;
if (prod > highest)
highest = prod;
}
}
cout << "Required: " << highest;
}
冒着破坏自己寻找答案的乐趣的风险......
打印出对角线.目视检查它们是否符合您的预期.
作为旁注:并且不要创建表行的副本,而是同样访问它们:vector[rowindex][column].
编辑 -
好的,现在我要破坏它.在NxN矩阵中,您有多少对角线路径?你走过多少条路?(通过采用2x2矩阵进行交叉检查,每个方向有3条对角线路径)
PS.如果您认真对待编程,遇到错误时,请先验证您的假设.