We have two special characters. The first character can be represented by one bit 0. The second character can be represented by two bits (10 or 11).
Now given a string represented by several bits. Return whether the last character must be a one-bit character or not. The given string will always end with a zero.
Example 1:
Input: bits = [1, 0, 0] Output: True Explanation: The only way to decode it is two-bit character and one-bit character. So the last character is one-bit character.
Example 2:
Input: bits = [1, 1, 1, 0] Output: False Explanation: The only way to decode it is two-bit character and two-bit character. So the last character is NOT one-bit character.
Note:
1 <= len(bits) <= 1000.bits[i]is always0or1.
思路:
从头到尾遍历,如果该位数字为1,则向后前进两位,否则前进1位。
class Solution { public: bool isOneBitCharacter(vector<int>& bits) { int n = bits.size(), i = 0; while (i < n - 1) { if (bits[i] == 0) i++; else i += 2; } return i == n - 1 ? true : false; } };
参考:
https://discuss.leetcode.com/topic/108743/java-solution-1-or-2