DFS习题复习

DFS(深度优先搜索)解题思路：recursion的思想。（常见题型：当题目要求穷举所有可能性时，多用DFS），解题思路分两步：

1：考虑总共recursion有几层

2：考虑每一层recursion内有多少个case

1.All Subsets

Given a set of characters represented by a String, return a list containing all subsets of the characters.

Assumptions

There are no duplicate characters in the original set.

Examples

Set = "abc", all the subsets are [“”, “a”, “ab”, “abc”, “ac”, “b”, “bc”, “c”]
Set = "", all the subsets are [""]
Set = null, all the subsets are []

解题思路：1：recursion层数为：set.length()

2:每层case，只需考虑当前layer对应的character存在或不存在

recursion tree 为(以“abc”为例)： {}

"a" level: {a} {}

"b"level: {ab} {a} {b} {}

"c"level: {abc} {ab} {ac} {a} {bc} {b} {c} {}

由recursion tree可以看出，当递归进行到最后一层时，所有得leaf node就为所有得结果：

Java Solution:

 1 public List<String> subSets(String set) {
 2    List<String>result=new ArrayList<String>();
 3    if(set == null){
 4      return result;
 5    }
 6    helper(set, new StringBuilder(), 0, result);
 7    return result;
 8   }
 9   private void helper(String set, StringBuilder sb, int layer, List<String>result){
10     if(layer == set.length()){
11       result.add(sb.toString());
12       return;
13     }
14     sb.append(set.charAt(layer));
15     helper(set, sb, layer+1, result);
16     sb.deleteCharAt(sb.length()-1);
17     helper(set, sb, layer+1, result);
18   }

All subsets

考虑存在重复元素的情况：

去重方法：

Solution1：如果数组是已经排序好的，我们可以比较容易的去处重复元素，在每一层layer进行完后，只需要跳到下一个和当前值不同的节点即可。

由于整个DFS的时间复杂度为O（2^n），因此可以先将传入数组排序后再进行DFS过程，由于排序时间复杂度仅为o（nlogn）因此并不影响整体的时间复杂度。

Solution2：如果不进行排序，也可以每层maintain一个hashset，存放之前层出现过的charater，跳过所有之前存在过的节点即可。

 1 public List<String> subSets(String set) {
 2         List<String> result = new ArrayList<String>();
 3         if (set == null) {
 4             return result;
 5         }
 6         if(set.length() == 0) {
 7             result.add("");
 8             return result;
 9         }
10         char[]array=set.toCharArray();
11         Arrays.sort(array);
12         set=new String(array);
13         helper(result,set,0,new StringBuilder());
14         return result;
15     }
16     private void helper(List<String>result,String set, int layer, StringBuilder sb) 
17        {
18         if(layer == set.length()) {
19             result.add(sb.toString());
20             return;
21         }
22         sb.append(set.charAt(layer));
23         helper(result,set,layer+1,sb);
24         sb.deleteCharAt(sb.length()-1);
25         while(layer < set.length()-1 && set.charAt(layer+1) == set.charAt(layer)) {
26             layer++;
27         }
28         helper(result,set,layer+1,sb);
29     }

All subsets2.

2.All Permutations:

Given a string with no duplicate characters, return a list with all permutations of the characters.

Examples

Set = “abc”, all permutations are [“abc”, “acb”, “bac”, “bca”, “cab”, “cba”]
Set = "", all permutations are [""]
Set = null, all permutations are []

解题思路：

1：总共层数，layer=set.length();

2：每层case：同subsets的区别在于，每个character仅是位置互换，而非考虑其存在不存在。因此在每一层recursion中，我们只需穷举所有可能在当前位置出现的character的可能性。具体的实现方法，将当前节点后的每个节点的值和当前节点swap，递归完后再swap回来再交换下一个节点，简称“swap来swap去”

PS:若题目要求需要考虑有重复元素的情况时，去重方法与上题完全相同，既可以从sort的角度去考虑，也可以用Hashset的方法。

Java Solution：

 1 public List<String> permutations(String set) {
 2   List<String>result=new ArrayList<String>();
 3   if(set==null){
 4     return result;
 5   }
 6   char[]c=set.toCharArray();
 7   helper(c, result, 0);
 8   return result;
 9   }
10   private void helper(char[]c, List<String>result,int index){
11     if(index == c.length){
12       result.add(new String(c));
13       return;
14     }
15     for(int i=index; i<c.length; i++){
16       swap(c, i, index);
17       helper(c, result, index+1);
18       swap(c, i, index);
19     }
20   }
21   private void swap(char[]array, int i, int j){
22     char temp=array[i];
23     array[i]=array[j];
24     array[j]=temp;
25   }

All permutation

3：All Valid Permutations Of Parentheses

Given N pairs of parentheses “()”, return a list with all the valid permutations.

Assumptions

N >= 0

Examples

N = 1, all valid permutations are ["()"]
N = 3, all valid permutations are ["((()))", "(()())", "(())()", "()(())", "()()()"]
N = 0, all valid permutations are [""]

解题思路：

1：总共有多少层？总共层数为括号总数：n*2

2：每层有多少case？与之前两题不同的是，本题需要考虑左括号和右括号添加priority的问题，既必须得保证，在每次添加右括号时，得保证之前添加的左括号个数大于右括号个数。既如果之前添加过的括号为“（）”，在当前层仅能加左括号而不能加右括号，因此每层的case分为两个，既要么加左括号，要么加右括号。

Java Solution:

 1 public List<String> validParentheses(int n) {
 2    List<String>result=new ArrayList<String>();
 3    helper(n, 0, 0, result, new StringBuilder());
 4    return result;
 5   } 
 6   private void helper(int n, int left, int right, List<String>result, StringBuilder sb){
 7     if(left == n && right == n){
 8       result.add(sb.toString());
 9       return;
10     }
11     if(left < n){
12       sb.append("(");
13       helper(n, left+1, right, result, sb);
14       sb.deleteCharAt(sb.length()-1);
15     }
16     if(right < left){
17       sb.append(")");
18       helper(n, left, right+1, result, sb);
19       sb.deleteCharAt(sb.length()-1);
20     }
21   }

All valid parentheses

4:Combination of Coins

Given a number of different denominations of coins (e.g., 1 cent, 5 cents, 10 cents, 25 cents), get all the possible ways to pay a target number of cents.

Arguments

coins - an array of positive integers representing the different denominations of coins, there are no duplicate numbers and the numbers are sorted by descending order, eg. {25, 10, 5, 2, 1}
target - a non-negative integer representing the target number of cents, eg. 99

Assumptions

coins is not null and is not empty, all the numbers in coins are positive
target >= 0
You have infinite number of coins for each of the denominations, you can pick any number of the coins.

Return

a list of ways of combinations of coins to sum up to be target.
each way of combinations is represented by list of integer, the number at each index means the number of coins used for the denomination at corresponding index.

Examples

coins = {2, 1}, target = 4, the return should be

[

[0, 4], (4 cents can be conducted by 0 * 2 cents + 4 * 1 cents)

[1, 2], (4 cents can be conducted by 1 * 2 cents + 2 * 1 cents)

[2, 0] (4 cents can be conducted by 2 * 2 cents + 0 * 1 cents)

]

解题思路：

1：多少层？： coins.length 层（硬币种类数）每一层仅需考虑当前种类的硬币可能存在多少种情况

2：每层多少case？：每层case为每种硬币在当前target的条件下，所有可能出现的情况。比如：当前剩余硬币为100，当前硬币面值为3，那当前面值为3的硬币的所有可能性为0-100/3 次，分析时间复杂度时，取worst case，既面值最小硬币的情况，如target=100，最小硬币面值为1时，时间复杂度为o（100^coins.length）

Java Solution:

 1 public List<List<Integer>> combinations(int target, int[] coins){
 2      List<List<Integer>>result=new ArrayList<List<Integer>>();
 3    helper(target, coins, result, new ArrayList<Integer>(), 0);
 4    return result;
 5     }
 6     private void helper(int target, int[]coins, List<List<Integer>>result,
 7     List<Integer>list, int layer){
 8       if(layer == coins.length-1){
 9         if(target % coins[layer] == 0){
10           list.add(target/coins[layer]);
11           result.add(new ArrayList(list));
12           list.remove(list.size()-1);
13         }
14         return;
15       }
16       for(int i=0; i <= target/coins[layer]; i++){
17         list.add(i);
18         helper(target-(i*coins[layer]), coins, result, list, layer+1);
19         list.remove(list.size()-1);
20       }
21     }

Combinations Of Coins

5: N皇后问题

Get all valid ways of putting N Queens on an N * N chessboard so that no two Queens threaten each other.

Assumptions

N > 0

Return

A list of ways of putting the N Queens
Each way is represented by a list of the Queen's y index for x indices of 0 to (N - 1)

Example

N = 4, there are two ways of putting 4 queens:

[1, 3, 0, 2] --> the Queen on the first row is at y index 1, the Queen on the second row is at y index 3, the Queen on the third row is at y index 0 and the Queen on the fourth row is at y index 2.

[2, 0, 3, 1] --> the Queen on the first row is at y index 2, the Queen on the second row is at y index 0, the Queen on the third row is at y index 3 and the Queen on the fourth row is at y index 1.

解题思路与之前题类似，还是分析两个条件：

1：总共有多少层？：显然有N层。

2：每层有多少个case？每层理论上来说，需要考虑每一个位置，但是并不是所有的节点都valid，由于上下及斜线不能有重复节点，所以在每层递归到下一层前需要先判断该位置是否valid，时间复杂度为n！.

Java Solution：

 1 public List<List<Integer>> nqueens(int n) {
 2     List<List<Integer>>result=new ArrayList<List<Integer>>();
 3     helper(result, new ArrayList<Integer>(), n, 0);
 4     return result;
 5   }
 6   private void helper(List<List<Integer>>result, List<Integer>list, int n, int layer){
 7     if(n == layer){
 8       result.add(new ArrayList<Integer>(list));
 9       return;
10     }
11     for(int i=0; i<n; i++){
12       if(isValid(i, list)){
13         list.add(i);
14         helper(result, list, n, layer+1);
15         list.remove(list.size()-1);
16       }
17     }
18   }
19   private boolean isValid(int i, List<Integer>list){
20     if(list.isEmpty()){
21       return true;
22     }
23     int layer=0;
24     for(Integer in: list){
25       if(i == in || Math.abs(i-in) == Math.abs(list.size()-layer)){
26         return false;
27       }
28       layer++;
29     }
30     return true;
31   }

N Queens