8.8 dfs
2016-08-11 本文已影响2人
陈十十
to do
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10.9] Generate Parentheses
path如果是string而不是vector,为了写简的话直接pass by val就不push pop by ref了
主要是想到有哪些possible try,什么条件下。一开始在想dp?
void dfs(vector<string>& ret, string path, int leftCt, int rightCt, int n) {
if (rightCt==n) {
ret.push_back(path);
return;
}
if (leftCt<n)
dfs(ret, path+"(", leftCt+1, rightCt, n);
if (rightCt<leftCt)
dfs(ret, path+")", leftCt, rightCt+1, n);
}
vector<string> generateParenthesis(int n) {
vector<string> ret;
dfs(ret, "", 0, 0, n);
return ret;
}
btw] Valid Sudoku
note the way to map board[i][j] to some 3*3 box, determins its row (0-2) then *3 to get the index of the starting elem at the row, +col to be at the exact index.
bool isValidSudoku(vector<vector<char>>& board) {
// row i * col j
// e.g. checkRow[i][num] num occurred at row i?
int checkRow[9][9] = {0}, checkCol[9][9] = {0}, checkBox[9][9] = {0};
for (int i=0; i<board.size(); ++i) {
for (int j=0; j<board[0].size(); ++j) {
if (board[i][j] == '.') continue;
int num = board[i][j]-'0'-1; // suduku has 1-9
if (checkRow[i][num] || checkCol[j][num] || checkBox[i / 3 * 3 + j / 3][num]) return false;
checkRow[i][num] = checkCol[j][num] = checkBox[i / 3 * 3 + j / 3][num] = 1;
}
}
return true;
}
10.10] Sudoku Solver
note where to trim, stuck in loop before.
Also did char < '10' .. :(
And initially didn't want to search again from [0, 0] every time. However, it gets tricky to make sure always searching the next box. (If really want to, try keeping track of one overall index)
bool okToPlace(vector<vector<char>>& board, char c, int row, int col) {
int boxi = row/3*3, boxj = col/3*3;
for (int i=0; i<9 ; ++i) {
if (board[i][col] == c || board[row][i] == c) return false;
}
for (int i=boxi; i<boxi+3; ++i) {
for (int j=boxj; j<boxj+3; ++j) {
if (board[i][j] == c) return false;
}
}
return true;
}
bool dfs(vector<vector<char>>& board) {
for (int i=0; i<9; ++i) {
for (int j=0; j<9; ++j) {
if (board[i][j]!='.') continue;
for (char c='1'; c<='9'; ++c) {
if (okToPlace(board, c, i, j)) {
board[i][j] = c;
if (dfs(board)) return true;
board[i][j] = '.';
}
}
return false; // important, no move possible here to make it work
}
}
return true;
}
void solveSudoku(vector<vector<char>>& board) {
dfs(board);
}
10.11] Word Search
note how it uses var solvable to avoid duplicate try push and pop.
bool okToUse(vector<vector<char>>& board, vector<vector<bool>>& used, int i, int j, char charToUse) {
if (i<0 || i>=board.size() || j<0 || j>=board[0].size()) return false;
return charToUse == board[i][j] && !used[i][j];
}
bool dfs(vector<vector<char>>& board, vector<vector<bool>>& used, string& word, int level, int i, int j) {
if (level == word.size()) return true;
bool solvable = false;
if (okToUse(board, used, i, j, word[level])) {
used[i][j] = true;
solvable = dfs(board, used, word, level+1, i+1, j) ||
dfs(board, used, word, level+1, i, j+1) ||
dfs(board, used, word, level+1, i-1, j) ||
dfs(board, used, word, level+1, i, j-1);
used[i][j] = false;
}
return solvable;
}
bool exist(vector<vector<char>>& board, string word) {
vector<vector<bool>> used (board.size(), vector<bool> (board[0].size(), false));
for (int i=0; i<board.size(); ++i) {
for (int j=0; j<board[0].size(); ++j) {
if (dfs(board, used, word, 0, i, j))
return true;
}
}
return false;
}
