看清问题,用DP就可以了,
之前我首先想到的是图的搜索,实际上在这里并不适用;
必须遍历每个点,计算它的最大矩阵,
遍历的顺序为从左上角到右下角,
x, y表示左边的最大长度,y表示上面的最大长度,
然后计算每个点的最大面积;
1 class Solution { 2 public: 3 int maximalRectangle(vector<vector<char> > &matrix) { 4 // Start typing your C/C++ solution below 5 // DO NOT write int main() function 6 int res = 0; 7 if (matrix.empty() || matrix[0].empty()) 8 return res; 9 int m = matrix.size(), n = matrix[0].size(); 10 vector<vector<pair<int, int> > > dp(m, vector<pair<int, int> >(n)); 11 for (int i = 0; i < m; ++i) { 12 for (int j = 0; j < n; ++j) { 13 if (matrix[i][j] == '0') 14 continue; 15 int x = (j == 0) ? 1 : dp[i][j - 1].first + 1; 16 int y = (i == 0) ? 1 : dp[i - 1][j].second + 1; 17 dp[i][j] = make_pair(x, y); 18 int height = y; 19 for (int k = j; k > j - x; --k) { 20 height = min(height, dp[i][k].second); 21 res = max(res, height * (j - k + 1)); 22 } 23 } 24 } 25 return res; 26 } 27 };
也可以先计算每一列的节点的最大长度,然后遍历该列所有点,
计算出最大面积,这个过程可以借用栈来完成;
1 class Solution { 2 public: 3 int maximalRectangle(vector<vector<char> > &matrix) { 4 // Start typing your C/C++ solution below 5 // DO NOT write int main() function 6 int res = 0; 7 if (matrix.empty() || matrix[0].empty()) 8 return res; 9 int m = matrix.size(); 10 int n = matrix[0].size(); 11 vector<int> height(n + 1, 0); 12 for (int i = 0; i < m; ++i) { 13 for (int j = 0; j < n; ++j) { 14 height[j] = (matrix[i][j] == '0') ? 0: height[j] + 1; 15 } 16 res = max(res, getRect(height)); 17 } 18 return res; 19 } 20 int getRect(const vector<int> height) { 21 stack<int> st; 22 int res = 0, m = height.size(); 23 for (int i = 0; i < m; ++i) { 24 int count = 0; 25 while (!st.empty() && st.top() > height[i]) { 26 ++count; 27 res = max(res, count * st.top()); 28 st.pop(); 29 } 30 while (count--) 31 st.push(height[i]); 32 st.push(height[i]); 33 } 34 return res; 35 } 36 };