We are playing the Guess Game. The game is as follows:
I pick a number from 1 to n. You have to guess which number I picked.
Every time you guess wrong, I'll tell you whether the number is higher or lower.
You call a pre-defined API guess(int num)
which returns 3 possible results (-1
, 1
, or 0
):
-1 : My number is lower
1 : My number is higher
0 : Congrats! You got it!
Example:
n = 10, I pick 6. Return 6.
这道题是一道典型的猜价格的问题,根据对方说高了还是低了来缩小范围,虽然是道 Easy 题,无脑线性遍历还是会超时 Time Limit Exceeded,所以更快速的方法就是折半搜索法,原理很简单,属于博主之前的总结帖 LeetCode Binary Search Summary 二分搜索法小结 中的第四类-用子函数当作判断关系,参见代码如下:
int guess(int num); class Solution {
public:
int guessNumber(int n) {
if (guess(n) == ) return n;
int left = , right = n;
while (left < right) {
int mid = left + (right - left) / , t = guess(mid);
if (t == ) return mid;
if (t == ) left = mid + ;
else right = mid;
}
return left;
}
};
Github 同步地址:
https://github.com/grandyang/leetcode/issues/374
类似题目:
Guess Number Higher or Lower II
参考资料:
https://leetcode.com/problems/guess-number-higher-or-lower/
https://leetcode.com/problems/guess-number-higher-or-lower/discuss/84664/0ms-c%2B%2B-binary-search