Given an array of non-negative integers arr, you are initially positioned at start index of the array. When you are at index i, you can jump to i + arr[i] or i - arr[i], check if you can reach to anyindex with value 0.
Notice that you can not jump outside of the array at any time.
Example 1:
Input: arr = [4,2,3,0,3,1,2], start = 5 Output: true Explanation: All possible ways to reach at index 3 with value 0 are: index 5 -> index 4 -> index 1 -> index 3 index 5 -> index 6 -> index 4 -> index 1 -> index 3
Example 2:
Input: arr = [4,2,3,0,3,1,2], start = 0 Output: true Explanation: One possible way to reach at index 3 with value 0 is: index 0 -> index 4 -> index 1 -> index 3
Example 3:
Input: arr = [3,0,2,1,2], start = 2 Output: false Explanation: There is no way to reach at index 1 with value 0.
Constraints:
1 <= arr.length <= 5 * 10^40 <= arr[i] < arr.length0 <= start < arr.length
题目大意:给定一个数组arr和数组的索引start,当在索引i位置,可以跳到 $i + arr[i]$或者$i - arr[i]$处。注:不能跳到数组外。
思路:可能的路径可以限制为每个位置只跳过一次,这样可以减小路径长度。当在某一个位置,向左和向右跳的位置都已经跳过时,表明这个位置不可能到达0.
用bfs很容易解决。
1 class Solution { 2 public: 3 bool canReach(vector<int>& arr, int start) { 4 // ios_base::sync_with_stdio(false); 5 // cin.tie(nullptr); 6 // cout.tie(nullptr); 7 bool flag = false; //判定是否可到达的标志 8 int len = arr.size(); 9 vector<bool> visited(len, false); //广搜过程中每个元素只能访问一次 10 queue<int> q; 11 12 if (arr[start] == 0) 13 return true; 14 q.push(start); 15 visited[start] = true; 16 while (!q.empty()) { 17 int sz = q.size(); //当前层次的队列中的所有元素进行一次跳跃 18 for (int i = 0; i < sz; i++) { 19 int index = q.front(); 20 q.pop(); 21 int left = index + arr[index], right = index - arr[index]; 22 //向左跳,如果计算得到的索引还在数组内,并且之前没有跳过,就可以跳 23 if (left >= 0 && left < len && (visited[left] == false)) { 24 if (arr[left] == 0) { //如果此时数组值为0,则返回true 25 flag = true; 26 return flag; 27 } else { 28 visited[left] = true; 29 q.push(left); 30 } 31 } 32 //向右跳,如果计算得到的索引还在数组内,并且之前没有跳过,就可以跳 33 if (right >= 0 && right < len && (visited[right] == false)) { 34 if (arr[right] == 0) { //如果此时数组值为0,则返回true 35 flag = true; 36 return flag; 37 } else { 38 visited[right] = true; 39 q.push(right); 40 } 41 } 42 } 43 } 44 return false; 45 } 46 };