Given an integer n, generate a square matrix filled with elements from 1 to n2 in spiral order.
For example,
Given n = 3,
You should return the following matrix:
[ [ 1, 2, 3 ], [ 8, 9, 4 ], [ 7, 6, 5 ] ]
class Solution { public: vector<vector<int> > generateMatrix(int n) { vector<vector<int> > result(n, vector<int>(n,0)); leftPos = 0; rightPos = n-1; topPos = 0; bottomPos = n-1; currentNum = 1; goWider(result,true); return result; } void goWider(vector<vector<int> > &matrix, bool direct) { if(direct) { for(int i = leftPos; i<= rightPos; i++) { matrix[topPos][i] = currentNum++; } topPos++; if(topPos > bottomPos) return; goDeeper(matrix, true); } else { for(int i = rightPos; i>= leftPos; i--) { matrix[bottomPos][i] = currentNum++; } bottomPos--; if(topPos > bottomPos) return; goDeeper(matrix, false); } } void goDeeper(vector<vector<int> > &matrix, bool direct) { if(direct) { for(int i = topPos; i<= bottomPos; i++) { matrix[i][rightPos]=currentNum++; } rightPos--; if(leftPos > rightPos) return; goWider(matrix, false); } else { for(int i = bottomPos; i>= topPos; i--) { matrix[i][leftPos] = currentNum++; } leftPos++; if(leftPos > rightPos) return; goWider(matrix, true); } } private: int currentNum; int leftPos; int rightPos; int topPos; int bottomPos; };
思路II:向右向下向左向上,4个for循环。外套一个while,while的结束条件是4个for循环都不满足循环条件了。
class Solution { public: vector<vector<int>> generateMatrix(int n) { int len = n; int num = 1; vector<vector<int>> ret(n, vector<int>(n,0)); while(len>n-len){ for(int i = n-len; i < len; i++){ ret[n-len][i] = num++; } for(int j = n-len+1; j < len; j++){ ret[j][len-1] = num++; } for(int k = len-2; k >= n-len; k--){ ret[len-1][k] = num++; } for(int l = len-2; l > n-len; l--){ ret[l][n-len] = num++; } len--; } return ret; } };