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这道题我还想着用BFS来做,但发现在最坏情况下(minJump=1, maxJump=99999)会达到O(n^2)的复杂度,那么BFS就不能做了。
再看下题目,把重点放在minJump和maxJump这两个变量上,有点类似sliding window / two pointers。遍历数组,到某个点i,如何判断这个点i是否在之前的某个有效j的辐射范围[j+minJump, j+maxJump]里呢?直接判断i-minJump/i-maxJump就行了。如果在多个范围内,就用一个变量叠加表示。
class Solution { public boolean canReach(String s, int minJump, int maxJump) { int n = s.length(); if (s.charAt(n - 1) == '1') { return false; } boolean[] dp = new boolean[n]; dp[0] = true; int prev = 0; for (int i = 1; i < n; ++i) { if (i >= minJump) { prev += dp[i - minJump] ? 1 : 0; } if (i > maxJump) { prev -= dp[i - maxJump - 1] ? 1 : 0; } dp[i] = prev > 0 && s.charAt(i) == '0'; } return dp[n - 1]; } }
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这道题我还想着用BFS来做,但发现在最坏情况下(minJump=1, maxJump=99999)会达到O(n^2)的复杂度,那么BFS就不能做了。
再看下题目,把重点放在minJump和maxJump这两个变量上,有点类似sliding window / two pointers。遍历数组,到某个点i,如何判断这个点i是否在之前的某个有效j的辐射范围[j+minJump, j+maxJump]里呢?直接判断i-minJump/i-maxJump就行了。如果在多个范围内,就用一个变量叠加表示。
The text was updated successfully, but these errors were encountered: