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2018-03-14 20:44:44 +08:00
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notes/Leetcode 题解.md
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@ -745,7 +745,7 @@ public List<Integer> topKFrequent(int[] nums, int k) {
### BFS
<div align="center"> <img src="index_files/4ff355cf-9a7f-4468-af43-e5b02038facc.jpg"/> </div><br>
<div align="center"> <img src="../pics//4ff355cf-9a7f-4468-af43-e5b02038facc.jpg"/> </div><br>
广度优先搜索的搜索过程有点像一层一层地进行遍历:从节点 0 出发,遍历到 6、2、1 和 5 这四个新节点。
@ -801,7 +801,7 @@ private class Position {
### DFS
<div align="center"> <img src="index_files/f7f7e3e5-7dd4-4173-9999-576b9e2ac0a2.png"/> </div><br>
<div align="center"> <img src="../pics//f7f7e3e5-7dd4-4173-9999-576b9e2ac0a2.png"/> </div><br>
广度优先搜索一层一层遍历,每一层遍历到的所有新节点,要用队列先存储起来以备下一层遍历的时候再遍历;而深度优先搜索在遍历到一个新节点时立马对新节点进行遍历:从节点 0 出发开始遍历,得到到新节点 6 时,立马对新节点 6 进行遍历,得到新节点 4如此反复以这种方式遍历新节点直到没有新节点了此时返回。返回到根节点 0 的情况是,继续对根节点 0 进行遍历,得到新节点 2然后继续以上步骤。
@ -1087,7 +1087,7 @@ private void dfs(int r, int c, boolean[][] canReach) {
[Leetcode : 51. N-Queens (Hard)](https://leetcode.com/problems/n-queens/description/)
<div align="center"> <img src="index_files/1f080e53-4758-406c-bb5f-dbedf89b63ce.jpg"/> </div><br>
<div align="center"> <img src="../pics//1f080e53-4758-406c-bb5f-dbedf89b63ce.jpg"/> </div><br>
题目描述:在 n\*n 的矩阵中摆放 n 个皇后,并且每个皇后不能在同一行,同一列,同一对角线上,要求解所有的 n 皇后解。
@ -1095,11 +1095,11 @@ private void dfs(int r, int c, boolean[][] canReach) {
45 度对角线标记数组的维度为 2\*n - 1通过下图可以明确 (r,c) 的位置所在的数组下标为 r + c。
<div align="center"> <img src="index_files/85583359-1b45-45f2-9811-4f7bb9a64db7.jpg"/> </div><br>
<div align="center"> <img src="../pics//85583359-1b45-45f2-9811-4f7bb9a64db7.jpg"/> </div><br>
135 度对角线标记数组的维度也是 2\*n - 1(r,c) 的位置所在的数组下标为 n - 1 - (r - c)。
<div align="center"> <img src="index_files/9e80f75a-b12b-4344-80c8-1f9ccc2d5246.jpg"/> </div><br>
<div align="center"> <img src="../pics//9e80f75a-b12b-4344-80c8-1f9ccc2d5246.jpg"/> </div><br>
```java
private List<List<String>> ret;
@ -1156,7 +1156,7 @@ private void backstracking(int row) {
[Leetcode : 17. Letter Combinations of a Phone Number (Medium)](https://leetcode.com/problems/letter-combinations-of-a-phone-number/description/)
<div align="center"> <img src="index_files/a3f34241-bb80-4879-8ec9-dff2d81b514e.jpg"/> </div><br>
<div align="center"> <img src="../pics//a3f34241-bb80-4879-8ec9-dff2d81b514e.jpg"/> </div><br>
```html
Input:Digit string "23"
@ -1598,7 +1598,7 @@ private boolean isPalindrome(String s, int begin, int end) {
[Leetcode : 37. Sudoku Solver (Hard)](https://leetcode.com/problems/sudoku-solver/description/)
<div align="center"> <img src="index_files/1ca52246-c443-48ae-b1f8-1cafc09ec75c.png"/> </div><br>
<div align="center"> <img src="../pics//1ca52246-c443-48ae-b1f8-1cafc09ec75c.png"/> </div><br>
```java
private boolean[][] rowsUsed = new boolean[9][10];
@ -2519,7 +2519,7 @@ public int minDistance(String word1, String word2) {
题目描述:交易之后需要有一天的冷却时间。
<div align="center"> <img src="index_files/ac9b31ec-cef1-4880-a875-fc4571ca10e1.png"/> </div><br>
<div align="center"> <img src="../pics//ac9b31ec-cef1-4880-a875-fc4571ca10e1.png"/> </div><br>
```html
s0[i] = max(s0[i - 1], s2[i - 1]); // Stay at s0, or rest from s2
@ -4797,7 +4797,7 @@ private void inorder(TreeNode node, int k) {
### Trie
<div align="center"> <img src="index_files/5c638d59-d4ae-4ba4-ad44-80bdc30f38dd.jpg"/> </div><br>
<div align="center"> <img src="../pics//5c638d59-d4ae-4ba4-ad44-80bdc30f38dd.jpg"/> </div><br>
Trie又称前缀树或字典树用于判断字符串是否存在或者是否具有某种字符串前缀。